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Comparing rxvt-unicode/src/background.C (file contents):
Revision 1.9 by sasha, Mon Oct 29 13:39:43 2007 UTC vs.
Revision 1.142 by sf-exg, Thu Jan 27 17:37:18 2011 UTC

1/*----------------------------------------------------------------------* 1/*----------------------------------------------------------------------*
2 * File: background.C - former xpm.C 2 * File: background.C - former xpm.C
3 *----------------------------------------------------------------------* 3 *----------------------------------------------------------------------*
4 * 4 *
5 * All portions of code are copyright by their respective author/s. 5 * All portions of code are copyright by their respective author/s.
6 * Copyright (c) 1997 Carsten Haitzler <raster@zip.com.au>
7 * Copyright (c) 1997,1998 Oezguer Kesim <kesim@math.fu-berlin.de>
8 * Copyright (c) 1998-2001 Geoff Wing <gcw@pobox.com>
9 * Copyright (c) 2005-2006 Marc Lehmann <pcg@goof.com> 6 * Copyright (c) 2005-2008 Marc Lehmann <pcg@goof.com>
10 * Copyright (c) 2007 Sasha Vasko <sasha@aftercode.net> 7 * Copyright (c) 2007 Sasha Vasko <sasha@aftercode.net>
8 * Copyright (c) 2010 Emanuele Giaquinta <e.giaquinta@glauco.it>
11 * 9 *
12 * This program is free software; you can redistribute it and/or modify 10 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License as published by 11 * it under the terms of the GNU General Public License as published by
14 * the Free Software Foundation; either version 2 of the License, or 12 * the Free Software Foundation; either version 2 of the License, or
15 * (at your option) any later version. 13 * (at your option) any later version.
22 * You should have received a copy of the GNU General Public License 20 * You should have received a copy of the GNU General Public License
23 * along with this program; if not, write to the Free Software 21 * along with this program; if not, write to the Free Software
24 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. 22 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
25 *---------------------------------------------------------------------*/ 23 *---------------------------------------------------------------------*/
26 24
25#include <cmath>
27#include "../config.h" /* NECESSARY */ 26#include "../config.h" /* NECESSARY */
28#include "rxvt.h" /* NECESSARY */ 27#include "rxvt.h" /* NECESSARY */
29 28
30#define DO_TIMING_TEST 0 29#if XRENDER
30# include <X11/extensions/Xrender.h>
31#endif
31 32
32#if DO_TIMING_TEST 33#ifndef FilterConvolution
33#define TIMING_TEST_START(id) \ 34#define FilterConvolution "convolution"
34 struct timeval timing_test_##id##_stv;\
35 gettimeofday (&timing_test_##id##_stv, NULL);
36
37#define TIMING_TEST_PRINT_RESULT(id) \
38 do{ struct timeval tv;gettimeofday (&tv, NULL); tv.tv_sec -= (timing_test_##id##_stv).tv_sec;\
39 fprintf (stderr, "%s: %s: %d: elapsed %ld usec\n", #id, __FILE__, __LINE__,\
40 tv.tv_sec * 1000000 + tv.tv_usec - (timing_test_##id##_stv).tv_usec);}while (0)
41
42#else
43#define TIMING_TEST_START(id) do{}while (0)
44#define TIMING_TEST_PRINT_RESULT(id) do{}while (0)
45#endif 35#endif
46 36
47/* 37/*
48 * Pixmap geometry string interpretation : 38 * Pixmap geometry string interpretation :
49 * Each geometry string contains zero or one scale/position 39 * Each geometry string contains zero or one scale/position
50 * adjustment and may optionally be followed by a colon and one or more 40 * adjustment and may optionally be followed by a colon and one or more
51 * colon-delimited pixmap operations. 41 * colon-delimited pixmap operations.
