mirror of
https://github.com/love2d/love-android.git
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467 lines
9.8 KiB
C
467 lines
9.8 KiB
C
// http://www.cse.ucsc.edu/~pang/160/f98/Gems/GemsIII/
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/*
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* Filtered Image Rescaling
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*
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* by Dale Schumacher
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*/
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#if 0
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#include "ilu_internal.h"
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char _Copyright[] = "Public Domain 1991 by Dale Schumacher";
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#define WHITE_PIXEL (255)
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#define BLACK_PIXEL (0)
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/*
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* generic image access and i/o support routines
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*/
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ILubyte get_pixel(ILuint x, ILuint y)
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{
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Image *im = NULL;
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int yy = -1;
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Pixel *p = NULL;
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if((x < 0) || (x >= image->xsize) || (y < 0) || (y >= image->ysize)) {
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return(0);
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}
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if((im != image) || (yy != y)) {
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im = image;
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yy = y;
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p = image->data + (y * image->span);
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}
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return(p[x]);
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}
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void
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get_row(row, image, y)
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Pixel *row;
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Image *image;
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int y;
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{
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if((y < 0) || (y >= image->ysize)) {
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return;
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}
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memcpy(row,
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image->data + (y * image->span),
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(sizeof(Pixel) * image->xsize));
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}
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void
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get_column(column, image, x)
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Pixel *column;
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Image *image;
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int x;
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{
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int i, d;
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Pixel *p;
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if((x < 0) || (x >= image->xsize)) {
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return;
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}
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d = image->span;
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for(i = image->ysize, p = image->data + x; i-- > 0; p += d) {
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*column++ = *p;
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}
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}
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Pixel
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put_pixel(image, x, y, data)
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Image *image;
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int x, y;
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Pixel data;
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{
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Image *im = NULL;
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ILint yy = -1;
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Pixel *p = NULL;
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if((x < 0) || (x >= image->xsize) || (y < 0) || (y >= image->ysize)) {
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return(0);
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}
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if((im != image) || (yy != y)) {
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im = image;
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yy = y;
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p = image->data + (y * image->span);
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}
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return(p[x] = data);
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}
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/*
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* filter function definitions
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*/
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#define filter_support (1.0)
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double filter( double t) {
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/* f(t) = 2|t|^3 - 3|t|^2 + 1, -1 <= t <= 1 */
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if(t < 0.0) t = -t;
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if(t < 1.0) return((2.0 * t - 3.0) * t * t + 1.0);
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return(0.0);
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}
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#define box_support (0.5)
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double box_filter( double t) {
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if((t > -0.5) && (t <= 0.5)) return(1.0);
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return(0.0);
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}
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#define triangle_support (1.0)
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double triangle_filter( double t ) {
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if(t < 0.0) t = -t;
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if(t < 1.0) return(1.0 - t);
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return(0.0);
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}
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#define bell_support (1.5)
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double bell_filter( double t) { /* box (*) box (*) box */
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if(t < 0) t = -t;
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if(t < .5) return(.75 - (t * t));
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if(t < 1.5) {
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t = (t - 1.5);
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return(.5 * (t * t));
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}
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return(0.0);
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}
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#define B_spline_support (2.0)
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double
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B_spline_filter(t) /* box (*) box (*) box (*) box */
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double t;
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{
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double tt;
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if(t < 0) t = -t;
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if(t < 1) {
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tt = t * t;
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return((.5 * tt * t) - tt + (2.0 / 3.0));
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} else if(t < 2) {
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t = 2 - t;
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return((1.0 / 6.0) * (t * t * t));
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}
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return(0.0);
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}
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double
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sinc(x)
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double x;
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{
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x *= IL_PI;
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if(x != 0) return(sin(x) / x);
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return(1.0);
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}
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#define Lanczos3_support (3.0)
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double
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Lanczos3_filter(t)
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double t;
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{
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if(t < 0) t = -t;
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if(t < 3.0) return(sinc(t) * sinc(t/3.0));
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return(0.0);
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}
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#define Mitchell_support (2.0)
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#define B (1.0 / 3.0)
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#define C (1.0 / 3.0)
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double
