iPerl Reader - NOT FINISHED

Add initial implementation for `iPerlReaderUNI` with `Factory`, `ProcParams`, and `IPerlReader` classes.
This commit is contained in:
Michal Buzik 2025-09-18 15:24:42 +02:00
parent 9863b54bc8
commit 20f76ca515
21 changed files with 13371 additions and 1 deletions

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using TBF.Rig.Generic;
using System.Collections.Generic;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
public class Factory: IComponentFactory
{
public string ClassName { get { return this.GetType().Namespace.Substring(8); } }
public override string ToString() { return ClassName; }
public IComponent DummyComponent() { return new IPerlReader(); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return new IPerlReader(cfg); }
public IComponentCfg DefaultConfig() { return new IPerlCfg(this); }
public IComponentCfg CmpntCfgFromCmpntEntity(Config.Entities.Component component)
{
return ComponentCfgBase.CreateFromDbEntity(IPerlCfg.Serializer, component, this);
}
}
}

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using System.Collections.Generic;
using System.Xml.Serialization;
using Common;
using Config.Entities;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
public class IPerlCfg : ComponentCfgBase, Generic.IComponentCfg
{
public static XmlSerializer Serializer = XmlSerializer.FromTypes(new[] { typeof(IPerlCfg) })[0];
public override XmlSerializer GetSerializer() { return Serializer; }
public IComponentCfgCtrl GetControl(IList<Component> cmpntEntities)
{
return new IPerlCfgCtrl();
}
///
/// Serialized parameters
///
public bool UseTcpIP;
public string OptoIPAddress;
public ushort OptoTcpipPortNr;
public int HeadCommunicationComPortNr;
public int OptoComPortNr;
public int RfidComPortNr; /// 0 = use MuxBoardNr
public int MuxBoardNr; /// 0 = use RfidComPort(Nr), otherwise mux. board nr. 1 .. 4
public int Group; /// Number written to QuidoRS to connct the watermeter to RfidComPort, 1 .. 10
public CommunicationInterface CommunicationInterface; /// Communication Interface: RFID or NFC
/// <summary> Procedure parameters </summary>
[XmlIgnore]
public ProcParams ProcParams;
public override IParamsProvider GetRuntimeProcParamsProvider() { return ProcParams; }
public override IParamsProvider CreateProcParamsProvider() { return new ProcParams(true); }
[XmlIgnore]
public MeterType MeterType { get { return (ProcParams != null) ? ProcParams.MeterType : MeterType.AutoDetect; } }
/// Private parameterless constructor invoked by all other (public) constructors
IPerlCfg()
{
Name = "iPerl";
ParentName = string.Empty;
OptoComPortNr = 10;
RfidComPortNr = 0; /// = use mux. board
MuxBoardNr = 1;
ProcParams = CreateProcParamsProvider() as ProcParams;
CommunicationInterface = CommunicationInterface.RFID;
HeadCommunicationComPortNr = 0;
}
public IPerlCfg(IComponentFactory factory)
: this()
{
this.Factory = factory;
}
public string ToString(int i)
{
return $"{Name} Group1 (mux#)={MuxBoardNr}, Group2={Group}, Opto=Com{OptoComPortNr}, {CommunicationInterface}=Com{RfidComPortNr}";
}
}
}

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///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
using System;
using System.Net;
using System.Windows.Forms;
using Common;
using TBF.Rig.Generic;
using TBF.Resources;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
public partial class IPerlCfgCtrl : UserControl, IComponentCfgCtrl
{
public bool ShowMore { get { return false; } }
IPerlCfg config;
public IComponentCfg Config
{
get { return config as IComponentCfg; }
set
{
config = value as IPerlCfg;
Redraw();
}
}
public IPerlCfgCtrl()
{
InitializeComponent();
}
private void WaterMeterCfgCtrl_Load(object sender, EventArgs e)
{
nameLabel.Text = Strings.Name;
classNameLabel.Text = config.Factory.ClassName;
Redraw();
}
public void Closing()
{
}
void Redraw()
{
if (config == null) return; /// Control was not loaded, settings were not changed
nameTextBox.Text = config.Name;
radioButton1.Checked = config.UseTcpIP;
radioButton2.Checked = !config.UseTcpIP;
ipAddressTextBox.Text = (config.OptoIPAddress != null) ? config.OptoIPAddress : "0.0.0.0";
tcpipPortTextBox.Text = config.OptoTcpipPortNr.ToString();
headPortNrTextBox.Text = config.HeadCommunicationComPortNr.ToString();
optoSerialPortTextBox.Text = config.OptoComPortNr.ToString();
rfidPortNrTextBox.Text = config.RfidComPortNr.ToString();
muxBoardNrTextBox.Text = config.MuxBoardNr.ToString();
groupTextBox.Text = config.Group.ToString();
comboBoxCommunicationInterface.SelectedItem = config.CommunicationInterface.ToString();
tabPage2.Controls.Add(new IperlHeadTestCtrl(config));
}
public void Unlock()
{
nameTextBox.Enabled = true;
radioButton1.Enabled = true;
radioButton2.Enabled = true;
ipAddressTextBox.Enabled = true;
tcpipPortTextBox.Enabled = true;
optoSerialPortTextBox.Enabled = true;
rfidPortNrTextBox.Enabled = true;
headPortNrTextBox.Enabled = true;
muxBoardNrTextBox.Enabled = true;
groupTextBox.Enabled = true;
comboBoxCommunicationInterface.Enabled = true;
}
public CfgUpdateFlags VerifyCfg(ref string message)
{
CfgUpdateFlags flags = CfgUpdateFlags.None;
int dummy;
if (radioButton1.Checked)
{
IPAddress dummyIPAddress;
if (!IPAddress.TryParse(ipAddressTextBox.Text, out dummyIPAddress))
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'IP address' is not valid";
}
ushort sdummy;
if (!ushort.TryParse(tcpipPortTextBox.Text, out sdummy))
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'TCP/IP port nr.' is not valid";
}
}
else
{
if (!int.TryParse(optoSerialPortTextBox.Text, out dummy) || dummy < 1 || dummy > 999)
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'Opto serial port nr.' is not valid";
}
}
if (!int.TryParse(rfidPortNrTextBox.Text, out dummy) || dummy < 0 || dummy > 999)
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'RFID serial port nr.' is not valid";
}
if (!int.TryParse(headPortNrTextBox.Text, out dummy) || dummy < 0 || dummy > 999)
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'Head communication serial port nr.' is not valid";
}
if (!int.TryParse(muxBoardNrTextBox.Text, out dummy) || dummy < 1 || dummy > 4)
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + string.Format(Strings.Invalid_0, muxBoardNrLabel.Text);
}
if (!int.TryParse(groupTextBox.Text, out dummy) || dummy < 1 || dummy > 10)
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + string.Format(Strings.Invalid_0, groupLabel.Text);
}
return flags;
}
public CfgUpdateFlags UpdateCfg()
{
CfgUpdateFlags flags = CfgUpdateFlags.RestartRqrd;
if (config == null) return CfgUpdateFlags.Error; /// Control was not loaded, settings were not changed
config.Name = nameTextBox.Text;
if (radioButton1.Checked)
{
config.UseTcpIP = true;
config.OptoIPAddress = ipAddressTextBox.Text;
config.OptoTcpipPortNr = ushort.Parse(tcpipPortTextBox.Text);
}
else
{
config.UseTcpIP = false;
config.OptoComPortNr = int.Parse(optoSerialPortTextBox.Text);
}
config.RfidComPortNr = int.Parse(rfidPortNrTextBox.Text);
config.MuxBoardNr = int.Parse(muxBoardNrTextBox.Text);
config.Group = int.Parse(groupTextBox.Text);
config.CommunicationInterface = (CommunicationInterface)comboBoxCommunicationInterface.SelectedIndex;
config.HeadCommunicationComPortNr = int.Parse(headPortNrTextBox.Text);
return flags;
}
}
}

