676 lines
18 KiB
C++
676 lines
18 KiB
C++
//
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// "$Id: image.cxx 4324 2005-05-09 21:47:22Z rokan $"
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//
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// Postscript image drawing implementation for the Fast Light Tool Kit (FLTK).
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//
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// Copyright 1998-2015 by Bill Spitzak and others.
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//
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// This library is free software. Distribution and use rights are outlined in
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// the file "COPYING" which should have been included with this file. If this
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// file is missing or damaged, see the license at:
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//
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// http://www.fltk.org/COPYING.php
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//
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// Please report all bugs and problems on the following page:
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//
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// http://www.fltk.org/str.php
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//
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#ifndef FL_DOXYGEN
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#include <stdio.h>
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#include <math.h>
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#include <string.h>
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#include <FL/Fl_PostScript.H>
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#include <FL/Fl.H>
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#include <FL/Fl_Pixmap.H>
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#include <FL/Fl_Bitmap.H>
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//
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// Implementation of the /ASCII85Encode PostScript filter
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// as described in "PostScript LANGUAGE REFERENCE third edition" p. 131
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//
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struct struct85 {
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uchar bytes4[4]; // holds up to 4 input bytes
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int l4; // # of unencoded input bytes
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int blocks; // counter to insert newlines after 80 output characters
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uchar chars5[5]; // holds 5 output characters
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};
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void *Fl_PostScript_Graphics_Driver::prepare85() // prepare to produce ASCII85-encoded output
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{
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struct85 *big = new struct85;
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big->l4 = 0;
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big->blocks = 0;
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return big;
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}
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// ASCII85-encodes 4 input bytes from bytes4 into chars5 array
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// returns # of output chars
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static int convert85(const uchar *bytes4, uchar *chars5)
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{
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if (bytes4[0] == 0 && bytes4[1] == 0 && bytes4[2] == 0 && bytes4[3] == 0) {
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chars5[0] = 'z';
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return 1;
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}
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unsigned val = bytes4[0]*(256*256*256) + bytes4[1]*(256*256) + bytes4[2]*256 + bytes4[3];
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chars5[0] = val / 52200625 + 33; // 52200625 = 85 to the 4th
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val = val % 52200625;
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chars5[1] = val / 614125 + 33; // 614125 = 85 cube
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val = val % 614125;
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chars5[2] = val / 7225 + 33; // 7225 = 85 squared
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val = val % 7225;
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chars5[3] = val / 85 + 33;
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chars5[4] = val % 85 + 33;
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return 5;
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}
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void Fl_PostScript_Graphics_Driver::write85(void *data, const uchar *p, int len) // sends len input bytes for ASCII85 encoding
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{
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struct85 *big = (struct85 *)data;
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const uchar *last = p + len;
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while (p < last) {
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int c = 4 - big->l4;
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if (last-p < c) c = last-p;
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memcpy(big->bytes4 + big->l4, p, c);
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p += c;
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big->l4 += c;
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if (big->l4 == 4) {
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c = convert85(big->bytes4, big->chars5);
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fwrite(big->chars5, c, 1, output);
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big->l4 = 0;
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if (++big->blocks >= 16) { fputc('\n', output); big->blocks = 0; }
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}
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}
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}
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void Fl_PostScript_Graphics_Driver::close85(void *data) // stops ASCII85-encoding after processing remaining unencoded input bytes, if any
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{
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struct85 *big = (struct85 *)data;
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int l;
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if (big->l4) { // # of remaining unencoded input bytes
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l = big->l4;
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while (l < 4) big->bytes4[l++] = 0; // complete them with 0s
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l = convert85(big->bytes4, big->chars5); // encode them
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if (l == 1) memset(big->chars5, '!', 5);