52 * The following table shows the valid geometry strings and their 42 * The following table shows the valid geometry strings and their
53 * affects on the background image : 43 * effects on the background image :
54 * 44 *
55 * WxH+X+Y Set scaling to W% by H%, and position to X% by Y%. 45 * WxH+X+Y Set scaling to W% by H%, and position to X% by Y%.
56 * W and H are percentages of the terminal window size. 46 * W and H are percentages of the terminal window size.
57 * X and Y are also percentages; e.g., +50+50 centers 47 * X and Y are also percentages; e.g., +50+50 centers
58 * the image in the window. 48 * the image in the window.
59 * WxH+X Assumes Y == X
60 * WxH Assumes Y == X == 50 (centers the image)
61 * W+X+Y Assumes H == W
62 * W+X Assumes H == W and Y == X
63 * W Assumes H == W and Y == X == 50
64 *
65 * Adjusting position only :
66 * =+X+Y Set position to X% by Y% (absolute).
67 * =+X Set position to X% by X%.
68 * +X+Y Adjust position horizontally X% and vertically Y%
69 * from current position (relative).
70 * +X Adjust position horizontally X% and vertically X%
71 * from current position.
72 *
73 * Adjusting scale only :
74 * Wx0 Multiply horizontal scaling factor by W%
75 * 0xH Multiply vertical scaling factor by H%
76 * 0x0 No scaling (show image at normal size).
77 * 49 *
78 * Pixmap Operations : (should be prepended by a colon) 50 * Pixmap Operations : (should be prepended by a colon)
79 * tile Tile image. Scaling/position modifiers above will affect 51 * tile Tile image. Scaling/position modifiers above will affect
80 * the tile size and origin. 52 * the tile size and origin.
81 * propscale When scaling, scale proportionally. That is, maintain the 53 * propscale When scaling, scale proportionally. That is, maintain the
82 * proper aspect ratio for the image. Any portion of the 54 * proper aspect ratio for the image. Any portion of the
83 * background not covered by the image is filled with the 55 * background not covered by the image is filled with the
84 * current background color. 56 * current background color.
85 * hscale Scale horizontally, tile vertically ? 57 * hscale Scale horizontally, tile vertically ?
86 * vscale Tile horizontally, scale vertically ? 58 * vscale Tile horizontally, scale vertically ?
87 * scale Scale both up and down 59 * scale Scale both up and down
88 * auto Same as 100x100+50+50 60 * auto Same as 100x100+50+50
89 */ 61 */
90 62
91#ifdef HAVE_BG_PIXMAP 63#ifdef HAVE_BG_PIXMAP
92bgPixmap_t::bgPixmap_t() 64void
65rxvt_term::bg_destroy ()
93{ 66{
94#ifdef HAVE_AFTERIMAGE 67#ifdef HAVE_AFTERIMAGE
95 original_asim = NULL; 68 if (original_asim)
69 safe_asimage_destroy (original_asim);
96#endif 70#endif
97#ifdef BG_IMAGE_FROM_FILE 71
98 h_scale = v_scale = 0; 72#ifdef HAVE_PIXBUF
99 h_align = v_align = 0; 73 if (pixbuf)
74 g_object_unref (pixbuf);
100#endif 75#endif
101 flags = 0;
102 pixmap = None;
103}
104 76
77 if (bg_pixmap)
78 XFreePixmap (dpy, bg_pixmap);
79}
105 80
106bool 81bool
107bgPixmap_t::window_size_sensitive () 82rxvt_term::bg_set_position (int x, int y)
108{ 83{
109# ifdef BG_IMAGE_FROM_FILE 84