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///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
partial class IPerlCfgCtrl
{
/// <summary>
/// Required designer variable.
/// </summary>
private System.ComponentModel.IContainer components = null;
/// <summary>
/// Clean up any resources being used.
/// </summary>
/// <param name="disposing">true if managed resources should be disposed; otherwise, false.</param>
protected override void Dispose(bool disposing)
{
if (disposing && (components != null))
{
components.Dispose();
}
base.Dispose(disposing);
}
#region Component Designer generated code
/// <summary>
/// Required method for Designer support - do not modify
/// the contents of this method with the code editor.
/// </summary>
private void InitializeComponent()
{
this.tabControl1 = new System.Windows.Forms.TabControl();
this.tabPage1 = new System.Windows.Forms.TabPage();
this.label4 = new System.Windows.Forms.Label();
this.label3 = new System.Windows.Forms.Label();
this.groupBox1 = new System.Windows.Forms.GroupBox();
this.comboBoxCommunicationInterface = new System.Windows.Forms.ComboBox();
this.label1 = new System.Windows.Forms.Label();
this.rfidPortNrTextBox = new System.Windows.Forms.TextBox();
this.rfidSerialPortNrLabel = new System.Windows.Forms.Label();
this.optoDataGroupBox = new System.Windows.Forms.GroupBox();
this.tcpipPortLabel = new System.Windows.Forms.Label();
this.tcpipPortTextBox = new System.Windows.Forms.TextBox();
this.ipAddressLabel = new System.Windows.Forms.Label();
this.ipAddressTextBox = new System.Windows.Forms.TextBox();
this.radioButton1 = new System.Windows.Forms.RadioButton();
this.radioButton2 = new System.Windows.Forms.RadioButton();
this.optoSerialPortLabel = new System.Windows.Forms.Label();
this.optoSerialPortTextBox = new System.Windows.Forms.TextBox();
this.groupTextBox = new System.Windows.Forms.TextBox();
this.groupLabel = new System.Windows.Forms.Label();
this.muxBoardNrTextBox = new System.Windows.Forms.TextBox();
this.muxBoardNrLabel = new System.Windows.Forms.Label();
this.nameTextBox = new System.Windows.Forms.TextBox();
this.nameLabel = new System.Windows.Forms.Label();
this.classNameLabel = new System.Windows.Forms.Label();
this.tabPage2 = new System.Windows.Forms.TabPage();
this.groupBox2 = new System.Windows.Forms.GroupBox();
this.label2 = new System.Windows.Forms.Label();
this.headPortNrTextBox = new System.Windows.Forms.TextBox();
this.tabControl1.SuspendLayout();
this.tabPage1.SuspendLayout();
this.groupBox1.SuspendLayout();
this.optoDataGroupBox.SuspendLayout();
this.groupBox2.SuspendLayout();
this.SuspendLayout();
//
// tabControl1
//
this.tabControl1.Controls.Add(this.tabPage1);
this.tabControl1.Controls.Add(this.tabPage2);
this.tabControl1.Location = new System.Drawing.Point(3, 3);
this.tabControl1.Name = "tabControl1";
this.tabControl1.SelectedIndex = 0;
this.tabControl1.Size = new System.Drawing.Size(611, 432);
this.tabControl1.TabIndex = 0;
//
// tabPage1
//
this.tabPage1.Controls.Add(this.groupBox2);
this.tabPage1.Controls.Add(this.label4);
this.tabPage1.Controls.Add(this.label3);
this.tabPage1.Controls.Add(this.groupBox1);
this.tabPage1.Controls.Add(this.optoDataGroupBox);
this.tabPage1.Controls.Add(this.groupTextBox);
this.tabPage1.Controls.Add(this.groupLabel);
this.tabPage1.Controls.Add(this.muxBoardNrTextBox);
this.tabPage1.Controls.Add(this.muxBoardNrLabel);
this.tabPage1.Controls.Add(this.nameTextBox);
this.tabPage1.Controls.Add(this.nameLabel);
this.tabPage1.Controls.Add(this.classNameLabel);
this.tabPage1.Location = new System.Drawing.Point(4, 25);
this.tabPage1.Name = "tabPage1";
this.tabPage1.Padding = new System.Windows.Forms.Padding(3);
this.tabPage1.Size = new System.Drawing.Size(603, 403);
this.tabPage1.TabIndex = 0;
this.tabPage1.Text = "Config";
this.tabPage1.UseVisualStyleBackColor = true;
//
// label4
//
this.label4.AutoSize = true;
this.label4.Location = new System.Drawing.Point(208, 101);
this.label4.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label4.Name = "label4";
this.label4.Size = new System.Drawing.Size(40, 16);
this.label4.TabIndex = 25;
this.label4.Text = "1 .. 10";
//
// label3
//
this.label3.AutoSize = true;
this.label3.Location = new System.Drawing.Point(208, 72);
this.label3.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label3.Name = "label3";
this.label3.Size = new System.Drawing.Size(33, 16);
this.label3.TabIndex = 24;
this.label3.Text = "1 .. 4";
//
// groupBox1
//
this.groupBox1.Controls.Add(this.comboBoxCommunicationInterface);
this.groupBox1.Controls.Add(this.label1);
this.groupBox1.Controls.Add(this.rfidPortNrTextBox);
this.groupBox1.Controls.Add(this.rfidSerialPortNrLabel);
this.groupBox1.Location = new System.Drawing.Point(10, 259);
this.groupBox1.Margin = new System.Windows.Forms.Padding(4);
this.groupBox1.Name = "groupBox1";
this.groupBox1.Padding = new System.Windows.Forms.Padding(4);
this.groupBox1.Size = new System.Drawing.Size(552, 68);
this.groupBox1.TabIndex = 23;
this.groupBox1.TabStop = false;
this.groupBox1.Text = "RFID / NFC communication (in case mux. board is not used)";
//
// comboBoxCommunicationInterface
//
this.comboBoxCommunicationInterface.Enabled = false;
this.comboBoxCommunicationInterface.FormattingEnabled = true;
this.comboBoxCommunicationInterface.Items.AddRange(new object[] {
"RFID",
"NFC"});
this.comboBoxCommunicationInterface.Location = new System.Drawing.Point(201, 27);
this.comboBoxCommunicationInterface.Name = "comboBoxCommunicationInterface";
this.comboBoxCommunicationInterface.Size = new System.Drawing.Size(71, 24);
this.comboBoxCommunicationInterface.TabIndex = 9;
//
// label1
//
this.label1.AutoSize = true;
this.label1.Location = new System.Drawing.Point(41, 30);
this.label1.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label1.Name = "label1";
this.label1.Size = new System.Drawing.Size(153, 16);
this.label1.TabIndex = 8;
this.label1.Text = "Communication Interface";
//
// rfidPortNrTextBox
//
this.rfidPortNrTextBox.Enabled = false;
this.rfidPortNrTextBox.Location = new System.Drawing.Point(439, 26);
this.rfidPortNrTextBox.Margin = new System.Windows.Forms.Padding(4);
this.rfidPortNrTextBox.Name = "rfidPortNrTextBox";
this.rfidPortNrTextBox.Size = new System.Drawing.Size(44, 22);
this.rfidPortNrTextBox.TabIndex = 7;
//
// rfidSerialPortNrLabel
//
this.rfidSerialPortNrLabel.AutoSize = true;
this.rfidSerialPortNrLabel.Location = new System.Drawing.Point(321, 30);
this.rfidSerialPortNrLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.rfidSerialPortNrLabel.Name = "rfidSerialPortNrLabel";
this.rfidSerialPortNrLabel.Size = new System.Drawing.Size(88, 16);
this.rfidSerialPortNrLabel.TabIndex = 6;
this.rfidSerialPortNrLabel.Text = "Serial port nr.:";
//
// optoDataGroupBox
//
this.optoDataGroupBox.Controls.Add(this.tcpipPortLabel);
this.optoDataGroupBox.Controls.Add(this.tcpipPortTextBox);
this.optoDataGroupBox.Controls.Add(this.ipAddressLabel);
this.optoDataGroupBox.Controls.Add(this.ipAddressTextBox);
this.optoDataGroupBox.Controls.Add(this.radioButton1);
this.optoDataGroupBox.Controls.Add(this.radioButton2);
this.optoDataGroupBox.Controls.Add(this.optoSerialPortLabel);
this.optoDataGroupBox.Controls.Add(this.optoSerialPortTextBox);
this.optoDataGroupBox.Location = new System.Drawing.Point(10, 131);
this.optoDataGroupBox.Margin = new System.Windows.Forms.Padding(4);
this.optoDataGroupBox.Name = "optoDataGroupBox";
this.optoDataGroupBox.Padding = new System.Windows.Forms.Padding(4);
this.optoDataGroupBox.Size = new System.Drawing.Size(552, 119);
this.optoDataGroupBox.TabIndex = 18;
this.optoDataGroupBox.TabStop = false;
this.optoDataGroupBox.Text = "Opto-data";
//
// tcpipPortLabel
//
this.tcpipPortLabel.AutoSize = true;
this.tcpipPortLabel.Location = new System.Drawing.Point(41, 87);
this.tcpipPortLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.tcpipPortLabel.Name = "tcpipPortLabel";
this.tcpipPortLabel.Size = new System.Drawing.Size(54, 16);
this.tcpipPortLabel.TabIndex = 4;
this.tcpipPortLabel.Text = "Port nr..:";
//
// tcpipPortTextBox
//
this.tcpipPortTextBox.Enabled = false;
this.tcpipPortTextBox.Location = new System.Drawing.Point(143, 84);
this.tcpipPortTextBox.Margin = new System.Windows.Forms.Padding(4);
this.tcpipPortTextBox.Name = "tcpipPortTextBox";
this.tcpipPortTextBox.Size = new System.Drawing.Size(51, 22);
this.tcpipPortTextBox.TabIndex = 5;
//
// ipAddressLabel
//
this.ipAddressLabel.AutoSize = true;
this.ipAddressLabel.Location = new System.Drawing.Point(41, 59);
this.ipAddressLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.ipAddressLabel.Name = "ipAddressLabel";
this.ipAddressLabel.Size = new System.Drawing.Size(78, 16);
this.ipAddressLabel.TabIndex = 2;
this.ipAddressLabel.Text = "IP address.:";
//
// ipAddressTextBox
//
this.ipAddressTextBox.Enabled = false;
this.ipAddressTextBox.Location = new System.Drawing.Point(143, 55);
this.ipAddressTextBox.Margin = new System.Windows.Forms.Padding(4);
this.ipAddressTextBox.Name = "ipAddressTextBox";
this.ipAddressTextBox.Size = new System.Drawing.Size(129, 22);
this.ipAddressTextBox.TabIndex = 3;
//
// radioButton1
//
this.radioButton1.AutoSize = true;
this.radioButton1.Checked = true;
this.radioButton1.Enabled = false;
this.radioButton1.Location = new System.Drawing.Point(29, 23);
this.radioButton1.Margin = new System.Windows.Forms.Padding(4);
this.radioButton1.Name = "radioButton1";
this.radioButton1.Size = new System.Drawing.Size(99, 20);
this.radioButton1.TabIndex = 0;
this.radioButton1.TabStop = true;
this.radioButton1.Text = "Use TCP/IP";
this.radioButton1.UseVisualStyleBackColor = true;
//
// radioButton2
//
this.radioButton2.AutoSize = true;
this.radioButton2.Enabled = false;
this.radioButton2.Location = new System.Drawing.Point(312, 23);
this.radioButton2.Margin = new System.Windows.Forms.Padding(4);
this.radioButton2.Name = "radioButton2";
this.radioButton2.Size = new System.Drawing.Size(115, 20);
this.radioButton2.TabIndex = 1;
this.radioButton2.Text = "Use serial port";
this.radioButton2.UseVisualStyleBackColor = true;
//
// optoSerialPortLabel
//
this.optoSerialPortLabel.AutoSize = true;
this.optoSerialPortLabel.Location = new System.Drawing.Point(321, 55);
this.optoSerialPortLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.optoSerialPortLabel.Name = "optoSerialPortLabel";
this.optoSerialPortLabel.Size = new System.Drawing.Size(88, 16);
this.optoSerialPortLabel.TabIndex = 6;
this.optoSerialPortLabel.Text = "Serial port nr.:";
//
// optoSerialPortTextBox
//
this.optoSerialPortTextBox.Enabled = false;
this.optoSerialPortTextBox.Location = new System.Drawing.Point(439, 52);
this.optoSerialPortTextBox.Margin = new System.Windows.Forms.Padding(4);
this.optoSerialPortTextBox.Name = "optoSerialPortTextBox";
this.optoSerialPortTextBox.Size = new System.Drawing.Size(44, 22);
this.optoSerialPortTextBox.TabIndex = 7;
//
// groupTextBox
//
this.groupTextBox.Enabled = false;
this.groupTextBox.Location = new System.Drawing.Point(153, 97);
this.groupTextBox.Margin = new System.Windows.Forms.Padding(4);
this.groupTextBox.Name = "groupTextBox";
this.groupTextBox.Size = new System.Drawing.Size(44, 22);
this.groupTextBox.TabIndex = 22;
//
// groupLabel
//
this.groupLabel.AutoSize = true;
this.groupLabel.Location = new System.Drawing.Point(6, 101);
this.groupLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.groupLabel.Name = "groupLabel";
this.groupLabel.Size = new System.Drawing.Size(54, 16);
this.groupLabel.TabIndex = 21;
this.groupLabel.Text = "Group 2";
//
// muxBoardNrTextBox
//
this.muxBoardNrTextBox.Enabled = false;
this.muxBoardNrTextBox.Location = new System.Drawing.Point(153, 69);
this.muxBoardNrTextBox.Margin = new System.Windows.Forms.Padding(4);
this.muxBoardNrTextBox.Name = "muxBoardNrTextBox";
this.muxBoardNrTextBox.Size = new System.Drawing.Size(44, 22);
this.muxBoardNrTextBox.TabIndex = 20;
//
// muxBoardNrLabel
//
this.muxBoardNrLabel.AutoSize = true;
this.muxBoardNrLabel.Location = new System.Drawing.Point(6, 72);
this.muxBoardNrLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.muxBoardNrLabel.Name = "muxBoardNrLabel";
this.muxBoardNrLabel.Size = new System.Drawing.Size(131, 16);
this.muxBoardNrLabel.TabIndex = 19;
this.muxBoardNrLabel.Text = "Group 1 (mux. board)";
//
// nameTextBox
//
this.nameTextBox.Enabled = false;
this.nameTextBox.Location = new System.Drawing.Point(153, 40);
this.nameTextBox.Margin = new System.Windows.Forms.Padding(4);
this.nameTextBox.Name = "nameTextBox";
this.nameTextBox.Size = new System.Drawing.Size(160, 22);
this.nameTextBox.TabIndex = 17;
//
// nameLabel
//
this.nameLabel.AutoSize = true;
this.nameLabel.Location = new System.Drawing.Point(6, 44);
this.nameLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.nameLabel.Name = "nameLabel";
this.nameLabel.Size = new System.Drawing.Size(44, 16);
this.nameLabel.TabIndex = 16;
this.nameLabel.Text = "Name";
//
// classNameLabel
//
this.classNameLabel.AutoSize = true;
this.classNameLabel.Location = new System.Drawing.Point(149, 11);
this.classNameLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.classNameLabel.Name = "classNameLabel";
this.classNameLabel.Size = new System.Drawing.Size(78, 16);
this.classNameLabel.TabIndex = 15;
this.classNameLabel.Text = "ClassName";
//
// tabPage2
//
this.tabPage2.Location = new System.Drawing.Point(4, 25);
this.tabPage2.Name = "tabPage2";
this.tabPage2.Padding = new System.Windows.Forms.Padding(3);
this.tabPage2.Size = new System.Drawing.Size(603, 403);
this.tabPage2.TabIndex = 1;
this.tabPage2.Text = "Test";
this.tabPage2.UseVisualStyleBackColor = true;
//
// groupBox2
//
this.groupBox2.Controls.Add(this.headPortNrTextBox);
this.groupBox2.Controls.Add(this.label2);
this.groupBox2.Location = new System.Drawing.Point(10, 335);
this.groupBox2.Name = "groupBox2";
this.groupBox2.Size = new System.Drawing.Size(552, 50);
this.groupBox2.TabIndex = 26;
this.groupBox2.TabStop = false;
this.groupBox2.Text = "Head Communication";
//
// label2
//
this.label2.AutoSize = true;
this.label2.Location = new System.Drawing.Point(321, 18);
this.label2.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label2.Name = "label2";
this.label2.Size = new System.Drawing.Size(88, 16);
this.label2.TabIndex = 7;
this.label2.Text = "Serial port nr.:";
//
// headPortNrTextBox
//
this.headPortNrTextBox.Enabled = false;
this.headPortNrTextBox.Location = new System.Drawing.Point(439, 15);
this.headPortNrTextBox.Margin = new System.Windows.Forms.Padding(4);
this.headPortNrTextBox.Name = "headPortNrTextBox";
this.headPortNrTextBox.Size = new System.Drawing.Size(44, 22);
this.headPortNrTextBox.TabIndex = 8;
//
// IperlHeadCfgCtrl
//
this.AutoScaleDimensions = new System.Drawing.SizeF(8F, 16F);
this.AutoScaleMode = System.Windows.Forms.AutoScaleMode.Font;
this.Controls.Add(this.tabControl1);
this.Margin = new System.Windows.Forms.Padding(4);
this.Name = "IPerlCfgCtrl";
this.Size = new System.Drawing.Size(617, 438);
this.Load += new System.EventHandler(this.WaterMeterCfgCtrl_Load);
this.tabControl1.ResumeLayout(false);
this.tabPage1.ResumeLayout(false);
this.tabPage1.PerformLayout();
this.groupBox1.ResumeLayout(false);
this.groupBox1.PerformLayout();
this.optoDataGroupBox.ResumeLayout(false);
this.optoDataGroupBox.PerformLayout();
this.groupBox2.ResumeLayout(false);
this.groupBox2.PerformLayout();
this.ResumeLayout(false);
}
#endregion
private System.Windows.Forms.TabControl tabControl1;
private System.Windows.Forms.TabPage tabPage1;
private System.Windows.Forms.Label label4;
private System.Windows.Forms.Label label3;
private System.Windows.Forms.GroupBox groupBox1;
private System.Windows.Forms.ComboBox comboBoxCommunicationInterface;
private System.Windows.Forms.Label label1;
private System.Windows.Forms.TextBox rfidPortNrTextBox;
private System.Windows.Forms.Label rfidSerialPortNrLabel;
private System.Windows.Forms.GroupBox optoDataGroupBox;
private System.Windows.Forms.Label tcpipPortLabel;
private System.Windows.Forms.TextBox tcpipPortTextBox;
private System.Windows.Forms.Label ipAddressLabel;
private System.Windows.Forms.TextBox ipAddressTextBox;
private System.Windows.Forms.RadioButton radioButton1;
private System.Windows.Forms.RadioButton radioButton2;
private System.Windows.Forms.Label optoSerialPortLabel;
private System.Windows.Forms.TextBox optoSerialPortTextBox;
private System.Windows.Forms.TextBox groupTextBox;
private System.Windows.Forms.Label groupLabel;
private System.Windows.Forms.TextBox muxBoardNrTextBox;
private System.Windows.Forms.Label muxBoardNrLabel;
private System.Windows.Forms.TextBox nameTextBox;
private System.Windows.Forms.Label nameLabel;
private System.Windows.Forms.Label classNameLabel;
private System.Windows.Forms.TabPage tabPage2;
private System.Windows.Forms.GroupBox groupBox2;
private System.Windows.Forms.TextBox headPortNrTextBox;
private System.Windows.Forms.Label label2;
}
}