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fwrite(big->chars5, big->l4 + 1, 1, output);
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}
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fputs("~>", output); // write EOD mark
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delete big;
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}
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//
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// End of implementation of the /ASCII85Encode PostScript filter
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//
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//
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// Implementation of the /RunLengthEncode + /ASCII85Encode PostScript filter
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// as described in "PostScript LANGUAGE REFERENCE third edition" p. 142
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//
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struct struct_rle85 {
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struct85 *data85; // aux data for ASCII85 encoding
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uchar buffer[128]; // holds non-run data
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int count; // current buffer length
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int run_length; // current length of run
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};
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void *Fl_PostScript_Graphics_Driver::prepare_rle85() // prepare to produce RLE+ASCII85-encoded output
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{
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struct_rle85 *rle = new struct_rle85;
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rle->count = 0;
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rle->run_length = 0;
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rle->data85 = (struct85*)prepare85();
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return rle;
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}
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void Fl_PostScript_Graphics_Driver::write_rle85(uchar b, void *data) // sends one input byte to RLE+ASCII85 encoding
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{
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struct_rle85 *rle = (struct_rle85 *)data;
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uchar c;
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if (rle->run_length > 0) { // if within a run
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if (b == rle->buffer[0] && rle->run_length < 128) { // the run can be extended
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rle->run_length++;
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return;
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} else { // output the run
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c = (uchar)(257 - rle->run_length);
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write85(rle->data85, &c, 1); // the run-length info
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write85(rle->data85, rle->buffer, 1); // the byte of the run
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rle->run_length = 0;
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}
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}
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if (rle->count >= 2 && b == rle->buffer[rle->count-1] && b == rle->buffer[rle->count-2]) {
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// about to begin a run
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if (rle->count > 2) { // there is non-run data before the run in the buffer
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c = (uchar)(rle->count-2 - 1);
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write85(rle->data85, &c, 1); // length of non-run data
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write85(rle->data85, rle->buffer, rle->count-2); // non-run data
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}
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rle->run_length = 3;
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rle->buffer[0] = b;
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rle->count = 0;
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return;
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}
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if (rle->count >= 128) { // the non-run buffer is full, output it
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c = (uchar)(rle->count - 1);
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write85(rle->data85, &c, 1); // length of non-run data
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write85(rle->data85, rle->buffer, rle->count); // non-run data
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rle->count = 0;
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}
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rle->buffer[rle->count++] = b; // add byte to end of non-run buffer
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}
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void Fl_PostScript_Graphics_Driver::close_rle85(void *data) // stop doing RLE+ASCII85 encoding
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{
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struct_rle85 *rle = (struct_rle85 *)data;
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uchar c;
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if (rle->run_length > 0) { // if within a run, output it
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c = (uchar)(257 - rle->run_length);
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write85(rle->data85, &c, 1);
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write85(rle->data85, rle->buffer, 1);
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} else if (rle->count) { // output the non-run buffer, if not empty
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c = (uchar)(rle->count - 1);
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write85(rle->data85, &c, 1);
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write85(rle->data85, rle->buffer, rle->count);
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}
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c = (uchar)128;
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write85(rle->data85, &c, 1); // output EOD mark
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close85(rle->data85); // close ASCII85 encoding process
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delete rle;
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}
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//
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// End of implementation of the /RunLengthEncode + /ASCII85Encode PostScript filter
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//
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int Fl_PostScript_Graphics_Driver::alpha_mask(const uchar * data, int w, int h, int D, int LD){
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mask = 0;
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if ((D/2)*2 != D){ //no mask info
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return 0;
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}
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int xx;