110# ifdef HAVE_AFTERIMAGE 85 if (target_x != x
111 if (original_asim != NULL) 86 || target_y != y)
112# endif
113 { 87 {
114 if (h_scale != 0 || v_scale != 0 88 target_x = x;
115 || h_align != 0 || v_align != 0) 89 target_y = y;
116 return true; 90 return true;
117 } 91 }
118# endif 92 return false;
93}
94
95bool
96rxvt_term::bg_window_size_sensitive ()
97{
119# ifdef ENABLE_TRANSPARENCY 98# ifdef ENABLE_TRANSPARENCY
120 if (flags & isTransparent) 99 if (bg_flags & isTransparent)
121 return true; 100 return true;
122# endif 101# endif
102
103# ifdef BG_IMAGE_FROM_FILE
104 if (have_image)
105 {
106 if (bg_flags & sizeSensitive)
107 return true;
108 }
109# endif
110
123 return false; 111 return false;
124} 112}
125 113
126bool bgPixmap_t::need_client_side_rendering () 114bool
115rxvt_term::bg_window_position_sensitive ()
127{ 116{
128# ifdef HAVE_AFTERIMAGE 117# ifdef ENABLE_TRANSPARENCY
129 if (original_asim != NULL) 118 if (bg_flags & isTransparent)
130 return true; 119 return true;
131# endif 120# endif
132# ifdef ENABLE_TRANSPARENCY 121
133 if (flags & isTransparent) 122# ifdef BG_IMAGE_FROM_FILE
123 if (have_image)
134 { 124 {
135# ifdef HAVE_AFTERIMAGE // can't blur without libAI anyways 125 if (bg_flags & rootAlign)
136 if ((flags & blurNeeded) && !(flags & blurServerSide))
137 return true; 126 return true;
138# endif
139 if ((flags & tintNeeded) && !(flags & tintServerSide))
140 return true;
141 } 127 }
142# endif 128# endif
129
143 return false; 130 return false;
144} 131}
145 132
146# ifdef BG_IMAGE_FROM_FILE 133# ifdef BG_IMAGE_FROM_FILE
147static inline bool 134static inline bool
180 167
181static inline int 168static inline int
182make_align_position (int align, int window_size, int image_size) 169make_align_position (int align, int window_size, int image_size)
183{ 170{
184 int diff = window_size - image_size; 171 int diff = window_size - image_size;
185 int smaller = MIN (image_size,window_size); 172 int smaller = min (image_size, window_size);
186 173
187 if (align >= 0 && align <= 50) 174 if (align >= 0 && align <= 100)
188 return diff * align / 100; 175 return diff * align / 100;
189 else if (align > 50 && align <= 100)
190 return window_size - image_size - diff * (100 - align) / 100;
191 else if (align > 100 && align <= 200 ) 176 else if (align > 100 && align <= 200)
192 return ((align - 100) * smaller / 100) + window_size - smaller; 177 return ((align - 100) * smaller / 100) + window_size - smaller;
193 else if (align > -100 && align < 0) 178 else if (align >= -100 && align < 0)
194 return ((align + 100) * smaller / 100) - image_size; 179 return ((align + 100) * smaller / 100) - image_size;
195 return 0; 180 return 0;
196} 181}
197 182
198static inline int 183static inline int
199make_clip_rectangle (int pos, int size, int target_size, int &dst_pos, int &dst_size) 184make_clip_rectangle (int pos, int size, int target_size, int &dst_pos, int &dst_size)
200{ 185{
201 int src_pos = 0; 186 int src_pos = 0;
202 dst_pos = 0; 187 dst_pos = pos;
203 dst_size = size; 188 dst_size = size;
204 if (pos < 0 && size > target_size) 189 if (pos < 0)
