338 lines
8.7 KiB
Python
Executable File
338 lines
8.7 KiB
Python
Executable File
#!/usr/bin/python3
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import datetime
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import serial
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import time
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class Error(Exception):
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pass
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class UnsupportedCommand(Error):
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pass
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class RequiredValueNotSet(Error):
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pass
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class OutOfRange(Error):
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pass
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class Saturated(Error):
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pass
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class CommandError(Error):
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pass
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# TODO commands:
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# eraselogdata
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# getlogdata
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# setcurrentloop
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# setsimpleirrcal
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# setuserdark
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# startlogdata
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# stoplogdata
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# usecalfactor
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# erasecalfactor
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# getcalfactor
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# setcalfactor
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class ILT1000(object):
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DARK_NONE = 0
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DARK_FACTORY = 1
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DARK_USER = 2
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DARK_NAMES = {
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0: 'None',
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1: 'Factory',
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2: 'User',
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}
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FEEDBACK_RES_AUTO = 0
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FEEDBACK_RES_LOW = 1
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FEEDBACK_RES_MEDIUM = 2
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FEEDBACK_RES_HIGH = 3
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AVERAGING_AUTO = 0
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AVERAGING_LOW = 1 # 5 ㎐
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AVERAGING_MEDIUM = 2 # 2 ㎐
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AVERAGING_HIGH = 3 # 0.5 ㎐
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LOG_OPTICAL_DENSITY = 1 << 0
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LOG_TRANSMISSION_PERCENT = 1 << 1
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LOG_SENSOR_CURRENT = 1 << 2
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LOG_SENSOR_VOLTAGE = 1 << 3
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LOG_CONTROLLER_TEMP = 1 << 4
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LOG_IRRADIANCE = 1 << 5
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LOG_REALTIME = 1 << 7
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# ILT1000 presents two FTDI serial devices, which become ttyUSB0 and ttyUSB1
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# if nothing else is attached. ttyUSB0 seems to be completely non-responsive.
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# We default to ttyUSB1
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def __init__(self, device='/dev/ttyUSB1', set_time=True):
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self._dev = serial.Serial(device, baudrate=115200)
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self._Clear()
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self._SendCommandOrDie('echooff')
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if set_time:
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self.SetDateTime()
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def _Clear(self):
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self._dev.timeout = 0.1
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self._dev.write(b'\r\n')
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self._dev.read(2 ** 16)
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self._dev.timeout = None
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def _GetLine(self):
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return self._dev.readline().rstrip().decode('ascii')
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def _SendCommand(self, command):
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self._dev.write(command.encode('ascii') + b'\r\n')
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ret = self._GetLine()
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if ret == '-999':
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raise UnsupportedCommand(command)
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if ret == '-500':
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raise RequiredValueNotSet(command)
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if ret == '-501':
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raise OutOfRange(command)
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if ret == '-502':
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raise Saturated(command)
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return ret
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def _SendCommandOrDie(self, command):
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ret = self._SendCommand(command)
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if int(ret) != 0:
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raise CommandError
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def GetModelName(self):
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return self._SendCommand('getmodelname')
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def GetGeneration(self):
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return int(self._SendCommand('getgeneration'))
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def GetFirmwareVersion(self):
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return self._SendCommand('getfwversion')
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def GetSerialNumber(self):
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return self._SendCommand('getserialnumber')
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def GetAuxSerialNumber(self):
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return self._SendCommand('getauxserialno')
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def SetAuxSerialNumber(self, serial):
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# SPEC ERROR
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# This is undocumented.
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self._SendCommandOrDie('setauxserialno %s' % serial)
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def GetControllerTempF(self):
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return int(self._SendCommand('gettemp'))
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def GetAmbientTempF(self):
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# SPEC ERROR
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# Protocol doc indicates that this is degrees F * 100, but actual values
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# look like just degrees F
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return int(self._SendCommand('getambienttemp'))
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def GetDateTime(self):
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ret = self._SendCommand('getdatetime')
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return datetime.datetime.fromtimestamp(int(ret.split()[2]))
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def SetDateTime(self, now=None):
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now = now or datetime.datetime.utcnow()
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timestr = now.strftime('%m/%d/%Y %H:%M:%S')
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self._SendCommandOrDie('setdatetime ' + timestr)
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def GetSensorCurrent(self):
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# SPEC ERROR
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# Protocol doc indicates that this is in pA, but actual values are in
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# scientific notation and appear to be A.
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ret = self._SendCommand('getcurrent')
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return float(ret)
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def GetSensorVoltage(self):
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ret = self._SendCommand('getvoltage')
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return float(ret) / 1000000
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def GetTransmissionPercent(self):
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ret = self._SendCommand('gettrans')
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return float(ret) / 10
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def Get100PercentVoltage(self):
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# SPEC ERROR
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# Spec says microvolts, but actual values appear to be in volts.
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ret = self._SendCommand('get100perc')
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return float(ret)
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def Set100PercentVoltage(self):
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# SPEC ERROR
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# Spec says microvolts, but actual values appear to be in volts.
