752 lines
24 KiB
C#
752 lines
24 KiB
C#
///
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/// Copyright (c) 2015 Sensus Metering Systems
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/// Author: Milan Hanajík
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///
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using System;
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using System.Collections.Generic;
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using System.IO;
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using System.IO.Ports;
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using System.Threading;
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using log4net;
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using TBF.BenchControl;
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using TBF.BenchControl.Generic;
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namespace TBF.BenchControl.WaterMeters.iPerl
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{
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/// <summary>
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/// This component = instance of this class is a placeholder for a combined main watermeter
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/// </summary>
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public class WaterMeter : ComponentBase, IDevice, GenericDevices.IWaterMeter, GenericDevices.IRegisterReader, IOperation
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{
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private static readonly ILog log = LogManager.GetLogger(typeof(WaterMeter));
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public override string ToString() { return string.Format("iPerl({0})", Cfg.ToString(1)); }
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readonly WaterMeterCfg iPerlCfg;
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public int MuxBoardNr { get { return iPerlCfg.MuxBoardNr; } }
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public int Group { get { return iPerlCfg.Group; } }
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public float PulsesPerLtr { get { return iPerlCfg.ProcParams.PulsesPerLtr; } }
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/// <summary>WaterMeter producer</summary>
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public string Producer { get { return iPerlCfg.ProcParams.Producer; } }
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/// <summary>Nominal water flow in [m3/h]</summary>
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public float Qn { get { return iPerlCfg.ProcParams.Qn; } }
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/// <summary>WaterMeter approval information or signature</summary>
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public string ApprovalInfo { get { return iPerlCfg.ProcParams.ApprovalInfo; } }
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/// <summary>Metrological class</summary>
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public string MetrologicalClass { get { return iPerlCfg.ProcParams.MetrologicalClass; } }
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/// Properties set by the Begin and the End form
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public string SerialNr
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{
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get
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{
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if (ConfigStruct != null) return configStruct.PCBNumber2String();
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else return string.Empty;
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}
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set { serialNr = value; }
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}
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string serialNr;
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public string EndState
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{
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get { return endState; }
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set { endState = value; }
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}
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string endState;
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public string BeginState
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{
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get { return beginState; }
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set { beginState = value; }
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}
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string beginState;
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public bool Disabled
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{
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get { return disabled; }
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set { disabled = value; }
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}
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bool disabled;
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public bool CommFailed
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{
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get { return commFailed; }
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set { commFailed = value; }
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}
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bool commFailed;
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/// <summary> ConfigStruct of the water meter obtained or updated by iPerlCommunication </summary>
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public ConfigStruct ConfigStruct
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{
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get { return configStruct; }
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set { configStruct = value; }
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}
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ConfigStruct configStruct;
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/// <summary> CalibrationStruct of the water meter obtained or updated by iPerlCommunication </summary>
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public CalibrationStruct CalibrationStruct
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{
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get { return calibrationStruct; }
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set { calibrationStruct = value; }
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}
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CalibrationStruct calibrationStruct;
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public ushort CalibrationFactor { get { return CalibrationStruct.Calibration; } }
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public double CurrentQ2Correction;
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/// <summary> Result of the last test used to calculate Q2 correction factors, etc </summary>
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public Entities.MeterTestResult LastTestResult;
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public double NominalTestFlow; /// liter per hour
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/// <summary>
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/// New calibration factor calculated from the original factor (argument)
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/// and results of the last test.