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<?xml version="1.0" encoding="utf-8"?>
<root>
<!--
Microsoft ResX Schema
Version 2.0
The primary goals of this format is to allow a simple XML format
that is mostly human readable. The generation and parsing of the
various data types are done through the TypeConverter classes
associated with the data types.
Example:
... ado.net/XML headers & schema ...
<resheader name="resmimetype">text/microsoft-resx</resheader>
<resheader name="version">2.0</resheader>
<resheader name="reader">System.Resources.ResXResourceReader, System.Windows.Forms, ...</resheader>
<resheader name="writer">System.Resources.ResXResourceWriter, System.Windows.Forms, ...</resheader>
<data name="Name1"><value>this is my long string</value><comment>this is a comment</comment></data>
<data name="Color1" type="System.Drawing.Color, System.Drawing">Blue</data>
<data name="Bitmap1" mimetype="application/x-microsoft.net.object.binary.base64">
<value>[base64 mime encoded serialized .NET Framework object]</value>
</data>
<data name="Icon1" type="System.Drawing.Icon, System.Drawing" mimetype="application/x-microsoft.net.object.bytearray.base64">
<value>[base64 mime encoded string representing a byte array form of the .NET Framework object]</value>
<comment>This is a comment</comment>
</data>
There are any number of "resheader" rows that contain simple
name/value pairs.
Each data row contains a name, and value. The row also contains a
type or mimetype. Type corresponds to a .NET class that support
text/value conversion through the TypeConverter architecture.
Classes that don't support this are serialized and stored with the
mimetype set.
The mimetype is used for serialized objects, and tells the
ResXResourceReader how to depersist the object. This is currently not
extensible. For a given mimetype the value must be set accordingly:
Note - application/x-microsoft.net.object.binary.base64 is the format
that the ResXResourceWriter will generate, however the reader can
read any of the formats listed below.
mimetype: application/x-microsoft.net.object.binary.base64
value : The object must be serialized with
: System.Runtime.Serialization.Formatters.Binary.BinaryFormatter
: and then encoded with base64 encoding.
mimetype: application/x-microsoft.net.object.soap.base64
value : The object must be serialized with
: System.Runtime.Serialization.Formatters.Soap.SoapFormatter
: and then encoded with base64 encoding.
mimetype: application/x-microsoft.net.object.bytearray.base64
value : The object must be serialized into a byte array
: using a System.ComponentModel.TypeConverter
: and then encoded with base64 encoding.
-->
<xsd:schema id="root" xmlns="" xmlns:xsd="http://www.w3.org/2001/XMLSchema" xmlns:msdata="urn:schemas-microsoft-com:xml-msdata">
<xsd:import namespace="http://www.w3.org/XML/1998/namespace" />
<xsd:element name="root" msdata:IsDataSet="true">
<xsd:complexType>
<xsd:choice maxOccurs="unbounded">
<xsd:element name="metadata">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" />
</xsd:sequence>
<xsd:attribute name="name" use="required" type="xsd:string" />
<xsd:attribute name="type" type="xsd:string" />
<xsd:attribute name="mimetype" type="xsd:string" />
<xsd:attribute ref="xml:space" />
</xsd:complexType>
</xsd:element>
<xsd:element name="assembly">
<xsd:complexType>
<xsd:attribute name="alias" type="xsd:string" />
<xsd:attribute name="name" type="xsd:string" />
</xsd:complexType>
</xsd:element>
<xsd:element name="data">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" msdata:Ordinal="1" />
<xsd:element name="comment" type="xsd:string" minOccurs="0" msdata:Ordinal="2" />
</xsd:sequence>
<xsd:attribute name="name" type="xsd:string" use="required" msdata:Ordinal="1" />
<xsd:attribute name="type" type="xsd:string" msdata:Ordinal="3" />
<xsd:attribute name="mimetype" type="xsd:string" msdata:Ordinal="4" />
<xsd:attribute ref="xml:space" />
</xsd:complexType>
</xsd:element>
<xsd:element name="resheader">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" msdata:Ordinal="1" />
</xsd:sequence>
<xsd:attribute name="name" type="xsd:string" use="required" />
</xsd:complexType>
</xsd:element>
</xsd:choice>
</xsd:complexType>
</xsd:element>
</xsd:schema>
<resheader name="resmimetype">
<value>text/microsoft-resx</value>
</resheader>
<resheader name="version">
<value>2.0</value>
</resheader>
<resheader name="reader">
<value>System.Resources.ResXResourceReader, System.Windows.Forms, Version=4.0.0.0, Culture=neutral, PublicKeyToken=b77a5c561934e089</value>
</resheader>
<resheader name="writer">
<value>System.Resources.ResXResourceWriter, System.Windows.Forms, Version=4.0.0.0, Culture=neutral, PublicKeyToken=b77a5c561934e089</value>
</resheader>
</root>

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namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
partial class IperlHeadTestCtrl
{
/// <summary>
/// Required designer variable.
/// </summary>
private System.ComponentModel.IContainer components = null;
/// <summary>
/// Clean up any resources being used.
/// </summary>
/// <param name="disposing">true if managed resources should be disposed; otherwise, false.</param>
protected override void Dispose(bool disposing)
{
if (disposing && (components != null))
{
components.Dispose();
}
base.Dispose(disposing);
}
#region Component Designer generated code
/// <summary>
/// Required method for Designer support - do not modify
/// the contents of this method with the code editor.
/// </summary>
private void InitializeComponent()
{
this.optoTestGroupBox = new System.Windows.Forms.GroupBox();
this.optoListBox = new System.Windows.Forms.ListBox();
this.rfidOutputListBox = new System.Windows.Forms.ListBox();
this.RfidTestGroupBox = new System.Windows.Forms.GroupBox();
this.label2 = new System.Windows.Forms.Label();
this.rfidCommandComboBox = new System.Windows.Forms.ComboBox();
this.commandTestButton = new System.Windows.Forms.Button();
this.optoTestGroupBox.SuspendLayout();
this.RfidTestGroupBox.SuspendLayout();
this.SuspendLayout();
//
// optoTestGroupBox
//
this.optoTestGroupBox.Controls.Add(this.optoListBox);
this.optoTestGroupBox.Location = new System.Drawing.Point(5, 4);
this.optoTestGroupBox.Name = "optoTestGroupBox";
this.optoTestGroupBox.Size = new System.Drawing.Size(591, 161);
this.optoTestGroupBox.TabIndex = 2;
this.optoTestGroupBox.TabStop = false;
this.optoTestGroupBox.Text = "Opto-data";
//
// optoListBox
//
this.optoListBox.FormattingEnabled = true;
this.optoListBox.ItemHeight = 16;
this.optoListBox.Location = new System.Drawing.Point(7, 22);
this.optoListBox.Name = "optoListBox";
this.optoListBox.Size = new System.Drawing.Size(573, 132);
this.optoListBox.TabIndex = 0;
//
// rfidOutputListBox
//
this.rfidOutputListBox.FormattingEnabled = true;
this.rfidOutputListBox.ItemHeight = 16;
this.rfidOutputListBox.Location = new System.Drawing.Point(5, 54);
this.rfidOutputListBox.Name = "rfidOutputListBox";
this.rfidOutputListBox.SelectionMode = System.Windows.Forms.SelectionMode.None;
this.rfidOutputListBox.Size = new System.Drawing.Size(575, 164);
this.rfidOutputListBox.TabIndex = 3;
//
// RfidTestGroupBox
//
this.RfidTestGroupBox.Controls.Add(this.rfidOutputListBox);
this.RfidTestGroupBox.Controls.Add(this.label2);
this.RfidTestGroupBox.Controls.Add(this.rfidCommandComboBox);
this.RfidTestGroupBox.Controls.Add(this.commandTestButton);
this.RfidTestGroupBox.Location = new System.Drawing.Point(5, 171);
this.RfidTestGroupBox.Name = "RfidTestGroupBox";
this.RfidTestGroupBox.Size = new System.Drawing.Size(591, 224);
this.RfidTestGroupBox.TabIndex = 3;
this.RfidTestGroupBox.TabStop = false;
this.RfidTestGroupBox.Text = "RFID / NFC data";
//
// label2
//
this.label2.AutoSize = true;
this.label2.Location = new System.Drawing.Point(2, 25);
this.label2.Name = "label2";
this.label2.Size = new System.Drawing.Size(69, 16);
this.label2.TabIndex = 2;
this.label2.Text = "Command";
//
// rfidCommandComboBox
//
this.rfidCommandComboBox.FormattingEnabled = true;
this.rfidCommandComboBox.Location = new System.Drawing.Point(86, 19);
this.rfidCommandComboBox.Name = "rfidCommandComboBox";
this.rfidCommandComboBox.Size = new System.Drawing.Size(341, 24);
this.rfidCommandComboBox.TabIndex = 1;
//
// commandTestButton
//
this.commandTestButton.Location = new System.Drawing.Point(449, 19);
this.commandTestButton.Name = "commandTestButton";
this.commandTestButton.Size = new System.Drawing.Size(126, 24);
this.commandTestButton.TabIndex = 0;
this.commandTestButton.Text = "Send command";
this.commandTestButton.UseVisualStyleBackColor = true;
this.commandTestButton.MouseClick += new System.Windows.Forms.MouseEventHandler(this.CommandTestButtonClick);
//
// IperlHeadTestCtrl
//
this.AutoScaleDimensions = new System.Drawing.SizeF(8F, 16F);
this.AutoScaleMode = System.Windows.Forms.AutoScaleMode.Font;
this.Controls.Add(this.optoTestGroupBox);
this.Controls.Add(this.RfidTestGroupBox);
this.Name = "IperlHeadTestCtrl";
this.Size = new System.Drawing.Size(611, 432);
this.Load += new System.EventHandler(this.UserControl_Load);
this.optoTestGroupBox.ResumeLayout(false);
this.RfidTestGroupBox.ResumeLayout(false);
this.RfidTestGroupBox.PerformLayout();
this.ResumeLayout(false);
}
#endregion
private System.Windows.Forms.GroupBox optoTestGroupBox;
private System.Windows.Forms.ListBox rfidOutputListBox;
private System.Windows.Forms.GroupBox RfidTestGroupBox;
private System.Windows.Forms.Label label2;
private System.Windows.Forms.ComboBox rfidCommandComboBox;
private System.Windows.Forms.Button commandTestButton;
private System.Windows.Forms.ListBox optoListBox;
}
}

