711 lines
22 KiB
C++
711 lines
22 KiB
C++
/*
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* This file is part of RawTherapee.
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*
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* RawTherapee is free software: you can redistribute it and/or modify
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* it under the terms of the GNU General Public License as published by
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* the Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*
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* RawTherapee is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with RawTherapee. If not, see <http://www.gnu.org/licenses/>.
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*
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* <20> 2010 Emil Martinec <ejmartin@uchicago.edu>
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*
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*/
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//#include "rtengine.h"
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#include <cstddef>
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#include <cmath>
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#include "curves.h"
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#include "labimage.h"
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#include "improcfun.h"
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#include "array2D.h"
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#ifdef _OPENMP
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#include <omp.h>
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#endif
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#define SQR(x) ((x)*(x))
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#define CLIPTO(a,b,c) ((a)>(b)?((a)<(c)?(a):(c)):(b))
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#define CLIPC(a) ((a)>-32000?((a)<32000?(a):32000):-32000)
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#define CLIP(a) (CLIPTO(a,0,65535))
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#define DIRWT_L(i1,j1,i,j) ( rangefn_L[(data_fine->L[i1][j1]-data_fine->L[i][j]+32768)] )
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#define DIRWT_AB(i1,j1,i,j) ( rangefn_ab[(data_fine->a[i1][j1]-data_fine->a[i][j]+32768)] * \
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rangefn_ab[(data_fine->L[i1][j1]-data_fine->L[i][j]+32768)] * \
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rangefn_ab[(data_fine->b[i1][j1]-data_fine->b[i][j]+32768)] )
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//#define NRWT_L(a) (nrwt_l[a] )
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#define NRWT_AB (nrwt_ab[(hipass[1]+32768)] * nrwt_ab[(hipass[2]+32768)])
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#define med3(a,b,c) (a<b ? (b<c ? b : (a<c ? c : a)) : (a<c ? a : (b<c ? c : b)))
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#define hmf(a11,a12,a13,a21,a22,a23,a31,a32,a33) \
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(med3(a22,med3(a22,med3(a12,a22,a32),med3(a21,a22,a23)), \
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med3(a22,med3(a11,a22,a33),med3(a13,a22,a31))) )
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#define PIX_SORT(a,b) { if ((a)>(b)) {temp=(a);(a)=(b);(b)=temp;} }
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#define med3x3(a0,a1,a2,a3,a4,a5,a6,a7,a8,median) { \
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p[0]=a0; p[1]=a1; p[2]=a2; p[3]=a3; p[4]=a4; p[5]=a5; p[6]=a6; p[7]=a7; p[8]=a8; \
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PIX_SORT(p[1],p[2]); PIX_SORT(p[4],p[5]); PIX_SORT(p[7],p[8]); \
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PIX_SORT(p[0],p[1]); PIX_SORT(p[3],p[4]); PIX_SORT(p[6],p[7]); \
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PIX_SORT(p[1],p[2]); PIX_SORT(p[4],p[5]); PIX_SORT(p[7],p[8]); \
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PIX_SORT(p[0],p[3]); PIX_SORT(p[5],p[8]); PIX_SORT(p[4],p[7]); \
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PIX_SORT(p[3],p[6]); PIX_SORT(p[1],p[4]); PIX_SORT(p[2],p[5]); \
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PIX_SORT(p[4],p[7]); PIX_SORT(p[4],p[2]); PIX_SORT(p[6],p[4]); \
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PIX_SORT(p[4],p[2]); median=p[4];} //a4 is the median
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namespace rtengine {
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static const int maxlevel = 4;
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//sequence of scales
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//static const int scales[8] = {1,2,4,8,16,32,64,128};
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//sequence of pitches
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//static const int pitches[8] = {1,1,1,1,1,1,1,1};
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//sequence of scales
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//static const int scales[8] = {1,1,1,1,1,1,1,1};
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//sequence of pitches
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//static const int pitches[8] = {2,2,2,2,2,2,2,2};
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//sequence of scales
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//static const int scales[8] = {1,1,2,2,4,4,8,8};
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//sequence of pitches
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//static const int pitches[8] = {2,1,2,1,2,1,2,1};
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//sequence of scales
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static const int scales[8] = {1,1,2,4,8,16,32,64};
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//sequence of pitches
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static const int pitches[8] = {2,1,1,1,1,1,1,1};
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//pitch is spacing of subsampling
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//scale is spacing of directional averaging weights
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//example 1: no subsampling at any level -- pitch=1, scale=2^n
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//example 2: subsampling by 2 every level -- pitch=2, scale=1 at each level
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//example 3: no subsampling at first level, subsampling by 2 thereafter --
