** This is part of the CTSim program
** Copyright (c) 1983-2001 Kevin Rosenberg
**
-** $Id: projections.cpp,v 1.67 2001/03/18 18:08:25 kevin Exp $
+** $Id: projections.cpp,v 1.72 2001/03/29 21:25:49 kevin Exp $
**
** This program is free software; you can redistribute it and/or modify
** it under the terms of the GNU General Public License (version 2) as
const int Projections::s_iInterpCount = sizeof(s_aszInterpName) / sizeof(char*);
+
/* NAME
* Projections Constructor for projections matrix storage
*
double** ppdView = adView.getArray();
double** ppdDet = adDet.getArray();
- pProj->calcArrayPolarCoordinates (nx, ny, ppdView, ppdDet, m_nDet, 1.);
-
- std::complex<double>** ppcDetValue = new std::complex<double>* [m_nView];
+ std::complex<double>** ppcDetValue = new std::complex<double>* [pProj->m_nView];
unsigned int iView;
- for (iView = 0; iView < m_nView; iView++) {
- ppcDetValue[iView] = new std::complex<double> [m_nDet];
+ for (iView = 0; iView < pProj->m_nView; iView++) {
+ ppcDetValue[iView] = new std::complex<double> [pProj->m_nDet];
DetectorValue* detval = pProj->getDetectorArray (iView).detValues();
- for (unsigned int iDet = 0; iDet < m_nDet; iDet++)
+ for (unsigned int iDet = 0; iDet < pProj->m_nDet; iDet++)
ppcDetValue[iView][iDet] = std::complex<double>(detval[iDet], 0);
}
- pProj->interpolatePolar (v, vImag, nx, ny, ppcDetValue, ppdView, ppdDet, pProj->m_nView, pProj->m_nDet, pProj->m_nDet, iInterpolationID);
+ pProj->calcArrayPolarCoordinates (nx, ny, ppdView, ppdDet, pProj->m_nDet, 1., pProj->m_detInc);
- for (iView = 0; iView < m_nView; iView++)
+ pProj->interpolatePolar (v, vImag, nx, ny, ppcDetValue, ppdView, ppdDet, pProj->m_nView, pProj->m_nDet,
+ pProj->m_nDet, iInterpolationID);
+
+ for (iView = 0; iView < pProj->m_nView; iView++)
delete [] ppcDetValue[iView];
delete [] ppcDetValue;
bool
Projections::convertFFTPolar (ImageFile& rIF, int iInterpolationID, int iZeropad)
{
-#ifndef HAVE_FFT
+#ifndef HAVE_FFTW
+ rIF.arrayDataClear();
return false;
#else
unsigned int nx = rIF.nx();
sys_error (ERR_WARNING, "convertFFTPolar supports Parallel only");
return false;
}
-
- Array2d<double> adView (nx, ny);
- Array2d<double> adDet (nx, ny);
- double** ppdView = adView.getArray();
- double** ppdDet = adDet.getArray();
- std::complex<double>** ppcDetValue = new std::complex<double>* [m_nView];
+ int iInterpDet = nx;
+ int iNumInterpDetWithZeros = ProcessSignal::addZeropadFactor (iInterpDet, iZeropad);
- int iNumDetWithZeros = ProcessSignal::addZeropadFactor (m_nDet, iZeropad);
- double dZeropadRatio = iNumDetWithZeros / static_cast<double>(m_nDet);
+ double dZeropadRatio = static_cast<double>(iNumInterpDetWithZeros) / static_cast<double>(iInterpDet);
- double* pdDet = new double [iNumDetWithZeros];
- fftw_complex* pcIn = new fftw_complex [iNumDetWithZeros];
- fftw_plan plan = fftw_create_plan (iNumDetWithZeros, FFTW_FORWARD, FFTW_IN_PLACE);
+ fftw_plan plan = fftw_create_plan (iNumInterpDetWithZeros, FFTW_FORWARD, FFTW_IN_PLACE | FFTW_ESTIMATE | FFTW_USE_WISDOM);