205 { 190 {
206 src_pos = -pos; 191 src_pos = -pos;
192 dst_pos = 0;
207 dst_size += pos; 193 dst_size += pos;
208 } 194 }
209 else if (pos > 0)
210 dst_pos = pos;
211 195
212 if (dst_pos + dst_size > target_size) 196 if (dst_pos + dst_size > target_size)
213 dst_size = target_size - dst_pos; 197 dst_size = target_size - dst_pos;
214 return src_pos; 198 return src_pos;
215} 199}
216 200
217bool 201bool
218bgPixmap_t::set_geometry (const char *geom) 202rxvt_term::bg_set_geometry (const char *geom, bool update)
219{ 203{
204 bool changed = false;
220 int geom_flags = 0, changed = 0; 205 int geom_flags = 0;
221 int x = 0, y = 0; 206 int x = 0, y = 0;
222 unsigned int w = 0, h = 0; 207 unsigned int w = 0, h = 0;
223 unsigned int n; 208 unsigned int n;
224 unsigned long new_flags = (flags & (~geometryFlags)); 209 unsigned long new_flags = (bg_flags & (~geometryFlags));
225 char *p; 210 const char *ops;
226# define MAXLEN_GEOM 256 /* could be longer then regular geometry string */
227 211
228 if (geom == NULL) 212 if (geom == NULL)
229 return false; 213 return false;
230 214
231 char str[MAXLEN_GEOM]; 215 char str[256];
232 216
233 while (isspace(*geom)) ++geom;
234 if ((p = strchr (geom, ';')) == NULL)
235 p = strchr (geom, '\0'); 217 ops = strchr (geom, ':');
236 218 if (ops == NULL)
219 n = strlen (geom);
220 else
237 n = (p - geom); 221 n = ops - geom;
238 if (n < MAXLEN_GEOM)
239 {
240 char *ops;
241 new_flags |= geometrySet;
242 222
223 if (n >= sizeof (str))
224 return false;
225
243 strncpy (str, geom, n); 226 memcpy (str, geom, n);
244 str[n] = '\0'; 227 str[n] = '\0';
245 if (str[0] == ':') 228 rxvt_strtrim (str);
246 ops = &str[0];
247 else if (str[0] != 'x' && str[0] != 'X' && isalpha(str[0]))
248 ops = &str[0];
249 else
250 {
251 char *tmp;
252 ops = strchr (str, ':');
253 if (ops != NULL)
254 {
255 for (tmp = ops-1; tmp >= str && isspace(*tmp); --tmp);
256 *(++tmp) = '\0';
257 if (ops == tmp) ++ops;
258 }
259 }
260 229
261 if (ops > str || ops == NULL) 230 if (str[0])
262 { 231 {
263 /* we have geometry string - let's handle it prior to applying ops */ 232 /* we have geometry string - let's handle it prior to applying ops */
264 geom_flags = XParseGeometry (str, &x, &y, &w, &h); 233 geom_flags = XParseGeometry (str, &x, &y, &w, &h);
265
266 if ((geom_flags & XValue) && !(geom_flags & YValue))
267 {
268 y = x;
269 geom_flags |= YValue;
270 }
271
272 if (flags & geometrySet)
273 {/* new geometry is an adjustment to the old one ! */
274 if ((geom_flags & WidthValue) && (geom_flags & HeightValue))
275 {
276 if (w == 0 && h != 0)
277 {
278 w = h_scale;
279 h = (v_scale * h) / 100;
280 }
281 else if (h == 0 && w != 0)
282 {
283 w = (h_scale * w) / 100;
284 h = v_scale;
285 }
286 }
287 if (geom_flags & XValue)
288 {
289 if (str[0] != '=')
290 {
291 y += v_align;
292 x += h_align;
293 }
294 }
295 }
296 else /* setting up geometry from scratch */
297 {
298 if (!(geom_flags & XValue))
299 {/* use default geometry - centered */
300 x = y = defaultAlign;
301 }
302 else if (!(geom_flags & YValue))
303 y = x;
304
305 if ((geom_flags & (WidthValue|HeightValue)) == 0)