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// pitch =1, scale=1 at first level; pitch=2, scale=2 thereafter
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void ImProcFunctions :: dirpyrLab_denoise(LabImage * src, LabImage * dst, const procparams::DirPyrDenoiseParams & dnparams )
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{
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float gam = dnparams.gamma/3.0;
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//float gam = 2.0;//MIN(3.0, 0.1*fabs(c[4])/3.0+0.001);
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float gamthresh = 0.03;
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float gamslope = exp(log((double)gamthresh)/gam)/gamthresh;
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LUTf gamcurve(65536,0);
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//DiagonalCurve* lumacurve = new DiagonalCurve (dnparams.lumcurve, CURVES_MIN_POLY_POINTS);
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//DiagonalCurve* chromacurve = new DiagonalCurve (dnparams.chromcurve, CURVES_MIN_POLY_POINTS);
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//LUTf Lcurve(65536);
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//LUTf abcurve(65536);
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for (int i=0; i<65536; i++) {
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int g = (int)(CurveFactory::gamma((double)i/65535.0, gam, gamthresh, gamslope, 1.0, 0.0) * 65535.0);
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gamcurve[i] = CLIP(g);
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/*float val = (float)i/65535.0;
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float Lval = (2*(lumacurve->getVal(val)));
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float abval = (2*(chromacurve->getVal(val)));
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Lcurve[i] = SQR(Lval);
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abcurve[i] = SQR(abval);
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if (i % 1000 ==0) printf("%d Lmult=%f abmult=%f \n",i,Lcurve[i],abcurve[i]);*/
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}
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//delete lumacurve;
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//delete chromacurve;
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//#pragma omp parallel for if (multiThread)
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for (int i=0; i<src->H; i++) {
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for (int j=0; j<src->W; j++) {
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//src->L[i][j] = CurveFactory::flinterp(gamcurve,src->L[i][j]);
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src->L[i][j] = gamcurve[src->L[i][j]];
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}
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}
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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LUTf rangefn_L(65536);
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LUTf nrwt_l(65536);
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LUTf rangefn_ab(65536);
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LUTf nrwt_ab(65536);
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//set up NR weight functions
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//gamma correction for chroma in shadows
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float nrwtl_norm = ((CurveFactory::gamma((double)65535.0/65535.0, gam, gamthresh, gamslope, 1.0, 0.0)) -
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(CurveFactory::gamma((double)75535.0/65535.0, gam, gamthresh, gamslope, 1.0, 0.0)));
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for (int i=0; i<65536; i++) {
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nrwt_l[i] = ((CurveFactory::gamma((double)i/65535.0, gam, gamthresh, gamslope, 1.0, 0.0) -
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CurveFactory::gamma((double)(i+10000)/65535.0, gam, gamthresh, gamslope, 1.0, 0.0)) )/nrwtl_norm;
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//if (i % 100 ==0) printf("%d %f \n",i,nrwt_l[i]);
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}
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float tonefactor = nrwt_l[32768];
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float noise_L = 10.0*dnparams.luma;
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float noisevar_L = SQR(noise_L);
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float noise_ab = 100.0*dnparams.chroma;
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float noisevar_ab = SQR(noise_ab);
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//set up range functions
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for (int i=0; i<65536; i++)
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rangefn_L[i] = (( exp(-(double)fabs(i-32768) * tonefactor / (1.0+noise_L)) * (1.0+noisevar_L)/((double)(i-32768)*(double)(i-32768) + noisevar_L+1.0)));
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for (int i=0; i<65536; i++)
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rangefn_ab[i] = (( exp(-(double)fabs(i-32768) * tonefactor / (1.0+3*noise_ab)) * (1.0+noisevar_ab)/((double)(i-32768)*(double)(i-32768) + noisevar_ab+1.0)));
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for (int i=0; i<65536; i++)
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nrwt_ab[i] = ((1.0+abs(i-32768)/(1.0+8*noise_ab)) * exp(-(double)fabs(i-32768)/ (1.0+8*noise_ab) ) );
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//for (int i=0; i<65536; i+=100) printf("%d %d \n",i,gamcurve[i]);
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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int level;
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LabImage * dirpyrLablo[maxlevel];
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int w = (int)((src->W-1)/pitches[0])+1;
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int h = (int)((src->H-1)/pitches[0])+1;
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dirpyrLablo[0] = new LabImage(w, h);
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for (level=1; level<maxlevel; level++) {
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w = (int)((w-1)/pitches[level])+1;
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h = (int)((h-1)/pitches[level])+1;
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dirpyrLablo[level] = new LabImage(w, h);
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};
