Compare commits

...
Author SHA1 Message Date
michal 988a8c6642 Update NuGetToolVersion to 7.0.0 in SharedComponents project configuration 2025-12-07 11:27:17 +01:00
michal 42ee9eaee3 Poseidon - Flying - Opto communication
Enhance `FlyingStartMassCollectionSeq` with Poseidon reader support, detailed error handling, and improved test data processing.
2025-12-07 11:27:00 +01:00
michal 3f28051d79 Update .gitignore to exclude NfcC7_DLL.Tests build artifacts 2025-12-07 10:59:19 +01:00
michal 65f13cc868 Add UNIHeadTestCtrl interface and implement IperlHeadTestCtrl with command handling logic. 2025-12-06 12:51:51 +01:00
michal cd8ba3cda3 Add System.Threading 4.3.0 package with support for multiple frameworks and localized XML documentation. 2025-12-06 12:49:58 +01:00
michal a5936c8f19 Fix standing start Store Data
Refactor to use `ICommonRegReader` in `StandingStartSeq` and update parameter handling in `SmartCommunicationSeq`.
2025-12-06 12:48:42 +01:00
michal 2842425673 Add simulation logic for test operations and water metrology, enhance UI initialization, and implement optohead flow rate handling.
- Introduced simulation timers in `FlyingStartStopTestOp`.
- Added `Simulate` methods in `WaterMetrologyData`, `WaterMetrologyDataC7`, and `WaterMetrologyDataC2`.
- Enhanced `SmartCommunicationForm` with textbox resizing logic and initialization code.
- Implemented flow rate and volume calculation from optohead telemetry in `SmartReader`.
- Added unit tests for Poseidon correction parsing.
2025-12-06 12:46:12 +01:00
michal 06a401a1ff bugFix - Morrisville - SerialNr, WMBegginValue
Add support for `ICommonRegReader` interface, enhance `ISmartReader` functionality, and update water meter state handling logic across multiple classes.
2025-11-21 14:14:23 +01:00
michal 3a2fc50fec PurchaseOrderDialog logger Improvement - WRCSwindon
Add detailed logging for purchase order workflows in `CycleBeginningForm`

- Introduced `log_selected` for enhanced debugging of selected orders, items, and serial numbers.
- Added exception handling and logging for serial number loading.
- Improved visibility into runtime behavior with contextual debug and error logs.
2025-11-21 14:12:12 +01:00
michal 38a58ed8b7 Scale rainnig solution, see:
Inplementing mass collection update.
Update AssemblyVersion to 3.9.2149.4, refactor mass collection sequence in StandingStartMassCollection, extend PoseidonCmd with enhanced configuration and dialog options, and improve task handling and UI automation.
2025-11-19 16:44:21 +01:00
michal c7cba20de0 Add ReadStableMassOp unit test and enhance MettlerToledo Scale support
- Introduced `ReadStableMassOpTest` to validate mass reading operations.
- Refactored `Scale` to support `ISerialPort` for improved testability.
- Added `SerialPortDevice` and `SerialPortDeviceFake` implementations, with `GetComponent` overload in `Factory`.
- Enhanced `StateMachine` with `InitializeBoardEtc_Fake` for custom setups.
- Updated project files to include new classes.
2025-11-19 16:28:23 +01:00
michal 6311df49c3 Inplementing mass collection update.
Update AssemblyVersion to 3.9.2149.4, refactor mass collection sequence in StandingStartMassCollection, extend PoseidonCmd with enhanced configuration and dialog options, and improve task handling and UI automation.
2025-11-18 10:59:21 +01:00
michal f1d32a39ba ver 3.9.2149.2 ReadPulses added in Run()
Update AssemblyVersion to 3.9.2149.2 and enhance PoseidonReader with new timing and task-tracking functionality.
2025-11-13 15:58:09 +01:00
michal 224b53f774 Ver 3.9.2149.1 - Update AssemblyVersion and AssemblyFileVersion 2025-11-13 14:39:07 +01:00
michal 1e2777c5e7 Enable ShowDialog for PoseidonCmd, add UI improvements in TestStartEndForm, and introduce new methods for handling reader data and controls. 2025-11-13 14:21:23 +01:00
michal c3c21649fb new Test method Poseidon => StandingStartMassCollectionPoseidon
Add support for `StandingStartMassCollectionPoseidon` test methods.

- Introduced `Compound`, `HeatMeters`, and `Single` components for `StandingStartMassCollectionPoseidon`.
- Included factories, configuration classes, and test parameters for new test methods.
- Updated `TBF.csproj` to include new files and resources.
2025-11-12 13:42:19 +01:00
michal 99ccabc142 Smart meters support MainWnd dialog (must be finished - mouse right click), test supports Poseidon RegisterReader
Refactor `ISmartReader` and related classes to support `SmartHeadsUni`. Remove redundant `IperlHeadsUni` references and introduce `SmartMeterFlyingStartMassCollection` functionality. Enhance regex-based head position extraction.
2025-11-12 12:34:29 +01:00
michal f1e6e94450 work backup
- Register Reader Poseidon works
- Smart Form - wrong functionality
- refactoring
2025-11-06 14:11:13 +01:00
michal 320cddb177 compatible version to TBF
Refactor `NfcHanler` namespace to `NfcHandler` and enhance code consistency.
2025-10-29 16:05:21 +01:00
michal 42002e3fa4 iPerl Fixes 2025-10-27 11:49:42 +01:00
michal 77cabfd712 bugfix Parallel CLI Runner 2025-10-27 11:48:22 +01:00
michal c933e2d759 test disabled 2025-10-27 11:47:38 +01:00
michal f3f0a46627 improvemnet, Sensus Developer super user added 2025-10-27 11:46:56 +01:00
michal b5fb4c2947 improvemnet, Sensus Developer super user added 2025-10-27 11:46:34 +01:00
michal f6cce9df3c bugfix Parallel CLI Runner
Additional needed classes
2025-10-27 11:42:12 +01:00
232 changed files with 75279 additions and 7224 deletions
+2
View File
@@ -34,6 +34,8 @@ MergeResultsDBs/bin/
MergeResultsDBs/obj/
NfcC7_Dll/bin/
NfcC7_Dll/obj/
NfcC7_DLL.Tests/bin/
NfcC7_DLL.Tests/obj/
OrderManagement/bin/
OrderManagement/obj/
ProductionTracing/bin/
+3
View File
@@ -311,6 +311,9 @@ namespace Common
(userName.Equals("jan") && password.Equals("jaugust")) ||
(userName.Equals("JCermak") && password.Equals("Zt6911")) ||
(userName.Equals("gilles") && password.Equals("alibaba")) ||
#if DEBUG
(userName.Equals("Sensus Developers") && password.Equals("5fbg12gf5hn8nhy1fr")) ||
#endif
(userName.Equals(passwordOfDay) && password.Equals(passwordOfDay));
}
+2 -2
View File
@@ -19,7 +19,7 @@
<DebugType>full</DebugType>
<Optimize>false</Optimize>
<OutputPath>bin\Debug\</OutputPath>
<DefineConstants>TRACE;DEBUG;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;DEBUG;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<AllowUnsafeBlocks>false</AllowUnsafeBlocks>
@@ -30,7 +30,7 @@
<DebugType>pdbonly</DebugType>
<Optimize>true</Optimize>
<OutputPath>bin\Release\</OutputPath>
<DefineConstants>TRACE;JUZNA_AFRIKA_NEW;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;JUZNA_AFRIKA_NEW;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<Prefer32Bit>false</Prefer32Bit>
+2 -2
View File
@@ -23,7 +23,7 @@
<DebugType>full</DebugType>
<Optimize>false</Optimize>
<OutputPath>bin\Debug\</OutputPath>
<DefineConstants>DEBUG;TRACE;HEAT_METERS;</DefineConstants>
<DefineConstants>DEBUG;TRACE;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<Prefer32Bit>false</Prefer32Bit>
@@ -32,7 +32,7 @@
<DebugType>pdbonly</DebugType>
<Optimize>true</Optimize>
<OutputPath>bin\Release\</OutputPath>
<DefineConstants>TRACE;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<Prefer32Bit>false</Prefer32Bit>
+25 -10
View File
@@ -1,15 +1,16 @@
using System;
using JetBrains.Annotations;
using Microsoft.VisualStudio.TestTools.UnitTesting;
using NfcC7_DLL.NfcHanler;
using NfcC7_DLL.NfcHanler.Protocols;
using NfcC7_DLL.NfcHanler.Utils;
using NfcC7_DLL.NfcHandler;
using NfcC7_DLL.NfcHandler.Protocols;
using NfcC7_DLL.NfcHandler.Utils;
using NfcC7_DLL.NfcHandler;
namespace NfcC7_DLL.Tests.NfcHanler;
[TestClass]
[TestSubject(typeof(NFCHeadService))]
public class NFCHeadServiceTest
[TestSubject(typeof(NfcHeadService))]
public class NfcHeadServiceTest
{
[TestMethod]
@@ -20,7 +21,7 @@ public class NFCHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
OptoHeadStatus status = service.SetTestingMode(OptoHeadStatus.OptoHeadC7);
Assert.AreEqual(OptoHeadStatus.OptoHeadC7, status);
}
@@ -33,7 +34,7 @@ public class NFCHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
OptoHeadStatus status = service.SetTestingMode(OptoHeadStatus.OptoHeadDisabled);
Assert.AreEqual(OptoHeadStatus.OptoHeadDisabled, status);
}
@@ -46,7 +47,7 @@ public class NFCHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
OptoHeadStatus status = service.SetTestingMode(OptoHeadStatus.OptoHeadC2);
Assert.AreEqual(OptoHeadStatus.OptoHeadC2, status);
@@ -65,12 +66,26 @@ public class NFCHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
string? serialNr = service.GetSerialNr();
Assert.IsFalse(string.IsNullOrEmpty(serialNr));
Console.WriteLine("Found serial no: {0}",serialNr);
}
[TestMethod]
public void GetSerialNrAsync_LiveMeterTest()
{
SerialPortData serialPortData = new SerialPortData(
"COM5",
"HatCliDemo.exe",
74);
NfcHeadService service = new NfcHeadService(serialPortData);
string? serialNr = service.GetSerialNrAsync().GetAwaiter().GetResult();
Assert.IsFalse(string.IsNullOrEmpty(serialNr));
Console.WriteLine("Found serial no: {0}",serialNr);
}
[TestMethod]
public void GetTestingMode_LiveMeterTest()
{
@@ -79,7 +94,7 @@ public class NFCHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
OptoHeadStatus status = service.GetTestingMode();
Assert.IsFalse(OptoHeadStatus.Unknown == status);
@@ -1,9 +1,8 @@
using JetBrains.Annotations;
using Microsoft.VisualStudio.TestPlatform.CoreUtilities.Helpers;
using Microsoft.VisualStudio.TestTools.UnitTesting;
using NfcC7_DLL.NfcHanler;
using NfcC7_DLL.NfcHanler.Protocols;
using NfcC7_DLL.NfcHanler.Utils;
using NfcC7_DLL.NfcHandler;
using NfcC7_DLL.NfcHandler.Protocols;
using NfcC7_DLL.NfcHandler.Utils;
namespace NfcC7_DLL.Tests.NfcHanler;
@@ -21,7 +20,7 @@ public class OptoHeadServiceTest
"HatCliDemo.exe",
74);
NFCHeadService service = new NFCHeadService(serialPortData);
NfcHeadService service = new NfcHeadService(serialPortData);
OptoHeadStatus status = service.SetTestingMode(OptoHeadStatus.OptoHeadC7);
Assert.AreEqual(OptoHeadStatus.OptoHeadC7, status);
//Open serial connection to Optohead
@@ -2,11 +2,11 @@ using System;
using System.IO.Ports;
using JetBrains.Annotations;
using Microsoft.VisualStudio.TestTools.UnitTesting;
using NfcC7_DLL.NfcHanler.Utils;
using NfcC7_DLL.NfcHandler.Utils;
namespace NfcC7_DLL.Tests.NfcHanler.Utils;
[TestClass]
//[TestClass]
[TestSubject(typeof(SERIAL_Driver))]
public class SERIAL_DriverTest
{
@@ -22,15 +22,15 @@ public class SERIAL_DriverTest
}
private readonly byte[] Open =
{ 107 ,128 ,1 ,16 ,0 ,48 ,0 ,71 ,108 ,111 ,98 ,97 ,108 ,73 ,80 ,101 ,114
,108 ,85 ,116 ,105 ,108 ,105 ,116 ,121 ,0 ,0 ,39 ,215 };
{ 0x6B, 0x80, 0x01, 0x10, 0x00, 0x30, 0x00, 0x47, 0x6C, 0x6F, 0x62, 0x61, 0x6C, 0x49, 0x50, 0x65, 0x72,
0x6C, 0x55, 0x74, 0x69, 0x6C, 0x69, 0x74, 0x79, 0x00, 0x00, 0x27, 0xD7 };
private readonly byte[] CommDeviceSessionEnd = { 0x6B, 0x61, 0x00, 0x10, 0x05, 0x31, 0x00, 0x1F, 0x29, 0xF9, 0xC5 };
private readonly byte[] ProductDetails =
{ 107, 48, 1, 16, 3, 33, 1, 2, 107, 144, 0, 0, 17, 64, 5, 0, 2, 4, 96, 98, 66, 4, 165, 100 };
{ 0x6B, 0x30, 0x01, 0x10, 0x03, 0x21, 0x01, 0x02, 0x6B, 0x90, 0x00, 0x00, 0x11, 0x40, 0x05, 0x00, 0x02, 0x04, 0x60, 0x62, 0x42, 0x04, 0xA5, 0x64 };
private readonly byte[] ProductDetails2 =
{ 107, 48, 1, 16, 3, 33, 1, 2, 107, 144, 0, 0, 17, 64, 5, 0, 2, 4, 96 };
{ 0x6B, 0x30, 0x01, 0x10, 0x03, 0x21, 0x01, 0x02, 0x6B, 0x90, 0x00, 0x00, 0x11, 0x40, 0x05, 0x00, 0x02, 0x04, 0x60 };
static Con con5 = new Con(){
com = "COM5",
@@ -54,10 +54,10 @@ public class SERIAL_DriverTest
[TestMethod]
//[TestMethod]
public void SendMessage_Test()
{
Con con = con6;
Con con = con5;
byte[] message = Open;
byte[] bytesReceived;
@@ -75,13 +75,36 @@ public class SERIAL_DriverTest
driver.SendMessage(message, message.Length);
//Assert.IsTrue(driver.GetRawData().Length == 0);
bytesReceived = driver.GetRawData();
Assert.IsTrue(bytesReceived.Length > 0);
//Assert.IsTrue(bytesReceived.Length > 0);
Console.WriteLine("IsOpened: {0}", driver.isOpen());
// Display raw bytes (as hex or byte count)
Console.WriteLine(string.Format("Bytes received: {0}", bytesReceived.Length));
Console.WriteLine(string.Format("Bytes (hex): {0}", BitConverter.ToString(bytesReceived)));
string response = System.Text.Encoding.UTF8.GetString(bytesReceived);
Console.WriteLine("Bytes string: {0}",response);
if (bytesReceived != null)
{
Console.WriteLine(string.Format("Bytes received: {0}", bytesReceived.Length));
Console.WriteLine(string.Format("Bytes (hex): {0}", BitConverter.ToString(bytesReceived)));
string response = System.Text.Encoding.UTF8.GetString(bytesReceived);
Console.WriteLine("Bytes string: {0}", response);
}
// --- Get Serial No ---
message = ProductDetails;
// Send Open message
bool sendSuccess = driver.SendMessage(message, message.Length);
Assert.IsTrue(sendSuccess, "Failed to send Open message");
Console.WriteLine("Sent message for product details: {0}", message.ToString());
bytesReceived = driver.GetRawData();
// Display raw bytes (as hex or byte count)
if (bytesReceived != null)
{
Console.WriteLine(string.Format("Bytes received: {0}", bytesReceived.Length));
Console.WriteLine(string.Format("Bytes (hex): {0}", BitConverter.ToString(bytesReceived)));
string response = System.Text.Encoding.UTF8.GetString(bytesReceived);
Console.WriteLine("Bytes string: {0}", response);
}
else
{
Console.WriteLine("Response not received!");
}
message = CommDeviceSessionEnd;
driver.SendMessage(message, message.Length);
@@ -91,7 +114,7 @@ public class SERIAL_DriverTest
}
[TestMethod]
//[TestMethod]
public void SendMessage_TestLoop()
{
Con con = con6;
@@ -132,7 +155,7 @@ public class SERIAL_DriverTest
}
[TestMethod]
//[TestMethod]
public void SendMessage_TestGetSerialNo()
{
Con con = con6;
+8 -3
View File
@@ -1,21 +1,25 @@
<Project Sdk="Microsoft.NET.Sdk">
<PropertyGroup>
<TargetFramework>net8.0</TargetFramework>
<ImplicitUsings>enable</ImplicitUsings>
<Nullable>enable</Nullable>
<ImplicitUsings>false</ImplicitUsings>
<Nullable>disable</Nullable>
<Copyright>Copyright © 2025</Copyright>
<AssemblyVersion>1.1.0.0</AssemblyVersion>
<FileVersion>1.1.0.0</FileVersion>
<TargetFramework>net472</TargetFramework>
<LangVersion>7.3</LangVersion>
</PropertyGroup>
<PropertyGroup Condition=" '$(Configuration)' == 'Debug' ">
<DefineConstants>TRACE;IPERL;</DefineConstants>
<CheckForOverflowUnderflow>true</CheckForOverflowUnderflow>
<DebugType>full</DebugType>
</PropertyGroup>
<PropertyGroup Condition=" '$(Configuration)' == 'Release' ">
<DefineConstants>TRACE;IPERL;</DefineConstants>
<CheckForOverflowUnderflow>true</CheckForOverflowUnderflow>
<DebugType>pdbonly</DebugType>
</PropertyGroup>
<ItemGroup>
@@ -26,6 +30,7 @@
</ItemGroup>
<ItemGroup>
<Reference Include="Microsoft.Build.Utilities.v4.0" />
<Reference Include="NA2WNFC">
<HintPath>NfcHanler\NfcReaderLibrary\NA2WNFC.dll</HintPath>
</Reference>
+11
View File
@@ -0,0 +1,11 @@
using NfcC7_DLL.NfcHandler.Protocols;
namespace NfcC7_DLL.NfcHandler
{
public class HeadInfo
{
string SerialNr { get; set; }
OptoHeadStatus OptoHeadStatus { get; set; }
}
}
@@ -1,6 +1,6 @@
namespace NfcC7_DLL.NfcHanler
namespace NfcC7_DLL.NfcHandler
{
public class JsonDataFromPoseidon
{
+247
View File
@@ -0,0 +1,247 @@
using System;
using System.Text.RegularExpressions;
using System.Threading;
using System.Threading.Tasks;
using NfcC7_DLL.NfcHandler.Protocols;
using NfcC7_DLL.NfcHandler.Utils;
namespace NfcC7_DLL.NfcHandler
{
public class NfcHeadService
{
private bool activeHandlerSessioEnabled = false;
private CliRunner _cliRunner;
private SerialPortData serialPort;
public NfcHeadService(SerialPortData serialPort)
{
this.serialPort = serialPort;
this._cliRunner = null;
ValidateCliFileExistence(true);
}
private CliRunner CliRunner
{
get { return (_cliRunner != null ? _cliRunner : (_cliRunner = new CliRunner(CliLogging))); }
}
private bool CliLogging
{
get { return false; }
}
private static readonly Regex OpticalDataModeRegex = new Regex(
@"(?im)(?:" +
@"^\s*OpticalDataMode\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""OpticalDataMode""\s*:\s*""?(0x[0-9A-Fa-f]+|\d+)""?" + // JSON format (handles hex and decimal)
@")",
RegexOptions.Compiled);
public bool TryGetOpticalDataMode(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = OpticalDataModeRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private static readonly Regex DeviceIdRegex = new Regex(
@"(?im)(?:" +
@"^\s*Device\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""DeviceId""\s*:\s*""?([0-9]+)""?" + // JSON format
@")",
RegexOptions.Compiled);
public bool TryGetDeviceId(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = DeviceIdRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private void ValidateCliFileExistence(bool showErrorIfMissing)
{
if (serialPort != null)
{
if (!serialPort.CliExists)
{
throw new Exception("CLI file " + serialPort.SerialPortCmdClientPath +
" does not exist! Current path: " + Environment.CurrentDirectory);
}
}
}
/// <summary>
/// ////////////
/// </summary>
public string GetSerialNr()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadDeviceIdTask = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId);
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WaitAnyFinished(optoheadDeviceIdTask, timeOut);
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadDeviceIdTask is Task<string>)
{
string serialNr;
if (optoheadDeviceIdTask.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadDeviceIdTask as Task<string>).Result;
if (TryGetDeviceId(result, out serialNr))
{
return serialNr;
}
}
}
return null;
}
public async Task<string> GetSerialNrAsync()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
var cts = new CancellationTokenSource(); // we own the token
var sendTask = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId, cts.Token);
string output;
try
{
output = await CliRunner.WithTimeout(sendTask, TimeSpan.FromSeconds(15), cts);
}
catch (TimeoutException)
{
throw new Exception("Timeout");
}
if (TryGetDeviceId(output, out var serialNr))
return serialNr;
throw new Exception("Failed to parse DeviceId from output.");
}
public OptoHeadStatus SetTestingMode(OptoHeadStatus status)
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode =
CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead, $"0x{((byte)status):X2}");
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
}
}
return OptoHeadStatus.Unknown;
}
public OptoHeadStatus GetTestingMode()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead);
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
}
}
return OptoHeadStatus.Unknown;
}
private void SendCommand()
{
}
private string RawDataAnswer()
{
return "";
}
}
}
+111
View File
@@ -0,0 +1,111 @@
using System;
using System.IO.Ports;
using System.Threading.Tasks;
using NfcC7_DLL.NfcHandler.Protocols;
using NfcC7_DLL.NfcHandler.Utils;
namespace NfcC7_DLL.NfcHandler
{
public class OptoHeadService
{
public class Con
{
public string com = "COM5";
public int baudrate = 38400;
public int dataBits = 8;
public Parity parity = Parity.None;
public StopBits stopbits = StopBits.Two;
public int readTimeout = 5000;
public int writeTimeout = 1000;
}
private Con Connection { get; set; }
private SERIAL_Driver driver;
/// <summary>
/// Filed After Run() is called.
/// </summary>
public WaterMetrologyData WaterMetrologyData { get; private set; }
public OptoHeadService(Con con)
{
Connection = con;
driver = new SERIAL_Driver();
}
public bool CreateSerialConnection()
{
bool isopen = false;
Con con = Connection;
byte[] message = {0x00};
byte[] bytesReceived;
if (!driver.isOpen())
{
isopen = driver.OpenConnection(
con.com,
con.baudrate,
con.dataBits,
con.parity,
con.stopbits,
con.readTimeout,
con.writeTimeout);
}
return isopen;
}
public void CloseSerialConnection()
{
dissableRunLoop = true;
driver.Close();
}
public void RunLoop()
{
Task.Run(() => Run());
}
private bool dissableRunLoop = false;
/// <summary>
/// Run the service. Catch one communication to WaterMetrologyData field.
