362 lines
11 KiB
Python
362 lines
11 KiB
Python
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#~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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# Copyright 2010 California Institute of Technology. ALL RIGHTS RESERVED.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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#
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# United States Government Sponsorship acknowledged. This software is subject to
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# U.S. export control laws and regulations and has been classified as 'EAR99 NLR'
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# (No [Export] License Required except when exporting to an embargoed country,
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# end user, or in support of a prohibited end use). By downloading this software,
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# the user agrees to comply with all applicable U.S. export laws and regulations.
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# The user has the responsibility to obtain export licenses, or other export
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# authority as may be required before exporting this software to any 'EAR99'
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# embargoed foreign country or citizen of those countries.
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#
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# Author: Walter Szeliga
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#~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
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import logging
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import math
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import random
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import isceobj
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from isceobj.Scene.Frame import Frame
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from iscesys.Component.Component import Component, Port
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from mroipac.dopiq import dopiq
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from isceobj.Util.mathModule import MathModule
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YMIN = Component.Parameter(
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'startLine',
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public_name='YMIN',
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default=1,
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type=int,
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mandatory=True,
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intent='input',
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doc=''
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)
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XMIN = Component.Parameter(
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'lineHeaderLength',
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public_name='XMIN',
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default=0,
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type=int,
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mandatory=True,
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intent='input',
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doc=''
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)
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I_BIAS = Component.Parameter(
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'mean',
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public_name='I_BIAS',
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default=0,
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type=float,
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mandatory=True,
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intent='input',
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doc=''
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)
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WIDTH = Component.Parameter(
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'lineLength',
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public_name='WIDTH',
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default=None,
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type=int,
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mandatory=True,
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intent='input',
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doc=''
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)
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XMAX = Component.Parameter(
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'lastSample',
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public_name='XMAX',
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default=0,
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type=int,
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mandatory=True,
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intent='input',
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doc=''
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)
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PRF = Component.Parameter(
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'prf',
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public_name='PRF',
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default=None,
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type=float,
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mandatory=True,
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intent='input',
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doc=''
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)
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FILE_LENGTH = Component.Parameter(
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'numberOfLines',
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public_name='FILE_LENGTH',
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default=0,
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type=int,
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mandatory=True,
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intent='input',
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doc=''
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)
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DOPPLER = Component.Parameter(
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'fractionalDoppler',
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public_name='DOPPLER',
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default=[],
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type=float,
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mandatory=False,
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intent='output',
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doc=''
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)
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class DopIQ(Component):
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parameter_list = (
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YMIN,
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XMIN,
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I_BIAS,
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WIDTH,
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XMAX,
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PRF,
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FILE_LENGTH,
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DOPPLER
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)
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logging_name = "isce.DopIQ"
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family = 'dopiq'
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def __init__(self,family='',name=''):
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super(DopIQ, self).__init__(family if family else self.__class__.family, name=name)
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# self.logger = logging.getLogger(
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self.rawImage = ''
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self.rawFilename = ''
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self.dim1_doppler = None
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self.pixelIndex = []
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self.linear = {}
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self.quadratic = {} #insarApp
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self.coeff_list = [] #roiApp
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# self.createPorts()
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return None
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def createPorts(self):
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# Create Input Ports
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instrumentPort = Port(name="instrument",method=self.addInstrument,
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doc="An object that has getPulseRepetitionFrequency() and getInPhaseValue() methods")
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framePort = Port(name="frame",method=self.addFrame,
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doc="An object that has getNumberOfSamples() and getNumberOfLines() methods")
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imagePort = Port(name="image",method=self.addImage,
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doc="An object that has getXmin() and getXmax() methods")
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self._inputPorts.add(instrumentPort)
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self._inputPorts.add(framePort)
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self._inputPorts.add(imagePort)
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def addInstrument(self):
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instrument = self._inputPorts.getPort('instrument').getObject()
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if (instrument):
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try:
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self.prf = instrument.getPulseRepetitionFrequency()
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self.mean = instrument.getInPhaseValue()
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except AttributeError:
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self.logger.error("Object %s requires a getPulseRepetitionFrequency() and getInPhaseValue() method" % (instrument.__class__))
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def addFrame(self):
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frame = self._inputPorts.getPort('frame').getObject()
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if(frame):
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try:
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self.numberOfLines = frame.getNumberOfLines()
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except AttributeError:
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self.logger.error("Object %s requires a getNumberOfSamples() and getNumberOfLines() method" % (frame.__class__))
