334 lines
14 KiB
C#
334 lines
14 KiB
C#
using System;
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using System.Collections.Generic;
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using System.IO;
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using log4net;
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using TBF.BenchControl.GenericDevices;
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using TBF.Boxes;
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namespace TBF.BenchControl.Sequences
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{
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public class ProcessData
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{
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static readonly ILog log = LogManager.GetLogger(typeof(ProcessData));
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public static readonly string PDataFileName = "process_data.tbf";
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///
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/// References to components initialized on StateMachine start-up
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///
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public static IBenchInfo BenchInfo;
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public static IErrorFlags ErrorFlagsComp;
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public static IStatisticsMonitoring StatisticsMonitoringComp;
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public static Output.DB.SensusOracle.Database OracleDB;
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///
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/// State variables to be saved after each completed test
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///
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public static Results.BatchResults BatchRslts;
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///
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/// iPERL related state variables to be saved after each completed test
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public static IList<TestMethods.iPerlCommunication.iPerlHead.IperlHead> IperlHeads;
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public static bool IsQ2PreCorrectionCalculated;
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public static int CalculatedQ2PreCorrectionLR;
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public static int CalculatedQ2PreCorrectionRL;
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public static IList<Results.Output.SensusTestInfo> RawTestInfos; /// Incomplete raw test infos from Oracle DB
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public static Results.Output.SensusTestInfo[] CompleteTestInfos; /// Complete TBF test infos obtained as a best mathch
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static ProcessData()
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{
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///
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/// RegisterReaders should never be null, RegisterReader.Length should be Config.Data.WMsCount
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/// RegisterReader[i] where i = 0..Config.Data.WMsCount-1 may be null and should always be tested
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///
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RegisterReaders = new IRegisterReader[Config.Data.WMsCount];
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IsQ2PreCorrectionCalculated = false;
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CalculatedQ2PreCorrectionLR = 0;
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CalculatedQ2PreCorrectionRL = 0;
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}
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/// <summary>
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/// Save process data to file (invoked after each completed test).
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/// </summary>
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public static void SaveProcessData()
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{
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using (BinaryWriter writer = new BinaryWriter(File.OpenWrite(PDataFileName)))
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{
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BatchRslts.WriteBinary(writer);
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writer.Write(IperlHeads.Count);
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for (int i = 0; i < IperlHeads.Count; i++)
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{
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IperlHeads[i].WriteBinary(writer);
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}
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writer.Write(IsQ2PreCorrectionCalculated);
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writer.Write(CalculatedQ2PreCorrectionLR);
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writer.Write(CalculatedQ2PreCorrectionRL);
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#if ORACLE_DB
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/// Write RawTestInfos
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writer.Write((RawTestInfos != null) ? RawTestInfos.Count : 0);
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if (RawTestInfos != null)
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{
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for (int i = 0; i < RawTestInfos.Count; i++) RawTestInfos[i].WriteBinary(writer);
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}
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/// Write CompleteTestInfos
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writer.Write((CompleteTestInfos != null) ? CompleteTestInfos.Length : 0);
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if (CompleteTestInfos != null)
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{
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for (int i = 0; i < CompleteTestInfos.Length; i++) CompleteTestInfos[i].WriteBinary(writer);
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}
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#endif
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log.WarnFormat("Process data succesfully saved to file {0}", PDataFileName);
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}
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}
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public static bool LoadProcessDataHeader(out int batchNr, out string programVersion, out string procedureName, out bool isRemoteProcedure)
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{
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using (BinaryReader reader = new BinaryReader(File.OpenRead(PDataFileName)))
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{
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try
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{
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Results.Entities.Batch.ReadStart(reader, out batchNr, out programVersion, out procedureName, out isRemoteProcedure);
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return true;
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}
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catch (Exception)
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{
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batchNr = 0;
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programVersion = string.Empty;
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procedureName = string.Empty;
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isRemoteProcedure = false;
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return false;
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}
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}
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}
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/// <summary>
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/// Load process data from file (invoked when cycle is continued after it has been interrupted).