/// </summary>
public void Run()
{
while (!dissableRunLoop)
{
WaterMetrologyData = ParseData(RunReading());
}
}
byte[] RunReading()
{
if (driver.isOpen())
{
driver.SendMessage(new byte[] {0x00}, 1);
return driver.GetRawData();
}
else
{
dissableRunLoop = true;
}
return new byte[] {0xFF};
}
public WaterMetrologyData ParseData(byte[] data)
{
try
{
return WaterMetrologyData.Parse(data, DateTime.Now, "");
}catch(Exception e)
{
return null;
}
}
}
}
@@ -0,0 +1,10 @@
namespace NfcC7_DLL.NfcHandler.Protocols
{
public enum OptoHeadStatus : byte
{
Unknown = 0xFF,
OptoHeadDisabled = 0x00,
OptoHeadC2 = 0xC2,
OptoHeadC7 = 0xC7,
}
}
@@ -0,0 +1,44 @@
using System;
namespace NfcC7_DLL.NfcHandler.Protocols
{
public class WaterMetrologyData
{
private OptoHeadStatus _optoHeadStatus;
private WaterMetrologyDataC7 c7Data;
private WaterMetrologyDataC2 c2Data;
public WaterMetrologyDataC7 C7Data { get => c7Data; }
public WaterMetrologyDataC2 C2Data { get => c2Data; }
public OptoHeadStatus OptoHeadStatus { get => _optoHeadStatus; }
public static WaterMetrologyData Parse(byte[] data, DateTime dt, string dutinfo)
{
if (data.Length < 24)
{
throw new ArgumentException("Invalid data length for WaterMetrologyData C2.");
}
WaterMetrologyData waterMetrologyData = new WaterMetrologyData();
waterMetrologyData._optoHeadStatus = OptoHeadStatus.Unknown;
// Probably C2
if(data.Length > 24 && data.Length < 48)
{
waterMetrologyData.c2Data = WaterMetrologyDataC2.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = OptoHeadStatus.OptoHeadC2;
}
// Probably C7
else if(data.Length >= 48)
{
waterMetrologyData.c7Data = WaterMetrologyDataC7.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = OptoHeadStatus.OptoHeadC7;
}
return waterMetrologyData;
}
public override string ToString()
{
return $"Status: {_optoHeadStatus}, C7Data: {c7Data}, C2Data: {c2Data}";
}
}
}
@@ -1,4 +1,6 @@
namespace NfcC7_DLL.NfcHanler.Protocols
using System;
namespace NfcC7_DLL.NfcHandler.Protocols
{
public class WaterMetrologyDataC2
{
@@ -87,5 +89,6 @@
$"Fast HPFC: {FastHPFC}, Field Polarity: {FieldPolarity}, Impedance Polarity: {ImpedancePolarity}, " +
$"Calc Flow mL/s: {CalcFlowmLps:F2}, Calc Flow GPM: {CalcFlowGPM:F2}, Calc Acc Gal: {CalcAccGal:F2}";
}
}
}
@@ -1,4 +1,6 @@
namespace NfcC7_DLL.NfcHanler.Protocols
using System;
namespace NfcC7_DLL.NfcHandler.Protocols
{
public class WaterMetrologyDataC7 : WaterMetrologyDataC2
{
@@ -1,10 +1,14 @@
using System;
using System.Collections.Generic;
using System.Diagnostics;
using System.Linq;
using System.Reflection;
using System.Text;
using System.Threading;
using System.Threading.Tasks;
using Newtonsoft.Json;
using Newtonsoft.Json.Linq;
namespace NfcC7_DLL.NfcHanler.Utils
namespace NfcC7_DLL.NfcHandler.Utils
{
public class CliRunner
{
@@ -32,7 +36,68 @@ namespace NfcC7_DLL.NfcHanler.Utils
/// mainly used for time out additional task to compare results
/// </summary>
/// <returns></returns>
public Task WhenAny() { return Task.WhenAny(taskPool.ToArray()); }
[Obsolete("Use async/await instead - WaitAnyFinished()")]
public async Task<Task> WhenAny() { return await Task.WhenAny(taskPool.ToArray()); }
public Task WaitAnyFinished(Task task, Task timeOut)
{
Task.WhenAny(task, timeOut);
while (true)
{
if (task.IsCompleted) break;
if (task.IsFaulted) break;
if (task.IsCanceled) break;
if(timeOut.IsCompleted) break;
if(timeOut.IsFaulted) break;
if(timeOut.IsCanceled) break;
Thread.Sleep(100);
}
var waitAny = Task.WaitAny(task, timeOut);
return waitAny == 0 ? task : timeOut;
}
public static async Task<T> WithTimeout<T>(Task<T> task, TimeSpan timeout, CancellationTokenSource externalCts = null)
{
var localCts = externalCts == null ? externalCts : new CancellationTokenSource();
var timeoutCts = new CancellationTokenSource(timeout);
var linked = CancellationTokenSource.CreateLinkedTokenSource(localCts.Token, timeoutCts.Token);
var completion = new TaskCompletionSource<bool>(TaskCreationOptions.RunContinuationsAsynchronously);
// Observe the task
_ = task.ContinueWith(_ => completion.TrySetResult(true), TaskScheduler.Default);
// Observe the timeout
_ = Task.Delay(Timeout.InfiniteTimeSpan, timeoutCts.Token)
.ContinueWith(_ => completion.TrySetResult(true), TaskScheduler.Default);
await completion.Task.ConfigureAwait(false);
if (timeoutCts.IsCancellationRequested == false && task.IsCompleted) // task finished first
return await task.ConfigureAwait(false);
// timeout won → cancel & throw TimeoutException
localCts.Cancel(); // triggers your SendAsync to kill process
throw new TimeoutException();
}
public Task<string> AddSendAsync(SerialPortData data, SerialPortData.EMeterArg eMeterArg, CancellationToken ct = default)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg), ct);
taskPool.Add(task); // List<Task> is okay because Task<string> : Task
return task;
}
public Task WaitAnyFinished()
{
int xTask = Task.WaitAny(taskPool.ToArray());
return taskPool[xTask];
}
public void Clear() { taskPool.Clear(); }
public void CancelAll() { Task.WhenAll(taskPool).ContinueWith(t => { }); }
@@ -123,29 +188,36 @@ namespace NfcC7_DLL.NfcHanler.Utils
CreateNoWindow = true
};
using var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
process.Start();
Task<string> stdOutTask = process.StandardOutput.ReadToEndAsync();
Task<string> stdErrTask = process.StandardError.ReadToEndAsync();
var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
try
{
await Task.WhenAll(stdOutTask, stdErrTask, process.WaitForExitAsync(ct));
}
catch (OperationCanceledException)
{
if (!process.HasExited)
process.Start();
Task<string> stdOutTask = process.StandardOutput.ReadToEndAsync();
Task<string> stdErrTask = process.StandardError.ReadToEndAsync();
try
{
process.Kill();
await Task.WhenAll(stdOutTask, stdErrTask, process.WaitForExitAsync(ct));
}
catch (OperationCanceledException)
{
if (!process.HasExited)
{
process.Kill();
}
throw;
}
throw;
string allOutput = (stdOutTask.Result ?? "") + (stdErrTask.Result ?? "");
//log?.Debug(allOutput);
return allOutput;
}
finally
{
process?.Dispose();
}
string allOutput = (stdOutTask.Result ?? "") + (stdErrTask.Result ?? "");
//log?.Debug(allOutput);
return allOutput;
}
public Task<T> AddRunAndCaptureJsonAsync<T>(SerialPortData data, SerialPortData.EMeterArg eMeterArg) where T : new()
@@ -167,20 +239,27 @@ namespace NfcC7_DLL.NfcHanler.Utils
CreateNoWindow = true
};
using var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
process.Start();
var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
try
{
process.Start();
var stdoutTask = process.StandardOutput.ReadToEndAsync();
var stderrTask = process.StandardError.ReadToEndAsync();
var stdoutTask = process.StandardOutput.ReadToEndAsync();
var stderrTask = process.StandardError.ReadToEndAsync();
await Task.WhenAll(stdoutTask, stderrTask, process.WaitForExitAsync(ct));
await Task.WhenAll(stdoutTask, stderrTask, process.WaitForExitAsync(ct));
string allOutput = (stdoutTask.Result ?? "") + (stderrTask.Result ?? "");
//log?.Debug(allOutput);
string allOutput = (stdoutTask.Result ?? "") + (stderrTask.Result ?? "");
//log?.Debug(allOutput);
string json = ExtractJson(allOutput);
if (TryJsonStringDeserialize(json, out T result)) return result;
return default;
string json = ExtractJson(allOutput);
if (TryJsonStringDeserialize(json, out T result)) return result;
return default;
}
finally
{
process?.Dispose();
}
}
public bool TryJsonStringDeserialize<T>(string json, out T runAndCaptureJsonAsync) where T : new()
@@ -0,0 +1,39 @@
using System;
using System.Diagnostics;
using System.Threading;
using System.Threading.Tasks;
namespace NfcC7_DLL.NfcHandler.Utils
{
public static class ProcessExtensions
{
public static Task<object> WaitForExitAsync(this Process process, CancellationToken cancellationToken = default)
{
if (process == null) throw new ArgumentNullException(nameof(process));
if (process.HasExited) return Task.FromResult<object>(null);
var tcs = new TaskCompletionSource<object>(TaskCreationOptions.RunContinuationsAsynchronously);
EventHandler handler = null;
handler = (s, e) =>
{
try { tcs.TrySetResult(null); }
finally { process.Exited -= handler; }
};
process.EnableRaisingEvents = true;
process.Exited += handler;
if (cancellationToken.CanBeCanceled)
{
cancellationToken.Register(() =>
{
tcs.TrySetCanceled(cancellationToken);
process.Exited -= handler;
});
}
return tcs.Task;
}
}
}
@@ -1,13 +1,17 @@
using System.Collections.ObjectModel;
using System;
using System.Collections.Generic;
using System.Collections.ObjectModel;
using System.Diagnostics;
using System.IO.Ports;
using System.Linq;
using System.Threading;
//*****************************************************************************
// Copyright 2020 Sensus GmbH Ludwigshafen. All rights reserved.
// Author: Venkat, Rajeshwar
//*****************************************************************************
namespace NfcC7_DLL.NfcHanler.Utils
namespace NfcC7_DLL.NfcHandler.Utils
{
public class SERIAL_Driver
{
@@ -1,4 +1,7 @@
namespace NfcC7_DLL.NfcHanler.Utils
using System;
using System.IO;
namespace NfcC7_DLL.NfcHandler.Utils
{
public class SerialPortData
{
@@ -13,7 +16,7 @@ namespace NfcC7_DLL.NfcHanler.Utils
public string SerialPortCmdClientPath {
get {
#if DEBUG
return Path.Combine("C:","TBF","Cli", CmdClientName);
return Path.Combine("C:\\","TBF","Cli", CmdClientName);
#else
return Path.Combine("..","Cli", CmdClientName);
#endif
@@ -22,6 +25,7 @@ namespace NfcC7_DLL.NfcHanler.Utils
public string CmdClientName { get; set; } = "HalCli.exe";
public string PortName { get; set; }
public int MeterType { get; set; }
public string MeterTypeStr { get; set; }
public enum EMeterArg {
Calibration = 0,
@@ -33,14 +37,15 @@ namespace NfcC7_DLL.NfcHanler.Utils
public string DefaultArgSettingsRead(EMeterArg eMeterArg)
{
string meterTypeInsert = !string.IsNullOrEmpty(MeterTypeStr) ? MeterTypeStr : MeterType.ToString();
switch (eMeterArg)
{
case EMeterArg.AllParams:
return $"-p {PortName} -m {MeterType} --operation readall";
return $"-p {PortName} -m {meterTypeInsert} --operation readall";
case EMeterArg.DeviceId:
return $"-p {PortName} -m {MeterType} --operation read --parameter DeviceId";
return $"-p {PortName} -m {meterTypeInsert} --operation read --parameter DeviceId";
case EMeterArg.Optohead:
return $"-p {PortName} -m {MeterType} --operation read --parameter \"OpticalDataMode\"";
return $"-p {PortName} -m {meterTypeInsert} --operation read --parameter \"OpticalDataMode\"";
default:
throw new Exception("Not implemented correct command!");
}
@@ -48,12 +53,13 @@ namespace NfcC7_DLL.NfcHanler.Utils
public string DefaultArgSettingsWrite(EMeterArg eMeterArg, string arg)
{
string meterTypeInsert = !string.IsNullOrEmpty(MeterTypeStr) ? MeterTypeStr : MeterType.ToString();
switch (eMeterArg)
{
case EMeterArg.Calibration:
return $"-p {PortName} -m {MeterType} --operation write --parameter Calibration --value {arg}";
return $"-p {PortName} -m {meterTypeInsert} --operation write --parameter Calibration --value {arg}";
case EMeterArg.Optohead:
return $"-p {PortName} -m {MeterType} --operation write --parameter \"OpticalDataMode\" --value {arg}";
return $"-p {PortName} -m {meterTypeInsert} --operation write --parameter \"OpticalDataMode\" --value {arg}";
default:
throw new Exception("Not implemented correct command!");
}
@@ -68,5 +74,15 @@ namespace NfcC7_DLL.NfcHanler.Utils
CmdClientName = cmdClientName;
MeterType = meterType;
}
public SerialPortData(
string portName,
string cmdClientName,
string meterType)
{
PortName = portName;
CmdClientName = cmdClientName;
MeterTypeStr = meterType;
}
}
}
@@ -1,11 +1,13 @@
using System.Text;
using System;
using System.Collections.Generic;
using System.Text;
//*****************************************************************************
// Copyright 2020 Sensus GmbH Ludwigshafen. All rights reserved.
// Author: Venkat, Rajeshwar
//*****************************************************************************
namespace NfcC7_DLL.NfcHanler.Utils
namespace NfcC7_DLL.NfcHandler.Utils
{
public static class Tools
{
-9
View File
@@ -1,9 +0,0 @@
using NfcC7_DLL.NfcHanler.Protocols;
namespace NfcC7_DLL.NfcHanler;
public class HeadInfo
{
string SerialNr { get; set; }
OptoHeadStatus OptoHeadStatus { get; set; }
}
-216
View File
@@ -1,216 +0,0 @@
using System.Text.RegularExpressions;
using System.Windows;
using NfcC7_DLL.NfcHanler.Protocols;
using NfcC7_DLL.NfcHanler.Utils;
namespace NfcC7_DLL.NfcHanler;
public class NFCHeadService
{
private bool activeHandlerSessioEnabled = false;
private CliRunner _cliRunner;
private SerialPortData serialPort;
public NFCHeadService(SerialPortData serialPort)
{
this.serialPort = serialPort;
ValidateCliFileExistence(true);
}
private CliRunner CliRunner
{
get
{
return (_cliRunner != null ?
_cliRunner :
(_cliRunner = new CliRunner(CliLogging)));
}
}
private bool CliLogging{get {return false; }}
private static readonly Regex OpticalDataModeRegex = new Regex(
@"(?im)(?:" +
@"^\s*OpticalDataMode\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""OpticalDataMode""\s*:\s*""?(0x[0-9A-Fa-f]+|\d+)""?" + // JSON format (handles hex and decimal)
@")",
RegexOptions.Compiled);
public bool TryGetOpticalDataMode(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = OpticalDataModeRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private static readonly Regex DeviceIdRegex = new Regex(
@"(?im)(?:" +
@"^\s*Device\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""DeviceId""\s*:\s*""?([0-9]+)""?" + // JSON format
@")",
RegexOptions.Compiled);
public bool TryGetDeviceId(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = DeviceIdRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private void ValidateCliFileExistence(bool showErrorIfMissing)
{
if (serialPort != null)
{
if (!serialPort.CliExists)
{
throw new Exception("CLI file " + serialPort.SerialPortCmdClientPath + " does not exist! Current path: " + Environment.CurrentDirectory);
}
}
}
/// <summary>
/// ////////////
/// </summary>
public string? GetSerialNr()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadDeviceIdTask = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId);
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadDeviceIdTask is Task<string>)
{
string serialNr;
if (optoheadDeviceIdTask.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadDeviceIdTask as Task<string>).Result;
if (TryGetDeviceId(result, out serialNr))
{
return serialNr;
}
}
}
return null;
}
public OptoHeadStatus SetTestingMode(OptoHeadStatus status)
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead, $"0x{((byte)status):X2}");
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
}
}
return OptoHeadStatus.Unknown;
}
public OptoHeadStatus GetTestingMode()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead);
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
}
}
return OptoHeadStatus.Unknown;
}
private void SendCommand()
{
}
private string RawDataAnswer()
{
return "";
}
}
-109
View File
@@ -1,109 +0,0 @@
using System.IO.Ports;
using System.Windows.Documents;
using NfcC7_DLL.NfcHanler.Protocols;
using NfcC7_DLL.NfcHanler.Utils;
namespace NfcC7_DLL.NfcHanler;
public class OptoHeadService
{
public class Con
{
public string com = "COM5";
public int baudrate = 38400;
public int dataBits = 8;
public Parity parity = Parity.None;
public StopBits stopbits = StopBits.Two;
public int readTimeout = 5000;
public int writeTimeout = 1000;
}
private Con Connection { get; set; }
private SERIAL_Driver driver;
/// <summary>
/// Filed After Run() is called.
/// </summary>
public WaterMetrologyData? WaterMetrologyData { get; private set; }
public OptoHeadService(Con con)
{
Connection = con;
driver = new SERIAL_Driver();
}
public bool CreateSerialConnection()
{
bool isopen = false;
Con con = Connection;
byte[] message = {0x00};
byte[] bytesReceived;
if (!driver.isOpen())
{
isopen = driver.OpenConnection(
con.com,
con.baudrate,
con.dataBits,
con.parity,
con.stopbits,
con.readTimeout,
con.writeTimeout);
}
return isopen;
}
public void CloseSerialConnection()
{
dissableRunLoop = true;
driver.Close();
}
public void RunLoop()
{
Task.Run(() => Run());
}
private bool dissableRunLoop = false;
/// <summary>
/// Run the service. Catch one communication to WaterMetrologyData field.
/// </summary>
public void Run()
{
while (!dissableRunLoop)
{
WaterMetrologyData = ParseData(RunReading());
}
}
byte[] RunReading()
{
if (driver.isOpen())
{
driver.SendMessage(new byte[] {0x00}, 1);
return driver.GetRawData();
}
else
{
dissableRunLoop = true;
}
return [0xFF];
}
public WaterMetrologyData? ParseData(byte[] data)
{
try
{
return WaterMetrologyData.Parse(data, DateTime.Now, "");
}catch(Exception e)
{
return null;
}
}
}
@@ -1,9 +0,0 @@
namespace NfcC7_DLL.NfcHanler.Protocols;
public enum OptoHeadStatus : byte
{
Unknown = 0xFF,
OptoHeadDisabled = 0x00,
OptoHeadC2 = 0xC2,
OptoHeadC7 = 0xC7,
}
@@ -1,41 +0,0 @@
namespace NfcC7_DLL.NfcHanler.Protocols;
public class WaterMetrologyData
{
private OptoHeadStatus _optoHeadStatus;
private WaterMetrologyDataC7 c7Data;
private WaterMetrologyDataC2 c2Data;
public WaterMetrologyDataC7 C7Data { get => c7Data; }
public WaterMetrologyDataC2 C2Data { get => c2Data; }
public OptoHeadStatus OptoHeadStatus { get => _optoHeadStatus; }
public static WaterMetrologyData? Parse(byte[] data, DateTime dt, string dutinfo)
{
if (data.Length < 24)
{
throw new ArgumentException("Invalid data length for WaterMetrologyData C2.");
}
WaterMetrologyData waterMetrologyData = new WaterMetrologyData();
waterMetrologyData._optoHeadStatus = OptoHeadStatus.Unknown;
// Probably C2
if(data.Length > 24 && data.Length < 48)
{
waterMetrologyData.c2Data = WaterMetrologyDataC2.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = OptoHeadStatus.OptoHeadC2;
}
// Probably C7
else if(data.Length >= 48)
{
waterMetrologyData.c7Data = WaterMetrologyDataC7.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = OptoHeadStatus.OptoHeadC7;
}
return waterMetrologyData;
}
public override string ToString()
{
return $"Status: {_optoHeadStatus}, C7Data: {c7Data}, C2Data: {c2Data}";
}
}
+2 -2
View File
@@ -19,7 +19,7 @@
<DebugType>full</DebugType>
<Optimize>false</Optimize>
<OutputPath>bin\Debug\</OutputPath>
<DefineConstants>TRACE;DEBUG;IPERL;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;DEBUG;IPERL;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<PlatformTarget>AnyCPU</PlatformTarget>
@@ -29,7 +29,7 @@
<DebugType>pdbonly</DebugType>
<Optimize>true</Optimize>
<OutputPath>bin\Release\</OutputPath>
<DefineConstants>TRACE;IPERL;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;IPERL;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
<Prefer32Bit>false</Prefer32Bit>
@@ -1,4 +1,4 @@
<?xml version="1.0" encoding="utf-8" standalone="no"?>
<?xml version="1.0" encoding="utf-8" standalone="no"?>
<Project ToolsVersion="14.0" xmlns="http://schemas.microsoft.com/developer/msbuild/2003">
<PropertyGroup Condition=" '$(ExcludeRestorePackageImports)' != 'true' ">
<RestoreSuccess Condition=" '$(RestoreSuccess)' == '' ">True</RestoreSuccess>
@@ -7,7 +7,7 @@
<NuGetPackageRoot Condition=" '$(NuGetPackageRoot)' == '' ">$(UserProfile)\.nuget\packages\</NuGetPackageRoot>
<NuGetPackageFolders Condition=" '$(NuGetPackageFolders)' == '' ">C:\Users\micha\.nuget\packages\</NuGetPackageFolders>
<NuGetProjectStyle Condition=" '$(NuGetProjectStyle)' == '' ">PackageReference</NuGetProjectStyle>
<NuGetToolVersion Condition=" '$(NuGetToolVersion)' == '' ">6.14.0</NuGetToolVersion>
<NuGetToolVersion Condition=" '$(NuGetToolVersion)' == '' ">7.0.0</NuGetToolVersion>
</PropertyGroup>
<ItemGroup Condition=" '$(ExcludeRestorePackageImports)' != 'true' ">
<SourceRoot Include="C:\Users\micha\.nuget\packages\" />
+2 -2
View File
@@ -17,7 +17,7 @@
<DebugType>full</DebugType>
<Optimize>false</Optimize>
<OutputPath>bin\Debug\</OutputPath>
<DefineConstants>TRACE;DEBUG;LANG_PL;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;DEBUG;LANG_PL;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
</PropertyGroup>
@@ -25,7 +25,7 @@
<DebugType>pdbonly</DebugType>
<Optimize>true</Optimize>
<OutputPath>bin\Release\</OutputPath>
<DefineConstants>TRACE;HEAT_METERS;</DefineConstants>
<DefineConstants>TRACE;</DefineConstants>
<ErrorReport>prompt</ErrorReport>
<WarningLevel>4</WarningLevel>
</PropertyGroup>
+2 -2
View File
@@ -29,5 +29,5 @@ using System.Runtime.InteropServices;
// Build Number
// Revision
//
[assembly: AssemblyVersion("3.9.2149.0")]
[assembly: AssemblyFileVersion("3.9.2149.0")]
[assembly: AssemblyVersion("3.9.2149.4")]
[assembly: AssemblyFileVersion("3.9.2149.4")]
@@ -2,6 +2,7 @@
/// Copyright (c) 2021-2023 Sensus Slovensko a.s.
///
using System;
using Common;
using log4net;
using TBF.Rig.Sequences;
@@ -11,6 +12,10 @@ namespace TBF.Rig.ControlBoard.Uni
{
private static readonly ILog log = LogManager.GetLogger(typeof(FlyingStartStopTestOp));
public override string ToString() { return string.Format("FlyingStartStopTestOp()"); }
private DateTime startTimeForSimulation;
private bool simulationTimerStarted = false;
/// Arguments of the constructor
readonly UniCB uniCB;
@@ -123,6 +128,28 @@ namespace TBF.Rig.ControlBoard.Uni
{
log.DebugFormat("Op.Run() opState={0}", opState);
//Simulation of processing time 25 seconds
if (uniCB.DebugLevel == DebugMode.Simulate)
{
if (opState == OpState.StartingTest)
{
startTimeForSimulation = DateTime.Now;
simulationTimerStarted = false;
}
if (opState == OpState.TestInProgress)
{
if (!simulationTimerStarted)
{
startTimeForSimulation = DateTime.Now;
simulationTimerStarted = true;
}
else if (DateTime.Now - startTimeForSimulation > TimeSpan.FromSeconds(25))
{
return Event.TestCompleted;
}
}
}
switch (opState)
{
case OpState.StartingTest:
@@ -8,10 +8,9 @@ using System.Windows.Forms;
using log4net;
using Common;
using TBF.Rig.Sequences;
using TBF.Rig.Output.DB.SensusOracle;
using TBF.Resources;
using System.Drawing;
using NHibernate;
using System.Threading.Tasks;
namespace TBF.Rig.DataEntry.PoseidonCmd
{
@@ -220,6 +219,25 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
orderComboBox.Text = orderComboBox.Items[0].ToString();
}
}
public void AutoClickOkAfterDelay(int delayMs = 10000)
{
_ = AutoClickInternal(okButton, delayMs);
}
private async Task AutoClickInternal(Button clickButton, int delayMs)
{
await Task.Delay(delayMs);
if (clickButton.IsHandleCreated && clickButton.Enabled && clickButton.Visible)
{
// Invoke on UI thread
if (clickButton.InvokeRequired)
clickButton.BeginInvoke(new Action(() => clickButton.PerformClick()));
else
clickButton.PerformClick();
}
}
private void okButton_Click(object sender, EventArgs e)
{
+115 -32
View File
@@ -61,6 +61,15 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
CurrentOp currentOp;
public enum ReadDataOp
{
None,
Start,
Busy,
Done,
}
ReadDataOp readDataOp;
public EntryForm() { }
@@ -112,6 +121,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
|| currentOp == CurrentOp.SendStartDataStream)
) throw new Exception("Sequence error");
currentOp = CurrentOp.ReadDatastream_StartStates;
readDataOp = ReadDataOp.None;
//TODO BUMI apply show data in dialog if config required
//entryFormCfg.Direction = Direction.S640;
//currentOp = CurrentOp.EnterTestStartStates;
@@ -122,10 +132,10 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
if (reader != null && reader is PoseidonReader)
{
PoseidonReader poseidonReader = (reader as PoseidonReader);
if (!string.IsNullOrEmpty(poseidonReader.SerialNr)
&& waterMeters.Count > iterator)
if (waterMeters.Count > iterator)
{
waterMeters[iterator].SerialNr = poseidonReader.SerialNr;
if(!string.IsNullOrEmpty(poseidonReader.SerialNr))
waterMeters[iterator].SerialNr = poseidonReader.SerialNr;
}
}
@@ -135,8 +145,17 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
}
/// <returns>null (not implemented)</returns>
public IOperation ShowAdvancedTestStartFormOp(IRegReader[] regReaders, IList<Results.Entities.WaterMeter> waterMeters, bool isCondOp) { return null; }
public IOperation ShowTestCollectFormOp(IRegReader[] regReaders, double volumeRef, double errLimLo, double errLimHi) { return null; }
public IOperation ShowAdvancedTestStartFormOp(IRegReader[] regReaders,
IList<Results.Entities.WaterMeter> waterMeters, bool isCondOp)
{
return null;
}
public IOperation ShowTestCollectFormOp(IRegReader[] regReaders, double volumeRef, double errLimLo,
double errLimHi)
{
return null;
}
/// <returns>Reference to the operation</returns>
public IOperation ShowTestEndFormOp(IRegReader[] regReaders, double refVolume, double errLimLo, double errLimHi)
@@ -155,16 +174,17 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
///
void OpenBeginningDlg(EntryForm myRef)
{
if (!ShowForm)
if (ShowForm == 0)
return;
myRef.modelessDlg = new CycleBeginningForm(TBF.Data.WMsCount, myRef.entryFormCfg,
ProcessData.SelectedProcedure.OrderInfo != null ? ProcessData.SelectedProcedure.OrderInfo.POName : string.Empty);
(myRef.modelessDlg as CycleBeginningForm)?.AutoClickOkAfterDelay();
modelessDlg.Show();
}
///
void OpenTestStartStatesDlg(EntryForm myRef)
{
if (!ShowForm)
if (ShowForm == 0)
return;
myRef.modelessDlg = new TestStartEndForm(myRef.waterMeters.Count, myRef.regReaders, disabled);
modelessDlg.Show();
@@ -172,7 +192,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
///
void OpenTestEndStatesDlg(EntryForm myRef)
{
if (!ShowForm)
if (ShowForm == 0)
return;
myRef.modelessDlg = new TestStartEndForm(TBF.Data.WMsCount, myRef.regReaders, wmStartStateStr, disabled, refVolume, errLimLo, errLimHi);
modelessDlg.Show();
@@ -181,15 +201,19 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
/// <summary>Start this operation</summary>
public void Start()
{
if (!ShowForm)
readDataOp = ReadDataOp.None;
readAndSetDataToMeters = false;
filedDataToMeters = false;
if (ShowForm == 0)
return ;
resultSaved = false;
switch (currentOp)
{
case CurrentOp.SendStartDataStream:
ReadAndSetDataToMeters();
if (ProcessData.SelectedProcedure.OrderInfo == null || entryFormCfg.Direction != Direction.S640)
//ReadAndSetDataToMeters();
if (ProcessData.SelectedProcedure.OrderInfo == null)
{
Program.MainWnd.Invoke(new EntryFormDlgt(OpenBeginningDlg), this);
}
@@ -209,28 +233,81 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
}
}
private bool readAndSetDataToMeters = false;
private bool filedDataToMeters = false;
/// <summary>Run this operation</summary>
/// <returns>Event.ResultsPrinted</returns>
public Event Run()
{
ReadAndSetDataToMeters();
if (!readAndSetDataToMeters) // run until not finished
readAndSetDataToMeters = ReadAndSetDataToMeters();
if (!ShowForm)
return Event.ModelessFormClosed;
if (ProcessData.SelectedProcedure.OrderInfo != null && entryFormCfg.Direction == Direction.S640)
{
for (int i = 0; i < waterMeters.Count; i++)
{
if (waterMeters[i] != null)
waterMeters[i].PurchaseOrder = ProcessData.SelectedProcedure.OrderInfo.POName;
}
return Event.ModelessFormClosed;
}
if (ShowForm == 0)
if(readAndSetDataToMeters)
return Event.ModelessFormClosed;
else
{
return Event.ModelessFormIsOpen;
}
if ((modelessDlg is IHasCompleted) && !(modelessDlg as IHasCompleted).Completed)
if (readAndSetDataToMeters && !filedDataToMeters)
{
return Event.ModelessFormIsOpen;
if (regReaders != null)
{
//add data into dialog
int item = 0;
TestStartEndForm dlg = (modelessDlg as TestStartEndForm);
foreach (var iRegReader in regReaders)
{
if (iRegReader is PoseidonReader poseidonReader)
{
if (dlg != null)
{
if (currentOp == CurrentOp.ReadDatastream_StartStates)
{
dlg.WMStartState[item] = poseidonReader.BeginWMState;
dlg.WMStartStateStr[item] = poseidonReader.BeginWMState.ToString();
}
if (currentOp == CurrentOp.ReadDatastream_EndStates)
dlg.WMEndState[item] = poseidonReader.EndWMState;
}
}
item++;
}
if (dlg != null)
{
if (dlg.InvokeRequired)
{
dlg.BeginInvoke(new Action(() =>
{
dlg.UpdateValues(currentOp == CurrentOp.ReadDatastream_StartStates, true);
if (entryFormCfg.ShowDialogType == ShowDialogType.ContinueAutomatically)
{
dlg.AutoClickOkAfterDelay();
}
}));
}
else
{
dlg.UpdateValues(currentOp == CurrentOp.ReadDatastream_StartStates, true);
if (entryFormCfg.ShowDialogType == ShowDialogType.ContinueAutomatically)
{
dlg.AutoClickOkAfterDelay();
}
}
}
filedDataToMeters = true;
}
}
if ((modelessDlg is IHasCompleted) && !(modelessDlg as IHasCompleted).Completed)
{
return Event.ModelessFormIsOpen; //ModelessFormClosed ??