+ fftw_complex* pcIn = new fftw_complex [iNumInterpDetWithZeros];
+ std::complex<double>** ppcDetValue = new std::complex<double>* [m_nView];
+ double dInterpScale = (m_nDet-1) / static_cast<double>(iInterpDet-1) / SQRT2;
+
+ double dFFTScale = 1. / static_cast<double>(iInterpDet * iInterpDet);
+ int iMidPoint = iInterpDet / 2;
+ double dMidPoint = static_cast<double>(iInterpDet) / 2.;
+ int iZerosAdded = iNumInterpDetWithZeros - iInterpDet;
for (unsigned int iView = 0; iView < m_nView; iView++) {
DetectorValue* detval = getDetectorArray(iView).detValues();
- for (unsigned int iDet = 0; iDet < m_nDet; iDet++) {
- pcIn[iDet].re = detval[iDet];
+ LinearInterpolator<DetectorValue> projInterp (detval, m_nDet);
+ for (unsigned int iDet = 0; iDet < iInterpDet; iDet++) {
+ double dInterpPos = (m_nDet / 2.) + (iDet - dMidPoint) * dInterpScale;
+ pcIn[iDet].re = projInterp.interpolate (dInterpPos) * dInterpScale;
pcIn[iDet].im = 0;
}
- for (unsigned int iDet2 = m_nDet; iDet2 < iNumDetWithZeros; iDet2++)
- pcIn[iDet2].re = pcIn[iDet2].im = 0;
+ Fourier::shuffleFourierToNaturalOrder (pcIn, iInterpDet);
+ if (iZerosAdded > 0) {
+ for (unsigned int iDet1 = iMidPoint; iDet1 < iInterpDet; iDet1++)
+ pcIn[iDet1+iZerosAdded] = pcIn[iDet1];
+ for (unsigned int iDet2 = iMidPoint; iDet2 < iMidPoint + iZerosAdded; iDet2++)
+ pcIn[iDet2].re = pcIn[iDet2].im = 0;
+ }
fftw_one (plan, pcIn, NULL);
- ppcDetValue[iView] = new std::complex<double> [iNumDetWithZeros];
- for (unsigned int iD = 0; iD < iNumDetWithZeros; iD++)
- ppcDetValue[iView][iD] = std::complex<double> (pcIn[iD].re, pcIn[iD].im);
-//ppcDetValue[iView][iD] = std::complex<double> (std::abs(std::complex<double>(pcIn[iD].re, pcIn[iD].im)), 0);
- Fourier::shuffleFourierToNaturalOrder (ppcDetValue[iView], iNumDetWithZeros);
+
+ ppcDetValue[iView] = new std::complex<double> [iNumInterpDetWithZeros];
+ for (unsigned int iD = 0; iD < iNumInterpDetWithZeros; iD++) {
+ ppcDetValue[iView][iD] = std::complex<double> (pcIn[iD].re * dFFTScale, pcIn[iD].im * dFFTScale);
+ }
+
+ Fourier::shuffleFourierToNaturalOrder (ppcDetValue[iView], iNumInterpDetWithZeros);
}
+ delete [] pcIn;
fftw_destroy_plan (plan);
- delete [] pcIn;
- calcArrayPolarCoordinates (nx, ny, ppdView, ppdDet, iNumDetWithZeros, dZeropadRatio);
- interpolatePolar (v, vImag, nx, ny, ppcDetValue, ppdView, ppdDet, m_nView, m_nDet, iNumDetWithZeros,
+ Array2d<double> adView (nx, ny);
+ Array2d<double> adDet (nx, ny);
+ double** ppdView = adView.getArray();
+ double** ppdDet = adDet.getArray();
+ calcArrayPolarCoordinates (nx, ny, ppdView, ppdDet, iNumInterpDetWithZeros, dZeropadRatio,
+ m_detInc * dInterpScale);
+
+ interpolatePolar (v, vImag, nx, ny, ppcDetValue, ppdView, ppdDet, m_nView, m_nDet, iNumInterpDetWithZeros,
iInterpolationID);
for (int i = 0; i < m_nView; i++)
void
Projections::calcArrayPolarCoordinates (unsigned int nx, unsigned int ny, double** ppdView, double** ppdDet,
- int iNumDetWithZeros, double dZeropadRatio)
+ int iNumDetWithZeros, double dZeropadRatio, double dDetInc)
{
- double xMin = -phmLen() / 2;