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/// </summary>
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/// <returns>true when successful</returns>
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public static bool LoadProcessData()
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{
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using (BinaryReader reader = new BinaryReader(File.OpenRead(PDataFileName)))
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{
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try
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{
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BatchRslts = new Results.BatchResults();
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BatchRslts.ReadBinary(reader);
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int iPerlHeadsCount = reader.ReadInt32();
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for (int i = 0; i < iPerlHeadsCount; i++)
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{
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if (IperlHeads != null && i < IperlHeads.Count)
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{
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IperlHeads[i].ReadBinary(reader);
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}
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else
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{
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new TestMethods.iPerlCommunication.iPerlHead.IperlHead().ReadBinary(reader);
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}
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}
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IsQ2PreCorrectionCalculated = reader.ReadBoolean();
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CalculatedQ2PreCorrectionLR = reader.ReadInt32();
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CalculatedQ2PreCorrectionRL = reader.ReadInt32();
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#if ORACLE_DB
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/// Read RawTestInfos
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int rawTestInfosCount = reader.ReadInt32();
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IList<Results.Output.SensusTestInfo> RawTestInfos = new List<Results.Output.SensusTestInfo>();
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for (int i = 0; i < rawTestInfosCount; i++)
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{
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Results.Output.SensusTestInfo ti = new Results.Output.SensusTestInfo();
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ti.ReadBinary(reader);
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RawTestInfos.Add(ti);
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}
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/// Read CompleteTestInfos
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int completeTestInfosLen = reader.ReadInt32();
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Results.Output.SensusTestInfo[] CompleteTestInfos = new Results.Output.SensusTestInfo[completeTestInfosLen];
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for (int i = 0; i < completeTestInfosLen; i++)
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{
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Results.Output.SensusTestInfo ti = new Results.Output.SensusTestInfo();
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ti.ReadBinary(reader);
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CompleteTestInfos[i] = ti;
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}
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#endif
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log.WarnFormat("Process data succesfully loaded from file {0}", PDataFileName);
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return true;
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}
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catch (Exception exc)
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{
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log.ErrorFormat("Error loading Process data from file {0}: {1}", PDataFileName, exc.Message);
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return false;
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}
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}
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}
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public static void ClearProcessData()
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{
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File.Delete(PDataFileName);
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}
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///
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/// Process values.
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/// These variables contain immediate values or values overwritten in each test.
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///
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public static IRegisterReader[] RegisterReaders;
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///
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public static FloatBox AmbTemp = new FloatBox() { Name = "Ambient Temperature", Format = "F1" }; /// [Celsius]
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public static FloatBox AmbPress = new FloatBox() { Name = "Ambient Pressure", Format = "F0", Factor = 1000 }; /// [bar], printed by ToString() in [mbar]
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public static FloatBox AmbHumi = new FloatBox() { Name = "Ambient Humidity", Format = "F1" }; /// [%]
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public static DoubleBox TempUp = new DoubleBox() { Name = "Temperature Up", Format = "F2" }; /// [°C]
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public static DoubleBox TempDown = new DoubleBox() { Name = "Temperature Dn", Format = "F2" }; /// [°C]
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public static DoubleBox TempDiv = new DoubleBox() { Name = "Temperature Div", Format = "F2" }; /// [°C]
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public static FloatBox PressUp = new FloatBox() { Name = "Pressure Up", Format = "F2" }; /// [bar]
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public static FloatBox PressDown = new FloatBox() { Name = "Pressure Dn", Format = "F2" }; /// [bar]
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public static FloatBox PressDelta = new FloatBox() { Name = "Pressure Delta", Format = "F2" }; /// [bar]
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public static FloatBox Conductivity = new FloatBox(750) { Name = "Conductivity", Format = "F0" }; /// [uS/cm], default is 750
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public static double LtrPerRefPulse; /// to calculate the ref.volume
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public static int RefPulses;
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public static int RefPulsesDelta;
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public static DoubleBox RefFreq = new DoubleBox() { Name = "RefFreq", Format = "F2" };
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public static DoubleBox RefFlow = new DoubleBox() { Name = "RefFlow", Format = "F2" }; /// [m3/h]
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public static DoubleBox Mass = new DoubleBox() { Name = "Mass", Format = "F3" }; /// [kg]
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public static DoubleBox StartMass = new DoubleBox() { Name = "Start Mass", Format = "F3" }; /// [kg]
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public static DoubleBox EndMass = new DoubleBox() { Name = "End Mass", Format = "F3" }; /// [kg]
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public static DateTime TestStartTime;
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public static DateTime TestEndTime;
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public static double StartTime;
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public static double EndTime;
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/// Heat meters only
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public static DoubleBox TempRefHi1 = new DoubleBox() { Name = "T hi ac 1", Format = "F3" }; /// [°C]
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public static DoubleBox TempRefHi2 = new DoubleBox() { Name = "T hi ac 2", Format = "F3" }; /// [°C]
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public static DoubleBox TempRefLo1 = new DoubleBox() { Name = "T lo ac 1", Format = "F3" }; /// [°C]
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public static DoubleBox TempRefLo2 = new DoubleBox() { Name = "T lo ac 2", Format = "F3" }; /// [°C]
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/// <summary>
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/// To clear process values at the beginning of each test
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/// </summary>
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protected void ClearProcessValues()
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{
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for (int i = 0; i < Config.Data.WMsCount; i++)
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{
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if (RegisterReaders[i] != null) RegisterReaders[i].Clear();
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}
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RefPulses = 0;
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RefFreq.Clear();
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RefFlow.Clear();
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Mass.Clear();
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StartMass.Clear();
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EndMass.Clear();
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}
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///
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/// Statistics of 'continuous' variables (temperature, pressure, flow, etc.).