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Mitchell_filter(t)
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double t;
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{
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double tt;
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tt = t * t;
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if(t < 0) t = -t;
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if(t < 1.0) {
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t = (((12.0 - 9.0 * B - 6.0 * C) * (t * tt))
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+ ((-18.0 + 12.0 * B + 6.0 * C) * tt)
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+ (6.0 - 2 * B));
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return(t / 6.0);
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} else if(t < 2.0) {
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t = (((-1.0 * B - 6.0 * C) * (t * tt))
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+ ((6.0 * B + 30.0 * C) * tt)
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+ ((-12.0 * B - 48.0 * C) * t)
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+ (8.0 * B + 24 * C));
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return(t / 6.0);
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}
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return(0.0);
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}
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/*
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* image rescaling routine
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*/
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typedef struct {
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int pixel;
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double weight;
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} CONTRIB;
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typedef struct {
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int n; /* number of contributors */
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CONTRIB *p; /* pointer to list of contributions */
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} CLIST;
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CLIST *contrib; /* array of contribution lists */
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void
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zoom(dst, src, filterf, fwidth)
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Image *dst; /* destination image structure */
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Image *src; /* source image structure */
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double (*filterf)(); /* filter function */
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double fwidth; /* filter width (support) */
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{
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Image *tmp; /* intermediate image */
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double xscale, yscale; /* zoom scale factors */
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int i, j, k; /* loop variables */
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int n; /* pixel number */
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double center, left, right; /* filter calculation variables */
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double width, fscale, weight; /* filter calculation variables */
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Pixel *raster; /* a row or column of pixels */
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/* create intermediate image to hold horizontal zoom */
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tmp = new_image(dst->xsize, src->ysize);
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xscale = (double) dst->xsize / (double) src->xsize;
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yscale = (double) dst->ysize / (double) src->ysize;
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/* pre-calculate filter contributions for a row */
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contrib = (CLIST*)icalloc(dst->xsize, sizeof(CLIST));
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if(xscale < 1.0) {
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width = fwidth / xscale;
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fscale = 1.0 / xscale;
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for(i = 0; i < dst->xsize; ++i) {
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contrib[i].n = 0;
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contrib[i].p = (CONTRIB*)icalloc((int) (width * 2 + 1),
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sizeof(CONTRIB));
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center = (double) i / xscale;
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left = ceil(center - width);
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right = floor(center + width);
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for(j = left; j <= right; ++j) {
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weight = center - (double) j;
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weight = (*filterf)(weight / fscale) / fscale;
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if(j < 0) {
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n = -j;
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} else if(j >= src->xsize) {
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n = (src->xsize - j) + src->xsize - 1;
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} else {
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n = j;
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}
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k = contrib[i].n++;
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contrib[i].p[k].pixel = n;
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contrib[i].p[k].weight = weight;
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}
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}
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} else {
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for(i = 0; i < dst->xsize; ++i) {
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contrib[i].n = 0;
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contrib[i].p = (CONTRIB*)icalloc((int) (fwidth * 2 + 1), sizeof(CONTRIB));
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center = (double) i / xscale;
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left = ceil(center - fwidth);
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right = floor(center + fwidth);
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for(j = left; j <= right; ++j) {
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weight = center - (double) j;
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weight = (*filterf)(weight);
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if(j < 0) {
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n = -j;
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} else if(j >= src->xsize) {
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n = (src->xsize - j) + src->xsize - 1;
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} else {
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n = j;
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}
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k = contrib[i].n++;
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contrib[i].p[k].pixel = n;
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contrib[i].p[k].weight = weight;
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}
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}
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}
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/* apply filter to zoom horizontally from src to tmp */
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raster = (Pixel*)icalloc(src->xsize, sizeof(Pixel));
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for(k = 0; k < tmp->ysize; ++k) {
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get_row(raster, src, k);
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for(i = 0; i < tmp->xsize; ++i) {
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weight = 0.0;
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for(j = 0; j < contrib[i].n; ++j) {
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weight += raster[contrib[i].p[j].pixel]
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* contrib[i].p[j].weight;
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}
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put_pixel(tmp, i, k,
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(Pixel)CLAMP(weight, BLACK_PIXEL, WHITE_PIXEL));
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}
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}
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ifree(raster);
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/* free the memory allocated for horizontal filter weights */
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for(i = 0; i < tmp->xsize; ++i) {
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ifree(contrib[i].p);
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}
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ifree(contrib);
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/* pre-calculate filter contributions for a column */
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contrib = (CLIST*)icalloc(dst->ysize, sizeof(CLIST));
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if(yscale < 1.0) {
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width = fwidth / yscale;
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fscale = 1.0 / yscale;
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for(i = 0; i < dst->ysize; ++i) {
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contrib[i].n = 0;
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contrib[i].p = (CONTRIB*)icalloc((int) (width * 2 + 1), sizeof(CONTRIB));
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center = (double) i / yscale;
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left = ceil(center - width);
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right = floor(center + width);