- double xMax = xMin + phmLen();
- double yMin = -phmLen() / 2;
- double yMax = yMin + phmLen();
+// double dLength = viewDiameter();
+ double dLength = phmLen();
+ double xMin = -dLength / 2;
+ double xMax = xMin + dLength;
+ double yMin = -dLength / 2;
+ double yMax = yMin + dLength;
double xCent = (xMin + xMax) / 2;
double yCent = (yMin + yMax) / 2;
if (phi < 0)
phi += TWOPI;
-
if (phi >= PI) {
phi -= PI;
r = -r;
}
ppdView[ix][iy] = (phi - m_rotStart) / m_rotInc;
- ppdDet[ix][iy] = (r / m_detInc) + iDetCenter;
+ ppdDet[ix][iy] = (r / dDetInc) + iDetCenter;
}
}
}
unsigned int nx, unsigned int ny, std::complex<double>** ppcDetValue, double** ppdView,
double** ppdDet, unsigned int nView, unsigned int nDet, unsigned int nDetWithZeros, int iInterpolationID)
{
+ typedef std::complex<double> complexValue;
+
+ BilinearInterpolator<complexValue>* pBilinear;
+ if (iInterpolationID == POLAR_INTERP_BILINEAR)
+ pBilinear = new BilinearInterpolator<complexValue> (ppcDetValue, nView, nDetWithZeros);
+
+ BicubicPolyInterpolator<complexValue>* pBicubic;
+ if (iInterpolationID == POLAR_INTERP_BICUBIC)
+ pBicubic = new BicubicPolyInterpolator<complexValue> (ppcDetValue, nView, nDetWithZeros);
for (unsigned int ix = 0; ix < ny; ix++) {
for (unsigned int iy = 0; iy < ny; iy++) {
+
if (iInterpolationID == POLAR_INTERP_NEAREST) {
unsigned int iView = nearest<int> (ppdView[ix][iy]);
unsigned int iDet = nearest<int> (ppdDet[ix][iy]);
if (iView == nView) {
iView = 0;
- // iDet = m_nDet - iDet;
+ iDet = m_nDet - iDet;
}
if (iDet >= 0 && iDet < nDetWithZeros && iView >= 0 && iView < nView) {
v[ix][iy] = ppcDetValue[iView][iDet].real();
if (vImag)
vImag[ix][iy] = ppcDetValue[iView][iDet].imag();
- } else {
- sys_error (ERR_SEVERE, "Can't find projection data for ix=%d,iy=%d with radView=%f and radDet=%f",
- ix, iy, ppdView[ix][iy], ppdDet[ix][iy]);
+ } else
v[ix][iy] = 0;
- }
+
} else if (iInterpolationID == POLAR_INTERP_BILINEAR) {
- unsigned int iFloorView = static_cast<int>(ppdView[ix][iy]);
- double dFracView = ppdView[ix][iy] - iFloorView;
- unsigned int iFloorDet = static_cast<int>(ppdDet[ix][iy]);
- double dFracDet = ppdDet[ix][iy] - iFloorDet;
-
- if (iFloorDet >= 0 && iFloorView >= 0) {
- std::complex<double> v1 = ppcDetValue[iFloorView][iFloorDet];
- std::complex<double> v2, v3, v4;
- if (iFloorView < nView - 1)
- v2 = ppcDetValue[iFloorView + 1][iFloorDet];
- else
- v2 = ppcDetValue[0][iFloorDet];
- if (iFloorDet < nDetWithZeros - 1)
- v4 = ppcDetValue[iFloorView][iFloorDet+1];
- else
- v4 = v1;
- if (iFloorView < nView - 1 && iFloorDet < nDetWithZeros - 1)
- v3 = ppcDetValue [iFloorView+1][iFloorDet+1];
- else if (iFloorView < nView - 1)
- v3 = v2;
- else
- v3 = ppcDetValue[0][iFloorDet+1];
- std::complex<double> vInterp = (1 - dFracView) * (1 - dFracDet) * v1 +
- dFracView * (1 - dFracDet) * v2 + dFracView * dFracDet * v3 +
- dFracDet * (1 - dFracView) * v4;
- v[ix][iy] = vInterp.real();
- if (vImag)
- vImag[ix][iy] = vInterp.imag();
- } else {
