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path: root/Software/Visual_Studio/Tango.PMR/Connection/DisconnectResponse.cs
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// Generated by the protocol buffer compiler.  DO NOT EDIT!
// source: DisconnectResponse.proto
#pragma warning disable 1591, 0612, 3021
#region Designer generated code

using pb = global::Google.Protobuf;
using pbc = global::Google.Protobuf.Collections;
using pbr = global::Google.Protobuf.Reflection;
using scg = global::System.Collections.Generic;
namespace Tango.PMR.Connection {

  /// <summary>Holder for reflection information generated from DisconnectResponse.proto</summary>
  public static partial class DisconnectResponseReflection {

    #region Descriptor
    /// <summary>File descriptor for DisconnectResponse.proto</summary>
    public static pbr::FileDescriptor Descriptor {
      get { return descriptor; }
    }
    private static pbr::FileDescriptor descriptor;

    static DisconnectResponseReflection() {
      byte[] descriptorData = global::System.Convert.FromBase64String(
          string.Concat(
            "ChhEaXNjb25uZWN0UmVzcG9uc2UucHJvdG8SFFRhbmdvLlBNUi5Db25uZWN0",
            "aW9uIhQKEkRpc2Nvbm5lY3RSZXNwb25zZUIgCh5jb20udHdpbmUudGFuZ28u",
            "cG1yLmNvbm5lY3Rpb25iBnByb3RvMw=="));
      descriptor = pbr::FileDescriptor.FromGeneratedCode(descriptorData,
          new pbr::FileDescriptor[] { },
          new pbr::GeneratedClrTypeInfo(null, new pbr::GeneratedClrTypeInfo[] {
            new pbr::GeneratedClrTypeInfo(typeof(global::Tango.PMR.Connection.DisconnectResponse), global::Tango.PMR.Connection.DisconnectResponse.Parser, null, null, null, null)
          }));
    }
    #endregion

  }
  #region Messages
  public sealed partial class DisconnectResponse : pb::IMessage<DisconnectResponse> {
    private static readonly pb::MessageParser<DisconnectResponse> _parser = new pb::MessageParser<DisconnectResponse>(() => new DisconnectResponse());
    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public static pb::MessageParser<DisconnectResponse> Parser { get { return _parser; } }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public static pbr::MessageDescriptor Descriptor {
      get { return global::Tango.PMR.Connection.DisconnectResponseReflection.Descriptor.MessageTypes[0]; }
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    pbr::MessageDescriptor pb::IMessage.Descriptor {
      get { return Descriptor; }
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public DisconnectResponse() {
      OnConstruction();
    }

    partial void OnConstruction();

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public DisconnectResponse(DisconnectResponse other) : this() {
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public DisconnectResponse Clone() {
      return new DisconnectResponse(this);
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public override bool Equals(object other) {
      return Equals(other as DisconnectResponse);
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public bool Equals(DisconnectResponse other) {
      if (ReferenceEquals(other, null)) {
        return false;
      }
      if (ReferenceEquals(other, this)) {
        return true;
      }
      return true;
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public override int GetHashCode() {
      int hash = 1;
      return hash;
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public override string ToString() {
      return pb::JsonFormatter.ToDiagnosticString(this);
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public void WriteTo(pb::CodedOutputStream output) {
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public int CalculateSize() {
      int size = 0;
      return size;
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public void MergeFrom(DisconnectResponse other) {
      if (other == null) {
        return;
      }
    }

    [global::System.Diagnostics.DebuggerNonUserCodeAttribute]
    public void MergeFrom(pb::CodedInputStream input) {
      uint tag;
      while ((tag = input.ReadTag()) != 0) {
        switch(tag) {
          default:
            input.SkipLastField();
            break;
        }
      }
    }