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//////////////////////////////////////////////////////////////////////////////
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// c[0] = luma = noise_L
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// c[1] = chroma = noise_ab
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// c[2] decrease of noise var with scale
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// c[3] radius of domain blur at each level
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// c[4] shadow smoothing
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// c[5] edge preservation
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level = 0;
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int scale = scales[level];
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int pitch = pitches[level];
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//int thresh = 10 * c[8];
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//impulse_nr (src, src, m_w1, m_h1, thresh, noisevar);
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dirpyr(src, dirpyrLablo[0], 0, rangefn_L, rangefn_ab, pitch, scale, dnparams.luma, dnparams.chroma );
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level = 1;
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while(level < maxlevel)
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{
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scale = scales[level];
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pitch = pitches[level];
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dirpyr(dirpyrLablo[level-1], dirpyrLablo[level], level, rangefn_L, rangefn_ab, pitch, scale, dnparams.luma, dnparams.chroma );
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level ++;
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}
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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for(int level = maxlevel - 1; level > 0; level--)
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{
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int scale = scales[level];
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int pitch = pitches[level];
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idirpyr(dirpyrLablo[level], dirpyrLablo[level-1], level, rangefn_L, nrwt_l, nrwt_ab, pitch, scale, dnparams.luma, dnparams.chroma/*, Lcurve, abcurve*/ );
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}
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scale = scales[0];
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pitch = pitches[0];
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// freeing as much memory as possible since the next call to idirpyr will need lots
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for(int i = 1; i < maxlevel; i++) {
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delete dirpyrLablo[i];
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}
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idirpyr(dirpyrLablo[0], dst, 0, rangefn_L, nrwt_l, nrwt_ab, pitch, scale, dnparams.luma, dnparams.chroma/*, Lcurve, abcurve*/ );
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// freeing the last bunch of memory
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delete dirpyrLablo[0];
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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float igam = 1/gam;
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float igamthresh = gamthresh*gamslope;
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float igamslope = 1/gamslope;
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for (int i=0; i<65536; i++) {
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gamcurve[i] = (CurveFactory::gamma((float)i/65535.0, igam, igamthresh, igamslope, 1.0, 0.0) * 65535.0);
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}
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if (dnparams.luma>0) {
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for (int i=0; i<dst->H; i++)
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for (int j=0; j<dst->W; j++) {
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dst->L[i][j] = gamcurve[dst->L[i][j]];
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}
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} else {
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for (int i=0; i<dst->H; i++)
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for (int j=0; j<dst->W; j++) {
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dst->L[i][j] = gamcurve[src->L[i][j]];
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}
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}
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};
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void ImProcFunctions::dirpyr(LabImage* data_fine, LabImage* data_coarse, int level,
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LUTf & rangefn_L, LUTf & rangefn_ab, int pitch, int scale,
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const int luma, const int chroma )
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{
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//pitch is spacing of subsampling
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//scale is spacing of directional averaging weights
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//example 1: no subsampling at any level -- pitch=1, scale=2^n
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//example 2: subsampling by 2 every level -- pitch=2, scale=1 at each level
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//example 3: no subsampling at first level, subsampling by 2 thereafter --
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// pitch =1, scale=1 at first level; pitch=2, scale=2 thereafter
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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// calculate weights, compute directionally weighted average
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int width = data_fine->W;
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int height = data_fine->H;
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//generate domain kernel
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int halfwin = 3;//MIN(ceil(2*sig),3);
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int scalewin = halfwin*scale;
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#ifdef _OPENMP
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#pragma omp parallel for
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#endif