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/// </summary>
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/// <param name="originalCalibrationFactor">Original calibration factor</param>
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/// <returns>New calibration factor</returns>
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public UInt16 CalculateNewCalibFactor(UInt16 originalCalibrationFactor, UInt16 FactorLimitLo, UInt16 FactorLimitHi)
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{
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double volumeMeter = Math.Abs(VolumeLtrEnd - VolumeLtrStart);
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if (volumeMeter > 1E-2)
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{
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UInt16 newFactor = (UInt16)((double)originalCalibrationFactor * VolumeLtrRef / volumeMeter + 0.5);
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log.InfoFormat("Calibration factor: orig={0} new={1} V_1={2} V_2={3} Vdiff={4} Vref={5}",
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originalCalibrationFactor, newFactor,
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VolumeLtrStart.ToString("F3"), VolumeLtrEnd.ToString("F3"), volumeMeter.ToString("F3"),
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VolumeLtrRef.ToString("F3"));
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if (newFactor < FactorLimitLo) newFactor = FactorLimitLo;
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if (newFactor > FactorLimitHi) newFactor = FactorLimitHi;
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return newFactor;
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}
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else
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{
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log.ErrorFormat("Calibration factor: orig={0} new={0} (unchanged!) Vdiff={1}",
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originalCalibrationFactor, volumeMeter.ToString("F3"));
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return originalCalibrationFactor; /// Too small volume in the denominator -> no correction at all
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}
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}
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/// <summary>
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/// Q2 correction factor calculated from the last test (Q2).
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/// This factors should be used only for R800 meters.
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/// </summary>
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/// <returns>Q2 correction factor</returns>
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public double Q2CorrectionFactor()
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{
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if (Math.Abs(LastTestResult.VolumeErrorPct) <= 0.5f) return 0; /// No Q2 correction if error < +/-0.5 %
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double A = 16.0 / ScalingFactor(); /// Raw units per ml: DN15=16, DN20=8, DN25=4, DN32=2, DN40=1
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const double B = 8.0; /// Raw units per minute, 8
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const double C = B * 60.0; /// Raw units per hour, 480
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double D = C / A; /// ml correction per hour
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double F = D / (NominalTestFlow * 10.0); /// Error corrected with 8 Raw Units per minute [%]
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double G = F / B; /// Error corrected with 1 Raw Unit per minute [%]
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float errLimitLo = LastTestResult.TestResult.ErrLimLo;
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float errLimitHi = LastTestResult.TestResult.ErrLimHi;
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float volumeMeterErrLimLo = LastTestResult.VolumeRef * (100.0f + errLimitLo) / 100.0f;
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float volumeMeterErrLimHi = LastTestResult.VolumeRef * (100.0f + errLimitHi) / 100.0f;
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double corrFactorHi = (-1) * (errLimitLo / G) * (LastTestResult.VolumeRef / volumeMeterErrLimLo); /// > 0
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double corrFactorLo = (-1) * (errLimitHi / G) * (LastTestResult.VolumeRef / volumeMeterErrLimHi); /// < 0
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double corrFactor = (-1) * (LastTestResult.VolumeErrorPct / G) * (LastTestResult.VolumeRef / LastTestResult.VolumeMeter);
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double origCalulatedCorrFactor = corrFactor;
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if (corrFactor < corrFactorLo) corrFactor = corrFactorLo;
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if (corrFactor > corrFactorHi) corrFactor = corrFactorHi;
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log.WarnFormat("Q2 correction: {0}, corrFactor={7}, corrOrig={6} [{4}, {5}], error={3}% [{1}%, errLimHi={2}%]",
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Name,
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errLimitLo.ToString("F1"),
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errLimitHi.ToString("F1"),
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LastTestResult.VolumeErrorPct.ToString("F2"),
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corrFactorLo.ToString("F1"),
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corrFactorHi.ToString("F1"),
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origCalulatedCorrFactor.ToString("F1"),
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corrFactor.ToString("F1"));
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return corrFactor;
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}