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@ -0,0 +1,192 @@
using System;
using System.Threading;
using System.Web.UI.WebControls;
using System.Windows.Forms;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication;
using TBF.Rig.Sequences;
using TBF.Rig.TestMethods.iPerlCommunication;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
public partial class IperlHeadTestCtrl : UserControl
{
IPerlCfg config;
IPerlReader _iPerlReader;
Thread optoThread;
private bool stopWorkerThread;
public event EventHandler<OptoReceivedEventArgs> OptoReceivedHandler;
public IperlHeadTestCtrl(IPerlCfg config)
{
this.config = config;
InitializeComponent();
if (config == null) return;
//TODO fix possibility set test method in config
//iPerlCommunicationForm.cfg = new TestMethodCfg(null); // default values for iPerlCommunication
foreach(var head in ProcessData.IperlHeads)
{
if (head != null && head.Name == config.Name) { _iPerlReader = head; }
}
rfidCommandComboBox.DisplayMember = "Name";
rfidCommandComboBox.ValueMember = "Value";
var items = new[]
{
new {Name = "Read PCB", Value = "ReadPCB" },
new {Name = "Set Test Mode", Value = "SetTestMode" },
new {Name = "Set Active Mode", Value = "SetActiveMode" },
#if DEBUG
new {Name = "Start Read Opto Data", Value = "ReadOptoData" },
new {Name = "Stop Read Opto Data", Value = "StopReadOptoData" },
#endif
new {Name = " ", Value = "" },
new {Name = "Reset NFC Head", Value = "ResetNfcHead" },
new {Name = "Set NFC Head Interface", Value = "SetNfcHead" },
new {Name = "Set RFID Head interface", Value = "SetRfidHead" }
};
/*
// CTRL+ALT+double click - hidden poweruser menu
if (((Keyboard.ModifierKeys & Keys.Control) == Keys.Control) && ((Keyboard.ModifierKeys & Keys.Alt) == Keys.Alt) && Users.CurrentUser.AuthorizedAs == AuthorizedAs.PowerUser)
{
Array.Resize(ref items, items.Length + 1);
items[items.Length - 1] = new { Name = "Kluc", Value = "Kluc" };
}
*/
rfidCommandComboBox.DataSource = items;
stopWorkerThread = false;
OptoReceivedHandler += (EventHandler<OptoReceivedEventArgs>)((sndr, args) =>
{
if (this.InvokeRequired)
this.Invoke((Delegate)new EventHandler<OptoReceivedEventArgs>(this.OnOptoReceived2), sndr, (object)args);
else
this.OnOptoReceived2(sndr, args);
});
}
public void OnOptoReceived2(object sender, OptoReceivedEventArgs args)
{
optoListBox.Items.Insert(0,args.Data);
}
private void CommandTestButtonClick(object sender, MouseEventArgs e)
{
rfidOutputListBox.Items.Clear();
using (Tools.LogChecker logChecker = new Tools.LogChecker("RfidData", log4net.Core.Level.Debug))
{
ListItem rfidListItem = new ListItem();
rfidListItem.Attributes.Add("style", "font-weight:bold");
switch (rfidCommandComboBox.SelectedValue)
{
case "ReadPCB":
rfidListItem.Text = $"PCB: {OpticalHeadTest.ReadRequest_PCB(_iPerlReader)}";
break;
case "SetTestMode":
rfidListItem.Text = OpticalHeadTest.SetTestMode(_iPerlReader);
optoListBox.Items.Clear();
stopWorkerThread = false;
optoThread = new Thread(OptoWorker);
if (!optoThread.IsAlive)
{
_iPerlReader.StartDataStreamProcessing(); // open opto port
optoThread.Start();
}
break;
case "SetActiveMode":
rfidListItem.Text = OpticalHeadTest.SetActiveMode(_iPerlReader);
stopWorkerThread = true;
_iPerlReader.StopDataStreamProcessing(); // close opto port
break;
case "ResetNfcHead":
_iPerlReader.ResetNfcInterface();
break;
case "SetNfcHead":
_iPerlReader.SetNfcInterface();
break;
case "SetRfidHead":
_iPerlReader.SetRfidInterface();
break;
case "ReadOptoData":
optoListBox.Items.Clear();
stopWorkerThread = false;
optoThread = new Thread(OptoWorker);
if (optoThread.IsAlive)
{
stopWorkerThread = true;
_iPerlReader.StopDataStreamProcessing(); // close opto port
}
if (!optoThread.IsAlive)
{
_iPerlReader.StartDataStreamProcessing(); // open opto port
optoThread.Start();
}
break;
case "StopReadOptoData":
stopWorkerThread = true;
_iPerlReader.StopDataStreamProcessing(); // close opto port
break;
}
rfidOutputListBox.Items.Add(rfidListItem);
rfidOutputListBox.Items.AddRange(logChecker.Messages.ToArray());
}
}
private void OptoWorker()
{
while (!this.stopWorkerThread)
{
Thread.Sleep(250);
if (this.stopWorkerThread)
break;
try
{
string buffer = _iPerlReader.ReadOptoData();
if (string.IsNullOrEmpty(buffer))
{
this.OnOptoReceived((object)this, new OptoReceivedEventArgs("."));
}
else
OnOptoReceived((object)this, new OptoReceivedEventArgs(buffer));
}
catch (Exception ex)
{
this.OnOptoReceived((object)this, new OptoReceivedEventArgs(ex.Message));
}
}
}
public void OnOptoReceived(object sender, OptoReceivedEventArgs args)
{
if (this.OptoReceivedHandler == null)
return;
try
{
this.OptoReceivedHandler(sender, args);
}
catch (Exception ex)
{
}
}
private void UserControl_Load(object sender, EventArgs e)
{
this.ParentForm.FormClosing += new FormClosingEventHandler(ParentForm_FormClosing);
}
void ParentForm_FormClosing(object sender, FormClosingEventArgs e)
{
//OnHandleDestroyed(new EventArgs());
stopWorkerThread = true;
if (optoThread != null)
{
optoThread.Abort();
}
}
}
}

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@ -0,0 +1,120 @@
<?xml version="1.0" encoding="utf-8"?>
<root>
<!--
Microsoft ResX Schema
Version 2.0
The primary goals of this format is to allow a simple XML format
that is mostly human readable. The generation and parsing of the
various data types are done through the TypeConverter classes
associated with the data types.
Example:
... ado.net/XML headers & schema ...
<resheader name="resmimetype">text/microsoft-resx</resheader>
<resheader name="version">2.0</resheader>
<resheader name="reader">System.Resources.ResXResourceReader, System.Windows.Forms, ...</resheader>
<resheader name="writer">System.Resources.ResXResourceWriter, System.Windows.Forms, ...</resheader>
<data name="Name1"><value>this is my long string</value><comment>this is a comment</comment></data>
<data name="Color1" type="System.Drawing.Color, System.Drawing">Blue</data>
<data name="Bitmap1" mimetype="application/x-microsoft.net.object.binary.base64">
<value>[base64 mime encoded serialized .NET Framework object]</value>
</data>
<data name="Icon1" type="System.Drawing.Icon, System.Drawing" mimetype="application/x-microsoft.net.object.bytearray.base64">
<value>[base64 mime encoded string representing a byte array form of the .NET Framework object]</value>
<comment>This is a comment</comment>
</data>
There are any number of "resheader" rows that contain simple
name/value pairs.
Each data row contains a name, and value. The row also contains a
type or mimetype. Type corresponds to a .NET class that support
text/value conversion through the TypeConverter architecture.
Classes that don't support this are serialized and stored with the
mimetype set.
The mimetype is used for serialized objects, and tells the
ResXResourceReader how to depersist the object. This is currently not
extensible. For a given mimetype the value must be set accordingly:
Note - application/x-microsoft.net.object.binary.base64 is the format
that the ResXResourceWriter will generate, however the reader can
read any of the formats listed below.
mimetype: application/x-microsoft.net.object.binary.base64
value : The object must be serialized with
: System.Runtime.Serialization.Formatters.Binary.BinaryFormatter
: and then encoded with base64 encoding.
mimetype: application/x-microsoft.net.object.soap.base64
value : The object must be serialized with
: System.Runtime.Serialization.Formatters.Soap.SoapFormatter
: and then encoded with base64 encoding.
mimetype: application/x-microsoft.net.object.bytearray.base64
value : The object must be serialized into a byte array
: using a System.ComponentModel.TypeConverter
: and then encoded with base64 encoding.
-->
<xsd:schema id="root" xmlns="" xmlns:xsd="http://www.w3.org/2001/XMLSchema" xmlns:msdata="urn:schemas-microsoft-com:xml-msdata">
<xsd:import namespace="http://www.w3.org/XML/1998/namespace" />
<xsd:element name="root" msdata:IsDataSet="true">
<xsd:complexType>
<xsd:choice maxOccurs="unbounded">
<xsd:element name="metadata">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" />
</xsd:sequence>
<xsd:attribute name="name" use="required" type="xsd:string" />
<xsd:attribute name="type" type="xsd:string" />
<xsd:attribute name="mimetype" type="xsd:string" />
<xsd:attribute ref="xml:space" />
</xsd:complexType>
</xsd:element>
<xsd:element name="assembly">
<xsd:complexType>
<xsd:attribute name="alias" type="xsd:string" />
<xsd:attribute name="name" type="xsd:string" />
</xsd:complexType>
</xsd:element>
<xsd:element name="data">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" msdata:Ordinal="1" />
<xsd:element name="comment" type="xsd:string" minOccurs="0" msdata:Ordinal="2" />
</xsd:sequence>
<xsd:attribute name="name" type="xsd:string" use="required" msdata:Ordinal="1" />
<xsd:attribute name="type" type="xsd:string" msdata:Ordinal="3" />
<xsd:attribute name="mimetype" type="xsd:string" msdata:Ordinal="4" />
<xsd:attribute ref="xml:space" />
</xsd:complexType>
</xsd:element>
<xsd:element name="resheader">
<xsd:complexType>
<xsd:sequence>
<xsd:element name="value" type="xsd:string" minOccurs="0" msdata:Ordinal="1" />
</xsd:sequence>
<xsd:attribute name="name" type="xsd:string" use="required" />
</xsd:complexType>
</xsd:element>
</xsd:choice>
</xsd:complexType>
</xsd:element>
</xsd:schema>
<resheader name="resmimetype">
<value>text/microsoft-resx</value>
</resheader>
<resheader name="version">
<value>2.0</value>
</resheader>
<resheader name="reader">
<value>System.Resources.ResXResourceReader, System.Windows.Forms, Version=4.0.0.0, Culture=neutral, PublicKeyToken=b77a5c561934e089</value>
</resheader>
<resheader name="writer">
<value>System.Resources.ResXResourceWriter, System.Windows.Forms, Version=4.0.0.0, Culture=neutral, PublicKeyToken=b77a5c561934e089</value>
</resheader>
</root>