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for(int i = 0; i < height; i+=pitch ) { int i1=i/pitch;
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for(int j = 0, j1=0; j < width; j+=pitch, j1++)
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{
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float dirwt_l, dirwt_ab, norm_l, norm_ab;
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float Lmed,Lhmf;
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//float lops,aops,bops;
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float Lout, aout, bout;
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norm_l = norm_ab = 0;//if we do want to include the input pixel in the sum
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Lout = 0;
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aout = 0;
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bout = 0;
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for(int inbr=(i-scalewin); inbr<=(i+scalewin); inbr+=scale) {
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if (inbr<0 || inbr>height-1) continue;
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for (int jnbr=(j-scalewin); jnbr<=(j+scalewin); jnbr+=scale) {
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if (jnbr<0 || jnbr>width-1) continue;
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dirwt_l = DIRWT_L(inbr, jnbr, i, j);
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dirwt_ab = DIRWT_AB(inbr, jnbr, i, j);
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Lout += dirwt_l*data_fine->L[inbr][jnbr];
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aout += dirwt_ab*data_fine->a[inbr][jnbr];
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bout += dirwt_ab*data_fine->b[inbr][jnbr];
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norm_l += dirwt_l;
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norm_ab += dirwt_ab;
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}
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}
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//lops = Lout/norm;//diagnostic
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//aops = aout/normab;//diagnostic
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//bops = bout/normab;//diagnostic
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data_coarse->L[i1][j1]=Lout/norm_l;//low pass filter
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data_coarse->a[i1][j1]=aout/norm_ab;
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data_coarse->b[i1][j1]=bout/norm_ab;
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/*if (level<2 && i>0 && i<height-1 && j>0 && j<width-1) {
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Lhmf = hmf(data_fine->L[i-1][j-1], data_fine->L[i-1][j], data_fine->L[i-1][j+1], \
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data_fine->L[i][j-1], data_fine->L[i][j], data_fine->L[i][j+1], \
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data_fine->L[i+1][j-1], data_fine->L[i+1][j], data_fine->L[i+1][j+1]);
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//med3x3(data_fine->L[i-1][j-1], data_fine->L[i-1][j], data_fine->L[i-1][j+1], \
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data_fine->L[i][j-1], data_fine->L[i][j], data_fine->L[i][j+1], \
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data_fine->L[i+1][j-1], data_fine->L[i+1][j], data_fine->L[i+1][j+1],Lmed);
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data_coarse->L[i1][j1] = Lhmf;
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}*/
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}
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}
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};
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//%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
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void ImProcFunctions::idirpyr(LabImage* data_coarse, LabImage* data_fine, int level, LUTf &rangefn_L, LUTf & nrwt_l, LUTf & nrwt_ab,
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int pitch, int scale, const int luma, const int chroma/*, LUTf & Lcurve, LUTf & abcurve*/ )
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{
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int width = data_fine->W;
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int height = data_fine->H;
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array2D<float> nrfactorL (width,height);
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//float eps = 0.0;
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// c[0] noise_L
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// c[1] noise_ab (relative to noise_L)
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// c[2] decrease of noise var with scale
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// c[3] radius of domain blur at each level
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// c[4] shadow smoothing
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float noisevar_L = 4*SQR(25.0 * luma);
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float noisevar_ab = 2*SQR(100.0 * chroma);
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float scalefactor = 1.0/pow(2.0,(level+1)*2);//change the last 2 to 1 for longer tail of higher scale NR
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noisevar_L *= scalefactor;
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// for coarsest level, take non-subsampled lopass image and subtract from lopass_fine to generate hipass image
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// denoise hipass image, add back into lopass_fine to generate denoised image at fine scale
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// now iterate:
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// (1) take denoised image at level n, expand and smooth using gradient weights from lopass image at level n-1
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// the result is the smoothed image at level n-1
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// (2) subtract smoothed image at level n-1 from lopass image at level n-1 to make hipass image at level n-1
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// (3) denoise the hipass image at level n-1
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// (4) add the denoised image at level n-1 to the smoothed image at level n-1 to make the denoised image at level n-1
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// note that the coarsest level amounts to skipping step (1) and doing (2,3,4).