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/// <summary> Name set by the test, to be used as a part og the opto-data log file name </summary>
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public string TestName;
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/// <summary> Name set by the test, to be used as a part og the opto-data log file name </summary>
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public string BenchName;
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///
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/// Volume of water from the opto telegram
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///
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bool lastVolumeRawValid; /// true = valid
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private Int32 lastVolumeRaw; /// Last read raw volume
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private double volumeLtr; ///
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private double volumeLtr0;
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public double VolumeLtrStart; /// Test start volume for metrology
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public double VolumeLtrEnd; /// Test end volume for metrology
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public double VolumeLtrRef; /// Reference volume or metrology
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double volumeLtrEnd1; /// auxiliary buffer1 to keep the end volume before test stops
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double volumeLtrEnd2; /// auxiliary buffer2 to keep the end volume before test stops
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double volumeLtrEnd3; /// auxiliary buffer3 to keep the end volume before test stops
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///
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/// Timestamp from the opto telegram
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///
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bool lastTimestampValid;
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private Int64 lastTimestamp;
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private double timestampSec;
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private double timestampSec0;
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public double TimestampSecStart;
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public double TimestampSecEnd;
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double timestampSecEnd1;
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double timestampSecEnd2;
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double timestampSecEnd3;
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private Boxes.IntBox pulses;
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private Boxes.IntBox refPulses;
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private Boxes.DoubleBox timeSec;
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OptoTelegramRaw[] optoData;
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const int MaxOptoDataCount = 40000;
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int optoDataCount;
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string optoDataLogFileName;
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OptoTelegramRaw toBeFlushed;
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int flushedDataCount;
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public int FlushedDataCount
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{
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get { return flushedDataCount; }
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set { flushedDataCount = value; }
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}
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///
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/// Opto serial port and worker thread related private variables
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///
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private SerialPort optoSerialPort;
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public WaterMeter()
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{
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disabled = false;
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commFailed = false;
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}
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public WaterMeter(WaterMeterCfg cfg)
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: base(cfg)
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{
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disabled = false;
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commFailed = false;
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iPerlCfg = cfg;
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log.Debug(this.ToString());
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}
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int NrFormName(string name)
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{
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int len = name.Length;
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if (len < 2) return 0;
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int loNr = (int)name[len - 1] - (int)'0';
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int hiNr = (int)name[len - 2] - (int)'0';
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if (hiNr < 1 || hiNr > 4) hiNr = 0;
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return 10 * hiNr + loNr;
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}
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public void Initialize()
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{
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if (DebugLevel == Entities.DebugMode.Normal)
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{
