| 123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575 | using System;using System.Collections.Generic;using System.Linq;using System.Runtime.Serialization;using System.Text;using System.Threading.Tasks;using System.Xml;using Aitex.Core.Common.DeviceData;using Aitex.Core.RT.DataCenter;using Aitex.Core.RT.Device;using Aitex.Core.RT.Event;using Aitex.Core.RT.OperationCenter;using Aitex.Core.RT.SCCore;using Aitex.Core.RT.Tolerance;using Aitex.Core.Util;using MECF.Framework.Common.CommonData;namespace MECF.Framework.Common.Device.Bases{    public abstract class RfPowerBase : BaseDevice, IDevice    {        public virtual bool IsConnected => true;        public virtual bool IsPowerOn { get; set; }        public virtual bool IsError { get; set; }        public virtual bool IsHighFrequentQueryMode { get; set; }        public virtual EnumRfPowerClockMode ClockMode { get; set; }        public virtual EnumRfPowerWorkMode WorkMode { get; set; }        public virtual EnumRfPowerRegulationMode RegulationMode { get; set; }        public virtual EnumRfPowerControlMode ControlMode { get; set; }        public virtual EnumRfPowerPulsingMode PulsingMode { get; set; }        public virtual float ForwardPower { get; set; }        public virtual float ReflectPower { get; set; }        public virtual float LoadPower { get; set; }        public virtual float PowerSetPoint { get; set; }        public virtual float Frequency { get; set; }        public virtual float PulsingFrequency { get; set; }        public virtual float PulsingDutyCycle { get; set; }        public virtual bool IsInterlockOk { get; set; }        public virtual AITRfPowerData DeviceData { get; set; }        private float _currentWarningRange;        private float _currentAlarmRange;        protected SCConfigItem _scEnableAlarm;        protected SCConfigItem _scAlarmTime;        protected SCConfigItem _scAlarmRange;        protected SCConfigItem _scWarningTime;        protected SCConfigItem _scWarningRange;        protected SCConfigItem _scReflectedPowerMonitorTime;        protected SCConfigItem _scRecipeIgnoreTime;        protected SCConfigItem _scPowerScale;        protected ToleranceChecker _toleranceAlarmChecker = new ToleranceChecker();        protected ToleranceChecker _toleranceWarningChecker = new ToleranceChecker();        protected ToleranceChecker _prThresholdChecker = new ToleranceChecker();        protected double _currentFineTuningValue;        protected SCConfigItem _scFineTuningEnable;        protected SCConfigItem _scFineTuningValue;        protected float _PrThreshold;        protected DeviceTimer _recipeIgnoreTimer = new DeviceTimer();        protected DeviceTimer _rampTimer = new DeviceTimer();        protected float _rampTarget;        protected float _rampInitValue;        protected int _rampTime;//unit ms        //calibration        protected SCConfigItem _scEnableCalibration;        protected SCConfigItem _scCalibrationTable;        private List<CalibrationItem> _calibrationTable = new List<CalibrationItem>();        private string _previousSetting;        public virtual bool EnableAlarm        {            get            {                if (_scEnableAlarm != null)                    return _scEnableAlarm.BoolValue;                return false;            }        }        public virtual double AlarmTime        {            get            {                if (_scAlarmTime != null)                    return _scAlarmTime.DoubleValue;                return 0;            }        }        public virtual double AlarmRange        {            get            {                if (_currentAlarmRange > 0)                    return _currentAlarmRange;                if (_scAlarmRange != null)                    return _scAlarmRange.DoubleValue;                return 0;            }        }        public virtual double WarningTime        {            get            {                if (_scWarningTime != null)                    return _scWarningTime.DoubleValue;                return 0;            }        }        public virtual double WarningRange        {            get            {                if (_currentWarningRange > 0)                    return _currentWarningRange;                if (_scWarningRange != null)                    return _scWarningRange.DoubleValue;                return 0;            }        }        //unit second        public virtual double PrThresholdMonitorTime        {            get            {                if (_scReflectedPowerMonitorTime != null)                    return _scReflectedPowerMonitorTime.DoubleValue;                return 0;            }        }        //unit second        public virtual double RecipeIgnoreTime        {            get            {                if (_scRecipeIgnoreTime != null)                    return _scRecipeIgnoreTime.DoubleValue;                return 0;            }        }        public virtual double FineTuningValue        {            get            {                if (_scFineTuningEnable == null || !