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// in other words, skip step one if pitch=1
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// step (1)
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if (pitch==1) {
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// step (1-2-3-4)
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#ifdef _OPENMP
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#pragma omp parallel
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#endif
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{
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#ifdef _OPENMP
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#pragma omp for
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#endif
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for(int i = 0; i < height; i++)
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for(int j = 0; j < width; j++) {
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double wtdsum[3], norm;
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float hipass[3], hpffluct[3], tonefactor, nrfactor;
|
||
|
||
tonefactor = (nrwt_l[data_coarse->L[i][j]]);
|
||
|
||
hipass[1] = data_fine->a[i][j]-data_coarse->a[i][j];
|
||
hipass[2] = data_fine->b[i][j]-data_coarse->b[i][j];
|
||
|
||
//Wiener filter
|
||
//luma
|
||
if (level<2) {
|
||
hipass[0] = data_fine->L[i][j]-data_coarse->L[i][j];
|
||
hpffluct[0]=SQR(hipass[0])+SQR(hipass[1])+SQR(hipass[2])+0.001;
|
||
nrfactorL[i][j] = (1.0+hpffluct[0])/(1.0+hpffluct[0]+noisevar_L /* * Lcurve[data_coarse->L[i][j]]*/);
|
||
//hipass[0] *= hpffluct[0]/(hpffluct[0]+noisevar_L);
|
||
//data_fine->L[i][j] = CLIP(hipass[0]+data_coarse->L[i][j]);
|
||
}
|
||
|
||
//chroma
|
||
//hipass[1] = data_fine->a[i][j]-data_coarse->a[i][j];
|
||
//hipass[2] = data_fine->b[i][j]-data_coarse->b[i][j];
|
||
hpffluct[1]=SQR(hipass[1]*tonefactor)+0.001;
|
||
hpffluct[2]=SQR(hipass[2]*tonefactor)+0.001;
|
||
nrfactor = (hpffluct[1]+hpffluct[2]) /((hpffluct[1]+hpffluct[2]) + noisevar_ab * NRWT_AB);
|
||
|
||
hipass[1] *= nrfactor;
|
||
hipass[2] *= nrfactor;
|
||
|
||
data_fine->a[i][j] = hipass[1]+data_coarse->a[i][j];
|
||
data_fine->b[i][j] = hipass[2]+data_coarse->b[i][j];
|
||
}
|
||
|
||
if (level<2) {
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
for(int i = 0; i < height; i++)
|
||
for(int j = 0; j < width; j++) {
|
||
|
||
float dirwt_l, norm_l;
|
||
float nrfctrave=0;
|
||
norm_l = 0;//if we do want to include the input pixel in the sum
|
||
|
||
for(int inbr=MAX(0,i-1); inbr<=MIN(height-1,i+1); inbr++) {