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int i,j, k, l;
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LD += w*D;
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int V255=0;
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int V0 =0;
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int V_=0;
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for (j=0;j<h;j++){
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for (i=0;i<w;i++)
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switch(data[j*LD+D*i+D-1]){
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case 255: V255 = 1; break;
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case 0: V0 = 1; break;
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default: V_= 1;
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}
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if (V_) break;
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};
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if (!V_){
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if (V0)
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if (V255){// not true alpha, only masking
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xx = (w+7)/8;
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mask = new uchar[h * xx];
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for (i=0;i<h * xx;i++) mask[i]=0;
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for (j=0;j<h;j++)
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for (i=0;i<w;i++)
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if (data[j*LD+D*i+D-1])
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mask[j*xx+i/8] |= 1 << (i % 8);
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mx = w;
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my = h; //mask imensions
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return 0;
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} else {
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mask=0;
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return 1; //everything masked
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}
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else
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return 0;
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}
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///// Alpha dither, generating (4*w) * 4 mask area /////
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///// with Floyd-Steinberg error diffusion /////
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mask = new uchar[((w+1)/2) * h * 4];
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for (i = 0; i<((w+1)/2) * h * 4; i++) mask[i] = 0; //cleaning
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mx= w*4;
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my=h*4; // mask dimensions
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xx = (w+1)/2; // mask line width in bytes
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short * errors1 = new short [w*4+2]; // two rows of dither errors
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short * errors2 = new short [w*4+2]; // two rows of dither errors
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for (i=0; i<w*4+2; i++) errors2[i] = 0; // cleaning,after first swap will become current
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for (i=0; i<w*4+2; i++) errors1[i] = 0; // cleaning,after first swap will become current
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short * current = errors1;
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short * next = errors2;
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short * swap;
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for (j=0; j<h; j++){
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for (l=0; l<4; ){ // generating 4 rows of mask lines for 1 RGB line
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int jj = j*4+l;
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/// mask row index
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swap = next;
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next = current;
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current = swap;
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*(next+1) = 0; // must clean the first cell, next are overriden by *1
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for (i=0; i<w; i++){
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for (k=0; k<4; k++){ // generating 4 x-pixels for 1 RGB
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short error, o1, o2, o3;
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int ii = i*4+k; // mask cell index
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short val = data[j*LD+D*i+D-1] + current[1+ii];
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if (val>127){
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mask[jj*xx+ii/8] |= 1 << (ii % 8); //set mask bit
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error = val-255;
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}else
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error = val;
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////// error spreading /////
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if (error >0){
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next[ii] += o1 = (error * 3 + 8)/16;
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current[ii+2] += o2 = (error * 7 + 8)/16;
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next[ii+2] = o3 =(error + 8)/16; // *1 - ok replacing (cleaning)
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} else {
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next[ii] += o1 = (error * 3 - 8)/16;
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current[ii+2] += o2 = (error * 7 - 8)/16;
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next[ii+2] = o3 = (error - 8)/16;
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}
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next[1+ii] += error - o1 - o2 - o3;
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}
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}
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l++;
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////// backward
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jj = j*4+l;
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swap = next;
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next = current;
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current = swap;
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*(next+1) = 0; // must clean the first cell, next are overriden by *1
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for (i = w-1; i >= 0; i--){
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for (k=3; k>=0; k--){ // generating 4 x-pixels for 1 RGB
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short error, o1, o2, o3;
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int ii = i*4+k; // mask cell index
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short val = data[j*LD+D*i+D-1] + current[1+ii];
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if (val>127){
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mask[jj*xx+ii/8] |= 1 << (ii % 8); //set mask bit
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error = val-255;