View File

@ -0,0 +1,184 @@
using System.Collections.Generic;
using System.IO;
using System.Xml.Serialization;
using Common;
using Config.Entities;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
public class ProcParams : ProcedureParamsBase, IParamsProvider, IProcedureParams
{
public static XmlSerializer Serializer = XmlSerializer.FromTypes(new[] { typeof(ProcParams) })[0];
public override XmlSerializer GetSerializer() { return Serializer; }
public int WMType_ID;
public MeterType MeterType;
public float CalibTarget; /// Target error after calibration in [%]
public int FactorLimitLo; /// Lower limit for the calibration factor
public int FactorLimitHi; /// Upper limit for the calibration factor
public Counting Counting; /// Initial iPerl counting (Artbitrary, Positive or Negative)
public override void InitializeAll()
{
MeterType = MeterType.AutoDetect;
CalibTarget = 0;
FactorLimitLo = 1000;
FactorLimitHi = 8000;
Counting = Counting.Arbitrary;
}
string[] paramNames = new string[]
{
"iPerl type",
"Calib. target [%]",
"Calib. factor Lo",
"Calib. factor Hi",
"Counting",
};
public override string ParamName(int i) { return paramNames[i]; }
public override int ParamsCount() { return paramNames.Length; }
public override ICollection<string> ParamValues(int i)
{
if (i == 0)
{
var retVal = new List<string>();
for (MeterType mt = 0; mt < MeterType.Count; mt++) retVal.Add(mt.ToString());
return retVal;
}
else if (i == 5)
{
var retVal = new List<string>();
for (Counting c = 0; c < Counting.Count; c++) retVal.Add(c.ToString());
return retVal;
}
return null;
}
public override string ToString(int i)
{
switch (i)
{
case 0: return MeterType.ToString();
case 1: return CalibTarget.ToString();
case 2: return FactorLimitLo.ToString();
case 3: return FactorLimitHi.ToString();
case 4: return Counting.ToString();
default: return string.Empty;
}
}
//implement IParamsProvider
public bool ValidateParam(int i, string strValue, out string message)
{
message = string.Empty;
int iDummy;
float fDummy;
switch (i)
{
case 0:
for (MeterType mt = 0; mt < MeterType.Count; mt++) if (mt.ToString().Equals(strValue)) return true;
break;
case 1:
if (Utils.TryParseSFloat(strValue, out fDummy) && fDummy >= -10.0f && fDummy <= 10.0f) return true;
break;
case 2:
case 3:
if (int.TryParse(strValue, out iDummy) && iDummy >= 1000 && iDummy <= 8000) return true;
break;
case 4:
for (Counting c = 0; c < Counting.Count; c++) if (c.ToString().Equals(strValue)) return true;
break;
default:
message = "Invalid index";
return false;
}
message = ParamName(i) + " is invalid";
return false;
}
public CfgUpdateFlags UpdateParam(int i, string strValue)
{
switch (i)
{
case 0:
for (MeterType mt = 0; mt < MeterType.Count; mt++)
{
if (mt.ToString().Equals(strValue)) { MeterType = mt; return CfgUpdateFlags.None; }
}
break;
case 1: CalibTarget = Utils.ParseSFloat(strValue); return CfgUpdateFlags.None;
case 2: FactorLimitLo = int.Parse(strValue); return CfgUpdateFlags.None;
case 3: FactorLimitHi = int.Parse(strValue); return CfgUpdateFlags.None;
case 4:
for (Counting c = 0; c < Counting.Count; c++)
{
if (c.ToString().Equals(strValue)) { Counting = c; return CfgUpdateFlags.None; }
}
break;
default: return CfgUpdateFlags.None;
}
return CfgUpdateFlags.None;
}
void CopyContentTo(ProcParams prms)
{
prms.MeterType = this.MeterType;
prms.CalibTarget = this.CalibTarget;
prms.FactorLimitLo = this.FactorLimitLo;
prms.FactorLimitHi = this.FactorLimitHi;
prms.Counting = this.Counting;
}
public IParamsProvider Clone()
{
ProcParams pars = new ProcParams();
CopyContentTo(pars);
return pars;
}
public override void UpdateFromDbEntity(ComponentProcedure dbEntity)
{
if (dbEntity == null) return;
try
{
ProcParams tmp = Serializer.Deserialize(new StringReader(dbEntity.Parameters)) as ProcParams;
procedureParamsEntity = dbEntity;
componentName = dbEntity.CmpntName;
procedure = dbEntity.Procedure;
if (tmp != null) tmp.CopyContentTo(this);
}
catch
{
}
}
public ProcParams()
{
}
public ProcParams(bool initialize)
{
if (initialize) InitializeAll();
}
public ProcParams(ComponentProcedure procParamsEntity, string componentName, Procedure procedure)
{
this.procedureParamsEntity = procParamsEntity;
this.componentName = componentName;
this.procedure = procedure;
}
}
}

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///
/// Copyright (c) 2015-2020 Sensus Metering Systems
///
using System;
using System.IO;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication
{
public class CalibrationStruct
{
public const int Length = 35;
public Byte Version;
public MeterType MeterType;
public UInt16 Calibration;
public VolumeUnits VolumeUnits;
public FlowArrow FlowArrow;
public UInt16 FWVersion;
public UInt16[] TargetField;
public UInt16 RecipMeanCurrent;
public UInt16 ThresholdVolume;
public UInt16 ThresholdTime;
public UInt16 FlowActivationThr;
public UInt16 VolumeArrowThr;
public UInt32 CalibrationTime;
public ulong SerialNumber;
public MeterSealed MeterSealed;
public byte CheckSum;
public CalibrationStruct()
{
TargetField = new UInt16[3];
}
public byte[] ToByteArray()
{
byte[] result = new byte[Length];
result[0] = Version;
result[1] = (byte)MeterType;
result[2] = (byte)(Calibration & 0x00FF);
result[3] = (byte)((Calibration >> 8) & 0x00FF);
result[4] = (byte)VolumeUnits;
result[5] = (byte)FlowArrow;
result[6] = (byte)(FWVersion & 0x00FF);
result[7] = (byte)((FWVersion >> 8) & 0x00FF);
result[8] = (byte)( TargetField[0] & 0x00FF);
result[9] = (byte)((TargetField[0] >> 8) & 0x00FF);
result[10] = (byte)( TargetField[1] & 0x00FF);
result[11] = (byte)((TargetField[1] >> 8) & 0x00FF);
result[12] = (byte)( TargetField[2] & 0x00FF);
result[13] = (byte)((TargetField[2] >> 8) & 0x00FF);
result[14] = (byte)(RecipMeanCurrent & 0x00FF);
result[15] = (byte)((RecipMeanCurrent >> 8) & 0x00FF);
result[16] = (byte)(ThresholdVolume & 0x00FF);
result[17] = (byte)((ThresholdVolume >> 8) & 0x00FF);
result[18] = (byte)(ThresholdTime & 0x00FF);
result[19] = (byte)((ThresholdTime >> 8) & 0x00FF);
result[20] = (byte)(FlowActivationThr & 0x00FF);
result[21] = (byte)((FlowActivationThr >> 8) & 0x00FF);
result[22] = (byte)(VolumeArrowThr & 0x00FF);
result[23] = (byte)((VolumeArrowThr >> 8) & 0x00FF);
result[24] = (byte)(CalibrationTime & 0x000000FF);
result[25] = (byte)((CalibrationTime >> 8) & 0x000000FF);
result[26] = (byte)((CalibrationTime >> 16) & 0x000000FF);
result[27] = (byte)((CalibrationTime >> 24) & 0x000000FF);
result[28] = (byte)(SerialNumber & 0x00000000000000FF);
result[29] = (byte)((SerialNumber >> 8) & 0x00000000000000FF);
result[30] = (byte)((SerialNumber >> 16) & 0x00000000000000FF);
result[31] = (byte)((SerialNumber >> 24) & 0x00000000000000FF);
result[32] = (byte)((SerialNumber >> 32) & 0x00000000000000FF);
result[33] = (byte)MeterSealed;
result[34] = CheckSum;
return result;
}
/// <summary>
/// Create a calibration structure from a complete byte array
/// </summary>
/// <param name="data">A complete byte array data</param>
/// <returns>CalibrationStruct or null when byte array was not complete</returns>
public static CalibrationStruct FromByteArray(byte[] data)
{
if (data.Length != Length) return null;
CalibrationStruct result = new CalibrationStruct();
result.Version = data[0];
result.MeterType = (MeterType)data[1];
result.Calibration = (UInt16)(data[2] + 256 * data[3]);
result.VolumeUnits = (VolumeUnits)data[4];
result.FlowArrow = (FlowArrow)data[5];
result.FWVersion = (UInt16)(data[6] + 256 * data[7]);
result.TargetField[0] = (UInt16)(data[8] + 256 * data[9]);
result.TargetField[1] = (UInt16)(data[10] + 256 * data[11]);
result.TargetField[2] = (UInt16)(data[12] + 256 * data[13]);
result.RecipMeanCurrent = (UInt16)(data[14] + 256 * data[15]);
result.ThresholdVolume = (UInt16)(data[16] + 256 * data[17]);
result.ThresholdTime = (UInt16)(data[18] + 256 * data[19]);
result.FlowActivationThr = (UInt16)(data[20] + 256 * data[21]);
result.VolumeArrowThr = (UInt16)(data[22] + 256 * data[23]);
result.CalibrationTime = (((UInt32)data[27] * 256 + data[26]) * 256 + data[25]) * 256 + data[24];
result.SerialNumber = ((((UInt64)data[32] * 256 + data[31]) * 256 + data[30]) * 256 + data[29]) * 256 + data[28];
result.MeterSealed = (MeterSealed)data[33];
result.CheckSum = data[34];
return result;
}
/// <summary>
/// Update the calibration structure from an incomplete byte array
/// </summary>
/// <param name="data">Byte array data</param>
/// <param name="offset">Offset of byte array data in CalibrationStruct</param>
/// <returns>true when successful, false when data are not appropriate</returns>
public bool Update(byte[] data, int offset)
{
if ((data.Length == 2) && (offset == 2))
{
/// Data containing iPerl calibration factor
Calibration = (UInt16)(data[0] + 256 * data[1]);
return true;
}
else if ((data.Length == Length) && (offset == 0))
{
/// Data containing a complete CalibrationStruct
Version = data[0];
MeterType = (MeterType)data[1];
Calibration = (UInt16)(data[2] + 256 * data[3]);
VolumeUnits = (VolumeUnits)data[4];
FlowArrow = (FlowArrow)data[5];
FWVersion = (UInt16)(data[6] + 256 * data[7]);
TargetField[0] = (UInt16)(data[8] + 256 * data[9]);
TargetField[1] = (UInt16)(data[10] + 256 * data[11]);
TargetField[2] = (UInt16)(data[12] + 256 * data[13]);
RecipMeanCurrent = (UInt16)(data[14] + 256 * data[15]);
ThresholdVolume = (UInt16)(data[16] + 256 * data[17]);
ThresholdTime = (UInt16)(data[18] + 256 * data[19]);
FlowActivationThr = (UInt16)(data[20] + 256 * data[21]);
VolumeArrowThr = (UInt16)(data[22] + 256 * data[23]);
CalibrationTime = (((UInt32)data[27] * 256 + data[26]) * 256 + data[25]) * 256 + data[24];
SerialNumber = ((((UInt64)data[32] * 256 + data[31]) * 256 + data[30]) * 256 + data[29]) * 256 + data[28];
MeterSealed = (MeterSealed)data[33];
CheckSum = data[34];
return true;
}
else
return false;
}
public string FWVersionStr()
{
int d1 = (FWVersion >> 8) & 0x000F;
int d2 = (FWVersion >> 12) & 0x000F;
int d3 = (FWVersion >> 4) & 0x000F;
int d4 = FWVersion & 0x000F;
return string.Format("{0}.{1}{2}{3}", d1, d2, d3, d4);
}
public override string ToString()
{
return string.Format("Calibration: V{0} Type={1} Cal={2} Units={3} FlowArrow.{4} FW={5} Hi={6} Norm={7} Low={8} RMC={9} ThrVol={10} ThrTime={11} FlActThr={12} VolArrThr={13} CalTm={14} SN={15} MeterSealed={16} Chksum={17}",
Version,
MeterType,
Calibration,
VolumeUnits,
FlowArrow,
FWVersion,
TargetField[0],
TargetField[1],
TargetField[2],
RecipMeanCurrent,
ThresholdVolume,
ThresholdTime,
FlowActivationThr,
VolumeArrowThr,
CalibrationTime,
SerialNumber,
MeterSealed,
CheckSum.ToString("X2"));
}
public virtual void WriteBinary(BinaryWriter writer)
{
writer.Write(Version);
writer.Write((byte)MeterType);
writer.Write(Calibration);
writer.Write((byte)VolumeUnits);
writer.Write((byte)FlowArrow);
writer.Write(FWVersion);
writer.Write(TargetField[0]);
writer.Write(TargetField[1]);
writer.Write(TargetField[2]);
writer.Write(RecipMeanCurrent);
writer.Write(ThresholdVolume);
writer.Write(ThresholdTime);
writer.Write(FlowActivationThr);
writer.Write(VolumeArrowThr);
writer.Write(CalibrationTime);
writer.Write(SerialNumber);
writer.Write((byte)MeterSealed);
writer.Write(CheckSum);
}
public virtual void ReadBinary(BinaryReader reader)
{
Version = reader.ReadByte();
MeterType = (MeterType)reader.ReadByte();
Calibration = reader.ReadUInt16();
VolumeUnits = (VolumeUnits)reader.ReadByte();
FlowArrow = (FlowArrow)reader.ReadByte();
FWVersion = reader.ReadUInt16();
TargetField[0] = reader.ReadUInt16();
TargetField[1] = reader.ReadUInt16();
TargetField[2] = reader.ReadUInt16();
RecipMeanCurrent = reader.ReadUInt16();
ThresholdVolume = reader.ReadUInt16();
ThresholdTime = reader.ReadUInt16();
FlowActivationThr = reader.ReadUInt16();
VolumeArrowThr = reader.ReadUInt16();
CalibrationTime = reader.ReadUInt32();
SerialNumber = reader.ReadUInt64();
MeterSealed = (MeterSealed)reader.ReadByte();
CheckSum = reader.ReadByte();
}
}
}