|
||
for (int jnbr=MAX(0,j-1); jnbr<=MIN(width-1,j+1); jnbr++) {
|
||
dirwt_l = DIRWT_L(inbr, jnbr, i, j);
|
||
nrfctrave += dirwt_l*nrfactorL[inbr][jnbr];
|
||
norm_l += dirwt_l;
|
||
}
|
||
}
|
||
|
||
nrfctrave /= norm_l;
|
||
//nrfctrave = nrfactorL[i][j];
|
||
//nrfctrave=1;
|
||
|
||
float hipass[3],p[9],temp,median;
|
||
|
||
//luma
|
||
|
||
/*if (i>0 && i<height-1 && j>0 && j<width-1) {
|
||
med3x3(nrfactorL[i-1][j-1], nrfactorL[i-1][j], nrfactorL[i-1][j+1], \
|
||
nrfactorL[i][j-1], nrfactorL[i][j], nrfactorL[i][j+1], \
|
||
nrfactorL[i+1][j-1], nrfactorL[i+1][j], nrfactorL[i+1][j+1], median);
|
||
//median = hmf(nrfactorL[i-1][j-1], nrfactorL[i-1][j], nrfactorL[i-1][j+1], \
|
||
nrfactorL[i][j-1], nrfactorL[i][j], nrfactorL[i][j+1], \
|
||
nrfactorL[i+1][j-1], nrfactorL[i+1][j], nrfactorL[i+1][j+1]);
|
||
//median = nrfactorL[i][j];
|
||
} else {
|
||
median = nrfactorL[i][j];
|
||
}*/
|
||
hipass[0] = nrfctrave*(data_fine->L[i][j]-data_coarse->L[i][j]);
|
||
//hipass[0] = median*(data_fine->L[i][j]-data_coarse->L[i][j]);
|
||
//hipass[0] = nrfactorL[i][j]*(data_fine->L[i][j]-data_coarse->L[i][j]);
|
||
data_fine->L[i][j] = CLIP(hipass[0]+data_coarse->L[i][j]);
|
||
|
||
//chroma
|
||
//hipass[1] = nrfactorab[i][j]*(data_fine->a[i][j]-data_coarse->a[i][j]);
|
||
//hipass[2] = nrfactorab[i][j]*(data_fine->b[i][j]-data_coarse->b[i][j]);
|
||
|
||
//data_fine->a[i][j] = hipass[1]+data_coarse->a[i][j];
|
||
//data_fine->b[i][j] = hipass[2]+data_coarse->b[i][j];
|
||
}
|
||
}//end of luminance correction
|
||
|
||
|
||
|
||
}//end of pitch=1
|
||
|
||
} else {//pitch>1
|
||
|
||
LabImage* smooth;
|
||
|
||
smooth = new LabImage(width, height);
|
||
#ifdef _OPENMP
|
||
#pragma omp parallel
|
||
#endif
|
||
|
||
{
|
||
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
for(int i = 0; i < height; i+=pitch)
|
||
{
|
||
int ix=i/pitch;
|
||
for(int j = 0, jx=0; j < width; j+=pitch, jx++) {
|
||
|
||
//copy common pixels
|
||
smooth->L[i][j] = data_coarse->L[ix][jx];
|
||
smooth->a[i][j] = data_coarse->a[ix][jx];
|
||
smooth->b[i][j] = data_coarse->b[ix][jx];
|
||
}
|
||
}
|
||
//if (pitch>1) {//pitch=2; step (1) expand coarse image, fill in missing data
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
for(int i = 0; i < height-1; i+=2)
|
||
for(int j = 0; j < width-1; j+=2) {
|
||
//do midpoint first
|
||
double norm=0.0,wtdsum[3]={0.0,0.0,0.0};
|
||
//wtdsum[0]=wtdsum[1]=wtdsum[2]=0.0;
|
||
for(int ix=i; ix<MIN(height,i+3); ix+=2)
|
||
for (int jx=j; jx<MIN(width,j+3); jx+=2) {
|
||