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} else
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error = val;
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////// error spreading /////
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if (error >0){
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next[ii+2] += o1 = (error * 3 + 8)/16;
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current[ii] += o2 = (error * 7 + 8)/16;
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next[ii] = o3 =(error + 8)/16; // *1 - ok replacing (cleaning)
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} else {
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next[ii+2] += o1 = (error * 3 - 8)/16;
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current[ii] += o2 = (error * 7 - 8)/16;
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next[ii] = o3 = (error - 8)/16;
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}
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next[1+ii] += error - o1 - o2 - o3;
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}
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}
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l++;
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}
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}
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delete[] errors1;
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delete[] errors2;
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return 0;
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}
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// bitwise inversion of all 4-bit quantities
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static const unsigned char swapped[16] = {0,8,4,12,2,10,6,14,1,9,5,13,3,11,7,15};
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// bitwise inversion of a byte
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static inline uchar swap_byte(const uchar b) {
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return (swapped[b & 0xF] << 4) | swapped[b >> 4];
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}
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extern uchar **fl_mask_bitmap;
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struct callback_data {
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const uchar *data;
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int D, LD;
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};
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static void draw_image_cb(void *data, int x, int y, int w, uchar *buf) {
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struct callback_data *cb_data;
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const uchar *curdata;
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cb_data = (struct callback_data*)data;
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curdata = cb_data->data + x*cb_data->D + y*cb_data->LD;
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memcpy(buf, curdata, w*cb_data->D);
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}
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void Fl_PostScript_Graphics_Driver::draw_image(const uchar *data, int ix, int iy, int iw, int ih, int D, int LD) {
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if (D<3){ //mono
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draw_image_mono(data, ix, iy, iw, ih, D, LD);
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return;
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}
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struct callback_data cb_data;
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if (!LD) LD = iw*D;
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cb_data.data = data;
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cb_data.D = D;
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cb_data.LD = LD;
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draw_image(draw_image_cb, &cb_data, ix, iy, iw, ih, D);
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}
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void Fl_PostScript_Graphics_Driver::draw_image(Fl_Draw_Image_Cb call, void *data, int ix, int iy, int iw, int ih, int D) {
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double x = ix, y = iy, w = iw, h = ih;
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int level2_mask = 0;
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fprintf(output,"save\n");
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int i,j,k;
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const char * interpol;
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if (lang_level_ > 1) {
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if (interpolate_) interpol="true";
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else interpol="false";
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if (mask && lang_level_ > 2) {
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fprintf(output, "%g %g %g %g %i %i %i %i %s CIM\n", x , y+h , w , -h , iw , ih, mx, my, interpol);
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}
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else if (mask && lang_level_ == 2) {
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level2_mask = 1; // use method for drawing masked color image with PostScript level 2
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fprintf(output, " %g %g %g %g %d %d pixmap_plot\n", x, y, w, h, iw, ih);
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}
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else {
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fprintf(output, "%g %g %g %g %i %i %s CII\n", x , y+h , w , -h , iw , ih, interpol);
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}
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} else {
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fprintf(output , "%g %g %g %g %i %i CI", x , y+h , w , -h , iw , ih);
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}
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int LD=iw*D;
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uchar *rgbdata=new uchar[LD];
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uchar *curmask=mask;
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void *big = prepare_rle85();
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if (level2_mask) {
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for (j = ih - 1; j >= 0; j--) { // output full image data
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call(data, 0, j, iw, rgbdata);
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uchar *curdata = rgbdata;
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for (i=0 ; i<iw ; i++) {
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write_rle85(curdata[0], big); write_rle85(curdata[1], big); write_rle85(curdata[2], big);
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curdata += D;
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}
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}
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close_rle85(big); fputc('\n', output);
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big = prepare_rle85();
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for (j = ih - 1; j >= 0; j--) { // output mask data