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ret = self._SendCommand('set100perc')
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return float(ret)
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def GetOpticalDensity(self):
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ret = self._SendCommand('getod')
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return float(ret) / 100
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def GetIrradiance(self):
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ret = self._SendCommand('getirradiance')
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return float(ret) / 1000
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def GetDarkMode(self):
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return int(self._SendCommand('getdarkmode'))
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_DARK_MODE_COMMANDS = {
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DARK_NONE: 'usenodark',
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DARK_FACTORY: 'usefactorydark',
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DARK_USER: 'useuserdark',
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}
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def SetDarkMode(self, mode=DARK_FACTORY):
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self._SendCommandOrDie(self._DARK_MODE_COMMANDS[mode])
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def GetFactoryDarkVoltages(self):
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# SPEC ERROR
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# Actual return value sample:
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# R1 12149 9733 9251 R2 12476 10080 9604 R3 13940 11894 11435
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ret = self._SendCommand('getfactorydark')
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return [float(x) / 1000000 for x in ret.split()]
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def GetUserDarkVoltages(self):
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# SPEC ERROR
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# Actual return value sample:
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# R1 12149 9733 9251 R2 12476 10080 9604 R3 13940 11894 11435
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ret = self._SendCommand('getfactorydark')
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return [float(x) / 1000000 for x in ret.split()]
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def GetClockFrequencyHz(self):
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ret = self._SendCommand('getclockfreq')
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return float(ret) / 100
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def SetClockFrequency(self):
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# SPEC ERROR
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# Command returns -999 on my ILT1000-V02 3.0.7.7. Implementation below is
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# untested and likely wrong.
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self._SendCommandOrDie('setclockfreq')
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self._dev.write(b'A')
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time.sleep(60.0)
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self._dev.write(b'B')
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def GetFeedbackResistanceOhm(self):
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ret = self._SendCommand('getfeedbackres')
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return float(ret) * 100
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def SetFeedbackResistor(self, resistor=FEEDBACK_RES_AUTO):
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self._SendCommandOrDie('usefeedbackres %d' % resistor)
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_AVERAGING_COMMANDS = {
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AVERAGING_AUTO: 'setautaveraging',
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AVERAGING_LOW: 'setlowaveraging',
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AVERAGING_MEDIUM: 'setmedaveraging',
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AVERAGING_HIGH: 'sethiaveraging',
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}
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def SetAveraging(self, averaging=AVERAGING_AUTO):
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# SPEC WARNING
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# There does not appear to be a way to read this back.
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self._SendCommandOrDie(self._AVERAGING_COMMANDS[averaging])
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def SetSampleCount(self, sample_count=200):
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# SPEC WARNING
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# There does not appear to be a way to read this back.
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# SPEC ERROR
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# Returns -999 on my ILT1000-V02 3.0.7.7.
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self._SendCommandOrDie('setsamplecount %d' % sample_count)
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def StartLogging(self, mask, period_seconds):
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# SPEC ERROR
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# Spec says period units are seconds, but they appear to be tenths of
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# seconds
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# SPEC ERROR
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# Spec says that this immediately starts logging, but if we've already
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# started and stopped logging and erased data, logging won't restart until
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# power is cycled.
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self._SendCommandOrDie('startlogdata %d %d %d' % (mask, period_seconds * 10, time.time()))
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def StopLogging(self):
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self._SendCommandOrDie('stoplogdata')
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def EraseLogData(self):
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self._SendCommandOrDie('eraselogdata')
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def GetLogData(self):
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samples = int(self._SendCommand('getlogdata'))
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mask = int(self._GetLine())
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period = float(self._GetLine()) / 10
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ret = {
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'period_seconds': period,
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'samples': [],
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}
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fields = [
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'recorded',
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]
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if mask & self.LOG_OPTICAL_DENSITY:
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fields.append('optical_density')
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if mask & self.LOG_TRANSMISSION_PERCENT:
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fields.append('transmission_percent')
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if mask & self.LOG_SENSOR_CURRENT:
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fields.append('sensor_current')
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if mask & self.LOG_SENSOR_VOLTAGE:
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fields.append('sensor_voltage')
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if mask & self.LOG_CONTROLLER_TEMP:
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fields.append('controller_temp')
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if mask & self.LOG_IRRADIANCE:
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fields.append('irradiance')
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for _ in range(samples):
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row = self._GetLine()
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values = row.split(',')
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sample = [
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datetime.datetime.fromtimestamp(int(values[0])),
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]
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index = 1
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if mask & self.LOG_OPTICAL_DENSITY:
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sample.append(float(values[index]) / 100)
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index += 1
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if mask & self.LOG_TRANSMISSION_PERCENT:
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sample.append(float(values[index]) / 10)
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index += 1
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if mask & self.LOG_SENSOR_CURRENT:
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sample.append(float(values[index]))
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index += 1
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if mask & self.LOG_SENSOR_VOLTAGE:
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sample.append(float(values[index]) / 1000000)
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index += 1
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if mask & self.LOG_CONTROLLER_TEMP:
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sample.append(float(values[index]))
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index += 1
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if mask & self.LOG_IRRADIANCE:
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sample.append(float(values[index]) / 1000)
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index += 1
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ret['samples'].append(_Row(fields, sample))
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return ret
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class _Row(object):
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def __init__(self, fields, values):
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self._fields = fields
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self._values = values
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def __getitem__(self, key):
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return self._values[self._fields.index(key)]
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def __str__(self):
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return str(self.AsDict())
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def __repr__(self):
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return repr(self.AsDict())
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def AsDict(self):
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return dict(zip(self._fields, self._values))
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