wtdsum[0] += smooth->L[ix][jx];
|
||
wtdsum[1] += smooth->a[ix][jx];
|
||
wtdsum[2] += smooth->b[ix][jx];
|
||
norm++;
|
||
}
|
||
norm = 1/norm;
|
||
smooth->L[i+1][j+1]=wtdsum[0]*norm;
|
||
smooth->a[i+1][j+1]=wtdsum[1]*norm;
|
||
smooth->b[i+1][j+1]=wtdsum[2]*norm;
|
||
}
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
|
||
for(int i = 0; i < height-1; i+=2)
|
||
for(int j = 0; j < width-1; j+=2) {
|
||
//now right neighbor
|
||
if (j+1==width) continue;
|
||
double norm=0.0,wtdsum[3]={0.0,0.0,0.0};
|
||
|
||
for (int jx=j; jx<MIN(width,j+3); jx+=2) {
|
||
wtdsum[0] += smooth->L[i][jx];
|
||
wtdsum[1] += smooth->a[i][jx];
|
||
wtdsum[2] += smooth->b[i][jx];
|
||
norm++;
|
||
}
|
||
for (int ix=MAX(0,i-1); ix<MIN(height,i+2); ix+=2) {
|
||
wtdsum[0] += smooth->L[ix][j+1];
|
||
wtdsum[1] += smooth->a[ix][j+1];
|
||
wtdsum[2] += smooth->b[ix][j+1];
|
||
norm++;
|
||
}
|
||
norm = 1/norm;
|
||
smooth->L[i][j+1]=wtdsum[0]*norm;
|
||
smooth->a[i][j+1]=wtdsum[1]*norm;
|
||
smooth->b[i][j+1]=wtdsum[2]*norm;
|
||
|
||
//now down neighbor
|
||
if (i+1==height) continue;
|
||
norm=0.0;wtdsum[0]=wtdsum[1]=wtdsum[2]=0.0;
|
||
for (int ix=i; ix<MIN(height,i+3); ix+=2) {
|
||
wtdsum[0] += smooth->L[ix][j];
|
||
wtdsum[1] += smooth->a[ix][j];
|
||
wtdsum[2] += smooth->b[ix][j];
|
||
norm++;
|
||
}
|
||
for (int jx=MAX(0,j-1); jx<MIN(width,j+2); jx+=2) {
|
||
wtdsum[0] += smooth->L[i+1][jx];
|
||
wtdsum[1] += smooth->a[i+1][jx];
|
||
wtdsum[2] += smooth->b[i+1][jx];
|
||
norm++;
|
||
}
|
||
norm=1/norm;
|
||
smooth->L[i+1][j]=wtdsum[0]*norm;
|
||
smooth->a[i+1][j]=wtdsum[1]*norm;
|
||
smooth->b[i+1][j]=wtdsum[2]*norm;
|
||
|
||
}
|
||
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
|
||
// step (2-3-4)
|
||
for( int i = 0; i < height; i++)
|
||
for(int j = 0; j < width; j++) {
|
||
|
||
float tonefactor = (nrwt_l[smooth->L[i][j]]);
|
||
//double wtdsum[3], norm;
|
||
float hipass[3], hpffluct[3], nrfactor;
|
||
|
||
hipass[1] = data_fine->a[i][j]-smooth->a[i][j];
|
||
hipass[2] = data_fine->b[i][j]-smooth->b[i][j];
|
||
|
||
//Wiener filter
|
||
//luma
|
||
if (level<2) {
|
||
hipass[0] = data_fine->L[i][j]-smooth->L[i][j];
|
||
hpffluct[0]=SQR(hipass[0])+SQR(hipass[1])+SQR(hipass[2])+0.001;
|
||
nrfactorL[i][j] = (1.0+hpffluct[0])/(1.0+hpffluct[0]+noisevar_L /* * Lcurve[smooth->L[i][j]]*/);
|
||
//hipass[0] *= hpffluct[0]/(hpffluct[0]+noisevar_L);
|
||
//data_fine->L[i][j] = CLIP(hipass[0]+smooth->L[i][j]);
|
||
}
|
||
|
||
//chroma
|
||
//hipass[1] = data_fine->a[i][j]-smooth->a[i][j];
|
||
//hipass[2] = data_fine->b[i][j]-smooth->b[i][j];