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/// All statistics are re-initialized in each test.
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///
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public static Statistics AmbTempStat = new Statistics(new Plotter("Ambient temperature"));
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public static Statistics AmbPressStat = new Statistics(new Plotter("Ambient pressure"));
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public static Statistics AmbHumiStat = new Statistics(new Plotter("Ambient humidity"));
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public static Statistics TempUpStat = new Statistics(0, 4, true, new Plotter("Temperature up"));
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public static Statistics TempDownStat = new Statistics(0, 4, true, new Plotter("Temperature down"));
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public static Statistics TempDiffStat = new Statistics(0, 4, true);
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public static Statistics TempDivStat = new Statistics(0, 4, true, new Plotter("Temperature div"));
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public static Statistics PressUpStat = new Statistics(3, 4, true, new Plotter("Pressure up"));
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public static Statistics PressDownStat = new Statistics(3, 4, true, new Plotter("Pressure down"));
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public static Statistics PressDeltaStat = new Statistics(3, 4, true);
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public static Statistics ConductStat = new Statistics(0, 4, true, new Plotter("Conductivity"));
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public static Statistics RefFlowStat = new Statistics(5, 7, true, new Plotter("Flow"));
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public static Statistics TempRefHiStat = new Statistics();
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public static Statistics TempRefLoStat = new Statistics();
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public static Statistics Energy = new Statistics();
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public static Statistics VolumeForEnergy = new Statistics();
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public static int lastEnergyUpdateTime;
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public static Statistics DiverterStart = new Statistics(new Plotter("Div start"));
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public static Statistics DiverterEnd = new Statistics(new Plotter("Div end"));
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public static int machineTimeStart;
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public static int lastMachineTime;
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protected static void StartNewStatistics(int machineTime, int batchNr, string testName, int repetition, int skippedSamplesCount)
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{
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machineTimeStart = machineTime;
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lastMachineTime = machineTime;
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AmbTempStat.Start (batchNr, testName, repetition);
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AmbPressStat.Start(batchNr, testName, repetition);
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AmbHumiStat.Start (batchNr, testName, repetition);
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TempUpStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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TempDownStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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TempDiffStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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TempDivStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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PressUpStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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PressDownStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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PressDeltaStat.Start(batchNr, testName, repetition, skippedSamplesCount);
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ConductStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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RefFlowStat.Start (batchNr, testName, repetition, skippedSamplesCount);
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TempRefHiStat.Start (batchNr, testName, repetition);
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TempRefLoStat.Start (batchNr, testName, repetition);
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Energy.Start (batchNr, testName, repetition);
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VolumeForEnergy.Start(batchNr, testName, repetition);
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lastEnergyUpdateTime = 0;
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}
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protected static void UpdateAllStatistics(int machineTime)
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{
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int timeDelta = machineTime - lastMachineTime;
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AmbTempStat.Update(AmbTemp);
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AmbPressStat.Update(AmbPress);
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AmbHumiStat.Update(AmbHumi);
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TempUpStat.Update(TempUp);
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TempDownStat.Update(TempDown);
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TempDiffStat.Update(Math.Abs(TempUp.Val - TempDown.Val));
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TempDivStat.Update(TempDiv);
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PressUpStat.Update(PressUp);
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PressDownStat.Update(PressDown);
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PressDeltaStat.Update(PressDelta);
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ConductStat.Update(Conductivity);
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RefFlowStat.Update(RefFlow);
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if (BatchRslts.Batch.HeatMeter)
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{
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TempRefHiStat.Update((TempRefHi1.Val + TempRefHi2.Val) / 2);
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TempRefLoStat.Update((TempRefLo1.Val + TempRefLo2.Val) / 2);
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}
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lastMachineTime = machineTime;
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}
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protected static void StopRecordingStatistics()
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{
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AmbTempStat.Stop();
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AmbPressStat.Stop();
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AmbHumiStat.Stop();
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TempUpStat.Stop();
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TempDownStat.Stop();
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TempDiffStat.Stop();
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TempDivStat.Stop();
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PressUpStat.Stop();
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PressDownStat.Stop();
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PressDeltaStat.Stop();
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ConductStat.Stop();
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RefFlowStat.Stop();
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TempRefHiStat.Stop();
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TempRefLoStat.Stop();
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Energy.Stop();
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VolumeForEnergy.Stop();
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}
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}
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}
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