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///
/// Copyright (c) 2018-2020 Sensus Slovensko a.s.
///
using System;
using System.IO;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication
{
public class CalibrationStructV4
{
public const int Length = 37;
public Byte Version;
public MeterType MeterType;
public UInt16 Calibration;
public VolumeUnits VolumeUnits;
public FlowArrow FlowArrow;
public UInt16 FWVersion;
public UInt16[] TargetField;
public UInt16 RecipMeanCurrent;
public UInt16 ThresholdVolume;
public UInt16 ThresholdTime;
public UInt16 FlowActivationThr;
public UInt16 VolumeArrowThr;
public UInt32 CalibrationTime;
public ulong SerialNumber;
public MeterSealed MeterSealed;
public UInt16 CalibrationLNA;
public byte CheckSum;
public CalibrationStructV4()
{
TargetField = new UInt16[3];
}
public byte[] ToByteArray()
{
byte[] result = new byte[Length];
result[0] = Version;
result[1] = (byte)MeterType;
result[2] = (byte)(Calibration & 0x00FF);
result[3] = (byte)((Calibration >> 8) & 0x00FF);
result[4] = (byte)VolumeUnits;
result[5] = (byte)FlowArrow;
result[6] = (byte)(FWVersion & 0x00FF);
result[7] = (byte)((FWVersion >> 8) & 0x00FF);
result[8] = (byte)( TargetField[0] & 0x00FF);
result[9] = (byte)((TargetField[0] >> 8) & 0x00FF);
result[10] = (byte)( TargetField[1] & 0x00FF);
result[11] = (byte)((TargetField[1] >> 8) & 0x00FF);
result[12] = (byte)( TargetField[2] & 0x00FF);
result[13] = (byte)((TargetField[2] >> 8) & 0x00FF);
result[14] = (byte)(RecipMeanCurrent & 0x00FF);
result[15] = (byte)((RecipMeanCurrent >> 8) & 0x00FF);
result[16] = (byte)(ThresholdVolume & 0x00FF);
result[17] = (byte)((ThresholdVolume >> 8) & 0x00FF);
result[18] = (byte)(ThresholdTime & 0x00FF);
result[19] = (byte)((ThresholdTime >> 8) & 0x00FF);
result[20] = (byte)(FlowActivationThr & 0x00FF);
result[21] = (byte)((FlowActivationThr >> 8) & 0x00FF);
result[22] = (byte)(VolumeArrowThr & 0x00FF);
result[23] = (byte)((VolumeArrowThr >> 8) & 0x00FF);
result[24] = (byte)(CalibrationTime & 0x000000FF);
result[25] = (byte)((CalibrationTime >> 8) & 0x000000FF);
result[26] = (byte)((CalibrationTime >> 16) & 0x000000FF);
result[27] = (byte)((CalibrationTime >> 24) & 0x000000FF);
result[28] = (byte)(SerialNumber & 0x00000000000000FF);
result[29] = (byte)((SerialNumber >> 8) & 0x00000000000000FF);
result[30] = (byte)((SerialNumber >> 16) & 0x00000000000000FF);
result[31] = (byte)((SerialNumber >> 24) & 0x00000000000000FF);
result[32] = (byte)((SerialNumber >> 32) & 0x00000000000000FF);
result[33] = (byte)MeterSealed;
result[34] = (byte)(CalibrationLNA & 0x00FF);
result[35] = (byte)((CalibrationLNA >> 8) & 0x00FF);
result[36] = CheckSum;
return result;
}
/// <summary>
/// Create a calibration structure from a complete byte array
/// </summary>
/// <param name="data">A complete byte array data</param>
/// <returns>CalibrationStructV4 or null when byte array was not complete</returns>
public static CalibrationStructV4 FromByteArray(byte[] data)
{
if (data.Length != Length) return null;
CalibrationStructV4 result = new CalibrationStructV4();
result.Version = data[0];
result.MeterType = (MeterType)data[1];
result.Calibration = (UInt16)(data[2] + 256 * data[3]);
result.VolumeUnits = (VolumeUnits)data[4];
result.FlowArrow = (FlowArrow)data[5];
result.FWVersion = (UInt16)(data[6] + 256 * data[7]);
result.TargetField[0] = (UInt16)(data[8] + 256 * data[9]);
result.TargetField[1] = (UInt16)(data[10] + 256 * data[11]);
result.TargetField[2] = (UInt16)(data[12] + 256 * data[13]);
result.RecipMeanCurrent = (UInt16)(data[14] + 256 * data[15]);
result.ThresholdVolume = (UInt16)(data[16] + 256 * data[17]);
result.ThresholdTime = (UInt16)(data[18] + 256 * data[19]);
result.FlowActivationThr = (UInt16)(data[20] + 256 * data[21]);
result.VolumeArrowThr = (UInt16)(data[22] + 256 * data[23]);
result.CalibrationTime = (((UInt32)data[27] * 256 + data[26]) * 256 + data[25]) * 256 + data[24];
result.SerialNumber = ((((UInt64)data[32] * 256 + data[31]) * 256 + data[30]) * 256 + data[29]) * 256 + data[28];
result.MeterSealed = (MeterSealed)data[33];
result.CalibrationLNA = (UInt16)(data[34] + 256 * data[35]);
result.CheckSum = data[36];
return result;
}
/// <summary>
/// Update the calibration structure from an incomplete byte array
/// </summary>
/// <param name="data">Byte array data</param>
/// <param name="offset">Offset of byte array data in CalibrationStructV2</param>
/// <returns>true when successful, false when data are not appropriate</returns>
public bool Update(byte[] data, int offset)
{
if ((data.Length == 2) && (offset == 2))
{
/// Data containing iPerl calibration factor
Calibration = (UInt16)(data[0] + 256 * data[1]);
return true;
}
else if ((data.Length == 2) && (offset == 34))
{
/// Data containing iPerl calibration factor
CalibrationLNA = (UInt16)(data[0] + 256 * data[1]);
return true;
}
else if ((data.Length == Length) && (offset == 0))
{
/// Data containing a complete CalibrationStruct
Version = data[0];
MeterType = (MeterType)data[1];
Calibration = (UInt16)(data[2] + 256 * data[3]);
VolumeUnits = (VolumeUnits)data[4];
FlowArrow = (FlowArrow)data[5];
FWVersion = (UInt16)(data[6] + 256 * data[7]);
TargetField[0] = (UInt16)(data[8] + 256 * data[9]);
TargetField[1] = (UInt16)(data[10] + 256 * data[11]);
TargetField[2] = (UInt16)(data[12] + 256 * data[13]);
RecipMeanCurrent = (UInt16)(data[14] + 256 * data[15]);
ThresholdVolume = (UInt16)(data[16] + 256 * data[17]);
ThresholdTime = (UInt16)(data[18] + 256 * data[19]);
FlowActivationThr = (UInt16)(data[20] + 256 * data[21]);
VolumeArrowThr = (UInt16)(data[22] + 256 * data[23]);
CalibrationTime = (((UInt32)data[27] * 256 + data[26]) * 256 + data[25]) * 256 + data[24];
SerialNumber = ((((UInt64)data[32] * 256 + data[31]) * 256 + data[30]) * 256 + data[29]) * 256 + data[28];
MeterSealed = (MeterSealed)data[33];
CalibrationLNA = (UInt16)(data[34] + 256 * data[35]);
CheckSum = data[36];
return true;
}
else
return false;
}
public string FWVersionStr()
{
int d1 = (FWVersion >> 8) & 0x000F;
int d2 = (FWVersion >> 12) & 0x000F;
int d3 = (FWVersion >> 4) & 0x000F;
int d4 = FWVersion & 0x000F;
return string.Format("{0}.{1}{2}{3}", d1, d2, d3, d4);
}
public override string ToString()
{
return string.Format("Calibration: V{0} Type={1} Cal={2} Units={3} FlowArrow.{4} FW={5} Hi={6} Norm={7} Low={8} RMC={9} ThrVol={10} ThrTime={11} FlActThr={12} VolArrThr={13} CalTm={14} SN={15} MeterSealed={16} CalLNA={17} Chksum={18}",
Version,
MeterType,
Calibration,
VolumeUnits,
FlowArrow,
FWVersion,
TargetField[0],
TargetField[1],
TargetField[2],
RecipMeanCurrent,
ThresholdVolume,
ThresholdTime,
FlowActivationThr,
VolumeArrowThr,
CalibrationTime,
SerialNumber,
MeterSealed,
CalibrationLNA,
CheckSum.ToString("X2"));
}
public virtual void WriteBinary(BinaryWriter writer)
{
writer.Write(Version);
writer.Write((byte)MeterType);
writer.Write(Calibration);
writer.Write((byte)VolumeUnits);
writer.Write((byte)FlowArrow);
writer.Write(FWVersion);
writer.Write(TargetField[0]);
writer.Write(TargetField[1]);
writer.Write(TargetField[2]);
writer.Write(RecipMeanCurrent);
writer.Write(ThresholdVolume);
writer.Write(ThresholdTime);
writer.Write(FlowActivationThr);
writer.Write(VolumeArrowThr);
writer.Write(CalibrationTime);
writer.Write(SerialNumber);
writer.Write((byte)MeterSealed);
writer.Write(CalibrationLNA);
writer.Write(CheckSum);
}
public virtual void ReadBinary(BinaryReader reader)
{
Version = reader.ReadByte();
MeterType = (MeterType)reader.ReadByte();
Calibration = reader.ReadUInt16();
VolumeUnits = (VolumeUnits)reader.ReadByte();
FlowArrow = (FlowArrow)reader.ReadByte();
FWVersion = reader.ReadUInt16();
TargetField[0] = reader.ReadUInt16();
TargetField[1] = reader.ReadUInt16();
TargetField[2] = reader.ReadUInt16();
RecipMeanCurrent = reader.ReadUInt16();
ThresholdVolume = reader.ReadUInt16();
ThresholdTime = reader.ReadUInt16();
FlowActivationThr = reader.ReadUInt16();
VolumeArrowThr = reader.ReadUInt16();
CalibrationTime = reader.ReadUInt32();
SerialNumber = reader.ReadUInt64();
MeterSealed = (MeterSealed)reader.ReadByte();
CalibrationLNA = reader.ReadUInt16();
CheckSum = reader.ReadByte();
}
}
}