|
||
hpffluct[1]=SQR(hipass[1]*tonefactor)+0.001;
|
||
hpffluct[2]=SQR(hipass[2]*tonefactor)+0.001;
|
||
nrfactor = (hpffluct[1]+hpffluct[2]) /((hpffluct[1]+hpffluct[2]) + noisevar_ab * NRWT_AB /* * abcurve[smooth->L[i][j]]*/);
|
||
|
||
hipass[1] *= nrfactor;
|
||
hipass[2] *= nrfactor;
|
||
|
||
data_fine->a[i][j] = hipass[1]+smooth->a[i][j];
|
||
data_fine->b[i][j] = hipass[2]+smooth->b[i][j];
|
||
}
|
||
|
||
|
||
if (level<2) {
|
||
#ifdef _OPENMP
|
||
#pragma omp for
|
||
#endif
|
||
for(int i = 0; i < height; i++)
|
||
for(int j = 0; j < width; j++) {
|
||
|
||
float dirwt_l, norm_l;
|
||
float nrfctrave=0;
|
||
norm_l = 0;//if we do want to include the input pixel in the sum
|
||
|
||
for(int inbr=(i-pitch); inbr<=(i+pitch); inbr+=pitch) {
|
||
if (inbr<0 || inbr>height-1) continue;
|
||
for (int jnbr=(j-pitch); jnbr<=(j+pitch); jnbr+=pitch) {
|
||
if (jnbr<0 || jnbr>width-1) continue;
|
||
dirwt_l = DIRWT_L(inbr, jnbr, i, j);
|
||
nrfctrave += dirwt_l*nrfactorL[inbr][jnbr];
|
||
norm_l += dirwt_l;
|
||
}
|
||
}
|
||
|
||
nrfctrave /= norm_l;
|
||
//nrfctrave = nrfactorL[i][j];
|
||
//nrfctrave=1;
|
||
|
||
|
||
float hipass[3],p[9],temp,median;
|
||
|
||
//luma
|
||
|
||
/*if (i>0 && i<height-1 && j>0 && j<width-1) {
|
||
//med3x3(nrfactorL[i-1][j-1], nrfactorL[i-1][j], nrfactorL[i-1][j+1], \
|
||
nrfactorL[i][j-1], nrfactorL[i][j], nrfactorL[i][j+1], \
|
||
nrfactorL[i+1][j-1], nrfactorL[i+1][j], nrfactorL[i+1][j+1], median);
|
||
median = hmf(nrfactorL[i-1][j-1], nrfactorL[i-1][j], nrfactorL[i-1][j+1], \
|
||
nrfactorL[i][j-1], nrfactorL[i][j], nrfactorL[i][j+1], \
|
||
nrfactorL[i+1][j-1], nrfactorL[i+1][j], nrfactorL[i+1][j+1]);
|
||
} else {
|
||
median = nrfactorL[i][j];
|
||
}*/
|
||
hipass[0] = nrfctrave*(data_fine->L[i][j]-smooth->L[i][j]);
|
||
//hipass[0] = median*(data_fine->L[i][j]-smooth->L[i][j]);
|
||
//hipass[0] = nrfactorL[i][j]*(data_fine->L[i][j]-data_coarse->L[i][j]);
|
||
data_fine->L[i][j] = CLIP(hipass[0]+smooth->L[i][j]);
|
||
|
||
|
||
//chroma
|
||
//hipass[1] = nrfactorab[i][j]*(data_fine->a[i][j]-data_coarse->a[i][j]);
|
||
//hipass[2] = nrfactorab[i][j]*(data_fine->b[i][j]-data_coarse->b[i][j]);
|
||
|
||
//data_fine->a[i][j] = hipass[1]+data_coarse->a[i][j];
|
||
//data_fine->b[i][j] = hipass[2]+data_coarse->b[i][j];
|
||
}
|
||
}//end of luminance correction
|
||
|
||
|
||
} // end parallel
|
||
delete smooth;
|
||
}//end of pitch>1
|
||
|
||
};
|
||
|
||
|
||
#undef DIRWT_L
|
||
#undef DIRWT_AB
|
||
|
||
//#undef NRWT_L
|
||
#undef NRWT_AB
|
||
|
||
}
|
||
|