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optoSerialPortParsingEnabled = false;
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/// Allocate memory for opto-data from iPerl
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optoData = new OptoTelegramRaw[MaxOptoDataCount];
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for (int i = 0; i < MaxOptoDataCount; i++) optoData[i] = new OptoTelegramRaw();
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toBeFlushed = new OptoTelegramRaw();
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flushedDataCount = 0;
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synchronized = false;
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synchronized2 = false;
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partOfTelegram = string.Empty;
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/// Prepare serial port
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optoSerialPort = new SerialPort(string.Format("COM{0}", iPerlCfg.OptoComPortNr),
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9600, Parity.None, 8, StopBits.One);
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optoSerialPort.Handshake = Handshake.None;
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optoSerialPort.Open();
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}
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}
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public void RunDeviceBefore()
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{
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if (DebugLevel == Entities.DebugMode.Normal)
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{
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try
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{
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if (optoSerialPortParsingEnabled)
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ReadOptoSerialPort(OptoState.Read);
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else
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ReadOptoSerialPort(OptoState.Flush);
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}
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catch (Exception e)
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{
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DebugLevel = Entities.DebugMode.FailureDuringOperation;
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log.FatalFormat("Opto-data serial port failure : {0}", e.Message);
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if (e.InnerException != null)
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{
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log.FatalFormat("InnerMessage : {0}", e.InnerException.Message);
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}
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}
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}
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else if (DebugLevel == Entities.DebugMode.FailureDuringOperation)
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{
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}
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}
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public void RunDeviceAfter()
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{
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}
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public void StopDevice()
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{
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if (DebugLevel == Entities.DebugMode.Normal && optoSerialPort != null)
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{
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optoSerialPort.Close();
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}
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}
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/// <summary>
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/// Events: Event.ReadRegisterDone, Event.Error
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/// </summary>
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/// <param name="pulses">Reference to a variable for the water meter pulses</param>
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/// <returns>ReadWaterMeter instance reference casted to IOperaton</returns>
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public IOperation ReadRegisterOp(ref Boxes.IntBox pulses)
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{
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this.pulses = pulses;
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return this;
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}
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/// <summary>
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/// Events: Event.ReadRegisterDone, Event.Error
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/// </summary>
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/// <param name="pulses">Reference to a variable for the water meter pulses</param>
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/// <param name="refPulses">Reference to a variable for the related reference flowmeter pulses</param>
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/// <returns>Reference to operation object instance</returns>
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public IOperation ReadRegisterOp(ref Boxes.IntBox pulses, ref Boxes.IntBox refPulses)
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{
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this.pulses = pulses;
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this.refPulses = refPulses;
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return this;
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}
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/// <summary>
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/// Events: Event.ReadRegisterDone, Event.Error