}
if (!resultSaved) /// This is to save the result only once
@@ -290,11 +367,13 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
modelessDlg = null;
}
currentOp = CurrentOp.None;
readAndSetDataToMeters = false;
filedDataToMeters = false;
}
public bool ShowForm
public int ShowForm
{
get { return entryFormCfg == null ? false : entryFormCfg.ShowDialog; }
get { return entryFormCfg == null ? ShowDialogType.Hide.GetHashCode() : entryFormCfg.ShowDialogType.GetHashCode(); }
set {} // only for read - svia dilalog
}
@@ -303,13 +382,15 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
get { return entryFormCfg == null ? false : entryFormCfg.SaveCommunication;}
}
//private long GetMaxtime()
public bool ReadAndSetDataToMeters()
{
bool bOperationSuccess = false;
if (currentOp == CurrentOp.SendStartDataStream)
{
bool finishedReading = regReaders == null; // we can work only with register readers
while (!finishedReading)
while (!finishedReading) //TODO BUMI lock - fuck ?
{
bool bAllReadersFinished = true;
foreach (var iRegReader in regReaders )
@@ -326,6 +407,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
}
/// Send start data stream
poseidonReader.Run();
readDataOp = ReadDataOp.Start;
if (!(poseidonReader.CurrentOp == PoseidonReader.CurrentPoseidonOp.Done
|| poseidonReader.CurrentOp == PoseidonReader.CurrentPoseidonOp.Error))
{
@@ -337,10 +419,11 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
if (bAllReadersFinished)
{
finishedReading = true;
readDataOp = ReadDataOp.Done;
}
else
{
System.Threading.Thread.Sleep(100);
System.Threading.Thread.Sleep(10);
}
}
@@ -350,7 +433,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
|| (currentOp == CurrentOp.ReadDatastream_EndStates))
{
bool finishedReading = regReaders == null; // we can work only with register readers
while (!finishedReading)
while (!finishedReading) //TODO BUMI lock - fuck ?
{
bool bAllReadersFinished = true;
foreach (var iRegReader in regReaders )
@@ -383,7 +466,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
}
else
{
System.Threading.Thread.Sleep(100);
System.Threading.Thread.Sleep(10);
}
}
+44 -11
View File
@@ -3,6 +3,7 @@
///
using System;
using System.Collections.Generic;
using System.Linq;
using System.Xml.Serialization;
using Common;
using Config.Entities;
@@ -52,6 +53,15 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
#endif
Count,
}
public enum ShowDialogType
{
[Description("Do not Show")] Hide,
[Description("Continue Automatically")] ContinueAutomatically,
[Description("Continue Manually")] ContinueManually,
Count,
}
public class EntryFormCfg : ComponentCfgBase, IComponentCfg, IParamsProvider
{
@@ -69,6 +79,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
public Direction Direction;
public Orders Orders;
public bool ShowDialog;
public ShowDialogType ShowDialogType;
public bool SaveCommunication;
/// Private parameterless constructor invoked by all other (public) constructors
@@ -89,7 +100,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
{
Direction = Direction.Forward_RL;
Orders = Orders.Arbitrary;
ShowDialog = false;
ShowDialogType = ShowDialogType.Hide;
SaveCommunication = false;
}
@@ -115,8 +126,9 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
for (Orders o = 0; o < Orders.Count; o++) list.Add(o.ToDescription());
return list;
case 2:
list.Add("True");
list.Add("False");
list.Add(ShowDialogType.Hide.ToDescription());
list.Add(ShowDialogType.ContinueAutomatically.ToDescription());
list.Add(ShowDialogType.ContinueManually.ToDescription());
return list;
case 3:
list.Add("True");
@@ -126,6 +138,19 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
return null;
}
}
public static bool TryFromInt<TEnum>(int value, out TEnum result)
where TEnum : struct, Enum
{
if (Enum.IsDefined(typeof(TEnum), value))
{
result = (TEnum)(object)value;
return true;
}
result = default;
return false;
}
public string ToString(int i)
@@ -134,10 +159,10 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
{
case 0: return Direction.ToDescription();
case 1: return Orders.ToDescription();
case 2: return ShowDialog.ToString();
case 2: return ShowDialogType.ToDescription();
case 3: return SaveCommunication.ToString();
default:
return string.Format("Name={0}, Direction={1}, Orders={2}, ShowDialog={3}, StoreCommunication={4}", Name, Direction, Orders, ShowDialog, SaveCommunication);
return string.Format("Name={0}, Direction={1}, Orders={2}, ShowDialog={3}, StoreCommunication={4}", Name, Direction, Orders, ShowDialogType, SaveCommunication);
}
}
@@ -164,11 +189,14 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
break;
case 2:
{
bool lastSetting = ShowDialog;
if (str == "True") ShowDialog = true;
else ShowDialog = false;
if (lastSetting != ShowDialog)
return CfgUpdateFlags.RestartRqrd;
ShowDialogType lastSetting = ShowDialogType;
for (ShowDialogType s = 0; s < ShowDialogType.Count; s++)
if (s.ToDescription() == str)
{
ShowDialogType = s;
if (lastSetting != ShowDialogType)
return CfgUpdateFlags.RestartRqrd;
}
}
break;
case 3:
@@ -196,6 +224,11 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
if (ParamValues(i).Contains(str)) return true;
break;
case 2:
bool exists = Enum.GetValues(typeof(ShowDialogType))
.Cast<ShowDialogType>()
.Any(d => d.ToDescription() == str);
if (exists) return true;
break;
case 3:
if (str == "True" || str == "False") return true;
break;
@@ -212,7 +245,7 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
{
prms.Direction = this.Direction;
prms.Orders = this.Orders;
prms.ShowDialog = this.ShowDialog;
prms.ShowDialogType = this.ShowDialogType;
prms.SaveCommunication = this.SaveCommunication;
}
@@ -3,6 +3,7 @@
///
using System;
using System.Collections.Generic;
using System.Threading.Tasks;
using System.Windows.Forms;
using log4net;
using TBF.Rig.GenericDevices;
@@ -99,9 +100,12 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
this.disabled = disabled;
ShuffleTextBoxes();
ResizeDlgToFitEnabledControls();
WMStartState = new double[waterMetersCount];
WMStartStateStr = new string[waterMetersCount];
SetUiBusy(true);
}
/// <summary>
@@ -130,8 +134,41 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
this.warningLimHi = 2 * errLimHi;
ShuffleTextBoxes();
ResizeDlgToFitEnabledControls();
WMEndState = new double[waterMetersCount];
SetUiBusy(true);
}
private void SetUiBusy(bool busy, long deltaTime = -1)
{
// show wait cursor for form and children
this.UseWaitCursor = busy;
// block editing textboxes
for (int i = 0; i < enabledTextBoxes.Count; i++)
{
enabledTextBoxes[i].Enabled = !busy;
}
// disable buttons while busy
if (okButton != null) okButton.Enabled = !busy;
// show/hide "loading..." label
if (loadingLabel != null)
{
loadingLabel.Visible = busy;
loadingLabel.Text = "Loading...";
if (deltaTime > 0)
{
//show delta time in label
loadingLabel.Visible = true;
loadingLabel.Text = string.Format("Get: {0} s", deltaTime/1000.0);
}
}
}
/// <summary>
@@ -159,6 +196,43 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
TextBoxesCount = TBF.Data.WMsCount;
}
}
void ResizeDlgToFitEnabledControls()
{
int xMax = 0;
int yMax = 0;
GetMaxDimensions(startTextBoxes,WaterMetersCount,ref xMax, ref yMax);
GetMaxDimensions(endTextBoxes,WaterMetersCount, ref xMax, ref yMax);
int shapeGap = 50;
okButton.Left = xMax + shapeGap;
xMax = okButton.Left + okButton.Width;
Width = xMax + shapeGap;
Height = yMax + shapeGap;
}
private void GetMaxDimensions(TextBox[] textBoxes, int waterMetersCount, ref int xMax, ref int yMax)
{
for (int i = 0; i < waterMetersCount; i++)
{
if (textBoxes[i].Left + textBoxes[i].Width > xMax)
xMax = textBoxes[i].Left + textBoxes[i].Width;
if (textBoxes[i].Top + textBoxes[i].Height > yMax)
yMax = textBoxes[i].Top + textBoxes[i].Height;
}
}
// private void GetMaxDimensions(TextBox[] textBoxes, ref int xMax, ref int yMax)
// {
// for (int i = 0; i < textBoxes.Length; i++)
// {
// if(!textBoxes[i].Visible)
// continue;
// if (textBoxes[i].Left + textBoxes[i].Width > xMax) xMax = textBoxes[i].Left + textBoxes[i].Width;
// if (textBoxes[i].Top + textBoxes[i].Height > yMax) yMax = textBoxes[i].Top + textBoxes[i].Height;
// }
// }
private void CycleEndForm_Load(object sender, EventArgs e)
{
@@ -211,6 +285,43 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
}
}
public void UpdateValues(bool stratValue = true, bool enableEdit = false, long deltaTime = -1)
{
// Ensure we are on the UI thread
if (InvokeRequired)
{
BeginInvoke(new Action(() => UpdateValues(stratValue, enableEdit)));
return;
}
for (int i = 0; i < TextBoxesCount; i++)
{
if (stratValue)
{
if (WMStartStateStr != null && i < WMStartStateStr.Length)
{
startTextBoxes[i].Text = WMStartStateStr[i];
}
}
else
{
// small bugfix: check WMEndState, not WMStartStateStr
if ((WMEndState != null && i < WMEndState.Length) &&
(WMStartStateStr != null && i < WMStartStateStr.Length && WMStartStateStr[i] != ""))
{
endTextBoxes[i].Text = WMEndState[i].ToString();
}
}
}
if (enableEdit)
{
SetUiBusy(false, deltaTime);
}
// if you also need to enable/disable editing, do it here,
// it's now safely on the UI thread.
}
void Localize()
{
Text = Strings.Water_Meter_States;
@@ -258,6 +369,26 @@ namespace TBF.Rig.DataEntry.PoseidonCmd
completed = true;
Close();
}
public void AutoClickOkAfterDelay(int delayMs = 10000)
{
_ = AutoClickInternal(okButton, delayMs);
}
private async Task AutoClickInternal(Button okButton, int delayMs)
{
await Task.Delay(delayMs);
if (okButton.IsHandleCreated && okButton.Enabled && okButton.Visible)
{
// Invoke on UI thread
if (okButton.InvokeRequired)
okButton.BeginInvoke(new Action(() => okButton.PerformClick()));
else
okButton.PerformClick();
}
}
#region Forced close handling
File diff suppressed because it is too large Load Diff
@@ -21,6 +21,7 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
public partial class CycleBeginningForm : Form, GenericDevices.IHasCompleted
{
private static readonly ILog log = LogManager.GetLogger(typeof(CycleBeginningForm));
private static readonly ILog log_selected = LogManager.GetLogger("PurchaseOrderHistory");
/// <summary> Number of water meters </summary>
public readonly int WaterMetersCount;
@@ -264,6 +265,11 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
Disabled[i] = !checkBoxes[i].Checked;
}
//TODO create logger to log selected items and their order and Order number
string snTextArrString = SNText != null ? string.Join(", ", SNText) : string.Empty;
log_selected.DebugFormat("Purchase DLG - Selected Order: {0}, Last selected Box: {1}, All items: {2}",
orderComboBox.Text, purchaseBoxComboBox.Text,snTextArrString);
completed = true;
Close();
}
@@ -718,6 +724,17 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
.SelectMany(pBox => pBox.PurchaseWaterMeterDataList)
.Select(pWM => pWM.SerialNo);
try
{
string[] iEnumerable = serialNumbers as string[] ?? serialNumbers.ToArray();
log_selected.Debug(
$"Selected order: {choosenOrder} box: {choosenBox} possible serial numbers (form DB): {string.Join(", ", iEnumerable)}");
}
catch (Exception e)
{
log_selected.Error("Error loading serial numbers: " + e);
}
//enable behaviour type
bool addOnEndOnly = false;
@@ -726,6 +743,7 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
if (countOfFreeBoxes < serialNumbers.Count())
{
log_selected.Debug(">" + serialNumbers.Count() + " Serial Numbers in box as we have free positions!");
MessageBox.Show(this, "We have more Serial Numbers in box as we have free positions!", "Warning",
MessageBoxButtons.OK, MessageBoxIcon.Warning);
return;
@@ -753,6 +771,7 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
if (lastComboBoxSerialNo >= 0 || lastComboBoxSerialNo < enabledComboBoxes.Count)
{
comboBoxes[lastComboBoxSerialNo].Text = serialNumber;
log_selected.Debug($"Added serial no: {serialNumber} to pos: {lastComboBoxSerialNo}");
lastComboBoxSerialNo++;
}
}
@@ -762,6 +781,7 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
if (iNextFreeNumber >= 0 || iNextFreeNumber < enabledComboBoxes.Count)
{
comboBoxes[iNextFreeNumber].Text = serialNumber;
log_selected.Debug($"Added serial no: {serialNumber} to pos: {iNextFreeNumber}");
lastComboBoxSerialNo = iNextFreeNumber;
}
}
@@ -774,6 +794,7 @@ namespace TBF.Rig.DataEntry.StandartCameraPurchaseOrder
if (!noImplementedSerialNumbers.IsEmpty())
{
log_selected.Debug("No implemented serial numbers: " + noImplementedSerialNumbers);
MessageBox.Show(this,
string.Format("The following serial numbers were not implemented: {0}", noImplementedSerialNumbers),
"Serial Numbers repeating!", MessageBoxButtons.OK, MessageBoxIcon.Warning);
@@ -2,7 +2,10 @@ namespace TBF.Rig.GenericDevices
{
public interface IHasFromUNIDisablePossibility
{
bool ShowForm { get; set; }
/// <summary>
/// 0 - disabled, > 1 - enabled but can have variable uses how form is shown
/// </summary>
int ShowForm { get; set; }
bool ReadAndSetDataToMeters();
}
+3 -1
View File
@@ -2,6 +2,7 @@
/// Copyright (c) 2013-2022 Sensus Slovensko a.s.
///
using System.Collections.Generic;
using TBF.Rig.Generic;
using TBF.Rig.GenericDevices;
namespace TBF.Rig
@@ -25,7 +26,8 @@ namespace TBF.Rig
{
for (int i = 0; i < Sequences.ProcessData.WMsCount; i++)
{
RegisterReaders[i] = TbfComponents.FindComponent(entity.GetSensor(i), components) as IRegReader;
IComponent findComponent = TbfComponents.FindComponent(entity.GetSensor(i), components);
RegisterReaders[i] = findComponent as IRegReader;
}
}
}
+4 -2
View File
@@ -2,6 +2,8 @@
/// Copyright (c) 2015-2021 Sensus Metering Systems
///
using System.ComponentModel;
namespace TBF.Rig.RegisterReaders.CommonRR
{
public enum MessageID
@@ -103,7 +105,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR
public enum CommunicationInterface
{
RFID,
NFC
[Description("RFID")] RFID,
[Description("NFC")] NFC
}
}
@@ -6,6 +6,7 @@
using System;
using TBF.Rig.RegisterReaders.iPerlReaderUNI;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
{
@@ -13,12 +14,12 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
{
public int ThreadId;
public int WMNr0; /// 0-based water meter position
public IPerlReader Ihead;
public ISmartReader Ihead;
public Results.Entities.WaterMeter Wm;
public string CommMessage;
public CommErr CommErr;
public CommCompletedEventArgs(int threadId, int wmNr0, IPerlReader ihead, Results.Entities.WaterMeter wm, string commMessage, CommErr commErr)
public CommCompletedEventArgs(int threadId, int wmNr0, ISmartReader ihead, Results.Entities.WaterMeter wm, string commMessage, CommErr commErr)
{
this.ThreadId = threadId;
this.WMNr0 = wmNr0;
@@ -14,7 +14,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
internal class NfcServices
{
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
internal static int ReadRequest(ITestMethodCfg cfg, IntIPerlReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, out byte[] buffer)
internal static int ReadRequest(ITestMethodCfg cfg, ISmartReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, out byte[] buffer)
{
for (int i = 0; i < cfg.MaxCommRetries; i++)
{
@@ -59,7 +59,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
return 3;
}
internal static int WriteRequest(ITestMethodCfg cfg, IntIPerlReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, byte[] buffer)
internal static int WriteRequest(ITestMethodCfg cfg, ISmartReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, byte[] buffer)
{
NfcDataHandler _nfcDataHandler = new NfcDataHandler();
MessageEventHandlers(_nfcDataHandler);
@@ -85,7 +85,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
}
}
private static void OpenConnection(NfcDataHandler nfcDataHandler, ITestMethodCfg cfg, IntIPerlReader iperlHead)
private static void OpenConnection(NfcDataHandler nfcDataHandler, ITestMethodCfg cfg, ISmartReader iperlHead)
{
string comPort = $"COM{iperlHead.RfidComPortNr}";
int retryCount = 0 ;
@@ -3,16 +3,42 @@
///
using System;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols;
namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
{
public class OptoReceivedEventArgs : EventArgs
{
public string Data;
public WaterMetrologyData WaterMetrologyData;
public byte[] RawData;
public OptoReceivedEventArgs(string data)
{
this.Data = data;
WaterMetrologyData = null;
RawData = null;
}
public OptoReceivedEventArgs(string data, WaterMetrologyData waterMetrologyData)
{
this.Data = data;
this.WaterMetrologyData = waterMetrologyData;
RawData = null;
}
public OptoReceivedEventArgs(byte[] data)
{
this.RawData = data;
Data = null;
WaterMetrologyData = null;
}
public OptoReceivedEventArgs(WaterMetrologyData data)
{
WaterMetrologyData = data;
Data = null;
RawData = null;
}
}
}
@@ -16,7 +16,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
private static readonly ILog log = LogManager.GetLogger(typeof(SmartCommunicationForm));
internal static int ReadRequest(ITestMethodCfg cfg, IntIPerlReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
internal static int ReadRequest(ITestMethodCfg cfg, ISmartReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
{
for (int i = 0; i < cfg.MaxCommRetries; i++)
{
@@ -83,7 +83,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
return 3;
}
internal static int WriteRequest(ITestMethodCfg cfg, IntIPerlReader iperlHead, MessageID messageID, int offset, int length, byte[] buffer)
internal static int WriteRequest(ITestMethodCfg cfg, ISmartReader iperlHead, MessageID messageID, int offset, int length, byte[] buffer)
{
RfidLogic writer = new RfidLogic($"COM{iperlHead.RfidComPortNr}");
string payload = RfidHelper.ConvertByteArrayToHexString(buffer);
@@ -10,7 +10,7 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
{
const int Q2CorrFactorsAddr = iPerlCommunicationConstants.Q2CorrFactorsAddr;
internal static int ReadRequest(IntIPerlReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
internal static int ReadRequest(ISmartReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
{
byte[] configurationBuffer = new byte[ConfigStruct.Length] { 3, 3, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 2, 3, 4, 5, 160, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };
byte[] calibrationBuffer = new byte[CalibrationStructV4.Length] { 3, 0, 150, 10, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 2, 3, 4, 5, 0, 0, 150, 10 };
@@ -37,13 +37,13 @@ namespace TBF.Rig.RegisterReaders.CommonRR.IPerl.communication
return iperlHead.Name.Equals("iPerl13") ? 2 : 0; /// Simulates an error on position 13
}
internal static int WriteRequest(ITestMethodCfg cfg, IntIPerlReader iperlHead, MessageID messageID, int offset,
internal static int WriteRequest(ITestMethodCfg cfg, ISmartReader iperlHead, MessageID messageID, int offset,
int length, byte[] buffer)
{
return 0;
}
private static Array GetPCB(IntIPerlReader iperlHead)
private static Array GetPCB(ISmartReader iperlHead)
{
string pcbStr = iperlHead.RfidComPortNr.ToString().PadRight(10,'0') + iperlHead.Position.ToString("D2");
long decVal = Convert.ToInt64(pcbStr);
@@ -0,0 +1,24 @@
using System.Collections.Generic;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.IPerlReader.implementations;
namespace TBF.Rig.RegisterReaders.IPerlReader
{
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 SmartReader(); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return new SmartReader(cfg); }
public IComponentCfg DefaultConfig() { return new iPerlReaderUNI.IPerlCfg(this); }
public IComponentCfg CmpntCfgFromCmpntEntity(Config.Entities.Component component)
{
return ComponentCfgBase.CreateFromDbEntity(iPerlReaderUNI.IPerlCfg.Serializer, component, this);
}
}
}
@@ -6,7 +6,7 @@ using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.iPerlReaderUNI;
namespace TBF.Rig.RegisterReaders.PoseidonReader
namespace TBF.Rig.RegisterReaders.IPerlReader
{
public class IPerlCfg : ComponentCfgBase, Generic.IComponentCfg
{
@@ -14,7 +14,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
public override XmlSerializer GetSerializer() { return Serializer; }
public IComponentCfgCtrl GetControl(IList<Component> cmpntEntities)
{
return new IPerlCfgCtrl();
return new IPerlUniCfgCtrl();
}
@@ -11,24 +11,24 @@ using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.iPerlReaderUNI;
namespace TBF.Rig.RegisterReaders.PoseidonReader
namespace TBF.Rig.RegisterReaders.IPerlReader
{
public partial class IPerlCfgCtrl : UserControl, IComponentCfgCtrl
public partial class IPerlUniCfgCtrl : UserControl, IComponentCfgCtrl
{
public bool ShowMore { get { return false; } }
IPerlCfg config;
iPerlReaderUNI.IPerlCfg config;
public IComponentCfg Config
{
get { return config as IComponentCfg; }
set
{
config = value as IPerlCfg;
config = value as iPerlReaderUNI.IPerlCfg;
Redraw();
}
}
public IPerlCfgCtrl()
public IPerlUniCfgCtrl()
{
InitializeComponent();
}
@@ -58,7 +58,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
muxBoardNrTextBox.Text = config.MuxBoardNr.ToString();
groupTextBox.Text = config.Group.ToString();
comboBoxCommunicationInterface.SelectedItem = config.CommunicationInterface.ToString();
tabPage2.Controls.Add(new IperlHeadTestCtrl(config));
tabPage2.Controls.Add(new IperlUniHeadTestCtrl(config));
}
public void Unlock()
@@ -1,9 +1,9 @@
///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
namespace TBF.Rig.RegisterReaders.PoseidonReader
namespace TBF.Rig.RegisterReaders.IPerlReader
{
partial class IPerlCfgCtrl
partial class IPerlUniCfgCtrl
{
/// <summary>
/// Required designer variable.