_scFineTuningEnable.BoolValue)                    return 1;                if (_currentFineTuningValue != 0)                    return 1 + _currentFineTuningValue / 100;                return _scFineTuningValue != null ? 1 + _scFineTuningValue.DoubleValue / 100 : 1;            }        }        public virtual int PowerRange        {            get            {                if (_scPowerScale == null)                    return 1000;                return _scPowerScale.IntValue;            }        }        protected RfPowerBase(string module, string name) : base(module, name, name, name)        {            _scEnableAlarm = SC.GetConfigItem($"{Module}.{Name}.EnableAlarm");            _scAlarmTime = SC.GetConfigItem($"{Module}.{Name}.AlarmTime");            _scAlarmRange = SC.GetConfigItem($"{Module}.{Name}.AlarmRange");            _scWarningTime = SC.GetConfigItem($"{Module}.{Name}.WarningTime");            _scWarningRange = SC.GetConfigItem($"{Module}.{Name}.WarningRange");            _scFineTuningValue = SC.GetConfigItem($"{Module}.FineTuning.{Name}");            _scFineTuningEnable = SC.GetConfigItem($"{Module}.FineTuning.IsEnable");        }        protected RfPowerBase() : base()        {        }        protected RfPowerBase(string module, string name, XmlElement node = null, string ioModule = "") : base(module, name, name, name)        {            if (node != null)            {                _scEnableAlarm = ParseScNode("scEnableAlarm", node, ioModule, $"{Module}.{Name}.EnableAlarm");                _scAlarmTime = ParseScNode("scAlarmTime", node, ioModule, $"{Module}.{Name}.AlarmTime");                _scAlarmRange = ParseScNode("scAlarmRange", node, ioModule, $"{Module}.{Name}.AlarmRange");                _scWarningTime = ParseScNode("scWarningTime", node, ioModule, $"{Module}.{Name}.WarningTime");                _scWarningRange = ParseScNode("scWarningRange", node, ioModule, $"{Module}.{Name}.WarningRange");                _scRecipeIgnoreTime = ParseScNode("scRecipeIgnoreTime", node, ioModule, $"{Module}.{Name}.RecipeIgnoreTime");                _scReflectedPowerMonitorTime = ParseScNode("scReflectedPowerMonitorTime", node, ioModule, $"{Module}.{Name}.ReflectedPowerMonitorTime");                _scEnableCalibration = ParseScNode("scCalibrationTable", node, ioModule, $"{Module}.{Name}.EnableCalibration");                _scCalibrationTable = ParseScNode("scCalibrationTable", node, ioModule, $"{Module}.{Name}.CalibrationTable");                _scFineTuningValue = ParseScNode("scFineTuningValue", node, ioModule, $"{Module}.FineTuning.{Name}");                _scFineTuningEnable = ParseScNode("scFineTuningEnable", node, ioModule, $"{Module}.FineTuning.IsEnable");            }        }        public virtual bool Initialize()        {            DATA.Subscribe($"{Module}.{Name}.DeviceData", () => DeviceData);            DATA.Subscribe($"{Module}.{Name}.WorkMode", () => WorkMode.ToString());            DATA.Subscribe($"{Module}.{Name}.RegulationMode", () => RegulationMode.ToString());            DATA.Subscribe($"{Module}.{Name}.ControlMode", () => ControlMode.ToString());            DATA.Subscribe($"{Module}.{Name}.ForwardPower", () => ForwardPower);            DATA.Subscribe($"{Module}.{Name}.ReflectPower", () => ReflectPower);            DATA.Subscribe($"{Module}.{Name}.LoadPower", () => LoadPower);            DATA.Subscribe($"{Module}.{Name}.PowerSetPoint", () => PowerSetPoint);            DATA.Subscribe($"{Module}.{Name}.Frequency", () => Frequency);            DATA.Subscribe($"{Module}.{Name}.PulsingFrequency", () => PulsingFrequency);            DATA.Subscribe($"{Module}.{Name}.PulsingDutyCycle", () => PulsingDutyCycle);            DATA.Subscribe($"{Module}.{Name}.IsPowerOn", () => IsPowerOn);            OP.Subscribe($"{Module}.{Name}.SetPowerOn", (function, args) =>            {                if (!SetPowerOnOff(true, out string reason))                {                    EV.PostWarningLog(Module, $"{Module} {Name} RF on failed, for {reason}");                    return false;                }                return true;            });            OP.Subscribe($"{Module}.{Name}.SetPowerOff", (function, args) =>            {                if (!SetPowerOnOff(false, out string reason))                {                    EV.PostWarningLog(Module, $"{Module} {Name} RF off failed, for {reason}");                    return false;                }                return true;            });            OP.Subscribe($"{Module}.