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///
/// Copyright (c) 2015-2020 Sensus Metering Systems
///
using System;
using System.IO;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication
{
public class ConfigStruct
{
public const int Length = 32;
public Byte Version; /// 0: 1 byte
public MeterState MeterState; /// 1: 1 byte
public UInt32 TargetTimeVeryLowBatt; /// 2: 4 bytes in seconds
public UInt32 TargetTimeLowBatt; /// 6: 4 bytes, in seconds
public UInt32 TestModeTime; /// 10: 4 bytes, Max. test mode time in seconds
public UInt16 EmptyPipeThreshold; /// 14: 2 bytes
public byte[] PCBNumber; /// 16: 5 bytes
public byte TestModeConfig; /// 21: 1 byte
public UInt32 RadioAddress; /// 22: 4 bytes
public UInt16 TempCalibration; /// 26: 2 bytes
public UInt16 AlarmMask; /// 28: 2 bytes, Default 0xA3F7
public UInt16 ConfigCheckSum; /// 30: 2 bytes
public ConfigStruct()
{
PCBNumber = new byte[5];
}
public byte[] ToByteArray()
{
byte[] result = new byte[Length];
result[0] = Version;
result[1] = (byte)MeterState;
result[2] = (byte)(TargetTimeVeryLowBatt & 0x000000FF);
result[3] = (byte)((TargetTimeVeryLowBatt >> 8) & 0x000000FF);
result[4] = (byte)((TargetTimeVeryLowBatt >> 16) & 0x000000FF);
result[5] = (byte)((TargetTimeVeryLowBatt >> 24) & 0x000000FF);
result[6] = (byte)(TargetTimeLowBatt & 0x000000FF);
result[7] = (byte)((TargetTimeLowBatt >> 8) & 0x000000FF);
result[8] = (byte)((TargetTimeLowBatt >> 16) & 0x000000FF);
result[9] = (byte)((TargetTimeLowBatt >> 24) & 0x000000FF);
result[10] = (byte)(TestModeTime & 0x000000FF);
result[11] = (byte)((TestModeTime >> 8) & 0x000000FF);
result[12] = (byte)((TestModeTime >> 16) & 0x000000FF);
result[13] = (byte)((TestModeTime >> 24) & 0x000000FF);
result[14] = (byte)(EmptyPipeThreshold & 0x00FF);
result[15] = (byte)((EmptyPipeThreshold >> 8) & 0x00FF);
result[16] = PCBNumber[0];
result[17] = PCBNumber[1];
result[18] = PCBNumber[2];
result[19] = PCBNumber[3];
result[20] = PCBNumber[4];
result[21] = TestModeConfig;
result[22] = (byte)(RadioAddress & 0x000000FF);
result[23] = (byte)((RadioAddress >> 8) & 0x000000FF);
result[24] = (byte)((RadioAddress >> 16) & 0x000000FF);
result[25] = (byte)((RadioAddress >> 24) & 0x000000FF);
result[26] = (byte)(TempCalibration & 0x00FF);
result[27] = (byte)((TempCalibration >> 8) & 0x00FF);
result[28] = (byte)(AlarmMask & 0x00FF);
result[29] = (byte)((AlarmMask >> 8) & 0x00FF);
result[30] = (byte)(ConfigCheckSum & 0x00FF);
result[31] = (byte)((ConfigCheckSum >> 8) & 0x00FF);
return result;
}
/// <summary>
/// Create a configuration structure from a complete byte array
/// </summary>
/// <param name="data">A complete byte array data</param>
/// <returns>ConfigStruct or null when byte array was not complete</returns>
public static ConfigStruct FromByteArray(byte[] data)
{
if (data.Length != Length) return null;
ConfigStruct result = new ConfigStruct();
result.Version = data[0];
result.MeterState = (MeterState)data[1];
result.TargetTimeVeryLowBatt = (((UInt32)data[5] * 256 + data[4]) * 256 + data[3]) * 256 + data[2];
result.TargetTimeLowBatt = (((UInt32)data[9] * 256 + data[8]) * 256 + data[7]) * 256 + data[6];
result.TestModeTime = (((UInt32)data[13] * 256 + data[12]) * 256 + data[11]) * 256 + data[10];
result.EmptyPipeThreshold = (UInt16)(data[15] * 256 + data[14]);
result.PCBNumber[0] = data[16];
result.PCBNumber[1] = data[17];
result.PCBNumber[2] = data[18];
result.PCBNumber[3] = data[19];
result.PCBNumber[4] = data[20];
result.TestModeConfig = data[21];
result.RadioAddress = (((UInt32)data[25] * 256 + data[24]) * 256 + data[23]) * 256 + data[22];
result.TempCalibration = (UInt16)(data[27] * 256 + data[26]);
result.AlarmMask = (UInt16)(data[29] * 256 + data[28]);
result.ConfigCheckSum = (UInt16)(data[31] * 256 + data[30]);
return result;
}
/// <summary>
/// Update the configuration structure from an incomplete byte array
/// </summary>
/// <param name="offset">Offset of byte array data in ConfigStruct</param>
/// <param name="data">Byte array data</param>
/// <returns>true when successful, false when data are not appropriate</returns>
public bool Update(int offset, byte[] data)
{
if (offset == 0 && data.Length == 2)
{
/// iPerl mode of function
Version = data[0];
MeterState = (MeterState)data[1];
return true;
}
else if (offset == 0 && data.Length == 4)
{
/// iPerl mode of function and extra 2 bytes
Version = data[0];
MeterState = (MeterState)data[1];
return true;
}
else if (offset == 21 && data.Length == 1)
{
/// TestModeConfig value
TestModeConfig = data[21 - offset];
return true;
}
else if (offset == 0 && data.Length == Length)
{
/// Complete ConfigStruct
Version = data[0];
MeterState = (MeterState)data[1];
TargetTimeVeryLowBatt = (((UInt32)data[5] * 256 + data[4]) * 256 + data[3]) * 256 + data[2];
TargetTimeLowBatt = (((UInt32)data[9] * 256 + data[8]) * 256 + data[7]) * 256 + data[6];
TestModeTime = (((UInt32)data[13] * 256 + data[12]) * 256 + data[11]) * 256 + data[10];
EmptyPipeThreshold = (UInt16)(data[15] * 256 + data[14]);
PCBNumber[0] = data[16];
PCBNumber[1] = data[17];
PCBNumber[2] = data[18];
PCBNumber[3] = data[19];
PCBNumber[4] = data[20];
TestModeConfig = data[21];
RadioAddress = (((UInt32)data[25] * 256 + data[24]) * 256 + data[23]) * 256 + data[22];
TempCalibration = (UInt16)(data[27] * 256 + data[26]);
AlarmMask = (UInt16)(data[29] * 256 + data[28]);
ConfigCheckSum = (UInt16)(data[31] * 256 + data[30]);
return true;
}
else
return false;
}
/// <summary>
/// Returns PCB number string (12 characters, 12 decimal digits)
/// </summary>
/// <returns>PCB number STRING</returns>
public string GetPcbNrString()
{
return PCBNumber2String(this.PCBNumber);
}
/// <summary>
/// Converts PCBNumber to string (12 characters, 12 decimal digits)
/// </summary>
/// <param name="pcbNumber"></param>
/// <returns>PCB number string</returns>
public static string PCBNumber2String(byte[] pcbNumber)
{
if (pcbNumber.Length != 5) return string.Empty;
Int64 number = 0;
for (int i = 4; i >= 0; i--)
{
number = 256 * number + (Int64)pcbNumber[i];
}
return number.ToString();
}
public override string ToString()
{
return string.Format("Config: V{0} State={1} VLoBattT={2}s LoBattT={3}s TestModeT={4}s EPThld={5} PCB#={6} TMCfg={7} RadioAddr={8} TempCalib={9} AlarmMask={10} CfgCheckSum={11}",
Version,
MeterState,
TargetTimeVeryLowBatt,
TargetTimeLowBatt,
TestModeTime,
EmptyPipeThreshold,
GetPcbNrString(),
TestModeConfig.ToString("X2"),
RadioAddress,
TempCalibration,
AlarmMask.ToString("X4"),
ConfigCheckSum.ToString("X4"));
}
public string ToString(int sel)
{
return string.Format("{1} PCB#={6} TMCfg={7}",
Version,
MeterState,
TargetTimeVeryLowBatt,
TargetTimeLowBatt,
TestModeTime,
EmptyPipeThreshold,
GetPcbNrString(),
TestModeConfig.ToString("X2"),
RadioAddress,
TempCalibration,
AlarmMask.ToString("X4"),
ConfigCheckSum.ToString("X4"));
}
public virtual void WriteBinary(BinaryWriter writer)
{
writer.Write(Version);
writer.Write((byte)MeterState);
writer.Write(TargetTimeVeryLowBatt);
writer.Write(TargetTimeLowBatt);
writer.Write(TestModeTime);
writer.Write(EmptyPipeThreshold);
writer.Write(PCBNumber[0]);
writer.Write(PCBNumber[1]);
writer.Write(PCBNumber[2]);
writer.Write(PCBNumber[3]);
writer.Write(PCBNumber[4]);
writer.Write(TestModeConfig);
writer.Write(RadioAddress);
writer.Write(TempCalibration);
writer.Write(AlarmMask);
writer.Write(ConfigCheckSum);
}
public virtual void ReadBinary(BinaryReader reader)
{
Version = reader.ReadByte();
MeterState = (MeterState)reader.ReadByte();
TargetTimeVeryLowBatt = reader.ReadUInt32();
TargetTimeLowBatt = reader.ReadUInt32();
TestModeTime = reader.ReadUInt32();
EmptyPipeThreshold = reader.ReadUInt16();
PCBNumber[0] = reader.ReadByte();
PCBNumber[1] = reader.ReadByte();
PCBNumber[2] = reader.ReadByte();
PCBNumber[3] = reader.ReadByte();
PCBNumber[4] = reader.ReadByte();
TestModeConfig = reader.ReadByte();
RadioAddress = reader.ReadUInt32();
TempCalibration = reader.ReadUInt16();
AlarmMask = reader.ReadUInt16();
ConfigCheckSum = reader.ReadUInt16();
}
}
}