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curmask = mask + j * (my/ih) * ((mx+7)/8);
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for (k=0; k < my/ih; k++) {
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for (i=0; i < ((mx+7)/8); i++) {
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write_rle85(swap_byte(*curmask), big);
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curmask++;
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}
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}
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}
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}
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else {
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for (j=0; j<ih;j++) {
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if (mask && lang_level_ > 2) { // InterleaveType 2 mask data
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for (k=0; k<my/ih;k++) { //for alpha pseudo-masking
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for (i=0; i<((mx+7)/8);i++) {
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write_rle85(swap_byte(*curmask), big);
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curmask++;
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}
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}
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}
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call(data,0,j,iw,rgbdata);
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uchar *curdata=rgbdata;
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for (i=0 ; i<iw ; i++) {
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uchar r = curdata[0];
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uchar g = curdata[1];
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uchar b = curdata[2];
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if (lang_level_<3 && D>3) { //can do mixing using bg_* colors)
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unsigned int a2 = curdata[3]; //must be int
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unsigned int a = 255-a2;
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r = (a2 * r + bg_r * a)/255;
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g = (a2 * g + bg_g * a)/255;
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b = (a2 * b + bg_b * a)/255;
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}
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write_rle85(r, big); write_rle85(g, big); write_rle85(b, big);
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curdata +=D;
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}
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}
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}
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close_rle85(big);
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fprintf(output,"\nrestore\n");
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delete[] rgbdata;
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}
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void Fl_PostScript_Graphics_Driver::draw_image_mono(const uchar *data, int ix, int iy, int iw, int ih, int D, int LD) {
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double x = ix, y = iy, w = iw, h = ih;
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fprintf(output,"save\n");
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int i,j, k;
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const char * interpol;
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if (lang_level_>1){
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if (interpolate_)
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interpol="true";
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else
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interpol="false";
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if (mask && lang_level_>2)
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|
fprintf(output, "%g %g %g %g %i %i %i %i %s GIM\n", x , y+h , w , -h , iw , ih, mx, my, interpol);
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else
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|
fprintf(output, "%g %g %g %g %i %i %s GII\n", x , y+h , w , -h , iw , ih, interpol);
|
|
}else
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|
fprintf(output , "%g %g %g %g %i %i GI", x , y+h , w , -h , iw , ih);
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if (!LD) LD = iw*D;
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int bg = (bg_r + bg_g + bg_b)/3;
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|
|
uchar *curmask=mask;
|
|
void *big = prepare_rle85();
|
|
for (j=0; j<ih;j++){
|
|
if (mask){
|
|
for (k=0;k<my/ih;k++){
|
|
for (i=0; i<((mx+7)/8);i++){
|
|
write_rle85(swap_byte(*curmask), big);
|
|
curmask++;
|
|
}
|
|
}
|
|
}
|
|
const uchar *curdata=data+j*LD;
|
|
for (i=0 ; i<iw ; i++) {
|
|
uchar r = curdata[0];
|
|
if (lang_level_<3 && D>1) { //can do mixing
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|
|
|
unsigned int a2 = curdata[1]; //must be int
|
|
unsigned int a = 255-a2;
|
|
r = (a2 * r + bg * a)/255;
|
|
}
|
|
write_rle85(r, big);
|
|
curdata +=D;
|
|
}
|
|
|
|
}
|
|
close_rle85(big);
|
|
fprintf(output,"restore\n");
|
|
}
|
|
|
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|
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void Fl_PostScript_Graphics_Driver::draw_image_mono(Fl_Draw_Image_Cb call, void *data, int ix, int iy, int iw, int ih, int D) {
|
|
double x = ix, y = iy, w = iw, h = ih;
|
|
|
|
fprintf(output,"save\n");
|
|
int i,j,k;
|
|
const char * interpol;
|
|
if (lang_level_>1){
|
|
if (interpolate_) interpol="true";
|
|
else interpol="false";
|
|
if (mask && lang_level_>2)
|
|
fprintf(output, "%g %g %g %g %i %i %i %i %s GIM\n", x , y+h , w , -h , iw , ih, mx, my, interpol);
|
|
else
|
|
fprintf(output, "%g %g %g %g %i %i %s GII\n", x , y+h , w , -h , iw , ih, interpol);
|
|
} else
|
|
fprintf(output , "%g %g %g %g %i %i GI", x , y+h , w , -h , iw , ih);
|
|
|
|
int LD=iw*D;
|
|
uchar *rgbdata=new uchar[LD];
|
|
uchar *curmask=mask;
|
|
void *big = prepare_rle85();
|
|
for (j=0; j<ih;j++){
|
|
|
|
if (mask && lang_level_>2){ // InterleaveType 2 mask data
|
|
for (k=0; k<my/ih;k++){ //for alpha pseudo-masking
|
|
for (i=0; i<((mx+7)/8);i++){
|
|
write_rle85(swap_byte(*curmask), big);
|
|
curmask++;
|
|
}
|
|
}
|
|
}
|
|
call(data,0,j,iw,rgbdata);
|
|
uchar *curdata=rgbdata;
|
|
for (i=0 ; i<iw ; i++) {
|
|
write_rle85(curdata[0], big);
|
|
curdata +=D;
|
|
}
|
|
}
|
|
close_rle85(big);
|
|
fprintf(output,"restore\n");
|
|
delete[] rgbdata;
|
|
}
|
|
|
|
|
|
////////////////////////////// Image classes //////////////////////
|
|
|
|
|
|
void Fl_PostScript_Graphics_Driver::draw(Fl_Pixmap * pxm,int XP, int YP, int WP, int HP, int cx, int cy){
|
|
const char * const * di =pxm->data();
|
|
int w,h;
|
|
if (!fl_measure_pixmap(di, w, h)) return;
|
|
mask=0;
|
|
fl_mask_bitmap=&mask;
|
|
mx = WP;
|
|
my = HP;
|
|
push_clip(XP, YP, WP, HP);
|
|
fl_draw_pixmap(di,XP -cx, YP -cy, FL_BLACK );
|
|
pop_clip();
|
|
delete[] mask;
|
|
mask=0;
|
|
fl_mask_bitmap=0;
|
|
}
|
|
|
|
void Fl_PostScript_Graphics_Driver::draw(Fl_RGB_Image * rgb,int XP, int YP, int WP, int HP, int cx, int cy){
|
|
const uchar * di = rgb->array;
|
|
int w = rgb->w();
|
|
int h = rgb->h();
|
|
mask=0;
|
|
if (lang_level_>2) //when not true, not making alphamask, mixing colors instead...
