221 lines
5.3 KiB
C
221 lines
5.3 KiB
C
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/* @(#) Returns a circularly symmetric difference of Gaussian mask
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* @(#) min_amplitude should be greater than 0.0 and less than 1.0
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* @(#) min_amplitude determines the size of the mask; if for instance
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* @(#) the value .1 is entered this means that the produced mask is clipped
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* @(#) at values less than 10 percent of the minimum negative amplitude.
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* @(#) If the value of min_amplitude is too small, then the filter coefficients
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* @(#) are calculated for masksize equal to the min of 8 * sigma or 256.
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* @(#) The mask can be directly used with the vasari convolution programs,
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* @(#) the default offset set is 0
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* @(#)
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* @(#) DOUBLEMASK *im_log_dmask( filename, sigma, min_amplitude )
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* @(#) char *filename;
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* @(#) double sigma, min_amplitude;
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* @(#)
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* @(#) Returns a laplacian of Gaussian square double mask or NULL on error
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* @(#)
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* @(#) DOUBLEMASK *im_log_imask( filename, sigma, min_amplitude )
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* @(#) char *filename;
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* @(#) double sigma, min_amplitude;
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* @(#)
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* @(#) Returns a laplacian of Gaussian square int mask or NULL on error
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*/
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/* Written on: 30/11/1989
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* Updated on: 6/12/1991
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* 7/8/96 JC
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* - ansified, mem leaks plugged
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* 20/11/98 JC
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* - mask too large check added
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* 26/3/02 JC
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* - ahem, was broken since '96, thanks matt
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* 16/7/03 JC
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* - makes mask out to zero, not out to minimum, thanks again matt
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*/
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/*
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This file is part of VIPS.
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VIPS is free software; you can redistribute it and/or modify
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it under the terms of the GNU Lesser General Public License as published by
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the Free Software Foundation; either version 2 of the License, or
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(at your option) any later version.
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This program 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 Lesser General Public License for more details.
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You should have received a copy of the GNU Lesser General Public License
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along with this program; if not, write to the Free Software
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Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
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*/
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/*
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These files are distributed with VIPS - http://www.vips.ecs.soton.ac.uk
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*/
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/*
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#define PIM_RINT 1
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*/
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#ifdef HAVE_CONFIG_H
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#include <config.h>
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#endif /*HAVE_CONFIG_H*/
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#include <vips/intl.h>
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#include <stdio.h>
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#include <math.h>
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#include <vips/vips.h>
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#include <vips/util.h>
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#ifdef WITH_DMALLOC
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#include <dmalloc.h>
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#endif /*WITH_DMALLOC*/
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#define IM_MAXMASK 256
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DOUBLEMASK *
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im_log_dmask( const char *filename, double sigma, double min_ampl )
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{
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const double sig2 = sigma * sigma;
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double last;
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int x, y, k;
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double *pt1, *pt2, *pt3, *pt4;
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int xm, ym;
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int xm2, ym2; /* xm2 = xm/2 */
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int offset;
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double *cf, *cfs, *mc;
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DOUBLEMASK *m;
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double sum;
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/* Stop used-before-set warnings.
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*/
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last = 0.0;
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/* Find the size of the mask depending on the entered data. We want to
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* eval the mask out to the flat zero part, ie. beyond the minimum and
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* to the point where it comes back up towards zero.
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*/
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for( x = 0; x < IM_MAXMASK; x++ ) {
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const double distance = x * x;
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double val;
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/* Handbook of Pattern Recognition and image processing
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* by Young and Fu AP 1986 pp 220-221
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* temp = (1.0 / (2.0 * IM_PI * sig4)) *
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(2.0 - (distance / sig2)) *
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exp( (-1.0) * distance / (2.0 * sig2) )
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.. use 0.5 to normalise
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*/
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val = 0.5 *
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(2.0 - (distance / sig2)) *
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exp( -distance / (2.0 * sig2) );
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/* Stop when change in temp (ie. difference from the last
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* point) and absolute value are both less than the min.
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*/
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if( x > 0 &&
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fabs( val ) < min_ampl &&
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fabs( val - last ) < min_ampl )
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break;
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last = val;
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}
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if( x == IM_MAXMASK ) {
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im_errormsg( "im_log_dmask: mask too large" );
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return( NULL );
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}
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xm2 = x; ym2 = x;
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xm = xm2 * 2 + 1; ym = ym2 * 2 + 1;
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if( !(cfs = IM_ARRAY( NULL, (xm2 + 1) * (ym2 + 1), double )) )
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return( NULL );
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/* Make 1/4 of the mask.
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*/
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for( k = 0, y = 0; y <= ym2; y++ )
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for( x = 0; x <= xm2; x++, k++ ) {
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const double distance = x * x + y * y;
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cfs[k] = 0.5 *
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(2.0 - (distance / sig2)) *
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exp( -distance / (2.0 * sig2) );
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}
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#ifdef PIM_RINT
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for( k = 0, y = 0; y <= ym2; y++ ) {
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for( x = 0; x <= xm2; x++, k++ )
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fprintf( stderr, "%3.2f ", cfs[k] );
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fprintf( stderr, "\n" );
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}
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#endif
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if( !(m = im_create_dmask( filename, xm, ym )) ) {
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im_free( cfs );
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return( NULL );
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}
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/* Copy the 1/4 cfs into the m
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*/
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cf = cfs;
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offset = xm2 * (xm + 1);
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mc = m->coeff + offset;
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for( y = 0; y <= ym2; y++ ) {
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for( x = 0; x <= xm2; x++ ) {
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pt1 = mc + (y * xm) + x;
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pt2 = mc - (y * xm) + x;
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pt3 = mc + (y * xm) - x;
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pt4 = mc - (y * xm) - x;
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*pt1 = cf[x];
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*pt2 = cf[x];
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*pt3 = cf[x];
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*pt4 = cf[x];
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}
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cf += (xm2 + 1);
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}
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im_free( cfs );
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sum = 0.0;
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for( k = 0, y = 0; y < m->ysize; y++ )
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for( x = 0; x < m->xsize; x++, k++ )
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sum += m->coeff[k];
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m->scale = sum;
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m->offset = 0.0;
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#ifdef PIM_RINT
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im_print_dmask( m );
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#endif
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return( m );
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}
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INTMASK *
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im_log_imask( const char *filename, double sigma, double min_ampl )
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{
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DOUBLEMASK *dm;
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INTMASK *im;
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if( !(dm = im_log_dmask( filename, sigma, min_ampl )) )
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return( NULL );
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if( !(im = im_scale_dmask( dm, dm->filename )) ) {
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im_free_dmask( dm );
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return( NULL );
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}
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im_free_dmask( dm );
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return( im ) ;
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}
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