- sys_error (ERR_SEVERE, "Can't find projection data for ix=%d,iy=%d with radView=%f and radDet=%f",
- ix, iy, ppdView[ix][iy], ppdDet[ix][iy]);
- v[ix][iy] = 0;
- if (vImag)
- vImag[ix][iy] = 0;
- }
+ std::complex<double> vInterp = pBilinear->interpolate (ppdView[ix][iy], ppdDet[ix][iy]);
+ v[ix][iy] = vInterp.real();
+ if (vImag)
+ vImag[ix][iy] = vInterp.imag();
} else if (iInterpolationID == POLAR_INTERP_BICUBIC) {
- v[ix][iy] =0;
- if (vImag)
- vImag[ix][iy] = 0;
+ std::complex<double> vInterp = pBicubic->interpolate (ppdView[ix][iy], ppdDet[ix][iy]);
+ v[ix][iy] = vInterp.real();
+ if (vImag)
+ vImag[ix][iy] = vInterp.imag();
}
}
}
// interpolate to evenly spaced theta (views)
double dDetPos = pProjNew->m_detStart;
for (int iD = 0; iD < pProjNew->nDet(); iD++, dDetPos += pProjNew->m_detInc) {
- parallel.getThetaAndRaysumsForT (iD, pdThetaValuesForT, pdRaysumsForT);
+ parallel.getThetaAndRaysumsForT (iD, pdThetaValuesForT, pdRaysumsForT);
double dViewAngle = m_rotStart;
int iLastFloor = -1;
for (int iV = 0; iV < pProjNew->nView(); iV++, dViewAngle += pProjNew->m_rotInc) {
DetectorValue* detValues = pProjNew->getDetectorArray (iV).detValues();
-
- detValues[iD] = parallel.interpolate (pdThetaValuesForT, pdRaysumsForT, pProjNew->nView(), dViewAngle, &iLastFloor);
+ LinearInterpolator<double> interp (pdThetaValuesForT, pdRaysumsForT, pProjNew->nView(), false);
+ detValues[iD] = interp.interpolate (dViewAngle, &iLastFloor);
}
}
delete pdThetaValuesForT;
detArray.setViewAngle (dViewAngle);
for (int i = 0; i < pProjNew->nDet(); i++)
- pdDetValueCopy[i] = detValues[i];
+ pdDetValueCopy[i] = detValues[i];
double dDetPos = pProjNew->m_detStart;
int iLastFloor = -1;
- for (int iD = 0; iD < pProjNew->nDet(); iD++, dDetPos += pProjNew->m_detInc) {
- detValues[iD] = parallel.interpolate (pdOriginalDetPositions, pdDetValueCopy, pProjNew->nDet(), dDetPos, &iLastFloor);
- }
+ LinearInterpolator<double> interp (pdOriginalDetPositions, pdDetValueCopy, pProjNew->nDet(), false);
+ for (int iD = 0; iD < pProjNew->nDet(); iD++, dDetPos += pProjNew->m_detInc)
+ detValues[iD] = interp.interpolate (dDetPos, &iLastFloor);
}
delete pdDetValueCopy;
delete pdOriginalDetPositions;
iPos += m_iNumView;
}
}
-
-// locate by bisection, O(log2(n))
-// iLastFloor is used when sequential calls to interpolate with monotonically increasing dX
-double
-ParallelRaysums::interpolate (double* pdX, double* pdY, int n, double dX, int* iLastFloor)
-{
- int iLower = -1;
- int iUpper = n;
- if (iLastFloor && *iLastFloor >= 0 && pdX[*iLastFloor] < dX)
- iLower = *iLastFloor;
-
- while (iUpper - iLower > 1) {
- int iMiddle = (iUpper + iLower) >> 1;
- if (dX >= pdX[iMiddle])
- iLower = iMiddle;
- else
- iUpper = iMiddle;
- }
- if (dX <= pdX[0])
- return pdY[0];
- else if (dX >= pdX[n-1])
- return pdY[1];
-
- if (iLower < 0 || iLower >= n) {
- sys_error (ERR_SEVERE, "Coordinate out of range [locateThetaBase]");
- return 0;
- }
-
- if (iLastFloor)
- *iLastFloor = iLower;
- return pdY[iLower] + (pdY[iUpper] - pdY[iLower]) * ((dX - pdX[iLower]) / (pdX[iUpper] - pdX[iLower]));
-}
-