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/// </summary>
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/// <param name="pulses">Reference to a variable for the water meter pulses</param>
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/// <param name="timeSec">Reference to a variable for the related time in seconds</param>
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/// <returns>Reference to operation object instance</returns>
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public IOperation ReadRegisterOp(ref Boxes.IntBox pulses, ref Boxes.DoubleBox timeSec)
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{
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this.pulses = pulses;
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this.timeSec = timeSec;
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return this;
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}
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/// <summary>
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/// Events: ReadReferenceDone, Error
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/// </summary>
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/// <param name="pulses">Reference to a variable for the water meter pulses</param>
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/// <param name="timeSec">Reference to a variable for the related time in seconds</param>
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/// <param name="refPulses">Reference to a variable for the water meter pulses</param>
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/// <returns>Reference to operation object instance</returns>
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public IOperation ReadRegisterOp(ref Boxes.IntBox pulses, ref Boxes.DoubleBox timeSec, ref Boxes.IntBox refPulses)
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{
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this.pulses = pulses;
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this.timeSec = timeSec;
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this.refPulses = refPulses;
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return this;
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}
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/// <summary>
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/// Events: ReadReferenceDone, Error
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/// </summary>
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/// <param name="pulses">Reference to a variable for the water meter pulses</param>
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/// <param name="refPulses">Reference to a variable for the water meter pulses</param>
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/// <returns>Reference to operation object instance</returns>
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public IOperation ReadReferenceForRegisterOp(ref Boxes.IntBox pulses, ref Boxes.IntBox refPulses)
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{
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this.pulses = pulses;
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this.refPulses = refPulses;
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return this;
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}
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int sampleNr; /// This is to determine when the test start sample should be taken
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/// <summary>Start this operation</summary>
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public void Start()
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{
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/// Reset opto data
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optoDataCount = 0;
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optoDataLogFileName = string.Format("{0}_{1}_{2}_{3}_{4}",
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(ConfigStruct != null) ? ConfigStruct.PCBNumber2String() : "UnknownPcbNr",
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Utils.ToMyString(DateTime.Now),
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BenchName,
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Name,
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(TestName != null ? TestName : string.Empty));
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sampleNr = 0;
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volumeLtr = 0;
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volumeLtr0 = 0;
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timestampSec = 0;
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timestampSec0 = 0;
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ReadPulses();
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StartParsingOptoSerialPort();
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}
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/// <summary>Run this operation</summary>
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/// <returns>eventDone</returns>
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public Event Run()
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{
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sampleNr++;
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ReadPulses();
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if (sampleNr == 4)
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{
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/// Take the test start sample
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VolumeLtrStart = volumeLtr;
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TimestampSecStart = timestampSec;
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}
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/// Shift data in pipelines
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VolumeLtrEnd = volumeLtrEnd3;