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def addImage(self):
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image = self._inputPorts.getPort('image').getObject()
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if(image):
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try:
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self.rawFilename = image.getFilename()
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self.lineHeaderLength = image.getXmin()
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self.lastSample = image.getXmax()
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self.lineLength = self.lastSample
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except AttributeError:
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self.logger.error("Object %s requires getXmin(), getXmax() and getFilename() methods" % (image.__class__))
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def setRawfilename(self,filename):
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self.rawFilename = filename
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def setPRF(self,prf):
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self.prf = float(prf)
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def setMean(self,mean):
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self.mean = float(mean)
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def setLineLength(self,length):
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self.lineLength = int(length)
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def setLineHeaderLength(self,length):
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self.lineHeaderLength = int(length)
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def setLastSample(self,length):
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self.lastSample = int(length)
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def setNumberOfLines(self,lines):
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self.numberOfLines = int(lines)
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def setStartLine(self,start):
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if (start < 1):
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raise ValueError("START_LINE must be greater than 0")
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self.startLine = int(start)
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##
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# Return the doppler estimates in Hz/prf as a function of range bin
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def getDoppler(self):
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return self.fractionalDoppler
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def calculateDoppler(self,rawImage=None):
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self.activateInputPorts()
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rawCreatedHere = False
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if (rawImage == None):
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rawImage = self.createRawImage()
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rawCreateHere = True
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rawImagePt= rawImage.getImagePointer()
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self.setState()
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self.allocateArrays()
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dopiq.dopiq_Py(rawImagePt)
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self.getState()
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self.deallocateArrays()
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if(rawCreatedHere):
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rawImage.finalizeImage()
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def createRawImage(self):
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# Check file name
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width = self.lineLength
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objRaw = isceobj.createRawImage()
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objRaw.initImage(self.rawFilename,'read',width)
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objRaw.createImage()
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return objRaw
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def setState(self):
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# Set up the stuff needed for dopiq
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dopiq.setPRF_Py(self.prf)
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dopiq.setNumberOfLines_Py(self.numberOfLines)
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dopiq.setMean_Py(self.mean)
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dopiq.setLineLength_Py(int(self.lineLength))
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dopiq.setLineHeaderLength_Py(self.lineHeaderLength)
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dopiq.setLastSample_Py(int(self.lastSample))
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dopiq.setStartLine_Py(self.startLine)
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self.dim1_doppler = int((self.lastSample - self.lineHeaderLength)/2)
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def getState(self):
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self.fractionalDoppler = dopiq.getDoppler_Py(self.dim1_doppler)
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def allocateArrays(self):
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if (self.dim1_doppler == None):
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self.dim1_doppler = len(self.fractionalDoppler)
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if (not self.dim1_doppler):
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self.logger.error("Error. Trying to allocate zero size array")
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raise Exception
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dopiq.allocate_doppler_Py(self.dim1_doppler)
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def deallocateArrays(self):
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dopiq.deallocate_doppler_Py()
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def _wrap(self):
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"""Wrap the Doppler values"""
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wrapCount = 0*5;
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noiseLevel = 0*0.7;
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for i in range(len(self.fractionalDoppler)):
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if ( wrapCount != 0 ):
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self.fractionalDoppler[i] += wrapCount + i * wrapCount / len(self.fractionalDoppler)
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if( noiseLevel != 0 ):
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self.fractionalDoppler[i] += 1 + noiseLevel/2 - random.random(noiseLevel)
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self.fractionalDoppler[i] -= int(self.fractionalDoppler[i])
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def _unwrap(self):
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"""Unwrapping"""
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averageLength=10
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firstDop = 0
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lastValues = []
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unw = [None]*len(self.fractionalDoppler)
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for i in range(averageLength-1):
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lastValues.append(firstDop)
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for i in range(len(self.fractionalDoppler)):
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predicted = sum(lastValues) / len(lastValues)
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ambiguity = predicted - self.fractionalDoppler[i]
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ambiguity = int(ambiguity)
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unw[i] = self.fractionalDoppler[i] + ambiguity
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if ( len(lastValues) >= (averageLength-1)):
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lastValues.pop(0)
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lastValues.append(unw[i])
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return unw
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def _cullPoints(self,pixels,unw):
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"""Remove points greater than 3 standard deviations from the line fit"""
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slope = self.linear['b']
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intercept = self.linear['a']
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stdDev = self.linear['stdDev']
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numCulled = 0
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newPixel = []
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newUnw = []
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for i in range(len(pixels)):
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fit = intercept + slope * pixels[i]
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residual = unw[i] - fit
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if ( math.fabs(residual) < 3*stdDev ):
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newPixel.append(pixels[i])
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newUnw.append(unw[i])
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else:
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numCulled += 1
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return newPixel, newUnw
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def fitDoppler(self):
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"""Read in a Doppler file, remove outliers and then perform a quadratic fit"""
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self._wrap()
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unw = self._unwrap()
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self.pixelIndex = range(len(self.fractionalDoppler))
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(self.linear['a'], self.linear['b'], self.linear['stdDev']) = MathModule.linearFit(self.pixelIndex, unw)
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(pixels, unw) = self._cullPoints(self.pixelIndex,unw)
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(self.linear['a'], self.linear['b'], self.linear['stdDev']) = MathModule.linearFit(pixels, unw)
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(pixels, unw) = self._cullPoints(pixels,unw)
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(a,b,c) = MathModule.quadraticFit(pixels,unw)
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self.quadratic['a'] = a
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self.quadratic['b'] = b
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self.quadratic['c'] = c
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self.coeff_list = [a,b,c]
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