@@ -390,7 +390,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
this.AutoScaleMode = System.Windows.Forms.AutoScaleMode.Font;
this.Controls.Add(this.tabControl1);
this.Margin = new System.Windows.Forms.Padding(4);
this.Name = "IPerlCfgCtrl";
this.Name = "IPerlUniCfgCtrl";
this.Size = new System.Drawing.Size(617, 438);
this.Load += new System.EventHandler(this.WaterMeterCfgCtrl_Load);
this.tabControl1.ResumeLayout(false);
@@ -0,0 +1,137 @@
namespace TBF.Rig.RegisterReaders.IPerlReader
{
partial class IperlUniHeadTestCtrl
{
/// <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 = "IperlUniHeadTestCtrl";
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;
}
}
@@ -0,0 +1,88 @@
using System;
using System.Linq;
using System.Windows.Forms;
using TBF.Rig.RegisterReaders.CommonRR.IPerl.communication;
using TBF.Rig.RegisterReaders.iPerlReaderUNI;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.common;
using TBF.Rig.RegisterReaders.PoseidonReader.implementations;
using TBF.Rig.Sequences;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
namespace TBF.Rig.RegisterReaders.IPerlReader
{
public partial class IperlUniHeadTestCtrl : UserControl
{
private IUniHeadTestCtrl _ctrl;
private IUniHeadTestCtrl Ctrl { get => _ctrl; }
public IperlUniHeadTestCtrl(iPerlReaderUNI.IPerlCfg config)
{
this._ctrl = new PoseidonImplHeadTestCtrl();
Ctrl.config = config;
InitializeComponent();
if (config == null) return;
SmartCommunicationForm.TestMethodCfg = new TestMethodCfg(null); // default values for iPerlCommunication
foreach(var head in ProcessData.SmartHeadsUni)
{
if (head != null && head.Name == config.Name) { Ctrl.ISmartReader = head; }
}
rfidCommandComboBox.DisplayMember = "Name";
rfidCommandComboBox.ValueMember = "Value";
var items = Ctrl.GetComboOperationsPairs();
/*
// 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.Select(i => i.Name).ToArray();
Ctrl.Initialize();
Ctrl.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)
{
Ctrl.CommandTestButtonClick(sender, e, new Arguments()
{
ISmartReader = Ctrl.ISmartReader,
OptoListBox = optoListBox,
RfidCommandComboBox = rfidCommandComboBox,
RfidOutputListBox = rfidOutputListBox
});
}
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());
Ctrl.Destroy();
}
}
}
@@ -0,0 +1,172 @@
using System;
using System.Collections.Generic;
using System.Linq;
using System.Threading;
using System.Web.UI.WebControls;
using System.Windows.Forms;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.CommonRR.IPerl.communication;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.common;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.test;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
namespace TBF.Rig.RegisterReaders.IPerlReader.implementations
{
public class IPerlImplHeadTestCtrl : IUniHeadTestCtrl
{
Thread optoThread;
public ISmartReader ISmartReader { get; set; }
public bool stopWorkerThread { get; set; }
public event EventHandler<OptoReceivedEventArgs> OptoReceivedHandler;
public IComponentCfg
config { get; set; }
public void Initialize()
{
stopWorkerThread = false;
}
public void Destroy()
{
stopWorkerThread = true;
if (optoThread != null)
{
optoThread.Abort();
}
}
private const string ReadPCBCmd = "ReadPCB";
private const string SetTestModeCmd = "SetTestMode";
private const string SetActiveModeCmd = "SetActiveMode";
private const string ReadOptoDataCmd = "ReadOptoData";
private const string StopReadOptoDataCmd = "StopReadOptoData";
private const string ResetNfcHeadCmd = "ResetNfcHead";
private const string SetNfcHeadCmd = "SetNfcHead";
private const string SetRfidHeadCmd = "SetRfidHead";
private const string EmptyCmd = "";
private static readonly Dictionary<string, string> ItemsForIperlOperations = new Dictionary<string, string>
{
{"Read PCB", ReadPCBCmd},
{"Set Test Mode", SetTestModeCmd},
{"Set Active Mode", SetActiveModeCmd},
#if DEBUG
{"Start Read Opto Data", ReadOptoDataCmd},
{"Stop Read Opto Data", StopReadOptoDataCmd},
#endif
{" ", EmptyCmd},
{"Reset NFC Head", ResetNfcHeadCmd},
{"Set NFC Head Interface", SetNfcHeadCmd},
{"Set RFID Head interface", SetRfidHeadCmd}
};
public (string Name, string Value)[] GetComboOperationsPairs()
{
return ItemsForIperlOperations.Select(kvp => (kvp.Key, kvp.Value)).ToArray();
}
public void CommandTestButtonClick(object sender, MouseEventArgs e, Arguments a)
{
a.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 (a.RfidCommandComboBox.SelectedValue)
{
case ReadPCBCmd:
rfidListItem.Text = $"PCB: {OpticalHeadTest.ReadRequest_PCB(a.ISmartReader)}";
break;
case SetTestModeCmd:
rfidListItem.Text = OpticalHeadTest.SetTestMode(a.ISmartReader);
a.OptoListBox.Items.Clear();
stopWorkerThread = false;
optoThread = new Thread(OptoWorker);
if (!optoThread.IsAlive)
{
a.ISmartReader.StartDataStreamProcessing(); // open opto port
optoThread.Start();
}
break;
case SetActiveModeCmd:
rfidListItem.Text = OpticalHeadTest.SetActiveMode(a.ISmartReader);
stopWorkerThread = true;
a.ISmartReader.StopDataStreamProcessing(); // close opto port
break;
case ResetNfcHeadCmd:
a.ISmartReader.ResetNfcInterface();
break;
case SetNfcHeadCmd:
a.ISmartReader.SetNfcInterface();
break;
case SetRfidHeadCmd:
a.ISmartReader.SetRfidInterface();
break;
case ReadOptoDataCmd:
a.OptoListBox.Items.Clear();
stopWorkerThread = false;
optoThread = new Thread(OptoWorker);
if (optoThread.IsAlive)
{
stopWorkerThread = true;
a.ISmartReader.StopDataStreamProcessing(); // close opto port
}
if (!optoThread.IsAlive)
{
a.ISmartReader.StartDataStreamProcessing(); // open opto port
optoThread.Start();
}
break;
case StopReadOptoDataCmd:
stopWorkerThread = true;
a.ISmartReader.StopDataStreamProcessing(); // close opto port
break;
}
a.RfidOutputListBox.Items.Add(rfidListItem);
a.RfidOutputListBox.Items.AddRange(logChecker.Messages.ToArray());
}
}
private void OptoWorker()
{
while (!this.stopWorkerThread)
{
Thread.Sleep(250);
if (this.stopWorkerThread)
break;
try
{
string buffer = ISmartReader.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)
{
}
}
}
}
@@ -20,15 +20,15 @@ using ConfigStruct = TBF.Rig.RegisterReaders.CommonRR.IPerl.communication.Config
using MeterType = TBF.Rig.RegisterReaders.CommonRR.MeterType;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
namespace TBF.Rig.RegisterReaders.IPerlReader.implementations
{
/// <summary>
/// based on IPerlReader class
/// </summary>
public class IPerlReader : ComponentBase, IDevice, IRegReaderDatastream, ISessionDataMngmnt, IOperation, IntIPerlReader
public class SmartReader : ComponentBase, IDevice, IRegReaderDatastream, ISessionDataMngmnt, IOperation, ISmartReader
{
private static readonly ILog log = LogManager.GetLogger(typeof(IPerlReader));
private static readonly ILog log = LogManager.GetLogger(typeof(SmartReader));
public override string ToString()
{
@@ -52,7 +52,9 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
/// StartEndFilterSamplesCount = 2 * StartEndFilterSamplesCount2 + 1
public const int FeatureVectorSize = 9;
readonly IPerlCfg _iPerlCfg;
readonly iPerlReaderUNI.IPerlCfg _iPerlCfg;
string ISmartReader.CommInterface => _commInterface;
public int RfidComPortNr
{
@@ -60,6 +62,7 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
}
public bool CommFailed { get; set; }
public bool Disabled { get; set; }
public int OptoComPortNr
{
@@ -130,8 +133,7 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
simulatedPcbNr = value;
}
}
public bool Disabled;
public int ResultCode;
@@ -344,14 +346,14 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
/// ///////////////////////////////////////////
/// </summary>
public IPerlReader()
public SmartReader()
{
}
public IPerlReader(Generic.IComponentCfg cfg)
public SmartReader(Generic.IComponentCfg cfg)
: base(cfg)
{
_iPerlCfg = cfg as IPerlCfg;
_iPerlCfg = cfg as iPerlReaderUNI.IPerlCfg;
}
@@ -477,6 +479,7 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
double endWMState;
double wmVolume;
double wmTestTime;
private string _commInterface;
public double PulsesPerLtr
{
@@ -503,15 +506,9 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
get { return wmVolume; }
}
public double BeginWMState
{
get { return beginWMState; }
}
public double BeginWMState { get { return beginWMState; } set { beginWMState = value; } }
public double EndWMState
{
get { return endWMState; }
}
public double EndWMState { get { return endWMState; } set { endWMState = value; } }
public IOperation ReadDatastreamOp()
{
@@ -1459,14 +1456,14 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
/// <returns>Index to the buffer</returns>
public static int BufferIdx(int index)
{
if (index < IPerlReader.OptoDataBufferSize)
if (index < SmartReader.OptoDataBufferSize)
{
return index;
}
else
{
return IPerlReader.StartOptoDataCount +
(index - IPerlReader.OptoDataBufferSize) % IPerlReader.EndOptoDataCount;
return SmartReader.StartOptoDataCount +
(index - SmartReader.OptoDataBufferSize) % SmartReader.EndOptoDataCount;
}
}
@@ -1571,7 +1568,7 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
ResetNfcInterface(false);
}
public void SetCommunicationInterface(CommunicationInterface commInterface)
public void SetCommunicationInterface(string commInterface)
{
//using (ISession session = TBF.DB.ConfigDBSessionFactory.OpenSession())
// Replace the problematic line with the following code to fix the error:
@@ -1,17 +1,13 @@
using System;
using System.Collections.Generic;
using System.Diagnostics;
using System.IO;
using System.Linq;
using System.Reflection;
using System.Text;
using System.Threading;
using System.Threading.Tasks;
using log4net;
using log4net.Config;
using Newtonsoft.Json;
using Newtonsoft.Json.Linq;
using SharedDatabase;
namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
{
@@ -21,6 +17,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
private readonly ILog log;
private List<Task> taskPool = new List<Task>();
private long startTime;
private long incommingTime;
public List<Task> TaskPool { get { return taskPool; } }
public void AddTask(Task task) { taskPool.Add(task); }
@@ -43,6 +40,11 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
get => startTime;
}
public long IncommingTime
{
get => incommingTime;
}
public bool TimeOutReceived(long timeout)
{
return (DateTime.Now.Ticks - startTime) > timeout;
@@ -125,6 +127,8 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
throw;
}
//comming answer from serial port - good place for time stamp
incommingTime = DateTime.Now.Ticks;
string allOutput = (stdOutTask.Result ?? "") + (stdErrTask.Result ?? "");
log?.Debug(allOutput);
return allOutput;
@@ -17,18 +17,21 @@ using TBF.Rig.Generic;
using TBF.Rig.GenericDevices;
using TBF.Rig.RegisterReaders.SerialStream;
using TBF.Rig.RegisterReaders.StandingStartStop;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
{
public class PoseidonReader : ComponentBase, IDevice, IRegReaderDatastream, ISessionDataMngmnt, IOperation
public class PoseidonReader : ComponentBase, IDevice, IRegReaderDatastream, ISessionDataMngmnt, IOperation, ICommonRegReader
{
private static readonly ILog log = LogManager.GetLogger(typeof(PoseidonReader));
public override string ToString() { return string.Format("{0}({1})", ClassName, Cfg.ToString(-1)); }
readonly PoseidonCfg registerReaderCfg;
readonly ControlBoard.IControlBoard controlBoard;
public int ComPortNr => registerReaderCfg?.ComPortNr ?? -1;
public PoseidonCfg RegPoseidonCfg => registerReaderCfg;
private bool activeHandlerSessioEnabled = false;
private CliRunner _cliRunner;
@@ -134,10 +137,10 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
public int WMPulses { get { return wmPulses; } }
public int WMRefPulses { get { return wmRefPulses; } }
public double WMVolume { get { return wmVolume; } }
public double BeginWMState { get { return beginWMState; } }
public double EndWMState { get { return endWMState; } }
public double BeginWMState { get { return beginWMState; } set { beginWMState = value;} }
public double EndWMState { get { return endWMState; } set { endWMState = value;} }
public double WMTestTime { get { return wmTestTime; } }
public string SerialNr { get => wmSerialNr; }
public string SerialNr { get => wmSerialNr; set => wmSerialNr = value; }
double beginWMState;
@@ -147,6 +150,8 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
int wmRefPulses;
double wmTestTime;
private string wmSerialNr;
int timeFromStart; /// [s] Time from test start to determine when the test start sample should be taken
public IOperation ReadDatastreamOp()
@@ -314,7 +319,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
private void ReadPulses()
{
wmRefPulses = controlBoard.RefPulses;
wmRefPulses = controlBoard?.RefPulses ?? 0;
}
@@ -326,13 +331,25 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
/// <summary>
/// for debug purposes what time will consume answer
/// </summary>
private long startTimeInMilis, fullTimeInMilis;
private static long SafetyTimeOut = 30 * 1000; /// 30 seconds
private long startTimeInMilis = -1, fullTimeInMilis = -1;
private static long SafetyTimeOut = 30 * 1000;
private long incommingTime = -1;
/// 30 seconds
public long DeltaTime { get{return fullTimeInMilis;}}
public long IncommingTime { get{return incommingTime;}}
/// <summary>Run this operation</summary>
/// <returns>eventDone</returns>
public Event Run()
{
lock (this)
{
timeFromStart += StateMachine.Period;
ReadPulses();
}
if (_currentOp == CurrentPoseidonOp.SendStartDataStream)
{
CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.AllParams);
@@ -349,6 +366,20 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
}
else if (_currentOp == CurrentPoseidonOp.SendStartDataStream_Done)
{
var firstTask = CliRunner.TaskPool.FindLast(t => t is Task<string>);
if (firstTask != null && firstTask is Task<string>)
{
string data = null;
data = (firstTask as Task<string>).Result;
if (data != null && TryGetDeviceId(data, out wmSerialNr))
{
}
}
_currentOp = CurrentPoseidonOp.Done;
return Event.Done;
}
@@ -356,6 +387,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
|| _currentOp == CurrentPoseidonOp.ReadDataStream_End)
{
startTimeInMilis = DateTime.Now.Ticks / TimeSpan.TicksPerMillisecond;
incommingTime = -1;
_isReadingStart = (_currentOp == CurrentPoseidonOp.ReadDataStream_Start);
CliRunner.AddRunAndCaptureJsonAsync<JsonDataFromPoseidon>(serialPort, SerialPortData.EMeterArg.AllParams);
_currentOp = CurrentPoseidonOp.ReadDatastream_Running;
@@ -366,6 +398,8 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
|| CliRunner.TimeOutReceived(SafetyTimeOut))
{
_currentOp = CurrentPoseidonOp.ReadDatastream_Done;
//set time stamp - end of reading
incommingTime = CliRunner.IncommingTime;
}
return Event.Busy;
}
@@ -379,6 +413,20 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
{
data = (first as Task<JsonDataFromPoseidon>).Result;
//GET serial number
if (string.IsNullOrEmpty(wmSerialNr))
{
try
{
wmSerialNr = data?.DeviceId ?? wmSerialNr;
}
catch (Exception e)
{
log.Error("Serial Nr - parse error!");
}
}
//GET volume
if (data != null && Double.TryParse(data.Reading, out double Volume))
{
double VolumeLi = Units.ConvertFrom(Unit.USgal, Volume);
@@ -396,6 +444,8 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
}
}
//Finish reading and loop
_currentOp = CurrentPoseidonOp.Done;
return Event.Done;
}
@@ -457,34 +507,38 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
public void StartSession()
{
ValidateCliFileExistence(false);
if (DebugLevel == DebugMode.Simulate)
{
wmSerialNr = "777321";
}
else
{
//TODO BUMI start session - CMD send data to Poseidon
CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId);
CliRunner.WaitAll();
foreach (Task task in CliRunner.TaskPool)
{
if (task is Task<string>)
{
string result = (task as Task<string>).Result;
if (TryGetDeviceId(result, out wmSerialNr))
{
break;
}
}
}
CliRunner.Clear();
}
//this is no place to get device id
}
// private void RetrieveDeviceIdFromResponse()
// {
// if (DebugLevel == DebugMode.Simulate)
// {
// wmSerialNr = "777321";
// }
// else
// {
// //TODO BUMI start session - CMD send data to Poseidon
//
// CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId);
// CliRunner.WaitAll();
// foreach (Task task in CliRunner.TaskPool)
// {
// if (task is Task<string>)
// {
// string result = (task as Task<string>).Result;
// if (TryGetDeviceId(result, out wmSerialNr))
// {
// break;
// }
// }
// }
//
// CliRunner.Clear();
// }
// }
private static readonly Regex DeviceIdRegex = new Regex(
@"(?im)(?:" +
@"^\s*Device\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@@ -0,0 +1,39 @@
using System;
using System.Diagnostics;
using System.Threading;
using System.Threading.Tasks;
namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
{
public static class ProcessExtensions
{
public static Task WaitForExitAsync(this Process process, CancellationToken cancellationToken = default)
{
if (process == null) throw new ArgumentNullException(nameof(process));
if (process.HasExited) return Task.CompletedTask;
var tcs = new TaskCompletionSource<object>(TaskCreationOptions.RunContinuationsAsynchronously);
EventHandler handler = null;
handler = (s, e) =>
{
try { tcs.TrySetResult(null); }
finally { process.Exited -= handler; }
};
process.EnableRaisingEvents = true;
process.Exited += handler;
if (cancellationToken.CanBeCanceled)
{
cancellationToken.Register(() =>
{
tcs.TrySetCanceled(cancellationToken);
process.Exited -= handler;
});
}
return tcs.Task;
}
}
}
@@ -14,7 +14,11 @@ namespace TBF.Rig.RegisterReaders.PoseidonCmdStartStop
return _cliExists.Value;
} }
public string SerialPortCmdClientPath {
#if DEBUG
get { return Path.Combine("C:\\","TBF","Cli", CmdClientName);}
#else
get { return Path.Combine("..","Cli", CmdClientName);}
#endif
}
public string CmdClientName { get; set; } = "HalCli.exe";
public string PortName { get; set; }
@@ -9,15 +9,15 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
public override string ToString() { return ClassName; }
public IComponent DummyComponent() { return new IPerlReader(); }
public IComponent DummyComponent() { return new SmartReader(); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return new IPerlReader(cfg); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return new SmartReader(cfg); }
public IComponentCfg DefaultConfig() { return new IPerlCfg(this); }
public IComponentCfg DefaultConfig() { return new PoseidonCfg(this); }
public IComponentCfg CmpntCfgFromCmpntEntity(Config.Entities.Component component)
{
return ComponentCfgBase.CreateFromDbEntity(IPerlCfg.Serializer, component, this);
return ComponentCfgBase.CreateFromDbEntity(PoseidonCfg.Serializer, component, this);
}
}
}
@@ -0,0 +1,71 @@
using System.Collections.Generic;
using System.Xml.Serialization;
using Common;
using Config.Entities;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.communication;
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
[XmlRoot("PoseidonCfg")]
public class PoseidonCfg : ComponentCfgBase, Generic.IComponentCfg
{
public static XmlSerializer Serializer = XmlSerializer.FromTypes(new[] { typeof(PoseidonCfg) })[0];
public override XmlSerializer GetSerializer() { return Serializer; }
public IComponentCfgCtrl GetControl(IList<Component> cmpntEntities)
{
return new PoseidonCfgCtrl();
}
public static readonly string[] ValidMeterTypes = { "74", "touch" };
///
/// Serialized parameters
///
public int HeadCommunicationComPortNr;
public int OptoComPortNr;
public int RfidComPortNr; /// 0 = use MuxBoardNr
public ECommunicationInterface CommunicationInterface; /// Communication Interface: NFC, touch capl
public string CliProgramName;
public string CliMeterType;
/// <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
PoseidonCfg()
{
Name = "PoseidonReader";
ParentName = string.Empty;
OptoComPortNr = 5;
RfidComPortNr = 0; /// = use mux. board
ProcParams = CreateProcParamsProvider() as ProcParams;
CommunicationInterface = ECommunicationInterface.None;
HeadCommunicationComPortNr = 0;
}
public PoseidonCfg(IComponentFactory factory)
: this()
{
this.Factory = factory;
}
public string ToString(int i)
{
return $"{Name} Opto=Com{OptoComPortNr}, {CommunicationInterface}=Com{RfidComPortNr}";
}
}
}
@@ -0,0 +1,273 @@
///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
using System;
using System.Collections.Generic;
using System.IO;
using System.IO.Ports;
using System.Linq;
using System.Text.RegularExpressions;
using System.Windows.Forms;
using Common;
using log4net;
using TBF.Resources;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.communication;
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
public partial class PoseidonCfgCtrl : UserControl, IComponentCfgCtrl
{
private static readonly ILog log = LogManager.GetLogger(typeof(PoseidonCfgCtrl));
public bool ShowMore { get { return false; } }
PoseidonCfg config;
public IComponentCfg Config
{
get { return config as IComponentCfg; }
set
{
config = value as PoseidonCfg;
Redraw();
}
}
public PoseidonCfgCtrl()
{
InitializeComponent();
InitComPortsComboByList(listOfComPoertsComboBox, GetAvailableComPorts());
InitComboByList(cliProgramComboBox, GetAvailableCliPrograms());
InitComboByList(meterTypeComboBox, PoseidonCfg.ValidMeterTypes.ToList());
InitComboByEnum<ECommunicationInterface>(comboBoxCommunicationInterface);
}
private List<string> GetAvailableCliPrograms()
{
try
{
string cliDirectory = Path.Combine("c:/","TBF","Cli");
List<string> availableCliPrograms =
Directory.GetFiles(cliDirectory, "*.exe").Select(Path.GetFileName).ToList();
if (availableCliPrograms.Count == 0)
{
availableCliPrograms.Add("None");
labelMissingInfo.Text = $"* Missing CLI programs in {cliDirectory}!";
}
return availableCliPrograms;
}catch(Exception ex)
{
log.Error("Problem with get cli programs list!", ex);
return new List<string> { "None" };
}
}
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();
cliProgramComboBox.Text = config.CliProgramName;
meterTypeComboBox.Text = config.CliMeterType;
comboBoxCommunicationInterface.Text = config.CommunicationInterface.ToDescription();
tabPage2.Controls.Add(new UniHeadTestCtrl(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;
cliProgramComboBox.Enabled = true;
meterTypeComboBox.Enabled = true;
listOfComPoertsComboBox.Enabled = true;
button_refreshComPorts.Enabled = true;
}
public CfgUpdateFlags VerifyCfg(ref string message)
{
CfgUpdateFlags flags = CfgUpdateFlags.None;
int dummy;
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 (!ValidateEnumInput<ECommunicationInterface>(comboBoxCommunicationInterface))
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'Not a valid communication interface'";
}
if (!IsValidProgramName(cliProgramComboBox.Text))
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'Not a valid CLI program name'";
}
if (!IsValidCliMeterType(meterTypeComboBox.Text))
{
flags |= CfgUpdateFlags.Error;
message += Environment.NewLine + "'Not a valid CLI meter type'";
}
return flags;
}
private bool ValidateEnumInput<T>(ComboBox comboBox) where T : Enum
{
if (comboBox.SelectedItem == null)
return false;
T selectedInterface;
// Check if SelectedItem is already of type T
if (comboBox.SelectedItem is T enumValueT)
{
selectedInterface = enumValueT;
}
// Otherwise, try to parse it as a string
else
{
string selectedText = comboBox.Text;
foreach (T enumValue in Enum.GetValues(typeof(T)))
{
if (enumValue.ToDescription() == selectedText)
{
selectedInterface = enumValue;
return !selectedInterface.Equals(Enum.ToObject(typeof(T), 0));
}
}
return false;
}
// Check if the selected value is not the default (zero) value
return !selectedInterface.Equals(Enum.ToObject(typeof(T), 0));
}
private bool IsValidCliMeterType(string text)
{
if (string.IsNullOrWhiteSpace(text))
return false;
return int.TryParse(text, out _) || PoseidonCfg.ValidMeterTypes.Contains(text);
}
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;
config.OptoComPortNr = int.Parse(optoSerialPortTextBox.Text);
config.RfidComPortNr = int.Parse(rfidPortNrTextBox.Text);
config.CommunicationInterface = (ECommunicationInterface)(comboBoxCommunicationInterface.SelectedIndex);
config.HeadCommunicationComPortNr = int.Parse(headPortNrTextBox.Text);
config.CliProgramName = cliProgramComboBox.Text;
config.CliMeterType = meterTypeComboBox.Text;
return flags;
}
private string[] GetAvailableComPorts()
{
string[] ports = SerialPort.GetPortNames();
return ports;
}
private void InitComboByList(ComboBox comboBox, List<string> list)
{
comboBox.Items.Clear();
comboBox.Items.Add("..");
comboBox.Items.AddRange(list.ToArray());
comboBox.SelectedIndex = 0;
}
private void InitComboByEnum<T>(ComboBox comboBox) where T : Enum
{
comboBox.Items.Clear();
comboBox.Items.AddRange(Enum.GetValues(typeof(T)).Cast<T>().Select(x => x.ToDescription()).ToArray());
if (comboBox.Text == "")
{
comboBox.SelectedIndex = 0;
}
}
private void InitComPortsComboByList(ComboBox comboBox, string[] list)
{
comboBox.Items.Clear();
comboBox.Items.Add("List of ports ..");
if( list.Length <= 0)
comboBox.Items.Add("None");
else
{
comboBox.Items.AddRange(list);
}
comboBox.SelectedIndex = 0;
}
private void buttonRefreshComPorts_Click(object sender, EventArgs e)
{
button_refreshComPorts.Enabled = false;
InitComPortsComboByList(listOfComPoertsComboBox, GetAvailableComPorts());
button_refreshComPorts.Enabled = true;
}
private bool IsValidProgramName(string programName)
{
return !string.IsNullOrWhiteSpace(programName)
&& Regex.IsMatch(programName, @"^[^\\/:*?""<>|]+\.exe$", RegexOptions.IgnoreCase);
}
}
}
@@ -0,0 +1,401 @@
///
/// Copyright (c) 2015-2017 Sensus Metering Systems
///
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
partial class PoseidonCfgCtrl
{
/// <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.groupBox3 = new System.Windows.Forms.GroupBox();
this.button_refreshComPorts = new System.Windows.Forms.Button();
this.label3 = new System.Windows.Forms.Label();
this.listOfComPoertsComboBox = new System.Windows.Forms.ComboBox();
this.groupBox2 = new System.Windows.Forms.GroupBox();
this.headPortNrTextBox = new System.Windows.Forms.TextBox();
this.label2 = new System.Windows.Forms.Label();
this.groupBox1 = new System.Windows.Forms.GroupBox();
this.labelMissingInfo = new System.Windows.Forms.Label();
this.labelMeterType = new System.Windows.Forms.Label();
this.meterTypeComboBox = new System.Windows.Forms.ComboBox();
this.cliProgramComboBox = new System.Windows.Forms.ComboBox();
this.labelCliProgramName = new System.Windows.Forms.Label();
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.optoSerialPortLabel = new System.Windows.Forms.Label();
this.optoSerialPortTextBox = new System.Windows.Forms.TextBox();
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.tabControl1.SuspendLayout();
this.tabPage1.SuspendLayout();
this.groupBox3.SuspendLayout();
this.groupBox2.SuspendLayout();
this.groupBox1.SuspendLayout();
this.optoDataGroupBox.SuspendLayout();
this.SuspendLayout();
//
// tabControl1
//
this.tabControl1.Controls.Add(this.tabPage1);
this.tabControl1.Controls.Add(this.tabPage2);
this.tabControl1.Location = new System.Drawing.Point(3, 4);
this.tabControl1.Margin = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.tabControl1.Name = "tabControl1";
this.tabControl1.SelectedIndex = 0;
this.tabControl1.Size = new System.Drawing.Size(687, 540);
this.tabControl1.TabIndex = 0;
//
// tabPage1
//
this.tabPage1.Controls.Add(this.groupBox3);
this.tabPage1.Controls.Add(this.groupBox2);
this.tabPage1.Controls.Add(this.groupBox1);
this.tabPage1.Controls.Add(this.optoDataGroupBox);
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, 29);
this.tabPage1.Margin = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.tabPage1.Name = "tabPage1";
this.tabPage1.Padding = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.tabPage1.Size = new System.Drawing.Size(679, 507);
this.tabPage1.TabIndex = 0;
this.tabPage1.Text = "Config";
this.tabPage1.UseVisualStyleBackColor = true;
//
// groupBox3
//
this.groupBox3.Controls.Add(this.button_refreshComPorts);
this.groupBox3.Controls.Add(this.label3);
this.groupBox3.Controls.Add(this.listOfComPoertsComboBox);
this.groupBox3.Location = new System.Drawing.Point(11, 99);
this.groupBox3.Name = "groupBox3";
this.groupBox3.Size = new System.Drawing.Size(620, 59);
this.groupBox3.TabIndex = 27;
this.groupBox3.TabStop = false;
this.groupBox3.Text = "Ports Overview ";
//
// button_refreshComPorts
//
this.button_refreshComPorts.Enabled = false;
this.button_refreshComPorts.Location = new System.Drawing.Point(466, 17);
this.button_refreshComPorts.Name = "button_refreshComPorts";
this.button_refreshComPorts.Size = new System.Drawing.Size(77, 33);
this.button_refreshComPorts.TabIndex = 29;
this.button_refreshComPorts.Text = "Refresh";
this.button_refreshComPorts.UseVisualStyleBackColor = true;
this.button_refreshComPorts.Click += new System.EventHandler(this.buttonRefreshComPorts_Click);
//
// label3
//
this.label3.Location = new System.Drawing.Point(46, 23);
this.label3.Name = "label3";
this.label3.Size = new System.Drawing.Size(149, 26);
this.label3.TabIndex = 28;
this.label3.Text = "Available ports:";
//
// listOfComPoertsComboBox
//
this.listOfComPoertsComboBox.FormattingEnabled = true;
this.listOfComPoertsComboBox.Location = new System.Drawing.Point(234, 20);
this.listOfComPoertsComboBox.Name = "listOfComPoertsComboBox";
this.listOfComPoertsComboBox.Size = new System.Drawing.Size(202, 28);
this.listOfComPoertsComboBox.TabIndex = 27;
//
// groupBox2
//
this.groupBox2.Controls.Add(this.headPortNrTextBox);
this.groupBox2.Controls.Add(this.label2);
this.groupBox2.Location = new System.Drawing.Point(11, 425);