|
|
if (alpha_mask(di, w, h, rgb->d(),rgb->ld())) return; //everthing masked, no need for painting!
|
|
push_clip(XP, YP, WP, HP);
|
|
draw_image(di, XP + cx, YP + cy, w, h, rgb->d(), rgb->ld());
|
|
pop_clip();
|
|
delete[]mask;
|
|
mask=0;
|
|
}
|
|
|
|
int Fl_PostScript_Graphics_Driver::draw_scaled(Fl_Image *img, int XP, int YP, int WP, int HP){
|
|
int X, Y, W, H;
|
|
clip_box(XP,YP,WP,HP,X,Y,W,H); // X,Y,W,H will give the unclipped area of XP,YP,WP,HP
|
|
if (W == 0 || H == 0) return 1;
|
|
push_no_clip(); // remove the FLTK clip that can't be rescaled
|
|
clocale_printf("%d %d %i %i CL\n", X, Y, W, H);
|
|
clocale_printf("GS %d %d TR %f %f SC GS\n", XP, YP, float(WP)/img->w(), float(HP)/img->h());
|
|
img->draw(0, 0, img->w(), img->h(), 0, 0);
|
|
clocale_printf("GR GR\n");
|
|
pop_clip(); // restore FLTK's clip
|
|
return 1;
|
|
}
|
|
|
|
void Fl_PostScript_Graphics_Driver::draw(Fl_Bitmap * bitmap,int XP, int YP, int WP, int HP, int cx, int cy){
|
|
const uchar * di = bitmap->array;
|
|
int w,h;
|
|
int LD=(bitmap->w()+7)/8;
|
|
int xx;
|
|
|
|
if (WP> bitmap->w() - cx){// to assure that it does not go out of bounds;
|
|
w = bitmap->w() - cx;
|
|
xx = (bitmap->w()+7)/8 - cx/8; //length of mask in bytes
|
|
}else{
|
|
w =WP;
|
|
xx = (w+7)/8 - cx/8;
|
|
}
|
|
if ( HP > bitmap->h()-cy)
|
|
h = bitmap->h() - cy;
|
|
else
|
|
h = HP;
|
|
|
|
di += cy*LD + cx/8;
|
|
int si = cx % 8; // small shift to be clipped, it is simpler than shifting whole mask
|
|
|
|
int i,j;
|
|
push_clip(XP, YP, WP, HP);
|
|
fprintf(output , "%i %i %i %i %i %i MI\n", XP - si, YP + HP , WP , -HP , w , h);
|
|
|
|
void *rle85 = prepare_rle85();
|
|
for (j=0; j<HP; j++){
|
|
for (i=0; i<xx; i++){
|
|
write_rle85(swap_byte(*di), rle85);
|
|
di++;
|
|
}
|
|
}
|
|
close_rle85(rle85); fputc('\n', output);
|
|
pop_clip();
|
|
}
|
|
|
|
#endif // FL_DOXYGEN
|
|
|
|
//
|
|
// End of "$Id: image.cxx 4324 2005-05-09 21:47:22Z rokan $"
|
|
//
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
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|