306 {/* use default geometry - scaled */
307 w = h = defaultScale;
308 }
309 else if (geom_flags & WidthValue)
310 {
311 if (!(geom_flags & HeightValue))
312 h = w;
313 }
314 else
315 w = h;
316 }
317 } /* done parsing geometry string */ 234 } /* done parsing geometry string */
318 else if (!(flags & geometrySet)) 235
319 { /* default geometry - scaled and centered */ 236 if (!update)
237 {
238 if (!(geom_flags & XValue))
320 x = y = defaultAlign; 239 x = y = defaultAlign;
240 else if (!(geom_flags & YValue))
241 y = x;
242
243 if (!(geom_flags & (WidthValue|HeightValue)))
321 w = h = defaultScale; 244 w = h = defaultScale;
322 } 245 else if (!(geom_flags & HeightValue))
323 246 h = w;
324 if (!(flags & geometrySet)) 247 else if (!(geom_flags & WidthValue))
248 w = h;
249
325 geom_flags |= WidthValue|HeightValue|XValue|YValue; 250 geom_flags |= WidthValue|HeightValue|XValue|YValue;
251 }
326 252
327 if (ops) 253 if (ops)
328 { 254 {
329 while (*ops) 255 char **arr = rxvt_strsplit (':', ops + 1);
256
257 for (int i = 0; arr[i]; i++)
330 { 258 {
331 while (*ops == ':' || isspace(*ops)) ++ops; 259 if (!strcasecmp (arr[i], "tile"))
332# define CHECK_GEOM_OPS(op_str) (strncasecmp (ops, (op_str), sizeof(op_str)-1) == 0)
333 if (CHECK_GEOM_OPS("tile"))
334 { 260 {
335 w = h = 0; 261 w = h = noScale;
336 geom_flags |= WidthValue|HeightValue; 262 geom_flags |= WidthValue|HeightValue;
337 } 263 }
338 else if (CHECK_GEOM_OPS("propscale")) 264 else if (!strcasecmp (arr[i], "propscale"))
339 { 265 {
340 if (w == 0 && h == 0)
341 {
342 w = 100;
343 geom_flags |= WidthValue;
344 }
345 new_flags |= propScale; 266 new_flags |= propScale;
346 } 267 }
347 else if (CHECK_GEOM_OPS("hscale")) 268 else if (!strcasecmp (arr[i], "hscale"))
348 { 269 {
349 if (w == 0) 270 if (w == 0) w = windowScale;
350 w = 100; 271
351 h = 0; 272 h = noScale;
352 geom_flags |= WidthValue|HeightValue; 273 geom_flags |= WidthValue|HeightValue;
353 } 274 }
354 else if (CHECK_GEOM_OPS("vscale")) 275 else if (!strcasecmp (arr[i], "vscale"))
355 { 276 {
356 if (h == 0) 277 if (h == 0) h = windowScale;
357 h = 100; 278
358 w = 0; 279 w = noScale;
359 geom_flags |= WidthValue|HeightValue; 280 geom_flags |= WidthValue|HeightValue;
360 } 281 }
361 else if (CHECK_GEOM_OPS("scale")) 282 else if (!strcasecmp (arr[i], "scale"))
362 { 283 {
363 if (h == 0) 284 if (h == 0) h = windowScale;
364 h = 100; 285 if (w == 0) w = windowScale;
365 if (w == 0) 286
366 w = 100;
367 geom_flags |= WidthValue|HeightValue; 287 geom_flags |= WidthValue|HeightValue;
368 } 288 }
369 else if (CHECK_GEOM_OPS("auto")) 289 else if (!strcasecmp (arr[i], "auto"))
370 { 290 {
371 w = h = 100; 291 w = h = windowScale;
372 x = y = 50; 292 x = y = centerAlign;
373 geom_flags |= WidthValue|HeightValue|XValue|YValue; 293 geom_flags |= WidthValue|HeightValue|XValue|YValue;
374 } 294 }
375# undef CHECK_GEOM_OPS 295 else if (!strcasecmp (arr[i], "root"))
376 while (*ops != ':' && *ops != '\0') ++ops; 296 {
297 new_flags |= rootAlign;
298 w = h = noScale;
299 geom_flags |= WidthValue|HeightValue;
300 }
377 } /* done parsing ops */ 301 } /* done parsing ops */