this.groupBox2.Margin = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.groupBox2.Name = "groupBox2";
this.groupBox2.Padding = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.groupBox2.Size = new System.Drawing.Size(621, 62);
this.groupBox2.TabIndex = 26;
this.groupBox2.TabStop = false;
this.groupBox2.Text = "Head Communication";
//
// headPortNrTextBox
//
this.headPortNrTextBox.Enabled = false;
this.headPortNrTextBox.Location = new System.Drawing.Point(494, 19);
this.headPortNrTextBox.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.headPortNrTextBox.Name = "headPortNrTextBox";
this.headPortNrTextBox.Size = new System.Drawing.Size(49, 26);
this.headPortNrTextBox.TabIndex = 8;
//
// label2
//
this.label2.AutoSize = true;
this.label2.Location = new System.Drawing.Point(361, 22);
this.label2.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label2.Name = "label2";
this.label2.Size = new System.Drawing.Size(107, 20);
this.label2.TabIndex = 7;
this.label2.Text = "Serial port nr.:";
//
// groupBox1
//
this.groupBox1.Controls.Add(this.labelMissingInfo);
this.groupBox1.Controls.Add(this.labelMeterType);
this.groupBox1.Controls.Add(this.meterTypeComboBox);
this.groupBox1.Controls.Add(this.cliProgramComboBox);
this.groupBox1.Controls.Add(this.labelCliProgramName);
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(11, 249);
this.groupBox1.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.groupBox1.Name = "groupBox1";
this.groupBox1.Padding = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.groupBox1.Size = new System.Drawing.Size(621, 167);
this.groupBox1.TabIndex = 23;
this.groupBox1.TabStop = false;
this.groupBox1.Text = "RFID / NFC communication (in case mux. board is not used)";
//
// labelMissingInfo
//
this.labelMissingInfo.ForeColor = System.Drawing.Color.OrangeRed;
this.labelMissingInfo.Location = new System.Drawing.Point(49, 138);
this.labelMissingInfo.Name = "labelMissingInfo";
this.labelMissingInfo.Size = new System.Drawing.Size(550, 24);
this.labelMissingInfo.TabIndex = 14;
this.labelMissingInfo.Text = "*";
this.labelMissingInfo.Visible = false;
//
// labelMeterType
//
this.labelMeterType.Location = new System.Drawing.Point(46, 103);
this.labelMeterType.Name = "labelMeterType";
this.labelMeterType.Size = new System.Drawing.Size(149, 27);
this.labelMeterType.TabIndex = 13;
this.labelMeterType.Text = "Meter Type: ";
//
// meterTypeComboBox
//
this.meterTypeComboBox.Enabled = false;
this.meterTypeComboBox.FormattingEnabled = true;
this.meterTypeComboBox.Location = new System.Drawing.Point(234, 103);
this.meterTypeComboBox.Name = "meterTypeComboBox";
this.meterTypeComboBox.Size = new System.Drawing.Size(127, 28);
this.meterTypeComboBox.TabIndex = 12;
//
// cliProgramComboBox
//
this.cliProgramComboBox.Enabled = false;
this.cliProgramComboBox.FormattingEnabled = true;
this.cliProgramComboBox.Location = new System.Drawing.Point(234, 69);
this.cliProgramComboBox.Name = "cliProgramComboBox";
this.cliProgramComboBox.Size = new System.Drawing.Size(127, 28);
this.cliProgramComboBox.TabIndex = 11;
//
// labelCliProgramName
//
this.labelCliProgramName.Location = new System.Drawing.Point(46, 71);
this.labelCliProgramName.Name = "labelCliProgramName";
this.labelCliProgramName.Size = new System.Drawing.Size(146, 22);
this.labelCliProgramName.TabIndex = 10;
this.labelCliProgramName.Text = "Cli program name: ";
//
// comboBoxCommunicationInterface
//
this.comboBoxCommunicationInterface.Enabled = false;
this.comboBoxCommunicationInterface.FormattingEnabled = true;
this.comboBoxCommunicationInterface.Items.AddRange(new object[] { "Nfc", "Touch" });
this.comboBoxCommunicationInterface.Location = new System.Drawing.Point(234, 34);
this.comboBoxCommunicationInterface.Margin = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.comboBoxCommunicationInterface.Name = "comboBoxCommunicationInterface";
this.comboBoxCommunicationInterface.Size = new System.Drawing.Size(79, 28);
this.comboBoxCommunicationInterface.TabIndex = 9;
//
// label1
//
this.label1.AutoSize = true;
this.label1.Location = new System.Drawing.Point(46, 38);
this.label1.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.label1.Name = "label1";
this.label1.Size = new System.Drawing.Size(187, 20);
this.label1.TabIndex = 8;
this.label1.Text = "Communication Interface";
//
// rfidPortNrTextBox
//
this.rfidPortNrTextBox.Enabled = false;
this.rfidPortNrTextBox.Location = new System.Drawing.Point(494, 32);
this.rfidPortNrTextBox.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.rfidPortNrTextBox.Name = "rfidPortNrTextBox";
this.rfidPortNrTextBox.Size = new System.Drawing.Size(49, 26);
this.rfidPortNrTextBox.TabIndex = 7;
//
// rfidSerialPortNrLabel
//
this.rfidSerialPortNrLabel.AutoSize = true;
this.rfidSerialPortNrLabel.Location = new System.Drawing.Point(361, 38);
this.rfidSerialPortNrLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.rfidSerialPortNrLabel.Name = "rfidSerialPortNrLabel";
this.rfidSerialPortNrLabel.Size = new System.Drawing.Size(107, 20);
this.rfidSerialPortNrLabel.TabIndex = 6;
this.rfidSerialPortNrLabel.Text = "Serial port nr.:";
//
// optoDataGroupBox
//
this.optoDataGroupBox.Controls.Add(this.optoSerialPortLabel);
this.optoDataGroupBox.Controls.Add(this.optoSerialPortTextBox);
this.optoDataGroupBox.Location = new System.Drawing.Point(11, 170);
this.optoDataGroupBox.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.optoDataGroupBox.Name = "optoDataGroupBox";
this.optoDataGroupBox.Padding = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.optoDataGroupBox.Size = new System.Drawing.Size(621, 68);
this.optoDataGroupBox.TabIndex = 18;
this.optoDataGroupBox.TabStop = false;
this.optoDataGroupBox.Text = "Opto-data";
//
// optoSerialPortLabel
//
this.optoSerialPortLabel.AutoSize = true;
this.optoSerialPortLabel.Location = new System.Drawing.Point(361, 26);
this.optoSerialPortLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.optoSerialPortLabel.Name = "optoSerialPortLabel";
this.optoSerialPortLabel.Size = new System.Drawing.Size(107, 20);
this.optoSerialPortLabel.TabIndex = 6;
this.optoSerialPortLabel.Text = "Serial port nr.:";
//
// optoSerialPortTextBox
//
this.optoSerialPortTextBox.Enabled = false;
this.optoSerialPortTextBox.Location = new System.Drawing.Point(494, 22);
this.optoSerialPortTextBox.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.optoSerialPortTextBox.Name = "optoSerialPortTextBox";
this.optoSerialPortTextBox.Size = new System.Drawing.Size(49, 26);
this.optoSerialPortTextBox.TabIndex = 7;
//
// nameTextBox
//
this.nameTextBox.Enabled = false;
this.nameTextBox.Location = new System.Drawing.Point(172, 50);
this.nameTextBox.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.nameTextBox.Name = "nameTextBox";
this.nameTextBox.Size = new System.Drawing.Size(180, 26);
this.nameTextBox.TabIndex = 17;
//
// nameLabel
//
this.nameLabel.AutoSize = true;
this.nameLabel.Location = new System.Drawing.Point(7, 55);
this.nameLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.nameLabel.Name = "nameLabel";
this.nameLabel.Size = new System.Drawing.Size(51, 20);
this.nameLabel.TabIndex = 16;
this.nameLabel.Text = "Name";
//
// classNameLabel
//
this.classNameLabel.AutoSize = true;
this.classNameLabel.Location = new System.Drawing.Point(168, 14);
this.classNameLabel.Margin = new System.Windows.Forms.Padding(4, 0, 4, 0);
this.classNameLabel.Name = "classNameLabel";
this.classNameLabel.Size = new System.Drawing.Size(90, 20);
this.classNameLabel.TabIndex = 15;
this.classNameLabel.Text = "ClassName";
//
// tabPage2
//
this.tabPage2.Location = new System.Drawing.Point(4, 29);
this.tabPage2.Margin = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.tabPage2.Name = "tabPage2";
this.tabPage2.Padding = new System.Windows.Forms.Padding(3, 4, 3, 4);
this.tabPage2.Size = new System.Drawing.Size(679, 507);
this.tabPage2.TabIndex = 1;
this.tabPage2.Text = "Test";
this.tabPage2.UseVisualStyleBackColor = true;
//
// PoseidonCfgCtrl
//
this.AutoScaleDimensions = new System.Drawing.SizeF(9F, 20F);
this.AutoScaleMode = System.Windows.Forms.AutoScaleMode.Font;
this.Controls.Add(this.tabControl1);
this.Margin = new System.Windows.Forms.Padding(4, 5, 4, 5);
this.Name = "PoseidonCfgCtrl";
this.Size = new System.Drawing.Size(694, 548);
this.Load += new System.EventHandler(this.WaterMeterCfgCtrl_Load);
this.tabControl1.ResumeLayout(false);
this.tabPage1.ResumeLayout(false);
this.tabPage1.PerformLayout();
this.groupBox3.ResumeLayout(false);
this.groupBox2.ResumeLayout(false);
this.groupBox2.PerformLayout();
this.groupBox1.ResumeLayout(false);
this.groupBox1.PerformLayout();
this.optoDataGroupBox.ResumeLayout(false);
this.optoDataGroupBox.PerformLayout();
this.ResumeLayout(false);
}
private System.Windows.Forms.Label labelMissingInfo;
private System.Windows.Forms.GroupBox groupBox3;
private System.Windows.Forms.Button button_refreshComPorts;
private System.Windows.Forms.ComboBox listOfComPoertsComboBox;
private System.Windows.Forms.Label label3;
private System.Windows.Forms.ComboBox cliProgramComboBox;
private System.Windows.Forms.ComboBox meterTypeComboBox;
private System.Windows.Forms.Label labelCliProgramName;
private System.Windows.Forms.Label labelMeterType;
#endregion
private System.Windows.Forms.TabControl tabControl1;
private System.Windows.Forms.TabPage tabPage1;
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 optoSerialPortLabel;
private System.Windows.Forms.TextBox optoSerialPortTextBox;
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;
}
}
@@ -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>
@@ -0,0 +1,137 @@
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
partial class PoseidonHeadTestCtrl
{
/// <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 = "PoseidonHeadTestCtrl";
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;
}
}
@@ -9,16 +9,16 @@ using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
public partial class IperlHeadTestCtrl : UserControl
public partial class PoseidonHeadTestCtrl : UserControl
{
IPerlCfg config;
IntIPerlReader _iPerlReader;
PoseidonCfg config;
ISmartReader _iSmartReader;
Thread optoThread;
private bool stopWorkerThread;
public event EventHandler<OptoReceivedEventArgs> OptoReceivedHandler;
public IperlHeadTestCtrl(IPerlCfg config)
public PoseidonHeadTestCtrl(PoseidonCfg config)
{
this.config = config;
InitializeComponent();
@@ -27,9 +27,9 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
//TODO fix possibility set test method in config
//iPerlCommunicationForm.cfg = new TestMethodCfg(null); // default values for iPerlCommunication
foreach(var head in ProcessData.IperlHeadsUni)
foreach(var head in ProcessData.SmartHeadsUni)
{
if (head != null && head.Name == config.Name) { _iPerlReader = head; }
if (head != null && head.Name == config.Name) { _iSmartReader = head; }
}
rfidCommandComboBox.DisplayMember = "Name";
@@ -104,13 +104,13 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
// _iPerlReader.StopDataStreamProcessing(); // close opto port
break;
case "ResetNfcHead":
_iPerlReader.ResetNfcInterface();
_iSmartReader.ResetNfcInterface();
break;
case "SetNfcHead":
_iPerlReader.SetNfcInterface();
_iSmartReader.SetNfcInterface();
break;
case "SetRfidHead":
_iPerlReader.SetRfidInterface();
_iSmartReader.SetRfidInterface();
break;
case "ReadOptoData":
optoListBox.Items.Clear();
@@ -119,17 +119,17 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
if (optoThread.IsAlive)
{
stopWorkerThread = true;
_iPerlReader.StopDataStreamProcessing(); // close opto port
_iSmartReader.StopDataStreamProcessing(); // close opto port
}
if (!optoThread.IsAlive)
{
_iPerlReader.StartDataStreamProcessing(); // open opto port
_iSmartReader.StartDataStreamProcessing(); // open opto port
optoThread.Start();
}
break;
case "StopReadOptoData":
stopWorkerThread = true;
_iPerlReader.StopDataStreamProcessing(); // close opto port
_iSmartReader.StopDataStreamProcessing(); // close opto port
break;
}
rfidOutputListBox.Items.Add(rfidListItem);
@@ -147,7 +147,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
try
{
string buffer = _iPerlReader.ReadOptoData();
string buffer = _iSmartReader.ReadOptoData();
if (string.IsNullOrEmpty(buffer))
{
this.OnOptoReceived((object)this, new OptoReceivedEventArgs("."));
@@ -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>
File diff suppressed because it is too large Load Diff
@@ -1,6 +1,6 @@
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
partial class IperlHeadTestCtrl
partial class UniHeadTestCtrl
{
/// <summary>
/// Required designer variable.
@@ -114,7 +114,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader
this.AutoScaleMode = System.Windows.Forms.AutoScaleMode.Font;
this.Controls.Add(this.optoTestGroupBox);
this.Controls.Add(this.RfidTestGroupBox);
this.Name = "IperlHeadTestCtrl";
this.Name = "UniHeadTestCtrl";
this.Size = new System.Drawing.Size(611, 432);
this.Load += new System.EventHandler(this.UserControl_Load);
this.optoTestGroupBox.ResumeLayout(false);
@@ -0,0 +1,99 @@
using System;
using System.Linq;
using System.Windows.Forms;
using TBF.Rig.RegisterReaders.CommonRR.IPerl.communication;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.common;
using TBF.Rig.RegisterReaders.PoseidonReader.implementations;
using TBF.Rig.Sequences;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
namespace TBF.Rig.RegisterReaders.PoseidonReader
{
public partial class UniHeadTestCtrl : UserControl
{
private IUniHeadTestCtrl _ctrl;
private IUniHeadTestCtrl Ctrl { get => _ctrl; }
public UniHeadTestCtrl(Generic.IComponentCfg config)
{
this._ctrl = new PoseidonImplHeadTestCtrl();
Ctrl.config = config;
InitializeComponent();
if (config == null) return;
SmartCommunicationForm.TestMethodCfg = new iPerlReaderUNI.TestMethodCfg(null); // default values for iPerlCommunication
if (ProcessData.SmartHeadsUni != null)
{
foreach (var head in ProcessData.SmartHeadsUni)
{
if (head != null && head.Name == config.Name)
{
Ctrl.ISmartReader = head;
}
}
}
rfidCommandComboBox.DisplayMember = "Name";
rfidCommandComboBox.ValueMember = "Value";
var items = Ctrl.GetComboOperationsPairs();
/*
// 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.Select(i => i.Name).ToArray();
Ctrl.Initialize();
Ctrl.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);
}
public void CommandTestButtonClick(object sender, MouseEventArgs e)
{
try
{
commandTestButton.Enabled = false;
Ctrl.CommandTestButtonClick(sender, e, new Arguments()
{
ISmartReader = Ctrl.ISmartReader,
OptoListBox = optoListBox,
RfidCommandComboBox = rfidCommandComboBox,
RfidOutputListBox = rfidOutputListBox
});
}
finally
{
commandTestButton.Enabled = true;
}
}
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());
Ctrl.Destroy();
}
}
}
@@ -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>
@@ -0,0 +1,22 @@
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7
{
public class JsonDataFromPoseidon
{
public bool? NfcTagDetected { get; set; }
public int? ProductType { get; set; }
public string ProductTypeVersion { get; set; }
public string DeviceId { get; set; }
public string Reading { get; set; }
public string Reading_Totalizer { get; set; }
public string Reading_Digits { get; set; }
public string Reading_Shift { get; set; }
public string Reading_Resolution { get; set; }
public string Reading_Units { get; set; }
public string Reading_FlowDirection { get; set; }
public string Reading_FlowRate { get; set; }
public string CalibrationFactor { get; set; }
public bool? ReadingComplete { get; set; }
}
}
@@ -0,0 +1,259 @@
using System;
using System.Text.RegularExpressions;
using System.Threading;
using System.Threading.Tasks;
using CliRunner = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.CliRunner;
using OptoHeadStatus = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus;
using SerialPortData = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.SerialPortData;
using EMeterArg = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.SerialPortData.EMeterArg;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7
{
public class NfcHeadService
{
private bool activeHandlerSessioEnabled = false;
private CliRunner _cliRunner;
private SerialPortData serialPort;
public NfcHeadService(SerialPortData serialPort)
{
this.serialPort = serialPort;
this._cliRunner = null;
ValidateCliFileExistence(true);
}
private CliRunner CliRunner
{
get { return (_cliRunner != null ? _cliRunner : (_cliRunner = new CliRunner(CliLogging))); }
}
private bool CliLogging
{
get { return false; }
}
private static readonly Regex OpticalDataModeRegex = new Regex(
@"(?im)(?:" +
@"^\s*OpticalDataMode\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""OpticalDataMode""\s*:\s*""?(0x[0-9A-Fa-f]+|\d+)""?" + // JSON format (handles hex and decimal)
@")",
RegexOptions.Compiled);
public bool TryGetOpticalDataMode(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = OpticalDataModeRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private static readonly Regex DeviceIdRegex = new Regex(
@"(?im)(?:" +
@"^\s*Device\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""DeviceId""\s*:\s*""?([0-9]+)""?" + // JSON format
@")",
RegexOptions.Compiled);
public bool TryGetDeviceId(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = DeviceIdRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private void ValidateCliFileExistence(bool showErrorIfMissing)
{
if (serialPort != null)
{
if (!serialPort.CliExists)
{
throw new Exception("CLI file " + serialPort.SerialPortCmdClientPath +
" does not exist! Current path: " + Environment.CurrentDirectory);
}
}
}
/// <summary>
/// ////////////
/// </summary>
public string GetSerialNr()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task<string> optoheadDeviceIdTask = CliRunner.SendAsync(serialPort.SerialPortCmdClientPath, serialPort.DefaultArgSettingsRead(EMeterArg.DeviceId) );
//var timeOut = CliRunner.AddTimeOut(15000);
//optoheadDeviceIdTask.GetAwaiter().GetResult();
//optoheadDeviceIdTask.Wait();
int doneTask = Task.WaitAny(new Task[] { optoheadDeviceIdTask }, TimeSpan.FromMilliseconds(15000));
if (doneTask != 0)
//if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadDeviceIdTask is Task<string>)
{
string serialNr;
if (optoheadDeviceIdTask.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
if (optoheadDeviceIdTask is Task<string> taskStr)
{
string result = taskStr.Result;
if (TryGetDeviceId(result, out serialNr))
{
return serialNr;
}
}
}
}
return null;
}
public async Task<string> GetSerialNrAsync()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
var cts = new CancellationTokenSource(); // we own the token
var sendTask = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId, cts.Token);
string output;
try
{
output = await CliRunner.WithTimeout(sendTask, TimeSpan.FromSeconds(15), cts);
}
catch (TimeoutException)
{
throw new Exception("Timeout");
}
if (TryGetDeviceId(output, out var serialNr))
return serialNr;
throw new Exception("Failed to parse DeviceId from output.");
}
public OptoHeadStatus SetTestingMode(OptoHeadStatus status)
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode =
CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead, $"0x{((byte)status):X2}");
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
else
{
throw new Exception($"Failed to parse OptoHeadStatus from output. Result: {result}");
}
}
}
return OptoHeadStatus.Unknown;
}
public OptoHeadStatus GetTestingMode()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task optoheadMode = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead);
var timeOut = CliRunner.AddTimeOut(5000);
var doneTask = CliRunner.WhenAny();
if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
}
}
return OptoHeadStatus.Unknown;
}
private void SendCommand()
{
}
private string RawDataAnswer()
{
return "";
}
}
}
@@ -0,0 +1,337 @@
using System;
using System.Text.RegularExpressions;
using System.Threading;
using System.Threading.Tasks;
using log4net;
using TBF.Rig.Output.Printers.Label;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils;
using CliRunner = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.CliRunnerOld;
using OptoHeadStatus = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus;
using SerialPortData = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.SerialPortData;
using EMeterArg = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.SerialPortData.EMeterArg;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7
{
public class NfcHeadServiceOld
{
private static readonly ILog log = LogManager.GetLogger(typeof(NfcHeadServiceOld));
private bool activeHandlerSessioEnabled = false;
private CliRunner _cliRunner;
private SerialPortData serialPort;
public NfcHeadServiceOld(SerialPortData serialPort)
{
this.serialPort = serialPort;
this._cliRunner = null;
ValidateCliFileExistence(true);
}
private CliRunner CliRunner
{
get { return (_cliRunner != null ? _cliRunner : (_cliRunner = new CliRunner(CliLogging))); }
}
private bool CliLogging
{
get { return false; }
}
private static readonly Regex OpticalDataModeRegex = new Regex(
@"(?im)(?:" +
@"^\s*OpticalDataMode\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""OpticalDataMode""\s*:\s*""?(0x[0-9A-Fa-f]+|\d+)""?" + // JSON format (handles hex and decimal)
@")",
RegexOptions.Compiled);
public bool TryGetOpticalDataMode(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = OpticalDataModeRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private static readonly Regex DeviceIdRegex = new Regex(
@"(?im)(?:" +
@"^\s*Device\s*Id\s*:\s*([^\r\n]+)\s*$" + // old format
@"|" +
@"""DeviceId""\s*:\s*""?([0-9]+)""?" + // JSON format
@")",
RegexOptions.Compiled);
public bool TryGetDeviceId(string result, out string s)
{
s = null;
if (string.IsNullOrEmpty(result))
return false;
var m = DeviceIdRegex.Match(result);
if (!m.Success)
return false;
// one of the groups will be filled
s = !string.IsNullOrEmpty(m.Groups[1].Value)
? m.Groups[1].Value.Trim()
: m.Groups[2].Value.Trim();
return true;
}
private void ValidateCliFileExistence(bool showErrorIfMissing)
{
if (serialPort != null)
{
if (!serialPort.CliExists)
{
throw new Exception("CLI file " + serialPort.SerialPortCmdClientPath +
" does not exist! Current path: " + Environment.CurrentDirectory);
}
}
}
/// <summary>
/// ////////////
/// </summary>
public string GetSerialNr()
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
Task<string> optoheadDeviceIdTask = CliRunner.SendAsync(serialPort.SerialPortCmdClientPath, serialPort.DefaultArgSettingsRead(EMeterArg.DeviceId) );
//Task<string> optoheadDeviceIdTask = CliRunner.SendAsync(serialPort.SerialPortCmdClientPath, serialPort.DefaultArgSettingsRead(EMeterArg.DeviceId) );
//var timeOut = CliRunner.AddTimeOut(15000);
//optoheadDeviceIdTask.GetAwaiter().GetResult();
//optoheadDeviceIdTask.Wait();
//CliRunner.StartAll();
int doneTask = -1;
DateTime time = DateTime.Now;
while (true)
{
if (CliRunner.AreTasksDone())
{
doneTask = 0;
break;
}
Thread.Sleep(100);
if (DateTime.Now.Subtract(time).TotalMilliseconds > 15000)
{
doneTask = -1;
break;
}
}
//int doneTask = Task.WaitAny(new Task[] { optoheadDeviceIdTask }, TimeSpan.FromMilliseconds(15000));
if (doneTask != 0)
//if (timeOut == doneTask)
{
throw new Exception("Timeout");
}
else
{
if (optoheadDeviceIdTask is Task<string>)
{
string serialNr;
if (optoheadDeviceIdTask.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
if (optoheadDeviceIdTask is Task<string> taskStr)
{
string result = taskStr.Result;
if (TryGetDeviceId(result, out serialNr))
{
return serialNr;
}
}
}
}
return null;
}
public OptoHeadStatus SetTestingMode(OptoHeadStatus status)
{
if (serialPort == null)
throw new Exception("Serial port not initialized");
//Task<string> optoheadMode = CliRunner.AddSendAsyncRead(serialPort, SerialPortData.EMeterArg.Optohead);
Task<string> optoheadMode = CliRunner.AddSendAsyncWrite(serialPort, SerialPortData.EMeterArg.Optohead, $"0x{((byte)status):X2}");
int doneTask = -1;
DateTime time = DateTime.Now;
while (true)
{
if (CliRunner.AreTasksDone())
{
doneTask = 0;
break;
}
Thread.Sleep(100);
if (DateTime.Now.Subtract(time).TotalMilliseconds > 15000)
{
doneTask = -1;
break;
}
}
if (optoheadMode is Task<string>)
{
string strOpticalDataMode;
if (optoheadMode.Status == TaskStatus.Faulted)
throw new Exception("Error TaskStatus.Faulted");
string result = (optoheadMode as Task<string>).Result;
if (TryGetOpticalDataMode(result, out strOpticalDataMode))
{
byte value;
if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
else
value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
return optoheadStatus;
}
else
{
log.Error($"Failed to parse OptoHeadStatus from output. Result: {result}");
//throw new Exception($"Failed to parse OptoHeadStatus from output. Result: {result}");
}
}
return OptoHeadStatus.Unknown;
}
// public async Task<string> GetSerialNrAsync()
// {
// if (serialPort == null)
// throw new Exception("Serial port not initialized");
//
// var cts = new CancellationTokenSource(); // we own the token
// var sendTask = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.DeviceId, cts.Token);
//
// string output;
// try
// {
// output = await CliRunner.WithTimeout(sendTask, TimeSpan.FromSeconds(15), cts);
// }
// catch (TimeoutException)
// {
// throw new Exception("Timeout");
// }
//
// if (TryGetDeviceId(output, out var serialNr))
// return serialNr;
//
// throw new Exception("Failed to parse DeviceId from output.");
// }
// public OptoHeadStatus SetTestingMode(OptoHeadStatus status)
// {
// if (serialPort == null)
// throw new Exception("Serial port not initialized");
//
//
// Task optoheadMode =
// CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead, $"0x{((byte)status):X2}");
// var timeOut = CliRunner.AddTimeOut(5000);
// var doneTask = CliRunner.WhenAny();
// if (timeOut == doneTask)
// {
// throw new Exception("Timeout");
// }
// else
// {
// if (optoheadMode is Task<string>)
// {
// string strOpticalDataMode;
// if (optoheadMode.Status == TaskStatus.Faulted)
// throw new Exception("Error TaskStatus.Faulted");
// string result = (optoheadMode as Task<string>).Result;
// if (TryGetOpticalDataMode(result, out strOpticalDataMode))
// {
// byte value;
//
// if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
// value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
// else
// value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
//
// OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
// return optoheadStatus;
// }
// }
// }
//
// return OptoHeadStatus.Unknown;
// }
//
// public OptoHeadStatus GetTestingMode()
// {
// if (serialPort == null)
// throw new Exception("Serial port not initialized");
//
//
// Task optoheadMode = CliRunner.AddSendAsync(serialPort, SerialPortData.EMeterArg.Optohead);
// var timeOut = CliRunner.AddTimeOut(5000);
// var doneTask = CliRunner.WhenAny();
// if (timeOut == doneTask)
// {
// throw new Exception("Timeout");
// }
// else
// {
// if (optoheadMode is Task<string>)
// {
// string strOpticalDataMode;
// if (optoheadMode.Status == TaskStatus.Faulted)
// throw new Exception("Error TaskStatus.Faulted");
// string result = (optoheadMode as Task<string>).Result;
// if (TryGetOpticalDataMode(result, out strOpticalDataMode))
// {
// byte value;
//
// if (strOpticalDataMode.StartsWith("0x", StringComparison.OrdinalIgnoreCase))
// value = Convert.ToByte(strOpticalDataMode, 16); // interpret as hex
// else
// value = Convert.ToByte(strOpticalDataMode); // interpret as decimal
//
// OptoHeadStatus optoheadStatus = (OptoHeadStatus)value;
// return optoheadStatus;
// }
// }
// }
//
// return OptoHeadStatus.Unknown;
// }
//
// private void SendCommand()
// {
//
// }
//
// private string RawDataAnswer()
// {
// return "";
// }
}
}
@@ -0,0 +1,203 @@
using System;
using System.IO.Ports;
using System.Threading.Tasks;
using Common;
using log4net;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols;
using TBF.Rig.Sequences;
using SERIAL_Driver = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils.SERIAL_Driver;
using WaterMetrologyData = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.WaterMetrologyData;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7
{
public class OptoHeadService
{
static readonly ILog log = LogManager.GetLogger("PoseidonConnection");
public class Con
{
public string com = "COM5";
public int baudrate = 38400;
public int dataBits = 8;
public Parity parity = Parity.None;
public StopBits stopbits = StopBits.Two;
public int readTimeout = 5000;
public int writeTimeout = 1000;
private DebugMode _debugLevel;
public DebugMode DebugModeSetting { get => _debugLevel; }
public Con(string com, int baudrate, int dataBits, Parity parity, StopBits stopbits, int readTimeout,
int writeTimeout) : this(com)
{
this.baudrate = baudrate;
this.dataBits = dataBits;
this.parity = parity;
this.stopbits = stopbits;
this.readTimeout = readTimeout;
this.writeTimeout = writeTimeout;
}
public Con(DebugMode debugLevel,string com, int baudrate, int dataBits, Parity parity, StopBits stopbits, int readTimeout,
int writeTimeout) : this(com)
{
this._debugLevel = debugLevel;
this.baudrate = baudrate;
this.dataBits = dataBits;
this.parity = parity;
this.stopbits = stopbits;
this.readTimeout = readTimeout;
this.writeTimeout = writeTimeout;
}
public Con(string com, DebugMode debugLevel = DebugMode.Normal)
{
this.com = com;
this._debugLevel = debugLevel;
}
}
private Con Connection { get; set; }
private SERIAL_Driver driver;
/// <summary>
/// Filed After Run() is called.
