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184 lines
5.0 KiB
184 lines
5.0 KiB
/*=========================================================================
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Program: Visualization Toolkit
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Module: $RCSfile: vtkImageHSIToRGB.cxx,v $
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Copyright (c) Ken Martin, Will Schroeder, Bill Lorensen
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All rights reserved.
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See Copyright.txt or http://www.kitware.com/Copyright.htm for details.
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This software is distributed WITHOUT ANY WARRANTY; without even
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the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR
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PURPOSE. See the above copyright notice for more information.
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=========================================================================*/
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#include "vtkImageHSIToRGB.h"
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#include "vtkImageData.h"
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#include "vtkImageProgressIterator.h"
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#include "vtkObjectFactory.h"
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#include <math.h>
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vtkCxxRevisionMacro(vtkImageHSIToRGB, "$Revision: 1.5 $");
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vtkStandardNewMacro(vtkImageHSIToRGB);
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//----------------------------------------------------------------------------
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vtkImageHSIToRGB::vtkImageHSIToRGB()
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{
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this->Maximum = 255.0;
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this->SetNumberOfInputPorts(1);
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this->SetNumberOfOutputPorts(1);
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}
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//----------------------------------------------------------------------------
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// This templated function executes the filter for any type of data.
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template <class T>
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void vtkImageHSIToRGBExecute(vtkImageHSIToRGB *self,
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vtkImageData *inData,
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vtkImageData *outData,
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int outExt[6], int id, T *)
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{
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vtkImageIterator<T> inIt(inData, outExt);
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vtkImageProgressIterator<T> outIt(outData, outExt, self, id);
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double R, G, B, H, S, I;
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double max = self->GetMaximum();
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double temp;
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double third = max / 3.0;
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int idxC;
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// find the region to loop over
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int maxC = inData->GetNumberOfScalarComponents()-1;
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// Loop through ouput pixels
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while (!outIt.IsAtEnd())
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{
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T* inSI = inIt.BeginSpan();
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T* outSI = outIt.BeginSpan();
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T* outSIEnd = outIt.EndSpan();
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while (outSI != outSIEnd)
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{
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// Pixel operation
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H = (double)(*inSI); ++inSI;
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S = (double)(*inSI); ++inSI;
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I = (double)(*inSI); ++inSI;
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// compute rgb assuming S = 1.0;
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if (H >= 0.0 && H <= third) // red -> green
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{
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G = H/third;
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R = 1.0 - G;
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B = 0.0;
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}
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else if (H >= third && H <= 2.0*third) // green -> blue
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{
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B = (H - third)/third;
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G = 1.0 - B;
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R = 0.0;
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}
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else // blue -> red
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{
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R = (H - 2.0 * third)/third;
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B = 1.0 - R;
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G = 0.0;
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}
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// add Saturation to the equation.
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S = S / max;
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//R = S + (1.0 - S)*R;
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//G = S + (1.0 - S)*G;
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//B = S + (1.0 - S)*B;
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// what happend to this?
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R = S*R + (1.0 - S);
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G = S*G + (1.0 - S);
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B = S*B + (1.0 - S);
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// Use intensity to get actual RGB
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// normalize RGB first then apply intensity
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temp = R + G + B;
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//I = 3 * I / (temp * max);
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// and what happend to this?
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I = 3 * I / (temp);
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R = R * I;
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G = G * I;
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B = B * I;
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// clip below 255
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//if (R > 255.0) R = max;
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//if (G > 255.0) G = max;
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//if (B > 255.0) B = max;
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// mixed constant 255 and max ?????
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if (R > max)
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{
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R = max;
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}
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if (G > max)
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{
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G = max;
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}
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if (B > max)
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{
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B = max;
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}
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// assign output.
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*outSI = (T)(R); ++outSI;
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*outSI = (T)(G); ++outSI;
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*outSI = (T)(B); ++outSI;
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for (idxC = 3; idxC <= maxC; idxC++)
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{
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*outSI++ = *inSI++;
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}
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}
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inIt.NextSpan();
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outIt.NextSpan();
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}
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}
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//----------------------------------------------------------------------------
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void vtkImageHSIToRGB::ThreadedExecute (vtkImageData *inData,
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vtkImageData *outData,
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int outExt[6], int id)
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{
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vtkDebugMacro(<< "Execute: inData = " << inData
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<< ", outData = " << outData);
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// this filter expects that input is the same type as output.
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if (inData->GetScalarType() != outData->GetScalarType())
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{
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vtkErrorMacro(<< "Execute: input ScalarType, " << inData->GetScalarType()
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<< ", must match out ScalarType " << outData->GetScalarType());
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return;
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}
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// need three components for input and output
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if (inData->GetNumberOfScalarComponents() < 3)
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{
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vtkErrorMacro("Input has too few components");
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return;
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}
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if (outData->GetNumberOfScalarComponents() < 3)
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{
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vtkErrorMacro("Output has too few components");
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return;
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}
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switch (inData->GetScalarType())
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{
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vtkTemplateMacro(
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vtkImageHSIToRGBExecute(this, inData,
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outData, outExt, id, static_cast<VTK_TT *>(0)));
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default:
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vtkErrorMacro(<< "Execute: Unknown ScalarType");
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return;
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}
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}
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void vtkImageHSIToRGB::PrintSelf(ostream& os, vtkIndent indent)
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{
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this->Superclass::PrintSelf(os,indent);
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os << indent << "Maximum: " << this->Maximum << "\n";
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}
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