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for(j = left; j <= right; ++j) {
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weight = center - (double) j;
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weight = (*filterf)(weight / fscale) / fscale;
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if(j < 0) {
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n = -j;
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} else if(j >= tmp->ysize) {
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n = (tmp->ysize - j) + tmp->ysize - 1;
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} else {
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n = j;
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}
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k = contrib[i].n++;
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contrib[i].p[k].pixel = n;
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contrib[i].p[k].weight = weight;
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}
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}
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} else {
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for(i = 0; i < dst->ysize; ++i) {
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contrib[i].n = 0;
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contrib[i].p = (CONTRIB*)icalloc((int) (fwidth * 2 + 1),
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sizeof(CONTRIB));
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center = (double) i / yscale;
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left = ceil(center - fwidth);
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right = floor(center + fwidth);
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for(j = left; j <= right; ++j) {
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weight = center - (double) j;
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weight = (*filterf)(weight);
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if(j < 0) {
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n = -j;
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} else if(j >= tmp->ysize) {
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n = (tmp->ysize - j) + tmp->ysize - 1;
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} else {
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n = j;
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}
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k = contrib[i].n++;
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contrib[i].p[k].pixel = n;
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contrib[i].p[k].weight = weight;
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}
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}
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}
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/* apply filter to zoom vertically from tmp to dst */
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raster = (Pixel*)icalloc(tmp->ysize, sizeof(Pixel));
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for(k = 0; k < dst->xsize; ++k) {
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get_column(raster, tmp, k);
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for(i = 0; i < dst->ysize; ++i) {
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weight = 0.0;
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for(j = 0; j < contrib[i].n; ++j) {
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weight += raster[contrib[i].p[j].pixel]
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* contrib[i].p[j].weight;
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}
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put_pixel(dst, k, i,
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(Pixel)CLAMP(weight, BLACK_PIXEL, WHITE_PIXEL));
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}
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}
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ifree(raster);
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/* free the memory allocated for vertical filter weights */
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for(i = 0; i < dst->ysize; ++i) {
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ifree(contrib[i].p);
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}
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ifree(contrib);
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free_image(tmp);
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}
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/*
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* command line interface
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*/
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void
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usage()
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{
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fprintf(stderr, "usage: %s [-options] input.bm output.bm\n", _Program);
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fprintf(stderr, "\
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options:\n\
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-x xsize output x size\n\
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-y ysize output y size\n\
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-f filter filter type\n\
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{b=box, t=triangle, q=bell, B=B-spline, h=hermite, l=Lanczos3, m=Mitchell}\n\
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");
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exit(1);
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}
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main(argc, argv)
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int argc;
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char *argv[];
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{
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register int c;
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int optind;
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char *optarg;
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int xsize = 0, ysize = 0;
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double (*f)() = filter;
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double s = filter_support;
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char *dstfile, *srcfile;
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Image *dst, *src;
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FILE *fp;
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while((c = getopt(argc, argv, "x:y:f:V")) != EOF) {
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switch(c) {
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case 'x': xsize = atoi(optarg); break;
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case 'y': ysize = atoi(optarg); break;
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case 'f':
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switch(*optarg) {
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case 'b': f=box_filter; s=box_support; break;
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case 't': f=triangle_filter; s=triangle_support; break;
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case 'q': f=bell_filter; s=bell_support; break;
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case 'B': f=B_spline_filter; s=B_spline_support; break;
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case 'h': f=filter; s=filter_support; break;
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case 'l': f=Lanczos3_filter; s=Lanczos3_support; break;
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case 'm': f=Mitchell_filter; s=Mitchell_support; break;
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default: usage();
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}
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break;
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case 'V': banner(); exit(EXIT_SUCCESS);
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case '?': usage();
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default: usage();
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}
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}
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if((argc - optind) != 2) usage();
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srcfile = argv[optind];
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dstfile = argv[optind + 1];
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if(((fp = fopen(srcfile, "r")) == NULL)
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|| ((src = load_image(fp)) == NULL)) {
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fprintf(stderr, "%s: can't load source image '%s'\n",
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_Program, srcfile);
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exit(EXIT_FAILURE);
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}
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fclose(fp);
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if(xsize <= 0) xsize = src->xsize;
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if(ysize <= 0) ysize = src->ysize;
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dst = new_image(xsize, ysize);
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zoom(dst, src, f, s);
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if(((fp = fopen(dstfile, "w")) == NULL)
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|| (save_image(fp, dst) != 0)) {
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fprintf(stderr, "%s: can't save destination image '%s'\n",
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_Program, dstfile);
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exit(EXIT_FAILURE);
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}
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fclose(fp);
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exit(EXIT_SUCCESS);
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}
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#endif
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