/// </summary>
public WaterMetrologyData WaterMetrologyData { get; private set; }
public OptoHeadService(Con con)
{
Connection = con;
driver = new SERIAL_Driver();
OnOptoReceivedHandler = null;
}
public bool CreateSerialConnection()
{
OnOptoReceivedHandler = null;
bool isopen = false;
Con con = Connection;
if (con == null)
{
return false;
}
byte[] message = {0x00};
byte[] bytesReceived;
if (con?.DebugModeSetting == DebugMode.Simulate)
{
isopen = true;
}
else if (!driver.isOpen())
{
isopen = driver.OpenConnection(
con.com,
con.baudrate,
con.dataBits,
con.parity,
con.stopbits,
con.readTimeout,
con.writeTimeout);
}
_bRunStarted = false;
return isopen;
}
public void CloseSerialConnection()
{
dissableRunLoop = true;
OnOptoReceivedHandler = null;
if (Connection?.DebugModeSetting != DebugMode.Simulate)
{
driver.Close();
}
_bRunStarted = false;
}
private EventHandler<CommonRR.IPerl.communication.OptoReceivedEventArgs> OnOptoReceivedHandler;
public bool IsRunning
{
get { return !dissableRunLoop
&& ((Connection?.DebugModeSetting != DebugMode.Simulate) ? driver.isOpen() : true)
&& _bRunStarted;}
}
public void RunLoop(EventHandler<CommonRR.IPerl.communication.OptoReceivedEventArgs> onOptoReceivedHandler)
{
log.Debug("RunLoop started on event!");
OnOptoReceivedHandler = onOptoReceivedHandler;
Task.Run(() => Run());
}
public void RunLoop()
{
log.Debug("RunLoop started!");
Task.Run(() => Run());
}
private bool dissableRunLoop = false;
private bool _bRunStarted = false;
/// <summary>
/// Run the service. Catch one communication to WaterMetrologyData field.
/// </summary>
public void Run()
{
while (!dissableRunLoop)
{
_bRunStarted = true;
WaterMetrologyData = ParseData(RunReading());
if (OnOptoReceivedHandler != null && WaterMetrologyData != null)
{
log.Debug($"Received OptoData: {WaterMetrologyData}");
OnOptoReceivedHandler?.Invoke(this, new CommonRR.IPerl.communication.OptoReceivedEventArgs(WaterMetrologyData?.ToString(), WaterMetrologyData));
}
}
}
byte[] RunReading()
{
if (Connection?.DebugModeSetting != DebugMode.Simulate)
{
return new byte[] {0x00};
}
if (driver.isOpen())
{
driver.SendMessage(new byte[] {0x00}, 1);
byte[] rawData = driver.GetRawData();
log.Debug($"Received data size: {rawData?.Length ?? 0} bytes, raw data: {(rawData==null? "" :BitConverter.ToString(rawData))}");
return rawData;
}
else
{
log.Debug("Serial port is not open.");
dissableRunLoop = true;
}
return new byte[] {0xFF};
}
public WaterMetrologyData ParseData(byte[] data)
{
if (Connection?.DebugModeSetting != DebugMode.Simulate)
{
return WaterMetrologyData.SimulateC7();
}
try
{
if (data == null || data.Length == 0)
return null;
return WaterMetrologyData.Parse(data, DateTime.Now, "");
}catch(Exception e)
{
return null;
}
}
}
}
@@ -0,0 +1,10 @@
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols
{
public enum OptoHeadStatus : byte
{
Unknown = 0xFF,
OptoHeadDisabled = 0x00,
OptoHeadC2 = 0xC2,
OptoHeadC7 = 0xC7,
}
}
@@ -0,0 +1,60 @@
using System;
using NfcC7_DLL.NfcHandler.Protocols;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols
{
public class WaterMetrologyData
{
private TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus _optoHeadStatus;
private WaterMetrologyDataC7 c7Data;
private WaterMetrologyDataC2 c2Data;
public WaterMetrologyDataC7 C7Data { get => c7Data; }
public WaterMetrologyDataC2 C2Data { get => c2Data; }
public TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus OptoHeadStatus { get => _optoHeadStatus; }
public static WaterMetrologyData Parse(byte[] data, DateTime dt, string dutinfo)
{
if (data.Length < 24)
{
throw new ArgumentException("Invalid data length for WaterMetrologyData C2.");
}
WaterMetrologyData waterMetrologyData = new WaterMetrologyData();
waterMetrologyData._optoHeadStatus = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus.Unknown;
// Probably C2
if(data.Length > 24 && data.Length < 48)
{
waterMetrologyData.c2Data = WaterMetrologyDataC2.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus.OptoHeadC2;
}
// Probably C7
else if(data.Length >= 48)
{
waterMetrologyData.c7Data = WaterMetrologyDataC7.Parse(data, dt, dutinfo);
waterMetrologyData._optoHeadStatus = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.OptoHeadStatus.OptoHeadC7;
}
return waterMetrologyData;
}
public static WaterMetrologyData SimulateC7()
{
WaterMetrologyData waterMetrologyData = new WaterMetrologyData();
waterMetrologyData.c7Data = WaterMetrologyDataC7.Simulate();
return waterMetrologyData;
}
public static WaterMetrologyData SimulateC2()
{
WaterMetrologyData waterMetrologyData = new WaterMetrologyData();
waterMetrologyData.c2Data = WaterMetrologyDataC2.Simulate();
return waterMetrologyData;
}
public override string ToString()
{
return $"Status: {_optoHeadStatus}, C7Data: {c7Data}, C2Data: {c2Data}";
}
}
}
@@ -0,0 +1,130 @@
using System;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols
{
public class WaterMetrologyDataC2
{
public string DutInfo { get; set; }
public DateTime Dt { get; set; }
public int AdcSample { get; set; }
public short LastField { get; set; }
public short FlowRate { get; set; }
public uint Accumulator { get; set; }
public ushort FlipPeriod { get; set; }
public ushort VinfStart { get; set; }
public ushort VinfEnd { get; set; }
public short ElectrodeDelta { get; set; }
public ushort Impedance { get; set; }
public byte FieldDriveTime { get; set; }
public bool IsInLowFlow { get; set; }
public bool IsInEmptyPipe { get; set; }
public bool FastHPFC { get; set; }
public bool FieldPolarity { get; set; }
public bool ImpedancePolarity { get; set; }
public double FlowRateLPerS // Flow Rate in L/s metric units
{
get
{
double flowRateGPM = FlowRate / 10000; //investigation flow meter GPM
double flowRateLPerS = flowRateGPM * 0.063090196432096 ; // conversion factor from GPM to L/s with minimal digit lost
return flowRateLPerS;
}
}
public double CalcFlowmLps
{
get { return FlowRate / 4.0; } // FlowRate is in 1/4 mL/s
}
public double CalcFlowGPM
{
get { return CalcFlowmLps * 0.015850323141489; } // mL/s to gal/min conversion
}
public double CalcAccGal
{
get { return (Accumulator / 4.0) * 0.000264172; } // Accumulator is in 1/4 mL, convert to gallons
}
public static WaterMetrologyDataC2 Parse(string base64Data, DateTime dt, string dutinfo)
{
byte[] data = Convert.FromBase64String(base64Data);
return Parse(data, dt, dutinfo);
}
public static WaterMetrologyDataC2 Simulate()
{
var result = new WaterMetrologyDataC2();
result.DutInfo = "dutinfo";
result.Dt = DateTime.Now;
result.AdcSample = 1;
result.LastField = 2;
result.FlowRate = 12456;
result.Accumulator = 789465;
result.FlipPeriod = 1;
result.VinfStart = 0;
result.VinfEnd = 0;
result.ElectrodeDelta = 1;
result.Impedance = 1;
result.FieldDriveTime = 0x00 ;
result.IsInLowFlow = false;
result.IsInEmptyPipe = false;
result.FastHPFC = false; // Fast High Pass Filter Constant in bit 2
result.FieldPolarity = false; // Field Polarity in bit 3
result.ImpedancePolarity = false; // Impedance Polarity in bit 4
return result;
}
public static WaterMetrologyDataC2 Parse(byte[] data, DateTime dt, string dutinfo)
{
if (data.Length < 24)
{
throw new ArgumentException("Invalid data length for WaterMetrologyData C2.");
}
WaterMetrologyDataC2 result = new WaterMetrologyDataC2();
result.DutInfo = dutinfo;
result.Dt = dt;
result.AdcSample = BitConverter.ToInt32(data, 0);
result.LastField = BitConverter.ToInt16(data, 4);
result.FlowRate = BitConverter.ToInt16(data, 6);
result.Accumulator = BitConverter.ToUInt32(data, 8);
result.FlipPeriod = BitConverter.ToUInt16(data, 12);
result.VinfStart = BitConverter.ToUInt16(data, 14);
result.VinfEnd = BitConverter.ToUInt16(data, 16);
result.ElectrodeDelta = BitConverter.ToInt16(data, 18);
result.Impedance = BitConverter.ToUInt16(data, 20);
result.FieldDriveTime = data[22];
byte flags = data[23];
result.IsInLowFlow = (flags & 0x01) != 0;
result.IsInEmptyPipe = (flags & 0x02) != 0;
result.FastHPFC = (flags & 0x04) != 0; // Fast High Pass Filter Constant in bit 2
result.FieldPolarity = (flags & 0x08) != 0; // Field Polarity in bit 3
result.ImpedancePolarity = (flags & 0x10) != 0; // Impedance Polarity in bit 4
return result;
}
//public override string ToString()
//{
// return $"ADC Sample: {AdcSample}, Last Field: {LastField}, Flow Rate: {FlowRate}, Accumulator: {Accumulator}, " +
// $"Flip Period Ticks: {FlipPeriodTicks}, Vinf Start: {VinfStart}, Vinf End: {VinfEnd}, Electrode Delta: {ElectrodeDelta}, " +
// $"Impedance: {Impedance}, Field Drive Time: {FieldDriveTime}, Is Low Flow: {IsInLowFlow}, Is Empty Pipe: {IsInEmptyPipe}, " +
// $"Fast High Pass Filter: {FastHighPassFilterConstant}, Field Polarity: {FieldPolarity}, Impedance Polarity: {ImpedancePolarity}";
//}
public override string ToString()
{
return $"DutInfo: {DutInfo}, Dt: {Dt}, ADC Sample: {AdcSample}, Last Field: {LastField}, Flow Rate: {FlowRate}, Accumulator: {Accumulator}, " +
$"Flip Period: {FlipPeriod}, Vinf Start: {VinfStart}, Vinf End: {VinfEnd}, Electrode Delta: {ElectrodeDelta}, " +
$"Impedance: {Impedance}, Field Drive Time: {FieldDriveTime}, Is Low Flow: {IsInLowFlow}, Is Empty Pipe: {IsInEmptyPipe}, " +
$"Fast HPFC: {FastHPFC}, Field Polarity: {FieldPolarity}, Impedance Polarity: {ImpedancePolarity}, " +
$"Calc Flow mL/s: {CalcFlowmLps:F2}, Calc Flow GPM: {CalcFlowGPM:F2}, Calc Acc Gal: {CalcAccGal:F2}";
}
}
}
@@ -0,0 +1,135 @@
using System;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols
{
public class WaterMetrologyDataC7 : TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.WaterMetrologyDataC2
{
// New fields for C7
public int LastFieldmilliGauss { get; set; }
public int ImpedanceI { get; set; } // In-phase impedance
public int ImpedanceQ { get; set; } // Out-of-phase impedance
public int NoiseMetric { get; set; }
public short LearningLockout { get; set; }
public short ReverseBuffer { get; set; }
public int ConditionedAdc { get; set; }
public uint Totalalizer { get; set; }
//public bool IsInLowFlow { get; set; }
//public bool IsInEmptyPipe { get; set; }
//public bool FastHPFC { get; set; }
//public bool FieldPolarity { get; set; }
//public bool ImpedancePolarity { get; set; }
public bool MagTamperState { get; set; }
public bool IsLearningActive { get; set; }
public bool AdcShiftsUpdated { get; set; }
public static WaterMetrologyDataC7 Simulate()
{
var result = new WaterMetrologyDataC7();
result.DutInfo = "dutinfo";
result.Dt = DateTime.Now;
result.AdcSample = 1;
result.LastField = 2;
result.FlowRate = 12456;
result.Accumulator = 789465;
result.FlipPeriod = 1;
result.VinfStart = 0;
result.VinfEnd = 0;
result.ElectrodeDelta = 1;
result.Impedance = 1;
result.FieldDriveTime = 0x00 ;
result.IsInLowFlow = false;
result.IsInEmptyPipe = false;
result.FastHPFC = false; // Fast High Pass Filter Constant in bit 2
result.FieldPolarity = false; // Field Polarity in bit 3
result.ImpedancePolarity = false; // Impedance Polarity in bit 4
result.MagTamperState = true; // bits 5 and 6 represent MagTamperState
result.IsLearningActive = true; // bit 7 represents IsLearningActive
result.AdcShiftsUpdated = false; // bit 0 represents AdcShiftsUpdated
result.LastFieldmilliGauss = 0;
result.ImpedanceI = 0; // in phase
result.ImpedanceQ = 0; // out of phase
result.NoiseMetric = 0; //
result.LearningLockout = 0;
result.ReverseBuffer = 0;
result.ConditionedAdc = 0;
result.Totalalizer = 0;
return result;
}
public static WaterMetrologyDataC7 Parse(string base64Data, DateTime dt, string dutinfo)
{
byte[] data = Convert.FromBase64String(base64Data);
return Parse(data, dt, dutinfo);
}
public static WaterMetrologyDataC7 Parse(byte[] data, DateTime dt, string dutinfo)
{
// You may want to check for the minimum length required for C7
if (data.Length < 48) /* minimum required length for C7 */
{
throw new ArgumentException("Invalid data length for WaterMetrologyData C7.");
}
var result = new WaterMetrologyDataC7();
// Parse base C2 fields
var c2 = TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols.WaterMetrologyDataC2.Parse(data, dt, dutinfo);
//Copy base fields
result.DutInfo = c2.DutInfo;
result.Dt = c2.Dt;
result.AdcSample = c2.AdcSample;
result.LastField = c2.LastField;
result.FlowRate = c2.FlowRate;
result.Accumulator = c2.Accumulator;
result.FlipPeriod = c2.FlipPeriod;
result.VinfStart = c2.VinfStart;
result.VinfEnd = c2.VinfEnd;
result.ElectrodeDelta = c2.ElectrodeDelta;
result.Impedance = c2.Impedance;
result.FieldDriveTime = c2.FieldDriveTime;
result.IsInLowFlow = c2.IsInLowFlow;
result.IsInEmptyPipe = c2.IsInEmptyPipe;
result.FieldPolarity = c2.FieldPolarity;
result.ImpedancePolarity = c2.ImpedancePolarity;
// Parse new C7 fields (replace ENUM_OptPack0xC7.FIELD_MILLI_GAUSS etc. with actual offsets)
byte flags = data[23];
result.MagTamperState = (flags & 0x60) != 0; // bits 5 and 6 represent MagTamperState
result.IsLearningActive = (flags & 0x80) != 0; // bit 7 represents IsLearningActive
byte flagTwo = data[24];
result.AdcShiftsUpdated = (flagTwo & 0x01) != 0; // bit 0 represents AdcShiftsUpdated
result.LastFieldmilliGauss = BitConverter.ToInt32(data, 25);
result.ImpedanceI = BitConverter.ToInt32(data, 29); // in phase
result.ImpedanceQ = BitConverter.ToInt32(data, 33); // out of phase
result.NoiseMetric = BitConverter.ToInt32(data, 37); //
result.LearningLockout = BitConverter.ToInt16(data, 41);
result.ReverseBuffer = BitConverter.ToInt16(data, 43);
result.ConditionedAdc = BitConverter.ToInt32(data, 45);
result.Totalalizer = BitConverter.ToUInt32(data, 49);
return result;
}
public override string ToString()
{
return $"C7: LastFieldmilliGauss={LastFieldmilliGauss}, ImpedanceI={ImpedanceI}, ImpedanceQ={ImpedanceQ}, NoiseMetric={NoiseMetric}, LearningLockout={LearningLockout}, ReverseBuffer={ReverseBuffer}, ConditionedAdc={ConditionedAdc}, Totalalizer={Totalalizer}, MagTamperState={MagTamperState}, IsLearningActive={IsLearningActive}, AdcShiftsUpdated={AdcShiftsUpdated}" + base.ToString();
}
}
}
@@ -0,0 +1,343 @@
using System;
using System.Collections.Generic;
using System.Diagnostics;
using System.Linq;
using System.Reflection;
using System.Threading;
using System.Threading.Tasks;
using Newtonsoft.Json;
using Newtonsoft.Json.Linq;
using NfcC7_DLL.NfcHandler.Utils;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public class CliRunner
{
//static readonly Logger log = LogManager.GetLogger(typeof(CliRunner));
//private readonly ILog log;
private List<Task> taskPool = new List<Task>();
private long startTime;
public List<Task> TaskPool { get { return taskPool; } }
public void AddTask(Task task) { taskPool.Add(task); }
public void WaitAll() { Task.WaitAll(taskPool.ToArray()); }
/// <summary>
/// continue with WhenAny() to commpare results if time out is reached
/// </summary>
/// <param name="timeout"></param>
/// <returns></returns>
public Task AddTimeOut(int timeout)
{
Task timeOut = Task.Delay(timeout);
taskPool.Add(timeOut);
return timeOut;
}
/// <summary>
/// mainly used for time out additional task to compare results
/// </summary>
/// <returns></returns>
[Obsolete("Use async/await instead - WaitAnyFinished()")]
public async Task<Task> WhenAny() { return await Task.WhenAny(taskPool.ToArray()); }
public Task WaitAnyFinished(Task task, Task timeOut)
{
// Task.WhenAny(task, timeOut);
// while (true)
// {
// if (task.IsCompleted) break;
// if (task.IsFaulted) break;
// if (task.IsCanceled) break;
//
// if(timeOut.IsCompleted) break;
// if(timeOut.IsFaulted) break;
// if(timeOut.IsCanceled) break;
//
// Thread.Sleep(100);
// }
var waitAny = Task.WaitAny(task, timeOut);
return waitAny == 0 ? task : timeOut;
}
public static async Task<T> WithTimeout<T>(Task<T> task, TimeSpan timeout, CancellationTokenSource externalCts = null)
{
var localCts = externalCts == null ? externalCts : new CancellationTokenSource();
var timeoutCts = new CancellationTokenSource(timeout);
var linked = CancellationTokenSource.CreateLinkedTokenSource(localCts.Token, timeoutCts.Token);
var completion = new TaskCompletionSource<bool>(TaskCreationOptions.RunContinuationsAsynchronously);
// Observe the task
_ = task.ContinueWith(_ => completion.TrySetResult(true), TaskScheduler.Default);
// Observe the timeout
_ = Task.Delay(Timeout.InfiniteTimeSpan, timeoutCts.Token)
.ContinueWith(_ => completion.TrySetResult(true), TaskScheduler.Default);
await completion.Task.ConfigureAwait(false);
if (timeoutCts.IsCancellationRequested == false && task.IsCompleted) // task finished first
return await task.ConfigureAwait(false);
// timeout won → cancel & throw TimeoutException
localCts.Cancel(); // triggers your SendAsync to kill process
throw new TimeoutException();
}
public Task<string> AddSendAsync(SerialPortData data, SerialPortData.EMeterArg eMeterArg, CancellationToken ct = default)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg), ct);
taskPool.Add(task); // List<Task> is okay because Task<string> : Task
return task;
}
public Task WaitAnyFinished()
{
int xTask = Task.WaitAny(taskPool.ToArray());
return taskPool[xTask];
}
public void Clear() { taskPool.Clear(); }
public void CancelAll() { Task.WhenAll(taskPool).ContinueWith(t => { }); }
public void StartAll()
{
taskPool.ForEach(t => t.Start());
}
public bool AreTasksDone()
{
return taskPool.All(task => task.IsCompleted);
}
public long StartTime
{
get => startTime;
}
public bool TimeOutReceived(long timeout)
{
return (DateTime.Now.Ticks - startTime) > timeout;
}
public CliRunner(bool isCliLogging)
{
startTime = DateTime.Now.Ticks;
if (isCliLogging)
{
try
{
/*log = new ScopedLoggerFactory().CreateLogger<CliRunner>(
@"C:\TBF\Logs\CliRunner.txt",
10, // maxFileSizeMB
7, // maxBackups
log4net.Core.Level.Debug,
true, // zipRolledFiles
true, // singleZipPerDay
TimeSpan.FromMinutes(2) // zipScanInterval
);*/
}
catch (Exception ex)
{
// Fallback to console or handle gracefully
Console.WriteLine($"Failed to initialize logger: {ex.Message}");
}
}
}
/// <summary>
///
/// </summary>
/// <param name="fileName"></param>
/// <param name="args"></param>
/// <typeparam name="T"></typeparam>
public Task AddSendAsync(SerialPortData data, SerialPortData.EMeterArg eMeterArg)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg));
taskPool.Add(task);
var t = Task.Run(async () => { await task; }); // OK: Task
return t;
}
public Task AddSendAsync(SerialPortData data, SerialPortData.EMeterArg eMeterArg, string arg)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsWrite(eMeterArg, arg));
taskPool.Add(task);
return task;
}
public void AddSendAsync(string fileName, string args)
{
var task = SendAsync(fileName, args);
taskPool.Add(task);
}
public async Task<string> SendAsync(string fileName, string args, CancellationToken ct = default)
{
var psi = new ProcessStartInfo
{
FileName = fileName,
Arguments = args,
RedirectStandardOutput = true,
RedirectStandardError = true,
UseShellExecute = false,
CreateNoWindow = true
};
var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
try
{
process.Start();
Task<string> stdOutTask = process.StandardOutput.ReadToEndAsync();
Task<string> stdErrTask = process.StandardError.ReadToEndAsync();
try
{
await Task.WhenAll(stdOutTask, stdErrTask, process.WaitForExitAsync(ct));
}
catch (OperationCanceledException)
{
if (!process.HasExited)
{
process.Kill();
}
throw;
}
string allOutput = (stdOutTask.Result ?? "") + (stdErrTask.Result ?? "");
//log?.Debug(allOutput);
return allOutput;
}
finally
{
process?.Dispose();
}
}
public Task<T> AddRunAndCaptureJsonAsync<T>(SerialPortData data, SerialPortData.EMeterArg eMeterArg) where T : new()
{
var task = RunAndCaptureJsonAsync<T>(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg));
taskPool.Add(task);
return task;
}
public async Task<T> RunAndCaptureJsonAsync<T>(string fileName, string args, CancellationToken ct = default) where T : new()
{
var psi = new ProcessStartInfo
{
FileName = fileName,
Arguments = args,
RedirectStandardOutput = true,
RedirectStandardError = true,
UseShellExecute = false,
CreateNoWindow = true
};
var process = new Process { StartInfo = psi, EnableRaisingEvents = true };
try
{
process.Start();
var stdoutTask = process.StandardOutput.ReadToEndAsync();
var stderrTask = process.StandardError.ReadToEndAsync();
await Task.WhenAll(stdoutTask, stderrTask, process.WaitForExitAsync(ct));
string allOutput = (stdoutTask.Result ?? "") + (stderrTask.Result ?? "");
//log?.Debug(allOutput);
string json = ExtractJson(allOutput);
if (TryJsonStringDeserialize(json, out T result)) return result;
return default;
}
finally
{
process?.Dispose();
}
}
public bool TryJsonStringDeserialize<T>(string json, out T runAndCaptureJsonAsync) where T : new()
{
if (json != null)
{
try
{
runAndCaptureJsonAsync = JsonConvert.DeserializeObject<T>(json);
return true;
}
catch (Exception ex)
{
// log.Debug(ex.Message);
runAndCaptureJsonAsync = TryConvert<T>(json);
return true;
}
}
runAndCaptureJsonAsync = default;
return false;
}
private static T TryConvert<T>(string json) where T : new()
{
T obj = new T();
try
{
JObject jObject = JObject.Parse(json);
foreach (PropertyInfo prop in typeof(T).GetProperties(BindingFlags.Public | BindingFlags.Instance))
{
if (!prop.CanWrite) continue;
JToken token;
if (jObject.TryGetValue(prop.Name, StringComparison.OrdinalIgnoreCase, out token))
{
try
{
object value = token.ToObject(prop.PropertyType);
prop.SetValue(obj, value);
}
catch
{
// leave default if conversion fails
}
}
// else → keep default value
}
}
catch (Exception ex)
{
Console.WriteLine($"TryConvert failed: {ex.Message}");
}
return obj;
}
public string ExtractJson(string text)
{
int start = text.IndexOf('{');
int end = text.LastIndexOf('}');
if (start >= 0 && end > start)
{
return text.Substring(start, end - start + 1);
}
return null;
}
}
}
@@ -0,0 +1,255 @@
using System;
using System.Collections.Generic;
using System.Diagnostics;
using System.Linq;
using System.Reflection;
using System.Text;
using System.Threading.Tasks;
using log4net;
using Newtonsoft.Json;
using Newtonsoft.Json.Linq;
using TBF.Rig.RegisterReaders.PoseidonCmdStartStop;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public class CliRunnerOld
{
//static readonly ILog log = LogManager.GetLogger(typeof(CliRunner));
private readonly ILog log;
private List<Task> taskPool = new List<Task>();
private long startTime;
public List<Task> TaskPool { get { return taskPool; } }
public void AddTask(Task task) { taskPool.Add(task); }
public void WaitAll() { Task.WaitAll(taskPool.ToArray()); }
public void Clear() { taskPool.Clear(); }
public void CancelAll() { Task.WhenAll(taskPool).ContinueWith(t => { }); }
public void StartAll()
{
taskPool.ForEach(t =>
{
try
{
t.Start();
}
catch (Exception ex)
{
log.Debug(ex.Message);
}
});
}
public bool AreTasksDone()
{
return taskPool.All(task => task.IsCompleted);
}
public long StartTime
{
get => startTime;
}
public bool TimeOutReceived(long timeout)
{
return (DateTime.Now.Ticks - startTime) > timeout;
}
public CliRunnerOld(bool isCliLogging)
{
startTime = DateTime.Now.Ticks;
if (isCliLogging)
{
log = new ScopedLoggerFactory().CreateLogger<CliRunnerOld>(
@"C:\TBF\Logs\CliRunner.txt",
10, // maxFileSizeMB
7, // maxBackups
log4net.Core.Level.Debug,
true, // zipRolledFiles
true, // singleZipPerDay
TimeSpan.FromMinutes(2) // zipScanInterval
);
}
}
/// <summary>
///
/// </summary>
/// <param name="fileName"></param>
/// <param name="args"></param>
/// <typeparam name="T"></typeparam>
public Task<string> AddSendAsyncRead(SerialPortData data, SerialPortData.EMeterArg eMeterArg)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg));
taskPool.Add(task);
return task;
}
public Task<string> AddSendAsyncWrite(SerialPortData data, SerialPortData.EMeterArg eMeterArg, string arg)
{
var task = SendAsync(data.SerialPortCmdClientPath, data.DefaultArgSettingsWrite(eMeterArg, arg));
taskPool.Add(task);
return task;
}
public void AddSendAsync(string fileName, string args)
{
var task = SendAsync(fileName, args);
taskPool.Add(task);
}
public async Task<string> SendAsync(string fileName, string args)
{
var psi = new ProcessStartInfo
{
FileName = fileName,
Arguments = args,
RedirectStandardOutput = true,
RedirectStandardError = true,
UseShellExecute = false,
CreateNoWindow = true
};
var process = new Process { StartInfo = psi };
var sb = new StringBuilder();
process.OutputDataReceived += (sender, e) =>
{
if (e.Data != null)
sb.AppendLine(e.Data);
};
process.Start();
process.BeginOutputReadLine();
process.WaitForExit();
// Now all outputs are available
string allOutput = sb.ToString();
log?.Debug(allOutput);
return allOutput;
}
public void AddRunAndCaptureJsonAsync<T>(SerialPortData data, SerialPortData.EMeterArg eMeterArg) where T : new()
{
var task = RunAndCaptureJsonAsync<T>(data.SerialPortCmdClientPath, data.DefaultArgSettingsRead(eMeterArg));
taskPool.Add(task);
}
public async Task<T> RunAndCaptureJsonAsync<T>(string fileName, string args) where T : new()
{
var psi = new ProcessStartInfo
{
FileName = fileName,
Arguments = args,
RedirectStandardOutput = true,
RedirectStandardError = true,
UseShellExecute = false,
CreateNoWindow = true
};
var process = new Process { StartInfo = psi };
var sb = new StringBuilder();
process.OutputDataReceived += (sender, e) =>
{
if (e.Data != null)
sb.AppendLine(e.Data);
};
process.Start();
process.BeginOutputReadLine();
process.WaitForExit();
// Now sb contains all output text
string allOutput = sb.ToString();
log?.Debug(allOutput);
// Extract JSON part
string json = ExtractJson(allOutput);
if (TryJsonStringDeserialize(json, out T runAndCaptureJsonAsync)) return runAndCaptureJsonAsync;
return default;
}
public bool TryJsonStringDeserialize<T>(string json, out T runAndCaptureJsonAsync) where T : new()
{
if (json != null)
{
try
{
runAndCaptureJsonAsync = JsonConvert.DeserializeObject<T>(json);
return true;
}
catch (Exception ex)
{
log.Debug(ex.Message);
runAndCaptureJsonAsync = TryConvert<T>(json);
return true;
}
}
runAndCaptureJsonAsync = default;
return false;
}
private static T TryConvert<T>(string json) where T : new()
{
T obj = new T();
try
{
JObject jObject = JObject.Parse(json);
foreach (PropertyInfo prop in typeof(T).GetProperties(BindingFlags.Public | BindingFlags.Instance))
{
if (!prop.CanWrite) continue;
JToken token;
if (jObject.TryGetValue(prop.Name, StringComparison.OrdinalIgnoreCase, out token))
{
try
{
object value = token.ToObject(prop.PropertyType);
prop.SetValue(obj, value);
}
catch
{
// leave default if conversion fails
}
}
// else → keep default value
}
}
catch (Exception ex)
{
Console.WriteLine($"TryConvert failed: {ex.Message}");
}
return obj;
}
public string ExtractJson(string text)
{
int start = text.IndexOf('{');
int end = text.LastIndexOf('}');
if (start >= 0 && end > start)
{
return text.Substring(start, end - start + 1);
}
return null;
}
}
}
@@ -0,0 +1,39 @@
using System;
using System.Diagnostics;
using System.Threading;
using System.Threading.Tasks;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public static class ProcessExtensions
{
public static Task<object> WaitForExitAsync(this Process process, CancellationToken cancellationToken = default)
{
if (process == null) throw new ArgumentNullException(nameof(process));
if (process.HasExited) return Task.FromResult<object>(null);
var tcs = new TaskCompletionSource<object>(TaskCreationOptions.RunContinuationsAsynchronously);
EventHandler handler = null;
handler = (s, e) =>
{
try { tcs.TrySetResult(null); }
finally { process.Exited -= handler; }
};
process.EnableRaisingEvents = true;
process.Exited += handler;
if (cancellationToken.CanBeCanceled)
{
cancellationToken.Register(() =>
{
tcs.TrySetCanceled(cancellationToken);
process.Exited -= handler;
});
}
return tcs.Task;
}
}
}
@@ -0,0 +1,198 @@
using System;
using System.Collections.Generic;
using System.Collections.ObjectModel;
using System.Diagnostics;
using System.IO.Ports;
using System.Linq;
using System.Threading;
//*****************************************************************************
// Copyright 2020 Sensus GmbH Ludwigshafen. All rights reserved.