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@ -0,0 +1,113 @@
///
/// Copyright (c) 2015-2021 Sensus Metering Systems
///
using System;
using System.Collections.Generic;
using System.Linq;
using System.Text;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication
{
public enum MessageID
{
Calibration = 0x00, /// Access to stCalibration
Configuration = 0x01, /// Access to stConfig
Status = 0x02, /// Access to stStaus, read only
Power = 0x03, /// Access to stPower, containing power info from both processors
LCD = 0x04, /// Access to stLCD
EventData = 0x05, /// NOT USED
IntervalData = 0x06, /// NOT USED
Diagnostics = 0x07, /// Access tostMetroDiagArray, read onl
MetrologyMemory = 0x08, /// Memory block access, read only
Error_LongAck = 0x09, /// Error message
Command = 0x0A, /// Command to execute, with no arguments
Parameterizing = 0x0B, /// Parameterizing message is used in MCI-SPI interface only
Error_ShortAck = 0x0C, /// Short acknowledge message is used in MCI-SPI interface only
ChanelAlive = 0x0D, /// Channel alive message is used in MCI-SPI interface only
RadioPassthrough = 0x0E, /// RFID <-> Metrology <-> Radio passthrough message
ASICRegisterReadTest = 0x0F, /// ASIC Register read test
IMIDebugMessagesAccess = 0x10, /// IMI debug messages read test
ProductionChecksumsRead = 0x11, /// Production checksum read: Calibration (1 byte), Configuration (2 bytes), spare (4 bytes)
HardwareParametersTest = 0x12, /// Hardware Parameters Testing: User configurable fixed field drive time (1 byte)
/// <summary>
/// Notes:
/// 1. Short Ack message contains 1-byte error code and all the fields (Offset, Payload length, payload and password) will not be present.
/// 2. Channel Alive message does not contain the fields (Offset, Payload length, payload and password).
/// 3. Except the above two special messages, rest all the messages in the above table will follow the message format mentioned in sections 3.1 and 3.2.
/// </summary>
Count /// Number of MessageID-s
}
public enum MeterType : byte
{
DN15 = 0,
CoaxManifold = 1,
DN20 = 2,
DN25 = 3, /// DN25 Q3 = 6.3 m3/h
DN25_Q3_10 = 4, /// DN25 Q3 = 10 m3/h
DN32 = 5,
DN40 = 6,
AutoDetect,
Count /// Number of meter types
}
public enum VolumeUnits : byte
{
m3 = 0,
UK_gallon = 1,
US_gallon = 2,
Count /// Number of volume units
}
public enum FlowArrow : byte
{
No = 0,
Right = 1,
Left = 2,
Count /// Number of flow arrows
}
public enum MeterSealed : byte
{
InProduction = 0x00,
OutOfProduction = 0xA5,
Sealed = 0x5A,
}
public enum MeterState : byte
{
None = 0,
Idle = 1,
Active = 2,
Test = 3,
EndOfLife = 4,
Count /// Number of meter states
}
public enum Command : byte
{
SetActiveMode = 6,
SetTestMode = 7,
}
public enum FlowState : byte
{
No = 0,
Reverse = 1,
Forward = 2,
EmptyPipe = 3,
Count /// Number of flow states
}
public enum DataStreamState
{
Flush = 0,
ProcessAndSave,
}
public enum CommunicationInterface
{
RFID,
NFC
}
}

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@ -0,0 +1,20 @@
///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
using System;
using System.Collections.Generic;
using System.Linq;
using System.Text;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.comminication
{
public class OptoReceivedEventArgs : EventArgs
{
public string Data;
public OptoReceivedEventArgs(string data)
{
this.Data = data;
}
}
}

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@ -0,0 +1,131 @@
using Config.Resources;
using log4net;
using Sensus.iPerl.RfidCom.Helper;
using Sensus.iPerl.RfidCom.Services;
using Sensus.iPerl.RfidCom.Structures;
using System;
using System.Threading;
using TBF.Rig.Hart.Common;
using TBF.Rig.TestMethods.iPerlCommunication.iPerlHead;
using static Sensus.iPerl.NfcHandler.MCI_Protocol;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.test
{
internal class OpticalHeadTest
{
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
internal static string OpenSealing(IperlHead iHead)
{
if (RfidCommands.OpenSealing($"COM{iHead.RfidComPortNr}")) return "OK";
return "Error Open Sealing";
}
internal static string ReadRequest_PCB(IperlHead iHead)
{
try
{
byte[] pcb = null;
int readRetVal = iPerlCommunicationForm.ReadRequestPort(iHead, MessageID.Configuration, Sensus.iPerl.NfcHandler.MCI_Protocol.StructName.Configuration, 16, 5, out pcb);
if (readRetVal == 0)
{
return RfidHelper.HexLiteral2Unsigned(RfidHelper.SwapHexcode(BitConverter.ToString(pcb).Replace("-", string.Empty))).ToString();
}
rfidDataLogger.Error($"COM{iHead.RfidComPortNr}: ReadRequest_PCB ({MessageID.Configuration},16,5...) <- Error: {readRetVal}");
return "Error";
}
catch (Exception ex)
{
return (ex.Message.ToString());
}
}
internal static string SetActiveMode(IperlHead iHead)
{
byte[] cmd = new byte[1] { (byte)Command.SetActiveMode };
if (0 == iPerlCommunicationForm.WriteRequestPort(iHead, MessageID.Command, StructName.Command, 0, 1, cmd))
{
return "OK";
}
else
{
return "Error Set Active Mode";
}
}
internal static string SetTestMode(IperlHead iHead)
{
byte[] cmd = new byte[1] { (byte)Command.SetTestMode };
if (0 == iPerlCommunicationForm.WriteRequestPort(iHead, MessageID.Command, StructName.Command, 0, 1, cmd))
{
return "OK";
}
else
{
return "Error Set Test Mode";
}
}
#if IPERL
internal static string TurnOffRadio(IperlHead iHead)
{
try
{
int retValue = iPerlCommunicationForm.WriteRequestPort(iHead, MessageID.RadioPassthrough, StructName.RadioParams, 0x1898, 1, new byte[] { (byte)3 }); // WakeUpInterval
return 0 == retValue ? "OK" : "Error";
}
catch (Exception ex)
{
return (ex.Message.ToString());
}
}
internal static string SetProductionMode(IperlHead iHead)
{
try
{
int retValue = iPerlCommunicationForm.WriteRequestPort(iHead, MessageID.RadioPassthrough, StructName.RadioInfo, 0x1804, 1, new byte[] { (byte)1 }); // System Status
return 0 == retValue ? "OK" : "Error";
}
catch (Exception ex)
{
return (ex.Message.ToString());
}
}
internal static string WriteRequestPort_u8_Customer_Text(IperlHead iHead)
{
string custText = "FF0123456789ABCDEF"; // Sample text to test write function
/*try
{
byte[] cmd = RfidHelper.HexStringToByteArray(custText);
if (0 == iPerlCommunicationForm.WriteRequestPort(iHead, MessageID.RadioPassthrough, Sensus.iPerl.NfcHandler.MCI_Protocol.StructName.RadioParams, 0x1899, 9, cmd))
{
RfidCommunicationService rfidCommunicationService = new RfidCommunicationService { ComPort = $"COM{iHead.RfidComPortNr}", WaitTimeAfterFailure = 2200, PassThroughWaitTime = 1500, MaxRetries = 3, TimeOut = 5000 };
//rfidCommunicationService.RfidWrite(Params.u8_Customer_Text, custText);
return rfidCommunicationService.RfidRead<string>(Params.u8_Customer_Text).ToString();
}
}
catch (Exception ex)
{
return (ex.Message.ToString());
}*/
return $"Error COM{iHead.RfidComPortNr}";
}
internal static string SetRfidMode(IperlHead iHead)
{
iHead.SetRfidInterface();
iHead.SetCommunicationInterface(CommunicationInterface.RFID);
return ($"OK - {Strings.Program_restart_is_required_to_apply_some_settings}");
}
internal static string SetNfcMode(IperlHead iHead)
{
iHead.SetNfcInterface();
iHead.SetCommunicationInterface(CommunicationInterface.NFC);
return ($"OK - {Strings.Program_restart_is_required_to_apply_some_settings}");
}
#endif /// IPERL
}
}

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@ -1171,6 +1171,34 @@
<Compile Include="Rig\RegisterReaders\DataStream\Reader\ProcParams.cs" />
<Compile Include="Rig\RegisterReaders\DataStream\Reader\Reader.cs" />
<Compile Include="Rig\RegisterReaders\DataStream\Reader\ReaderCfg.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\comminication\CalibrationStruct.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\comminication\CalibrationStructV4.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\comminication\ConfigStruct.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\comminication\Enums.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\comminication\OptoReceivedEventArgs.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\Factory.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IPerlCfgCtrl.cs">
<SubType>UserControl</SubType>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IPerlCfgCtrl.designer.cs">
<DependentUpon>IPerlCfgCtrl.cs</DependentUpon>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IperlHeadTestCtrl.cs">
<SubType>UserControl</SubType>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IperlHeadTestCtrl.Designer.cs">
<DependentUpon>IperlHeadTestCtrl.cs</DependentUpon>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IPerlReader.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\IPerlCfg.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\ProcParams.cs" />
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\test\iPerlCommunicationForm.cs">
<SubType>Form</SubType>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\test\iPerlCommunicationForm.designer.cs">
<DependentUpon>iPerlCommunicationForm.cs</DependentUpon>
</Compile>
<Compile Include="Rig\RegisterReaders\iPerlReaderUNI\test\OpticalHeadTest.cs" />
<Compile Include="Rig\RegisterReaders\KPackE\DataEntryForRadio\CycleBeginningForm.cs">
<SubType>Form</SubType>
</Compile>
@ -3057,6 +3085,15 @@
<EmbeddedResource Include="Rig\RegisterReaders\FrequencyMeterFromUniCB\RRCfgCtrl.resx">
<DependentUpon>RRCfgCtrl.cs</DependentUpon>
</EmbeddedResource>
<EmbeddedResource Include="Rig\RegisterReaders\iPerlReaderUNI\IPerlCfgCtrl.resx">
<DependentUpon>IPerlCfgCtrl.cs</DependentUpon>
</EmbeddedResource>
<EmbeddedResource Include="Rig\RegisterReaders\iPerlReaderUNI\IperlHeadTestCtrl.resx">
<DependentUpon>IperlHeadTestCtrl.cs</DependentUpon>
</EmbeddedResource>
<EmbeddedResource Include="Rig\RegisterReaders\iPerlReaderUNI\test\iPerlCommunicationForm.resx">
<DependentUpon>iPerlCommunicationForm.cs</DependentUpon>
</EmbeddedResource>
<EmbeddedResource Include="Rig\RegisterReaders\KPackE\DataEntryForRadio\CycleBeginningForm.resx">
<DependentUpon>CycleBeginningForm.cs</DependentUpon>
</EmbeddedResource>
@ -3757,7 +3794,6 @@
<Name>Results</Name>
</ProjectReference>
</ItemGroup>
<ItemGroup />
<Import Project="$(MSBuildBinPath)\Microsoft.CSharp.targets" />
<!-- To modify your build process, add your task inside one of the targets below and uncomment it.
Other similar extension points exist, see Microsoft.Common.targets.