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//volumeLtrEnd6 = volumeLtrEnd5;
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//volumeLtrEnd5 = volumeLtrEnd4;
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//volumeLtrEnd4 = volumeLtrEnd3;
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volumeLtrEnd3 = volumeLtrEnd2;
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volumeLtrEnd2 = volumeLtrEnd1;
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volumeLtrEnd1 = volumeLtr;
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TimestampSecEnd = timestampSecEnd3;
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//timestampSecEnd6 = timestampSecEnd5;
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//timestampSecEnd5 = timestampSecEnd4;
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//timestampSecEnd4 = timestampSecEnd3;
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timestampSecEnd3 = timestampSecEnd2;
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timestampSecEnd2 = timestampSecEnd1;
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timestampSecEnd1 = timestampSec;
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return Event.ReadRegisterDone;
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}
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/// <summary>Stop this operation</summary>
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public void Stop()
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{
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StopParsingOptoSerialPort();
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SaveOptoData();
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}
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void SaveOptoData()
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{
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string directory = "C:\\TBF\\ProcessData\\"; /// TODO: determine correct relative path
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Directory.CreateDirectory(directory);
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TextWriter optoLogFile = new StreamWriter(directory + optoDataLogFileName + ".txt");
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for (int i = 0; i < optoDataCount; i++) optoLogFile.WriteLine(optoData[i].ToString());
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optoLogFile.Close();
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}
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void ReadPulses()
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{
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pulses.Val = (int)((volumeLtr - volumeLtr0) * (double)PulsesPerLtr + 0.5);
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if (timeSec != null) timeSec.Val = timestampSec - timestampSec0;
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if (refPulses != null) refPulses.Val = StateMachine.ControlBoard.EtPulses(0);
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}
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bool optoSerialPortParsingEnabled;
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/// <summary> Flush internal buffers and start parsing the opto serial port data </summary>
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void StartParsingOptoSerialPort()
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{
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optoSerialPortParsingEnabled = true;
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}
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/// <summary> Stop parsig the opto serial port data </summary>
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void StopParsingOptoSerialPort()
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{
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optoSerialPortParsingEnabled = false;
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}
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///
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/// Variables storing the context of serial port data parsing (ReadOptoSerialPort(...))
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///
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bool synchronized;
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bool synchronized2;
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string partOfTelegram;
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/// <summary>
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/// 9600 Bd, 8 data bits, 1 stop bit, no parity
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///
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/// Telegram description:
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///
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/// AAAAAA[tab]BBBB[tab]CCCC[tab]DDDDDD[tab]EEEE[tab]FFFFFFFF[tab]GG[cr][lf] (42 bytes)
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///
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/// Example:
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/// FFFFFE 51EA 0000 65324E 0087 F6319DFF 86
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/// FFDD3A 51F9 0000 65324E 0088 F631A60B 45
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/// ...
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/// </summary>
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/// <param name="optoState">OptoState.Read or OptoState.Flush</param>
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void ReadOptoSerialPort(OptoState optoState)
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{
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int nrBytes = optoSerialPort.BytesToRead;
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if (nrBytes > 0)
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{
|
|
char[] buffer = new char[nrBytes];
|
|
optoSerialPort.Read(buffer, 0, nrBytes);
|
|
string received = new string(buffer);
|
|
|
|
string allRcvd = partOfTelegram + received;
|
|
|
|
while (true)
|
|
{
|
|