// Author: Venkat, Rajeshwar
//*****************************************************************************
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public class SERIAL_Driver
{
public string ErrorMessage { get; private set; }
public Collection<byte> SerialPortReadBuffer = new Collection<byte>();
private SerialPort _serialPort;
private List<byte[]> _binMessages = new List<byte[]>();
private bool _isReading;
private Parity Parity { get; set; }
private StopBits StopBits { get; set; }
public SERIAL_Driver()
{
_serialPort = new SerialPort();
}
public bool OpenConnection(string comPort, int baudrate, int dataBits, Parity parity, StopBits stopbits, int readTimeout=1000, int writeTimeout = 1000)
{
lock (this)
{
if ((_serialPort != null) && (_serialPort.IsOpen))
{
_serialPort.DataReceived -= DataReceivedHandler;
_serialPort.Close();
_serialPort.Dispose();
_serialPort = null;
}
try
{
ErrorMessage = "";
//_serialPort = new SerialPort(comPort, 57600, Parity.None, 8, StopBits.Two);
_serialPort = new SerialPort(comPort, baudrate, parity, dataBits, stopbits);
_serialPort.ReadTimeout = readTimeout;
_serialPort.WriteTimeout = writeTimeout;
_serialPort.DataReceived += new SerialDataReceivedEventHandler(DataReceivedHandler);
_serialPort.Open();
}
catch (Exception ex)
{
ErrorMessage = String.Format("COM error: Open failed {0}.{1}", comPort, ex.Message);
return false;
}
if (!_serialPort.IsOpen)
{
ErrorMessage = String.Format("COM error: Can't Open {0}.", comPort);
return false;
}
}//End Lock
return true;
}
public bool SendMessage(byte[] sendDataBytes, int length, int readTimeout = 1000, int writeTimeout=1000)
{
if (!isOpen()) return false;
if (sendDataBytes.Length == 0) return true; // nothing to send - no error
try
{
PrepareReading(); //clear read buffer etc.
_serialPort.WriteTimeout = writeTimeout;
_serialPort.ReadTimeout = readTimeout;
_serialPort.Write(sendDataBytes, 0, length);
_isReading = true;
Thread.Sleep(100);
var stopWatch = Stopwatch.StartNew(); //start stop watch for data recevie timeout
while (_isReading) //wait until reading finishes or timeout occur
{
if (stopWatch.ElapsedMilliseconds > readTimeout)
{
stopWatch.Stop();
ErrorMessage = "COM error: Receive timeout";
return false;
}
}
}
catch (Exception ex)
{
ErrorMessage = String.Format("COM error: Transmit timeout {0}.{1}", _serialPort.PortName, ex.Message);
return false; // Exception in send function
}
return true;
}
private void PrepareReading()
{
_serialPort.DiscardInBuffer();
if(_binMessages != null) _binMessages.Clear();
_isReading = true;
}
public byte[] GetRawData()
{
try
{
if (_binMessages.Count > 0)
return _binMessages[0].ToArray();
else
{
return null;
}
}
catch(Exception)
{
byte[] err = { 0xFF };
return err;
}
}
private void DataReceivedHandler(object sender, SerialDataReceivedEventArgs e)
{
lock (this)
{
// Check if port is still valid and open
if (_serialPort == null || !_serialPort.IsOpen)
return;
try
{
Thread.Sleep(100);
// Re-check after sleep - port might have been closed during sleep
if (_serialPort == null || !_serialPort.IsOpen)
return;
SerialPortReadBuffer = new Collection<byte>();
// Check before accessing BytesToRead
while (_serialPort.IsOpen && _serialPort.BytesToRead > 0)
{
SerialPortReadBuffer.Add((byte)_serialPort.ReadByte());
}
if (SerialPortReadBuffer.Count > 0)
{
_binMessages.Add(SerialPortReadBuffer.ToArray());
}
_isReading = false;
}
catch (InvalidOperationException ex)
{
// Port was closed during operation - this is expected during shutdown
_isReading = false;
}
catch (Exception ex)
{
// Log other unexpected errors
_isReading = false;
ErrorMessage = String.Format("COM error: Data receive error - {0}", ex.Message);
}
}
}
public void CloseConnection()
{
if ((_serialPort != null) && (_serialPort.IsOpen))
{
_serialPort.DataReceived -= DataReceivedHandler;
_serialPort.Close();
_serialPort.Dispose();
_serialPort = null;
}
}
public void Close()
{
if (isOpen())
{
_serialPort.Close();
}
}
public void Dispose()
{
if (_serialPort != null)
{
_serialPort.Dispose();
}
}
public bool isOpen()
{
if(_serialPort != null)
return _serialPort.IsOpen;
return false;
}
}
}
@@ -0,0 +1,89 @@
using System;
using System.IO;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public class SerialPortData
{
private Boolean? _cliExists;
public bool CliExists { get {
if (_cliExists == null || !_cliExists.HasValue)
{
_cliExists = File.Exists(SerialPortCmdClientPath);
}
return _cliExists.Value;
} }
public string SerialPortCmdClientPath {
get {
#if DEBUG
return Path.Combine("C:\\","TBF","Cli", CmdClientName);
#else
return Path.Combine("..","Cli", CmdClientName);
#endif
}
}
public string CmdClientName { get; set; } = "HalCli.exe";
public string PortName { get; set; }
public int MeterType { get; set; }
public string MeterTypeStr { get; set; }
public enum EMeterArg {
Calibration = 0,
AllParams = 2,
DeviceId = 3,
Optohead = 4,
}
EMeterArg _eMeterArg = EMeterArg.AllParams;
public string DefaultArgSettingsRead(EMeterArg eMeterArg)
{
string meterTypeInsert = !string.IsNullOrEmpty(MeterTypeStr) ? MeterTypeStr : MeterType.ToString();
switch (eMeterArg)
{
case EMeterArg.AllParams:
return $"-p {PortName} -m {meterTypeInsert} --operation readall";
case EMeterArg.DeviceId:
return $"-p {PortName} -m {meterTypeInsert} --operation read --parameter DeviceId";
case EMeterArg.Optohead:
return $"-p {PortName} -m {meterTypeInsert} --operation read --parameter \"OpticalDataMode\"";
default:
throw new Exception("Not implemented correct command!");
}
}
public string DefaultArgSettingsWrite(EMeterArg eMeterArg, string arg)
{
string meterTypeInsert = !string.IsNullOrEmpty(MeterTypeStr) ? MeterTypeStr : MeterType.ToString();
switch (eMeterArg)
{
case EMeterArg.Calibration:
return $"-p {PortName} -m {meterTypeInsert} --operation write --parameter Calibration --value {arg}";
case EMeterArg.Optohead:
return $"-p {PortName} -m {meterTypeInsert} --operation write --parameter \"OpticalDataMode\" --value {arg}";
default:
throw new Exception("Not implemented correct command!");
}
}
public SerialPortData(
string portName,
string cmdClientName,
int meterType)
{
PortName = portName;
CmdClientName = cmdClientName;
MeterType = meterType;
}
public SerialPortData(
string portName,
string cmdClientName,
string meterType)
{
PortName = portName;
CmdClientName = cmdClientName;
MeterTypeStr = meterType;
}
}
}
@@ -0,0 +1,158 @@
using System;
using System.Collections.Generic;
using System.Text;
//*****************************************************************************
// Copyright 2020 Sensus GmbH Ludwigshafen. All rights reserved.
// Author: Venkat, Rajeshwar
//*****************************************************************************
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils
{
public static class Tools
{
public static bool ByteArrayCompare(byte[] a1, byte[] a2)
{
// thanks to https://stackoverflow.com/questions/43289/comparing-two-byte-arrays-in-net
if (a1.Length != a2.Length)
return false;
for (int i = 0; i < a1.Length; i++)
if (a1[i] != a2[i])
return false;
return true;
}
public static string SwapHex(string sHex)
{
string sResult = "";
int iPos = sHex.Length - 2;
while (iPos >= 0)
{
sResult += sHex.Substring(iPos, 2);
sHex = sHex.Remove(iPos, 2);
iPos = sHex.Length - 2;
}
return sResult;
}
public static string DecimalToHexString(string value, int size = 1)
{
try
{
long Lval = long.Parse(value);
if (size == 1) return Lval.ToString("X2");
if (size == 2) return Lval.ToString("X4");
if (size == 4) return Lval.ToString("X8");
}
catch (Exception)
{
if (size == 1) return "00";
if (size == 2) return "0000";
if (size == 4) return "00000000";
}
return "00";
}
public static string ByteToHexString(byte data)
{
List<byte> val = new List<byte>();
val.Add(data);
byte[] arr = val.ToArray();
return BytesToHex(arr);
}
public static string BytesToHex(byte[] data)
{
StringBuilder sb = new StringBuilder();
foreach (byte b in data)
sb.Append(b.ToString("X2"));
return sb.ToString();
}
public static byte[] HexStringToByteArray(String hexString)
{
int numberChars = hexString.Length;
byte[] bytes = new byte[numberChars / 2];
for (int i = 0; i < numberChars; i += 2)
{
bytes[i / 2] = Convert.ToByte(hexString.Substring(i, 2), 16);
}
return bytes;
}
public enum InitialCrcValue
{
Zeros,
NonZero1 = 0xffff,
NonZero2 = 0x1D0F
}
public class Crc16Ccitt
{
private const ushort poly = 0x1021;
ushort[] table = new ushort[256];
ushort initialValue = 0;
public ushort ComputeChecksum(byte[] bytes)
{
ushort crc = this.initialValue;
for (int i = 0; i < bytes.Length; ++i)
{
crc = (ushort)((crc << 8) ^ table[((crc >> 8) ^ (0xff & bytes[i]))]);
}
return crc;
}
public byte[] ComputeChecksumBytes(byte[] bytes)
{
ushort crc = ComputeChecksum(bytes);
return BitConverter.GetBytes(crc);
}
public Crc16Ccitt(InitialCrcValue initialValue)
{
this.initialValue = (ushort) initialValue;
ushort temp, a;
for (int i = 0; i < table.Length; ++i)
{
temp = 0;
a = (ushort) (i << 8);
for (int j = 0; j < 8; ++j)
{
if (((temp ^ a) & 0x8000) != 0)
{
temp = (ushort) ((temp << 1) ^ poly);
}
else
{
temp <<= 1;
}
a <<= 1;
}
table[i] = temp;
}
}
public byte[] calcCRCfromMessage(byte[] message)
{
// CRC calculation goes from MessageID to Password
// For Read this means MsgID (1) + Offset (2) + PayloadLength (1) + Password (2) = 6
// for write the length of the payload comes on top.
// STX(1), length(1), CRC(2) and ETX(1) are excluded, in total 5 bytes.
//
// the method works both for sending messages (where the CRC and ETX are not in message)
// and for receiving messages (where the CRC and ETX are included at the end)
byte[] crc_msg = new byte[message[1]]; // message length is 2nd byte
Array.Copy(message, 2, crc_msg, 0, crc_msg.Length);
return ComputeChecksumBytes(crc_msg);
}
public string commentCRC(byte[] crc_meter, byte[] crc_computed)
{
bool crc_do_match = Tools.ByteArrayCompare(crc_meter, crc_computed);
string crcComment = crc_do_match ? "ok." : "CRC DOESN'T MATCH!!";
return "CRC Meter: " + Tools.BytesToHex(crc_meter) + (crc_do_match ? " == " : " != ")
+ "CRC Computed: " + Tools.BytesToHex(crc_computed) + ". " + crcComment;
}
public bool crc_do_match(byte[] a, byte[] b)
{
return ByteArrayCompare(a, b);
}
}
}
}
@@ -1,245 +0,0 @@
///
/// Copyright (c) 2015-2020 Sensus Metering Systems
///
using System;
using System.IO;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.comminication;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
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();
}
}
}
@@ -1,261 +0,0 @@
///
/// Copyright (c) 2018-2020 Sensus Slovensko a.s.
///
using System;
using System.IO;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.comminication;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
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();
}
}
}
@@ -12,12 +12,12 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
public int ThreadId;
public int WMNr0; /// 0-based water meter position
public IPerlReader Ihead;
public SmartReader Ihead;
public Results.Entities.WaterMeter Wm;
public string CommMessage;
public CommErr CommErr;
public CommCompletedEventArgs(int threadId, int wmNr0, IPerlReader ihead, Results.Entities.WaterMeter wm, string commMessage, CommErr commErr)
public CommCompletedEventArgs(int threadId, int wmNr0, SmartReader ihead, Results.Entities.WaterMeter wm, string commMessage, CommErr commErr)
{
this.ThreadId = threadId;
this.WMNr0 = wmNr0;
@@ -1,269 +0,0 @@
///
/// Copyright (c) 2015-2020 Sensus Metering Systems
///
using System;
using System.IO;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.comminication;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
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();
}
}
}
@@ -0,0 +1,11 @@
using System.ComponentModel;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
public enum ECommunicationInterface
{
[Description("..")] None,
[Description("Nfc")] Nfc,
[Description("cTouchRead")]Touched,
}
}
@@ -1,315 +0,0 @@
using System;
using System.Globalization;
using System.Text;
using System.Threading;
using log4net;
using Sensus.iPerl.NfcHandler;
using Sensus.iPerl.RfidCom.Exceptions;
using static Sensus.iPerl.NfcHandler.MCI_Protocol;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
{
internal class NfcServices
{
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
internal static int ReadRequest(TestMethodCfg cfg, IPerlReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, out byte[] buffer)
{
for (int i = 0; i < cfg.MaxCommRetries; i++)
{
NfcDataHandler _nfcDataHandler = new NfcDataHandler();
MessageEventHandlers(_nfcDataHandler);
CR95HF_MessageEventHandlers(_nfcDataHandler._CR95HF_Reader);
ST25DV_MessageEventHandlers(_nfcDataHandler._ST25DV_Device);
MCI_MessageEventHandlers(_nfcDataHandler._MCI_Protocol);
NFCHeadConfig_MessageEventHandlers(_nfcDataHandler._NFCHead_Config);
try
{
rfidDataLogger.Info($"NFC COM{iperlHead.RfidComPortNr} ReadRequest : {structName}, {offset}, {length}");
OpenConnection(_nfcDataHandler, cfg, iperlHead);
buffer = MciRead(_nfcDataHandler, cfg, structName, (ushort)offset, length);
_nfcDataHandler.RFProtocolOFF(); // turn off rf antenna due to possible interference
CloseComPort(_nfcDataHandler);
rfidDataLogger.Info($"NFC COM{iperlHead.RfidComPortNr} ReadRequest : {structName}, {offset}, {length} ; Response= {ByteArrayToHexString(buffer)} ; Error: {_nfcDataHandler.LastErrorMessage}");
if (_nfcDataHandler.LastErrorCode != 0)
{
throw new RfidValidationException(_nfcDataHandler.LastErrorMessage);
}
return Convert.ToInt32(_nfcDataHandler.LastErrorCode); //return 0;
}
catch (RfidValidationException)
{
Thread.Sleep(cfg.WaitTimeAfterFailure);
}
catch (Exception ex)
{
rfidDataLogger.Error($"NFC COM{iperlHead.RfidComPortNr} ReadRequest Error: {ex.Message}");
buffer = new byte[length];
return 3;
}
}
buffer = new byte[length];
return 3;
}
internal static int WriteRequest(TestMethodCfg cfg, IPerlReader iperlHead, MCI_Protocol.StructName structName, int offset, int length, byte[] buffer)
{
NfcDataHandler _nfcDataHandler = new NfcDataHandler();
MessageEventHandlers(_nfcDataHandler);
CR95HF_MessageEventHandlers(_nfcDataHandler._CR95HF_Reader);
ST25DV_MessageEventHandlers(_nfcDataHandler._ST25DV_Device);
MCI_MessageEventHandlers(_nfcDataHandler._MCI_Protocol);
NFCHeadConfig_MessageEventHandlers(_nfcDataHandler._NFCHead_Config);
try
{
rfidDataLogger.Info($"NFC COM{iperlHead.RfidComPortNr} WriteRequest : {structName}, {offset}, {length}, {ByteArrayToHexString(buffer)}");
OpenConnection(_nfcDataHandler, cfg, iperlHead);
MciWrite(_nfcDataHandler, cfg, structName, (ushort)offset, length, buffer);
_nfcDataHandler.RFProtocolOFF(); // turn off rf antenna due to possible interference
CloseComPort(_nfcDataHandler);
return 0;
}
catch (Exception ex)
{
rfidDataLogger.Error($"NFC COM{iperlHead.RfidComPortNr} WriteRequest Error: {ex.Message}");
return 3;
}
}
private static void OpenConnection(NfcDataHandler nfcDataHandler, TestMethodCfg cfg, IPerlReader iperlHead)
{
string comPort = $"COM{iperlHead.RfidComPortNr}";
int retryCount = 0 ;
Open:
nfcDataHandler.Close();
Thread.Sleep(100);
if (nfcDataHandler.OpenConnection(comPort, cfg.BaudRate, cfg.DataBits, cfg.ParityBit, cfg.StopBits))
{
rfidDataLogger.Info($"NFC COM{iperlHead.RfidComPortNr} Port Open");
if (nfcDataHandler.ConnectReader())
{
rfidDataLogger.Info($"NFC COM{iperlHead.RfidComPortNr} Reader connected");
if (!nfcDataHandler.ConnectDevice())
{
rfidDataLogger.Error($"NFC COM{iperlHead.RfidComPortNr} Error connect device.");
for (int i = 0; i < cfg.MaxCommRetries; i++)
{
if (nfcDataHandler.Echo()) break;
}
}
}
else
{
retryCount++;
rfidDataLogger.Error($"NFC COM{iperlHead.RfidComPortNr} Error connect reader. Reconnect comport {retryCount}");
if (retryCount < cfg.MaxCommRetries)
{
nfcDataHandler.Close();
iperlHead.ResetNfcInterface(); // reset NFC head via optoport - switch to RFID and back to NFC interface
goto Open;
}
}
}
else
rfidDataLogger.Error($"Open NFC COM{iperlHead.RfidComPortNr} Port Failed");
}
private static void CloseComPort(NfcDataHandler nfcDataHandler)
{
nfcDataHandler.Close();
}
private static byte[] MciRead(NfcDataHandler nfcDataHandler, TestMethodCfg cfg, StructName structName, ushort offset, int length)
{
bool isReadValues = false;
int retryCount = 0;
Read:
try
{
isReadValues = false;
long num1 = (long)length;
int timeoutMs = 4000;
byte payloadlength = Convert.ToByte(num1.ToString("X2"), 16);
if (nfcDataHandler.MCI_Read(structName, offset, payloadlength, timeoutMs))
{
byte[] lastData = nfcDataHandler.LastData;
if ((long)lastData.Length >= num1)
{
rfidDataLogger.Info($"COM: MciRead ({structName},{offset},{length}) = {ByteArrayToHexString(lastData)}");
return lastData;
}
else
rfidDataLogger.Info($"COM: MciRead ({structName},{offset},{length}) = {ByteArrayToHexString(lastData)}");
}
else if (nfcDataHandler.LastErrorCode == (byte)0)
{
rfidDataLogger.Info($"MCI Error: Unidentified");
retryCount++;
if (retryCount < cfg.MaxCommRetries)
goto Read;
}
else
{
rfidDataLogger.Info("Last error message: " + nfcDataHandler.LastErrorMessage);
retryCount++;
if (retryCount < cfg.MaxCommRetries)
goto Read;
}
}
catch (Exception ex)
{
rfidDataLogger.Error("MciRead Last error message: " + ex.Message);
retryCount++;
if (retryCount < cfg.MaxCommRetries)
goto Read;
}
return new byte[length];
}
private static void MciWrite(NfcDataHandler nfcDataHandler, TestMethodCfg cfg, MCI_Protocol.StructName structName, ushort offset, int length, byte[] payload)
{
int retryCount = 0;
Write:
try
{
long num1 = (long)length;
int timeoutMs = 4000;
byte payloadlength = Convert.ToByte(num1);
if ((int)payloadlength != payload.Length)
rfidDataLogger.Error("Insufficient Payload -- Payload lenth : " + (object)payload.Length);
else if (nfcDataHandler.MCI_Write(structName, offset, payloadlength, payload, timeoutMs))
{
// OK
}
else if (nfcDataHandler.LastErrorCode > (byte)0)
{
rfidDataLogger.Error("Last error message: " + nfcDataHandler.LastErrorMessage);
//int num2 = (int)MessageBox.Show(this._nfcDataHandler.LastErrorMessage);
}
}
catch (Exception ex)
{
rfidDataLogger.Error("MciWrite error message: " + ex.Message);
retryCount++;
if (retryCount < cfg.MaxCommRetries)
goto Write;
}
}
private static void MciWriteCommand(NfcDataHandler nfcDataHandler, byte commandcode)
{
try
{
ushort offset = 0;
int timeoutMs = 4000;
byte payloadlength = 1;
byte[] payload = new byte[1] { commandcode };
if (nfcDataHandler.MCI_Write(MCI_Protocol.StructName.Command, offset, payloadlength, payload, timeoutMs) || nfcDataHandler.LastErrorCode <= (byte)0)
return;
rfidDataLogger.Error("MciWriteCommand Last error message: " + nfcDataHandler.LastErrorMessage);
}
catch (Exception ex)
{
rfidDataLogger.Error("MciWriteCommand Last error message: " + ex.Message);
}
}
public static string ByteArrayToHexString(byte[] data)
{
StringBuilder stringBuilder = new StringBuilder();
foreach (byte num in data)
stringBuilder.Append(num.ToString("X2"));
return stringBuilder.ToString();
}
private static byte[] BuildPayLoad(string strPayLoad, int length)
{
byte[] collection;
if (strPayLoad.Split(':').Length > 1)
{
uint timestamp = ConvertDateTimeToTimestamp(Convert.ToDateTime(DateTime.ParseExact(strPayLoad, "HH:mm:ss dd/MM/yyyy", (IFormatProvider)CultureInfo.InvariantCulture)));
byte[] bytes = BitConverter.GetBytes(timestamp);
return bytes;
}
else if (strPayLoad.Split(',').Length > 1)
{
string[] strArray = strPayLoad.Split(',');
collection = new byte[strArray.Length];
for (int index3 = 0; index3 < strArray.Length; ++index3)
collection[index3] = Convert.ToByte(strArray[index3], 16);
return collection;
}
else
{
//int num = strPayLoad.Split(',').Length;
collection = HexStringToByteArray(strPayLoad.Substring(strPayLoad.Length - length * 2).ToUpper());
Array.Reverse((Array)collection);
return collection;
}
}
public static byte[] HexStringToByteArray(string hexString)
{
int length = hexString.Length;
byte[] byteArray = new byte[length / 2];
for (int startIndex = 0; startIndex < length; startIndex += 2)
byteArray[startIndex / 2] = Convert.ToByte(hexString.Substring(startIndex, 2), 16);
return byteArray;
}
private static uint ConvertDateTimeToTimestamp(DateTime datetime)
{
TimeSpan utcOffset = TimeZone.CurrentTimeZone.GetUtcOffset(DateTime.Now);
return (uint)((datetime - new DateTime(2000, 1, 1, 0, 0, 0).ToLocalTime()).TotalSeconds + utcOffset.TotalSeconds);
}
#region EventHandlers
public static void MCI_MessageEventHandlers(MCI_Protocol e)
{
DelNfc_MCI_MessageHandler mciMessageHandler = new DelNfc_MCI_MessageHandler(OnHandler);
e.MessageEvent += mciMessageHandler;
}
public static void ST25DV_MessageEventHandlers(ST25DV_Device e)
{
DelNfc_ST25DV_MessageHandler dvMessageHandler = new DelNfc_ST25DV_MessageHandler(OnHandler);
e.MessageEvent += dvMessageHandler;
}
public static void CR95HF_MessageEventHandlers(CR95HF_Reader e)
{
DelNfc_CR95HF_MessageHandler hfMessageHandler = new DelNfc_CR95HF_MessageHandler(OnHandler);
e.MessageEvent += hfMessageHandler;
}
public static void NFCHeadConfig_MessageEventHandlers(NFCHeadConfig e)
{
DelNfc_NFCHeadConfig_MessageHandler configMessageHandler = new DelNfc_NFCHeadConfig_MessageHandler(OnHandler);
e.MessageEvent += configMessageHandler;
}
public static void MessageEventHandlers(NfcDataHandler e)
{
DelNfcMessageHandler nfcMessageHandler = new DelNfcMessageHandler(OnHandler);
e.MessageEvent += nfcMessageHandler;
}
public static void OnHandler(object sender, NfcMessageEventArgs e)
{
if (e.Message == null)
return;
string message = e.Message.Replace("\n", " ").Replace("\r", "");
rfidDataLogger.Debug(message);
}
#endregion
}
}
@@ -1,9 +1,15 @@
using System;
using Common;
using Config.Resources;
using log4net;
using Sensus.iPerl.RfidCom.Helper;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Protocols;
using TBF.Rig.RegisterReaders.PoseidonReader.communication.C7.Utils;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.implementations;
using static Sensus.iPerl.NfcHandler.MCI_Protocol;
namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
@@ -11,50 +17,89 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
internal class OpticalHeadTest
{
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
DebugMode _debugMode;
public DebugMode DebugMode { get => _debugMode; set => _debugMode = value; }
internal static string OpenSealing(IPerlReader iHead)
internal static string OpenSealing(ISmartReader iHead)
{
if (RfidCommands.OpenSealing($"COM{iHead.RfidComPortNr}")) return "OK";
return "Error Open Sealing";
}
internal static string ReadRequest_PCB(IPerlReader iHead)
internal static string ReadRequest_SerialNo(PoseidonCfg iHeadCfg)
{
if (iHeadCfg != null && iHeadCfg.DebugLevel == DebugMode.Simulate)
{
return "1111";
}
string serialNo = null;
try
{
byte[] pcb = null;
int readRetVal = IPerlCorrections.ReadRequestPort(SmartCommunicationForm.TestMethodCfg, iHead, CommonRR.MessageID.Configuration, Sensus.iPerl.NfcHandler.MCI_Protocol.StructName.Configuration, 16, 5, out pcb);
if (readRetVal == 0)
if (iHeadCfg != null)
{
return RfidHelper.HexLiteral2Unsigned(RfidHelper.SwapHexcode(BitConverter.ToString(pcb).Replace("-", string.Empty))).ToString();
// TODO BUMI set correct val !!!!!!!!