  }

  #endregion

}

#endregion Designer generated code
"p">; //HeaterControl[HeaterId].sensorcorrectionadjustment = request->sensorcorrectionadjustment; //sensorminvalue,sensormaxvalue are used for the dryer heater as internal heater control //HeaterControl[HeaterId].sensortypeandsetpointlimits = request->sensortypeandsetpointlimits; //HeaterControl[HeaterId].setpointramprateorsoftstartramp = request->setpointramprateorsoftstartramp; //HeaterControl[HeaterId].setpointcontroloutputrate = request->setpointcontroloutputrate; //HeaterControl[HeaterId].ssrcontroloutputtype = request->ssrcontroloutputtype; //HeaterControl[HeaterId].outputonoffhysteresisvalues = request->outputonoffhysteresisvalue; //HeaterControl[HeaterId].processvariablesamplingrate = request->processvariablesamplingrate; //HeaterControl[HeaterId].pvinputfilterfactormode = request->pvinputfilterfactormode; if (HeaterId < MAX_AC_HEATERS) AcHeaterConfigured[HeaterId] = true; return OK; } return ERROR; } /* * HeaterConfigSetSharedHeatersParams - prepare the time slices for A/C heaters co-ordinated operation * called by the general hardware HWConfigurationFunc * parameters - the cycle time for the coordinated operation, the size (in MCU cycles) of a single step. */ uint32_t HeaterConfigSetSharedHeatersParams(uint32_t outputproportionalcycletime, uint32_t outputproportionalsinglestep) { int Slice_i; int Heater1000Slices,Heater200aSlices /*,Heater200bSlices Currently both 200W heaters will work together*/; //A/C Heaters Cycle time in milliseconds - one for all heaters OutputProportionalCycleTime = outputproportionalcycletime; //A/C Heaters step size from one decision point to another - in cpu clocks. 120000 = 1 millisecod OutputProportionalSingleStep = outputproportionalsinglestep; // calculate how many milliseconds is in each operating cycle (should be an integer number) MillisecondsPerChange = OutputProportionalSingleStep/120000; // calculate how many time slices are used. the total cycle time / the length of one operating cycle. (one added to put a time gap??? TBD) NumberOFSlicesInUse = (OutputProportionalCycleTime/MillisecondsPerChange); if (NumberOFSlicesInUse > MAX_TIMESLICES ) { LOG_ERROR (NumberOFSlicesInUse, "NumberOFSlicesInUse too high"); return ERROR;//NumberOFSlicesInUse = MAX_TIMESLICES; } // all numbers are rounded down. better to have carefully calculated numbers Heater1000Slices = HeaterControl[HEATER_TYPE__DryerMainHeater].outputproportionalpowerlimit * NumberOFSlicesInUse / 100; Heater200aSlices = HeaterControl[HEATER_TYPE__DryerSecondaryHeater].outputproportionalpowerlimit * NumberOFSlicesInUse / 100; if ((Heater1000Slices + Heater200aSlices +2)>NumberOFSlicesInUse) { LOG_ERROR (NumberOFSlicesInUse, "proportional time slices too high too high"); return ERROR;//NumberOFSlicesInUse = MAX_TIMESLICES; } //mark the time slices for heaters operation as empty / Heater1000 / Heater 200 memset (TimeSliceAllocation,0xFF,sizeof(TimeSliceAllocation)); for (Slice_i = 0; Slice_i < Heater1000Slices;Slice_i++ ) TimeSliceAllocation[Slice_i] = HEATER_TYPE__DryerMainHeater; for (Slice_i = Heater1000Slices+1; Slice_i <= Heater1000Slices+Heater200aSlices;Slice_i++ ) TimeSliceAllocation[Slice_i] = HEATER_TYPE__DryerSecondaryHeater; return OK; } /* * HeaterRecalculateSharedHeatersParams - * * parameters - the cycle time for the coordinated operation, the size (in MCU cycles) of a single step. */ uint32_t stub_heating_limit = 100; uint32_t HeaterRecalculateSharedHeatersParams(uint32_t deviceId, uint32_t new_outputproportionalpowerlimit) { int Slice_i; int Heater1000Slices,Heater200aSlices /*,Heater200bSlices Currently both 200W heaters will work together*/; uint32_t stub_outputproportionalpowerlimit = new_outputproportionalpowerlimit; if (NumberOFSlicesInUse > MAX_TIMESLICES ) { LOG_ERROR (NumberOFSlicesInUse, "NumberOFSlicesInUse too high"); return ERROR;//NumberOFSlicesInUse = MAX_TIMESLICES; } if (stub_outputproportionalpowerlimit > stub_heating_limit) stub_outputproportionalpowerlimit = stub_heating_limit; // all numbers are rounded down. better to have carefully calculated numbers HeaterControl[deviceId].outputproportionalpowerlimit = stub_outputproportionalpowerlimit;///100; Heater1000Slices = HeaterControl[HEATER_TYPE__DryerMainHeater].outputproportionalpowerlimit * NumberOFSlicesInUse / 100; Heater200aSlices = HeaterControl[HEATER_TYPE__DryerSecondaryHeater].outputproportionalpowerlimit * NumberOFSlicesInUse / 100; //#warning temporary disable time slice control as we are working with one heater in run time /* if ((Heater1000Slices + Heater200aSlices +2)>NumberOFSlicesInUse) { LOG_ERROR (NumberOFSlicesInUse, "proportional time slices too high too high"); return ERROR;//NumberOFSlicesInUse = MAX_TIMESLICES; } */ //mark the time slices for heaters operation as empty / Heater1000 / Heater 200 memset (TimeSliceAllocation,0xFF,sizeof(TimeSliceAllocation)); for (Slice_i = 0; Slice_i < Heater1000Slices;Slice_i++ ) TimeSliceAllocation[Slice_i] = HEATER_TYPE__DryerMainHeater; for (Slice_i = Heater1000Slices+1; Slice_i <= Heater1000Slices+Heater200aSlices;Slice_i++ ) TimeSliceAllocation[Slice_i] = HEATER_TYPE__DryerSecondaryHeater; return OK; } /* * HeaterRecalculateHeaterParams - prepare the time slices for D/C heaters operation * called by the general hardware HWConfigurationFunc * parameters - the cycle time for the coordinated operation, the size (in MCU cycles) of a single step. */ uint32_t HeaterRecalculateHeaterParams(uint32_t deviceId, uint32_t new_outputproportionalpowerlimit) { // calculate how many milliseconds is in each operating cycle (should be an integer number) //uint32_t MillisecondsPerChange = OutputProportionalSingleStep/120000; // calculate how many time slices are used. the total cycle time / the length of one operating cycle. (one added to put a time gap??? TBD) //NumberOFSlicesInUse = (OutputProportionalCycleTime/MillisecondsPerChange); if (NumberOFSlicesInUse > MAX_TIMESLICES ) { LOG_ERROR (NumberOFSlicesInUse, "NumberOFSlicesInUse too high"); return ERROR;//NumberOFSlicesInUse = MAX_TIMESLICES; } // all numbers are rounded down. better to have carefully calculated numbers if (new_outputproportionalpowerlimit > HeaterControl[deviceId].outputproportionalpowerlimit) new_outputproportionalpowerlimit = HeaterControl[deviceId].outputproportionalpowerlimit; //mark the time slices for heaters operation as empty / Heater1000 / Heater 200 DCTimeSliceAllocation[deviceId] = (new_outputproportionalpowerlimit/*/100*/ * NumberOFSlicesInUse) / 100; return OK; }