int pos = allRcvd.IndexOf("\r\n");
|
|
|
|
if (pos < 0)
|
|
{
|
|
/// No CR+LF found, wait for more characters in the next invocation
|
|
partOfTelegram = allRcvd;
|
|
return;
|
|
}
|
|
else
|
|
{
|
|
// CR+LF found
|
|
if (optoState == OptoState.Read)
|
|
{
|
|
if (pos < OptoTelegram.Length - 2)
|
|
{
|
|
/// CR+LF found too early, truncate the beginning incl CR+LF and keep scanning in this loop
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
if (synchronized)
|
|
{
|
|
optoData[optoDataCount++].SetFlags(OptoTelegramFlags.SyncError);
|
|
}
|
|
synchronized = true;
|
|
}
|
|
// CR+LF found and (pos >= OptoTelegram.Length - 2)
|
|
else if (optoData[optoDataCount].UpdateFromString(allRcvd.Substring(pos - OptoTelegramRaw.Length + 2)))
|
|
{
|
|
OptoTelegramRreceived(optoData[optoDataCount++], synchronized2);
|
|
synchronized2 = synchronized;
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
}
|
|
else
|
|
{
|
|
optoData[optoDataCount++].SetFlags(OptoTelegramFlags.InvalidTelegram);
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
}
|
|
}
|
|
else /// optoState == OptoState.Flush
|
|
{
|
|
if (pos < OptoTelegram.Length - 2)
|
|
{
|
|
/// CR+LF found too early, truncate the beginning incl CR+LF and keep scanning in this loop
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
synchronized = true;
|
|
}
|
|
// CR+LF found and (pos >= OptoTelegram.Length - 2)
|
|
else if (toBeFlushed.UpdateFromString(allRcvd.Substring(pos - OptoTelegramRaw.Length + 2)))
|
|
{
|
|
flushedDataCount++;
|
|
synchronized2 = synchronized;
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
}
|
|
else
|
|
{
|
|
allRcvd = allRcvd.Substring(pos + 2);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
//OnOptoReceived(this, new OptoReceivedEventArgs(s));
|
|
}
|
|
else
|
|
{
|
|
//OnOptoReceived(this, new OptoReceivedEventArgs("."));
|
|
}
|
|
}
|
|
|
|
|
|
void OptoTelegramRreceived(OptoTelegramRaw optoTelegram, bool async)
|
|
{
|
|
Int32 uncorrectedRawVolume = 0;
|
|
if (!lastVolumeRawValid)
|
|
{
|
|
lastVolumeRaw = optoTelegram.VolumeRaw;
|
|
lastVolumeRawValid = true;
|
|
}
|
|
else
|
|
{
|
|
uncorrectedRawVolume = (Int32)((lastVolumeRaw & 0x7F000000) | (optoTelegram.VolumeRaw & 0x00FFFFFF));
|
|
if (Math.Abs(uncorrectedRawVolume - lastVolumeRaw) <= 0x007FFFFF)
|
|
{
|
|
lastVolumeRaw = uncorrectedRawVolume;
|
|
}
|
|
else if (Math.Abs(uncorrectedRawVolume + 0x01000000 - lastVolumeRaw) <= 0x007FFFFF)
|
|
{
|
|
lastVolumeRaw = uncorrectedRawVolume + 0x01000000;
|
|
}
|
|
else if (Math.Abs(uncorrectedRawVolume - 0x01000000 - lastVolumeRaw) <= 0x007FFFFF)
|
|
{
|
|
lastVolumeRaw = uncorrectedRawVolume - 0x01000000;
|
|
}
|
|
else
|
|
{
|
|
lastVolumeRaw = uncorrectedRawVolume; /// This should never happen
|
|
}
|
|
}
|
|
|
|
|
|
Int64 uncorrectedTimestamp = 0;
|
|
if (!lastTimestampValid)
|
|
{
|
|
lastTimestamp = optoTelegram.Timestamp;
|
|
lastTimestampValid = true;
|
|
}
|
|
else
|
|
{
|
|
uncorrectedTimestamp = (Int64)((lastTimestamp & 0x7FFFFFFF00000000) | (optoTelegram.Timestamp & 0xFFFFFFFF));
|
|
if (Math.Abs(uncorrectedTimestamp - lastTimestamp) <= 0x7FFFFFFF)
|
|
{
|
|
lastTimestamp = uncorrectedTimestamp;
|
|
}
|
|
else if (Math.Abs(uncorrectedTimestamp + 0x100000000 - lastTimestamp) <= 0x7FFFFFFF)
|
|
{
|
|
lastTimestamp = uncorrectedTimestamp + 0x100000000;
|
|
}
|
|
else if (Math.Abs(uncorrectedTimestamp - 0x100000000 - lastTimestamp) <= 0x7FFFFFFF)
|
|
{
|
|
lastTimestamp = uncorrectedTimestamp - 0x100000000;
|
|
}
|
|
else
|
|
{
|
|
lastTimestamp = uncorrectedTimestamp; /// This should never happen
|
|
}
|
|
}
|
|
|
|
if (volumeLtr == 0 && volumeLtr0 == 0)
|
|
{
|
|
volumeLtr = (double)lastVolumeRaw * ScalingFactor() / 16000.0;
|
|
volumeLtr0 = volumeLtr;
|
|
}
|
|
else
|
|
{
|
|
volumeLtr = (double)lastVolumeRaw * ScalingFactor() / 16000.0;
|
|
}
|
|
|
|
if (timestampSec == 0 && timestampSec0 == 0)
|
|
{
|
|
timestampSec = (double)lastTimestamp / 8192.0;
|
|
timestampSec0 = timestampSec;
|
|
}
|
|
else
|
|
{
|
|
timestampSec = (double)lastTimestamp / 8192.0;
|
|
}
|
|
|
|
//optoDataLogger.InfoFormat("{0} {1} {2} ltr {3} {4}", optoTelegram, lastTimestamp, lastVolumeRaw.ToString("X8"), timestampSec.ToString("F1"), volumeLtr.ToString("F3"));
|
|
}
|
|
|
|
|
|
/// <summary>
|
|
/// Called from the state machine when a test is selected and UI needs to be updated.
|
|
/// </summary>
|
|
public void OnOptoReceived(object sender, OptoReceivedEventArgs args)
|
|
{
|
|
if (OptoReceivedHandler == null) return;
|
|
try { OptoReceivedHandler(sender, args); }
|
|
catch (Exception) { }
|
|
}
|
|
|
|
public event EventHandler<OptoReceivedEventArgs> OptoReceivedHandler;
|
|
|
|
public static double UnitVolume(VolumeUnits units)
|
|
{
|
|
switch (units)
|
|
{
|
|
default:
|
|
case VolumeUnits.m3: return 1000.0; /// liter
|
|
case VolumeUnits.UK_gallon: return 4.546092; /// liter
|
|
case VolumeUnits.US_gallon: return 3.785412; // liter
|
|
}
|
|
}
|
|
|
|
public double ScalingFactor()
|
|
{
|
|
if ((iPerlCfg.MeterType == MeterType.AutoDetect) && (CalibrationStruct != null))
|
|
{
|
|
return WaterMeter.ScalingFactor(CalibrationStruct.MeterType);
|
|
}
|
|
else if (iPerlCfg.MeterType != MeterType.AutoDetect)
|
|
{
|
|
return WaterMeter.ScalingFactor(iPerlCfg.MeterType);
|
|
}
|
|
else
|
|
{
|
|
return WaterMeter.ScalingFactor(MeterType.DN20);
|
|
}
|
|
}
|
|
|
|
/// <summary>
|
|
/// Scaling factor:
|
|
/// 0, 1 (DN15, Coax) . . . . 1
|
|
/// 2 (DN20) . . . . . . . . 2
|
|
/// 3 (DN25) . . . . . . . . 4
|
|
/// 4, 5 (DN26, DN32) . . . . 8
|
|
/// 6 (DN40) . . . . . . . . 16
|
|
/// </summary>
|
|
/// <param name="meterType">MeterType (0..6)</param>
|
|
/// <returns>Scaling factor</returns>
|
|
public static double ScalingFactor(MeterType meterType)
|
|
{
|
|
switch (meterType)
|
|
{
|
|
default:
|
|
case MeterType.DN15:
|
|
case MeterType.CoaxManifold: return 1.0;
|
|
case MeterType.DN20: return 2.0;
|
|
case MeterType.DN25: return 4.0;
|
|
case MeterType.DN26:
|
|
case MeterType.DN32: return 8.0;
|
|
case MeterType.DN40: return 16.0;
|
|
}
|
|
}
|
|
}
|
|
}
|