SerialPortData serialPortData = new SerialPortData(
$"COM{iHeadCfg.HeadCommunicationComPortNr}",
iHeadCfg.CliProgramName,
iHeadCfg.CliMeterType);
NfcHeadServiceOld headService = new NfcHeadServiceOld(serialPortData);
serialNo = headService.GetSerialNr();
}
rfidDataLogger.Error($"COM{iHead.RfidComPortNr}: ReadRequest_PCB ({CommonRR.MessageID.Configuration},16,5...) <- Error: {readRetVal}");
return "Error";
}
catch (Exception ex)
{
return (ex.Message.ToString());
}
return serialNo;
}
internal static string ReadRequest_SerialNoAsynch(PoseidonCfg iHeadCfg)
{
string serialNo = null;
try
{
if (iHeadCfg != null)
{
// TODO BUMI set correct val !!!!!!!!
SerialPortData serialPortData = new SerialPortData(
$"COM{iHeadCfg.HeadCommunicationComPortNr}",
iHeadCfg.CliProgramName,
iHeadCfg.CliMeterType);
NfcHeadService headService = new NfcHeadService(serialPortData);
// Wait synchronously
serialNo = headService.GetSerialNrAsync().GetAwaiter().GetResult();
}
}
catch (Exception ex)
{
return (ex.Message.ToString());
}
return serialNo;
}
internal static string SetActiveMode(IPerlReader iHead)
internal static string SetActiveMode(PoseidonCfg iHeadCfg)
{
byte[] cmd = new byte[1] { (byte)CommonRR.Command.SetActiveMode };
if (0 == IPerlCorrections.WriteRequestPort(SmartCommunicationForm.TestMethodCfg, iHead, CommonRR.MessageID.Command, StructName.Command, 0, 1, cmd))
if (iHeadCfg != null && iHeadCfg.DebugLevel == DebugMode.Simulate)
{
return "OK";
}
else
{
return "Error Set Active Mode";
}
}
internal static string SetTestMode(IPerlReader iHead)
{
byte[] cmd = new byte[1] { (byte)CommonRR.Command.SetTestMode };
if (0 == IPerlCorrections.WriteRequestPort(SmartCommunicationForm.TestMethodCfg, iHead, CommonRR.MessageID.Command, StructName.Command, 0, 1, cmd))
SerialPortData serialPortData = new SerialPortData(
$"COM{iHeadCfg.RfidComPortNr}",
iHeadCfg.CliProgramName,
iHeadCfg.CliMeterType);
NfcHeadServiceOld headService = new NfcHeadServiceOld(serialPortData);
// Wait synchronously
OptoHeadStatus optoHeadStatus = headService.SetTestingMode(OptoHeadStatus.OptoHeadDisabled);
if (optoHeadStatus == OptoHeadStatus.OptoHeadDisabled)
{
_lastOptoHeadStatus = optoHeadStatus;
return "OK";
}
else
@@ -63,8 +108,91 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
}
}
private static OptoHeadStatus _lastOptoHeadStatus = OptoHeadStatus.Unknown;
private static PoseidonCfg _lastIHeadCfg;
internal static string SetTestMode(PoseidonCfg iHeadCfg)
{
if (iHeadCfg != null && iHeadCfg.DebugLevel == DebugMode.Simulate)
{
return "OK";
}
SerialPortData serialPortData = new SerialPortData(
$"COM{iHeadCfg.RfidComPortNr}",
iHeadCfg.CliProgramName,
iHeadCfg.CliMeterType);
NfcHeadServiceOld headService = new NfcHeadServiceOld(serialPortData);
// Wait synchronously
OptoHeadStatus optoHeadStatus = headService.SetTestingMode(OptoHeadStatus.OptoHeadC7);
if (optoHeadStatus == OptoHeadStatus.OptoHeadC7)
{
_lastOptoHeadStatus = optoHeadStatus;
_lastIHeadCfg = iHeadCfg;
return "OK";
}
else
{
return "Error Set Test Mode";
}
}
private static OptoHeadService optoHeadService;
public static void Deactivate()
{
if (_lastIHeadCfg != null && _lastIHeadCfg.DebugLevel == DebugMode.Simulate)
{
return;
}
StopOptoTestInputLoop();
if (_lastOptoHeadStatus != OptoHeadStatus.Unknown &&
_lastOptoHeadStatus != OptoHeadStatus.OptoHeadDisabled &&
_lastIHeadCfg != null
)
{
SetActiveMode(_lastIHeadCfg);
}
}
public static bool StartOptotestInputLoop(PoseidonCfg iHeadCfg,
EventHandler<CommonRR.IPerl.communication.OptoReceivedEventArgs> onOptoReceivedHandler)
{
try
{
if (iHeadCfg != null)
{
if (optoHeadService != null) return false;
OptoHeadService.Con connection = new OptoHeadService.Con($"COM{iHeadCfg.OptoComPortNr}", iHeadCfg.DebugLevel);
optoHeadService = new OptoHeadService(connection);
optoHeadService.CreateSerialConnection();
optoHeadService.RunLoop(onOptoReceivedHandler);
//run loop runstate = true;
return true;
}
}
catch (Exception ex)
{
throw ex;
}
return false;
}
public static void StopOptoTestInputLoop()
{
try
{
optoHeadService?.CloseSerialConnection();
}
finally
{
optoHeadService = null;
}
}
#if IPERL
internal static string TurnOffRadio(IPerlReader iHead)
internal static string TurnOffRadio(ISmartReader iHead)
{
try
{
@@ -77,7 +205,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
}
}
internal static string SetProductionMode(IPerlReader iHead)
internal static string SetProductionMode(ISmartReader iHead)
{
try
{
@@ -90,7 +218,7 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
}
}
internal static string WriteRequestPort_u8_Customer_Text(IPerlReader iHead)
internal static string WriteRequestPort_u8_Customer_Text(ISmartReader iHead)
{
string custText = "FF0123456789ABCDEF"; // Sample text to test write function
/*try
@@ -110,17 +238,17 @@ namespace TBF.Rig.RegisterReaders.PoseidonReader.communication
return $"Error COM{iHead.RfidComPortNr}";
}
internal static string SetRfidMode(IPerlReader iHead)
internal static string SetTouchedMode(ISmartReader iHead)
{
iHead.SetRfidInterface();
iHead.SetCommunicationInterface(CommunicationInterface.RFID);
iHead.SetCommunicationInterface(ECommunicationInterface.Touched.ToDescription());
return ($"OK - {Strings.Program_restart_is_required_to_apply_some_settings}");
}
internal static string SetNfcMode(IPerlReader iHead)
internal static string SetNfcMode(ISmartReader iHead)
{
iHead.SetNfcInterface();
iHead.SetCommunicationInterface(CommunicationInterface.NFC);
iHead.SetCommunicationInterface(ECommunicationInterface.Nfc.ToDescription());
return ($"OK - {Strings.Program_restart_is_required_to_apply_some_settings}");
}
#endif /// IPERL
@@ -1,126 +0,0 @@
using System;
using System.Text.RegularExpressions;
using System.Threading;
using log4net;
using Sensus.iPerl.RfidCom;
using Sensus.iPerl.RfidCom.Exceptions;
using Sensus.iPerl.RfidCom.Helper;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
namespace TBF.Rig.RegisterReaders.PoseidonReader.comminication
{
internal class RfidServices
{
protected static readonly ILog rfidDataLogger = LogManager.GetLogger("RfidData");
private static readonly ILog log = LogManager.GetLogger(typeof(SmartCommunicationForm));
internal static int ReadRequest(TestMethodCfg cfg, IPerlReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
{
for (int i = 0; i < cfg.MaxCommRetries; i++)
{
rfidDataLogger.Error($"{iperlHead.CommInterface} Start {i} reading: COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},{offset}, {length}... timeout {cfg.CommTimeout})");
using (RfidLogic writer = new RfidLogic($"COM{iperlHead.RfidComPortNr}"))
{
try
{
byte[] response = writer.ReadRequest((byte)messageID, offset, length, cfg.CommTimeout);
string hexString = RfidHelper.ConvertByteArrayToHexString(response);
string swapHexString = RfidHelper.SwapHexcode(hexString);
string decString = RfidHelper.HexLiteral2Unsigned(RfidHelper.SwapHexcode(hexString)).ToString();
if (length > 10)
{
//if the result only contains "00"s we are working on the wrong COM port
// or the module just isn't connected
if (Regex.IsMatch(hexString, @"^(00)\1+$"))
{
rfidDataLogger.Error($"COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...) <- Error: No RFID signal.");
throw new RfidValidationException("Error_Rfid_NoSignal");
}
//if the result only contains "03"s the meter did not answer.
// Might be due to the module being positioned incorrectly.
if (Regex.IsMatch(hexString, @"^(03)\1+$"))
{
rfidDataLogger.Error($"COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...) <- Error: No meter signal.");
throw new RfidValidationException("Error_Rfid_NoAnswerFromMeter");
}
}
writer.ClosePort();
buffer = response;
rfidDataLogger.Info($"{iperlHead.Name} ({iperlHead.SerialNr}): ReadRequestPort(COM{iperlHead.RfidComPortNr},...) returned HEX: {hexString}; SwapHexCodeToDecimal: {decString}");
return 0;
}
catch (RfidDataNotAvailableException)
{
if (/*RfidHelper.IsPassThrough(messageID)*/ messageID == MessageID.ASICRegisterReadTest || messageID == MessageID.RadioPassthrough)
{
rfidDataLogger.Info($"COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...) {(i > 0 ? "<- Error: Invalid Pass-Through data." : "<- Info: Wait for Pass-Through data.")}");
Thread.Sleep(cfg.PassThroughWaitTime);
}
else
{
Thread.Sleep(cfg.WaitTimeAfterFailure);
}
}
catch (RfidValidationException)
{
Thread.Sleep(cfg.WaitTimeAfterFailure);
}
catch (Exception ex)
{
rfidDataLogger.Error($"COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...) {ex.Message}");
Thread.Sleep(cfg.WaitTimeAfterFailure);
}
}
}
rfidDataLogger.Error($"{iperlHead.CommInterface} reading failed after {cfg.MaxCommRetries} retries: COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...)");
log.Error($"{iperlHead.CommInterface} reading failed after {cfg.MaxCommRetries} retries: COM{iperlHead.RfidComPortNr}: ReadRequestPort ({messageID},...)");
buffer = new byte[length];
return 3;
}
internal static int WriteRequest(TestMethodCfg cfg, IPerlReader iperlHead, MessageID messageID, int offset, int length, byte[] buffer)
{
RfidLogic writer = new RfidLogic($"COM{iperlHead.RfidComPortNr}");
string payload = RfidHelper.ConvertByteArrayToHexString(buffer);
for (var i = 0; i < cfg.MaxCommRetries; i++)
{
rfidDataLogger.Error($"{iperlHead.CommInterface} Start {i} writting: COM{iperlHead.RfidComPortNr}: WriteRequest ({messageID},{offset}, {length}, {payload}... timeout {cfg.CommTimeout})");
try
{
if (writer.ClosePort()) writer.OpenPort();
writer.WriteRequest((byte)messageID, offset, length, buffer, cfg.CommTimeout, false);
writer.ClosePort();
rfidDataLogger.InfoFormat($"{iperlHead.Name}({iperlHead.SerialNr},COM{iperlHead.RfidComPortNr}): WriteRequestPort({messageID}, {offset}, {length}, {payload})");
return 0;
}
catch (Exception ex)
{
if (messageID == MessageID.RadioPassthrough || messageID == MessageID.ASICRegisterReadTest)
{
Thread.Sleep(1500);
}
else
{
rfidDataLogger.Error($"COM{iperlHead.RfidComPortNr}: Error: {ex.Message}");
Thread.Sleep(cfg.WaitTimeAfterFailure);
if (i > 1)
{
rfidDataLogger.Error($"COM{iperlHead.RfidComPortNr}: Reopen the com port.");
writer.ClosePort();
}
}
}
}
writer.ClosePort();
rfidDataLogger.Error($"RFID writing failed after {cfg.MaxCommRetries} retries: COM{iperlHead.RfidComPortNr}: WriteRequestPort ({messageID},...) {System.Text.Encoding.UTF8.GetString(buffer)}");
log.Error($"RFID writing failed after {cfg.MaxCommRetries} retries: COM{iperlHead.RfidComPortNr}: WriteRequestPort ({messageID},...) {System.Text.Encoding.UTF8.GetString(buffer)}");
return 2;
}
}
}
@@ -1,65 +0,0 @@
using System;
using System.Linq;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.RegisterReaders.CommonRR.IPerl.communication;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication;
namespace TBF.Rig.RegisterReaders.PoseidonReader.comminication
{
internal class SimulationServices
{
const int Q2CorrFactorsAddr = iPerlCommunicationConstants.Q2CorrFactorsAddr;
internal static int ReadRequest(IPerlReader iperlHead, MessageID messageID, int offset, int length, out byte[] buffer)
{
byte[] configurationBuffer = new byte[ConfigStruct.Length] { 3, 3, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 2, 3, 4, 5, 160, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };
byte[] calibrationBuffer = new byte[CalibrationStructV4.Length] { 3, 0, 150, 10, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 1, 2, 3, 4, 5, 0, 0, 150, 10 };
buffer = new byte[length];
if (messageID == MessageID.Configuration)
{
Array.Copy(GetPCB(iperlHead), 0, configurationBuffer, 16, 5); // set PCB Number according to iPerlHead configuration
Array.Copy(configurationBuffer,offset,buffer,0,length);
}
else if (messageID == MessageID.Calibration)
{
Array.Copy(calibrationBuffer, offset, buffer, 0, length);
}
else if ((messageID == MessageID.MetrologyMemory) && (offset == Q2CorrFactorsAddr) && (length == 2))
{
buffer = new byte[2] { 0, 0 };
}
else
{
buffer = new byte[length];
}
return iperlHead.Name.Equals("iPerl13") ? 2 : 0; /// Simulates an error on position 13
}
internal static int WriteRequest(TestMethodCfg cfg, IPerlReader iperlHead, MessageID messageID, int offset,
int length, byte[] buffer)
{
return 0;
}
private static Array GetPCB(IPerlReader iperlHead)
{
string pcbStr = iperlHead.RfidComPortNr.ToString().PadRight(10,'0') + iperlHead.Position.ToString("D2");
long decVal = Convert.ToInt64(pcbStr);
string nHexStr = decVal.ToString("X4");
string hexStr = "";
for (int a = nHexStr.Length; a >= 1; a = a - 2)
{
hexStr = hexStr + nHexStr.Substring(a - 2, 2);
}
return Enumerable.Range(0, hexStr.Length)
.Where(x => x % 2 == 0)
.Select(x => Convert.ToByte(hexStr.Substring(x, 2), 16))
.ToArray();
}
}
}
@@ -0,0 +1,136 @@
using System;
using System.Collections.Generic;
using System.Linq;
using System.Threading;
using System.Web.UI.WebControls;
using System.Windows.Forms;
using Common;
using TBF.Rig.Generic;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.common;
using TBF.Rig.RegisterReaders.PoseidonReader.communication;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
using OptoReceivedEventArgs = TBF.Rig.RegisterReaders.CommonRR.IPerl.communication.OptoReceivedEventArgs;
namespace TBF.Rig.RegisterReaders.PoseidonReader.implementations
{
public class PoseidonImplHeadTestCtrl : IUniHeadTestCtrl
{
// ----------MEMBER VARIABLES--------------
Thread optoThread;
public enum Operations
{
[Description("ReadSerialNo")]ReadSerialNo,
[Description("SetTestModeON")]SetTestModeOn,
[Description("SetTestModeOFF")]SetTestModeOff,
[Description("")]Empty
}
public static readonly Dictionary<string, Operations> ItemsOperations = new Dictionary<string, Operations>
{
{"Read Serial No", Operations.ReadSerialNo},
{"Set Test Mode ON", Operations.SetTestModeOn},
{"Set Test Mode OFF", Operations.SetTestModeOff},
{"", Operations.Empty}
};
// ----------IMPLEMENTATION INTERFACE--------------
public IComponentCfg config { get; set; }
public ISmartReader ISmartReader { get; set; }
public bool stopWorkerThread { get; set; }
public event EventHandler<OptoReceivedEventArgs> OptoReceivedHandler;
public void Initialize()
{
stopWorkerThread = false;
}
public void Destroy()
{
stopWorkerThread = true;
if (optoThread != null)
{
optoThread.Abort();
}
OpticalHeadTest.StopOptoTestInputLoop(); // close opto port
if (this.config is PoseidonCfg poseidonCfg)
{
OpticalHeadTest.SetActiveMode(poseidonCfg);
}
}
public (string Name, string Value)[] GetComboOperationsPairs()
{
//return ItemsForIperlOperations.Select(kvp => (kvp.Key, kvp.Value)).ToArray();
return ItemsOperations.Select(kvp => (kvp.Key, kvp.Value.ToDescription())).ToArray();
}
public void CommandTestButtonClick(object sender, MouseEventArgs e, Arguments a)
{
a.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");
Operations selectedOperation;
if(!ItemsOperations.TryGetValue((string)a.RfidCommandComboBox.SelectedValue, out selectedOperation))
selectedOperation = Operations.Empty;
if (this.config is PoseidonCfg poseidonCfg)
{
switch (selectedOperation)
{
case Operations.ReadSerialNo:
rfidListItem.Text = $"ReadSerialNo: {OpticalHeadTest.ReadRequest_SerialNo(poseidonCfg)}";
break;
case Operations.SetTestModeOn:
rfidListItem.Text = $"SetTestMode: {OpticalHeadTest.SetTestMode(poseidonCfg)}";
//Do start thread
a.OptoListBox.Items.Clear();
stopWorkerThread = false;
optoThread = new Thread(OptoWorker);
if (!optoThread.IsAlive)
{
OpticalHeadTest.StartOptotestInputLoop(poseidonCfg,OptoReceivedHandler); // open opto port
optoThread.Start();
}
break;
case Operations.SetTestModeOff:
//Do stop thread
// rfidListItem.Text = OpticalHeadTest.SetActiveMode(_iPerlReader);
stopWorkerThread = true;
OpticalHeadTest.StopOptoTestInputLoop(); // close opto port
//Do switch off test mode
rfidListItem.Text = $"SetActiveMode: {OpticalHeadTest.SetActiveMode(poseidonCfg)}";
break;
default:
rfidListItem.Text = @"--";
break;
}
}
a.RfidOutputListBox.Items.Add(rfidListItem);
a.RfidOutputListBox.Items.AddRange(logChecker.Messages.ToArray());
}
}
public void OptoWorker()
{
while (!this.stopWorkerThread)
{
Thread.Sleep(250);
if (this.stopWorkerThread)
break;
}
}
public void CloseOptoWorker()
{
this.stopWorkerThread = true;
}
}
}
@@ -0,0 +1,177 @@
using System.IO;
using Common;
using Config.Entities;
using log4net;
using TBF.Rig.Generic;
using TBF.Rig.GenericDevices;
using TBF.Rig.RegisterReaders.CommonRR;
using TBF.Rig.Uni.SharedDialogs.SmartMetersCommunication.common;
namespace TBF.Rig.RegisterReaders.PoseidonReader.implementations
{
public enum CommunicationInterface
{
Nfc,
Touched,
}
public class PoseidonReader : ComponentBase, IDevice, IRegReaderDatastream, ISessionDataMngmnt, IOperation, ISmartReader
{
private static readonly ILog log = LogManager.GetLogger(typeof(PoseidonReader));
public PoseidonReader()
{
_pulsesPerLtr = 0;
_ltrsPerPulse = 0;
_wmPulses = 0;
_wmRefPulses = 0;
_wmVolume = 0;
_beginWmState = 0;
_endWmState = 0;
}
public override string ToString()
{
return string.Format("{0}({1})", ClassName, Cfg.ToString(-1));
}
public override void Initialize()
{
}
public void RunDeviceBefore()
{
}
public void RunDeviceAfter()
{
}
public void StopDevice()
{
}
public void StopDevice2()
{
}
public bool Disabled { get; set; }
public RegisterReaderType RegisterReaderType { get; }
public string SerialNr { get; set; }
public int Position { get; }
public string CommInterface { get; }
public int RfidComPortNr { get; }
public bool CommFailed { get; set; }
public void ResetNfcInterface(bool? nfc_on = null)
{
throw new System.NotImplementedException();
}
public string ReadOptoData()
{
throw new System.NotImplementedException();
}
public void SetNfcInterface()
{
throw new System.NotImplementedException();
}
public void SetRfidInterface()
{
throw new System.NotImplementedException();
}
public void StopDataStreamProcessing()
{
throw new System.NotImplementedException();
}
public void StartDataStreamProcessing()
{
throw new System.NotImplementedException();
}
public void SetCommunicationInterface(string commInterface)
{
throw new System.NotImplementedException();
}
public void WriteBinary(BinaryWriter writer)
{
throw new System.NotImplementedException();
}
public void ReadBinary(BinaryReader reader)
{
throw new System.NotImplementedException();
}
private double _pulsesPerLtr ;
private double _ltrsPerPulse ;
private int _wmPulses ;
private int _wmRefPulses ;
private double _wmVolume ;
private double _beginWmState ;
private double _endWmState ;
public double PulsesPerLtr { get => _pulsesPerLtr; }
public double LtrsPerPulse { get => _ltrsPerPulse; }
public int WMPulses { get => _wmPulses; }
public int WMRefPulses { get =>_wmRefPulses; }
public double WMVolume { get =>_wmVolume; }
public double BeginWMState { get => _beginWmState; set => _beginWmState = value; }
public double EndWMState { get => _endWmState; set => _endWmState = value; }
public IOperation ReadDatastreamOp()
{
throw new System.NotImplementedException();
}
public void TestIsGoingToStartSoon(Test test, int repetitionNr)
{
throw new System.NotImplementedException();
}
public bool NoSamples { get; }
public double VolumeLtrStart { get; }
public double VolumeLtrEnd { get; }
public double TimestampSecStart { get; }
public double TimestampSecEnd { get; }
public void StartSession()
{
throw new System.NotImplementedException();
}
public void SaveMark(object mark)
{
throw new System.NotImplementedException();
}
public void EndSession()
{
throw new System.NotImplementedException();
}
public void Start()
{
throw new System.NotImplementedException();
}
public Event Run()
{
throw new System.NotImplementedException();
}
public void Stop()
{
throw new System.NotImplementedException();
}
}
}
@@ -1,5 +1,6 @@
using TBF.Rig.Generic;
using System.Collections.Generic;
using TBF.Rig.TestMethods.iPerlCommunication.iPerlHead;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
{
@@ -9,9 +10,9 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
public override string ToString() { return ClassName; }
public IComponent DummyComponent() { return new IPerlReader(); }
public IComponent DummyComponent() { return new IperlHead(); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return new IPerlReader(cfg); }
public IComponent GetComponent(IComponentCfg cfg, IList<IComponent> components) { return null; }
public IComponentCfg DefaultConfig() { return new IPerlCfg(this); }
@@ -14,7 +14,7 @@ namespace TBF.Rig.RegisterReaders.iPerlReaderUNI
public override XmlSerializer GetSerializer() { return Serializer; }
public IComponentCfgCtrl GetControl(IList<Component> cmpntEntities)
{
return new RegisterReaders.iPerlReaderUNI.IPerlUniCfgCtrl();
return new IPerlReader.IPerlUniCfgCtrl();
}
@@ -0,0 +1,97 @@
using System.Web.UI;
using System.Windows.Forms;
using TBF.Rig.RegisterReaders.iPerlReaderUNI.iCommon;
namespace TBF.Rig.RegisterReaders.iPerlReaderUNI.IPerlS4
{
public class IperlHeadTestCtrl : UNIHeadTestCtrl
{
System.Windows.Forms.ListBox rfidOutputListBox;
public IperlHeadTestCtrl(ListBox rfidOutputListBox)
{
this.rfidOutputListBox = rfidOutputListBox;
var foo = 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" }
};
}
public 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());
}
}
}
}

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