{Name}.SetPower", (function, args) =>            {                SetPower((float)args[0]);                return true;            });            OP.Subscribe($"{Module}.{Name}.SetRegulationMode", (function, args) =>            {                if (!Enum.TryParse((string)args[0], out EnumRfPowerRegulationMode mode))                {                    EV.PostWarningLog(Module, $"Argument {args[0]}not valid");                    return false;                }                SetRegulationMode(mode);                return true;            });            //for recipe            OP.Subscribe($"{Module}.SetRFParameters", (out string reason, int time, object[] param) =>             {                reason = string.Empty;                SetRFParameters(param);                return true;            });            //for recipe            OP.Subscribe($"{Module}.{Name}.SetTolerance", (out string reason, int time, object[] param) =>            {                reason = string.Empty;                var warning = Convert.ToSingle(param[0]);                var alarm = Convert.ToSingle(param[1]);                SetTolerance((float)warning, (float)alarm);                return true;            });            //for recipe            OP.Subscribe($"{Module}.{Name}.SetFineTuning", (out string reason, int time, object[] param) =>            {                reason = string.Empty;                SetFineTuning(Convert.ToSingle(param[0]));                return true;            });            InitSc();            UpdateCalibrationTable();            return true;        }        public virtual void InitSc()        {        }        public virtual void SetFineTuning(float fineTuning)        {            _currentFineTuningValue = fineTuning;        }        public virtual void SetTolerance(float warning, float alarm)        {            _currentWarningRange = warning;            _currentAlarmRange = alarm;            _toleranceAlarmChecker.Reset(AlarmTime);            _toleranceWarningChecker.Reset(WarningTime);            if (RecipeIgnoreTime > 0)                _recipeIgnoreTimer.Start(0);        }        public virtual void CheckTolerance()        {            if (!EnableAlarm || PowerSetPoint == 0 || (RecipeIgnoreTime > 0 && _recipeIgnoreTimer.GetElapseTime() < RecipeIgnoreTime * 1000))                return;            _toleranceAlarmChecker.Monitor(ForwardPower, (PowerSetPoint * (1 - AlarmRange / 100)), (PowerSetPoint * (1 + AlarmRange / 100)), AlarmTime);            _toleranceWarningChecker.Monitor(ForwardPower, (PowerSetPoint * (1 - WarningRange / 100)), (PowerSetPoint * (1 + WarningRange / 100)), WarningTime);            if (_PrThreshold > 0)                _prThresholdChecker.Monitor(ReflectPower, 0, _PrThreshold, PrThresholdMonitorTime);        }        public virtual bool CheckToleranceAlarm()        {            if (!EnableAlarm)                return false;            return _toleranceAlarmChecker.Result;        }        public virtual bool CheckToleranceWarning()        {            if (!EnableAlarm)                return false;            return _toleranceWarningChecker.Result;        }        public virtual bool CheckPrThreshold()        {            if (!EnableAlarm)                return false;            return _prThresholdChecker.Result;        }        public virtual void SetRegulationMode(EnumRfPowerRegulationMode enumRfPowerControlMode)        {        }        public virtual void SetWorkMode(EnumRfPowerWorkMode enumRfPowerWorkMode)        {        }        public virtual void SetClockMode(EnumRfPowerClockMode clockMode)        {        }        public virtual void SetControlMode(EnumRfPowerControlMode enumRfPowerControlMode)        {        }        public virtual void SetPulsingMode(EnumRfPowerPulsingMode enumRfPowerPulsingMode)        {        }        public virtual void SetRemoteMode(bool isRemote)        {        }        public virtual bool SetPowerOnOff(bool isOn, out string reason)        {            reason = string.Empty;            return true;        }        public virtual void SetPower(float power)        {        }        public virtual void SetPower(float power, float rampTime, bool isCalibration = false)        {        }        public virtual void SetFreq(float freq)        {        }        public virtual void SetPulsingFreq(float pulsingFreq)        {        }        public virtual void SetPulsingDutyCycle(int dutyCycle)        {        }        public virtual void SetRFParameters(object[] param)        {        }        public virtual void SetPrThreshold(float threshold)        {            _PrThreshold = threshold;            _prThresholdChecker.Reset(PrThresholdMonitorTime);        }        public virtual void SetRampTime(float rampTime)        {        }        public virtual void Terminate()        {        }        public virtual void Monitor()        {            CheckTolerance();            if (_scCalibrationTable != null)            {                if (string.IsNullOrEmpty(_previousSetting) || _previousSetting != _scCalibrationTable.StringValue)                    UpdateCalibrationTable();            }        }        public virtual void Reset()        {        }        protected virtual void UpdateCalibrationTable()        {            if (_scCalibrationTable == null)                return;            if (_previousSetting == _scCalibrationTable.StringValue)                return;            _previousSetting = _scCalibrationTable.StringValue;            if (string.IsNullOrEmpty(_previousSetting))            {                _calibrationTable = new List<CalibrationItem>();                return;            }            var table = new List<Tuple<float, float>>();            string[] items = _previousSetting.Split(';');            for (int i = 0; i < items.Length; i++)            {                string itemValue = items[i];                if (!string.IsNullOrEmpty(itemValue))                {                    string[] pairValue = itemValue.Split('#');                    if (pairValue.Length == 2)                    {                        if (float.TryParse(pairValue[0], out float rawData)                            && float.TryParse(pairValue[1], out float calibrationData))                        {                            table.Add(Tuple.Create(rawData, calibrationData));                        }                    }                }            }            table = table.OrderBy(x => x.Item1).ToList();            var calibrationTable = new List<CalibrationItem>();            for (int i = 0; i < table.Count; i++)            {                if (i == 0 && table[0].Item1 > 0.001)                {                    calibrationTable.Add(new CalibrationItem()                    {                        RawFrom = 0,                        CalibrationFrom = 0,                        RawTo = table[0].Item1,                        CalibrationTo = table[0].Item2,                    });                }                if (i == table.Count - 1)                {                    float maxValue = (float)PowerRange;                    calibrationTable.Add(new CalibrationItem()                    {                        RawFrom = table[i].Item1,                        RawTo = table[i].Item2,                        CalibrationFrom = maxValue,                        CalibrationTo = maxValue,                    });                    continue;                }                calibrationTable.Add(new CalibrationItem()                {                    RawFrom = table[i].Item1,                    CalibrationFrom = table[i].Item2,                    RawTo = table[i + 1].Item1,                    CalibrationTo = table[i + 1].Item2,                });            }            _calibrationTable = calibrationTable;        }        protected virtual float CalibrationData(float value, bool output)        {            //default enable            if (_scEnableCalibration != null && !_scEnableCalibration.BoolValue)                return value;            if (_scCalibrationTable == null || !_calibrationTable.Any())                return value;            float ret = value;            if (output)            {                var item = _calibrationTable.FirstOrDefault(x => x.RawFrom <= value && x.RawTo >= value);                if (item != null && Math.Abs(item.RawTo - item.RawFrom) > 0.01)                {                    var slope = (item.CalibrationTo - item.CalibrationFrom) / (item.RawTo - item.RawFrom);                    ret = (ret - item.RawFrom) * slope + item.CalibrationFrom;                }            }            else            {                var item = _calibrationTable.FirstOrDefault(x => x.CalibrationFrom <= value && x.CalibrationTo >= value);                if (item != null && Math.Abs(item.CalibrationTo - item.CalibrationFrom) > 0.01)                {                    var slope = (item.RawTo - item.RawFrom) / (item.CalibrationTo - item.CalibrationFrom);                    ret = (ret - item.CalibrationFrom) * slope + item.RawFrom;                }            }            if (ret < 0)                return 0;            if (ret >= float.MaxValue || ret > PowerRange)                ret = value;            return ret;        }    }}
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