378 }
379 302
303 rxvt_free_strsplit (arr);
304 }
305
380 if (check_set_scale_value (geom_flags, WidthValue, h_scale, w)) 306 if (check_set_scale_value (geom_flags, WidthValue, h_scale, w)) changed = true;
381 ++changed;
382 if (check_set_scale_value (geom_flags, HeightValue, v_scale, h)) 307 if (check_set_scale_value (geom_flags, HeightValue, v_scale, h)) changed = true;
383 ++changed;
384 if (check_set_align_value (geom_flags, XValue, h_align, x)) 308 if (check_set_align_value (geom_flags, XValue, h_align, x)) changed = true;
385 ++changed;
386 if (check_set_align_value (geom_flags, YValue, v_align, y)) 309 if (check_set_align_value (geom_flags, YValue, v_align, y)) changed = true;
387 ++changed;
388 }
389 310
390 if (new_flags != flags) 311 if (new_flags != bg_flags)
391 { 312 {
392 flags = new_flags; 313 bg_flags = new_flags;
393 changed++; 314 changed = true;
394 } 315 }
395//fprintf( stderr, "flags = %lX, scale = %ux%u, align=%+d%+d\n", 316
396// flags, h_scale, v_scale, h_align, v_align);
397 return (changed > 0); 317 return changed;
318}
319
320void
321rxvt_term::get_image_geometry (int image_width, int image_height, int &w, int &h, int &x, int &y)
322{
323 int target_width = szHint.width;
324 int target_height = szHint.height;
325
326 if (bg_flags & propScale)
327 {
328 float scale = (float)target_width / image_width;
329 min_it (scale, (float)target_height / image_height);
330 w = image_width * scale + 0.5;
331 h = image_height * scale + 0.5;
332 }
333 else
334 {
335 w = h_scale * target_width / 100;
336 h = v_scale * target_height / 100;
337 }
338
339 if (!w) w = image_width;
340 if (!h) h = image_height;
341
342 if (bg_flags & rootAlign)
343 {
344 x = -target_x;
345 y = -target_y;
346 }
347 else
348 {
349 x = make_align_position (h_align, target_width, w);
350 y = make_align_position (v_align, target_height, h);
351 }
352
353 bg_flags &= ~sizeSensitive;
354 if ((bg_flags & propScale) || h_scale || v_scale
355 || (!(bg_flags & rootAlign) && (h_align || v_align))
356 || w > target_width || h > target_height)
357 bg_flags |= sizeSensitive;
398} 358}
399 359
400# ifdef HAVE_AFTERIMAGE 360# ifdef HAVE_AFTERIMAGE
401bool 361bool
402bgPixmap_t::render_asim (ASImage *background, ARGB32 background_tint) 362rxvt_term::render_image (unsigned long tr_flags)
403{ 363{
404 if (target == NULL) 364 init_asv ();
405 return false;
406 365
407 int target_width = (int)target->szHint.width; 366 ASImage *background = NULL;
408 int target_height = (int)target->szHint.height; 367 ARGB32 background_tint = TINT_LEAVE_SAME;
409 int new_pmap_width = target_width, new_pmap_height = target_height; 368
369# ifdef ENABLE_TRANSPARENCY
370 if (tr_flags)
371 background = pixmap2ximage (asv, bg_pixmap, 0, 0, bg_pmap_width, bg_pmap_height, AllPlanes, 100);
372
373 if (tr_flags & tintNeeded)
374 {
375 ShadingInfo as_shade;
376 as_shade.shading = shade;
377
378 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
379 if (bg_flags & tintSet)
380 tint.get (c);
381 as_shade.tintColor.red = c.r;
382 as_shade.tintColor.green = c.g;
383 as_shade.tintColor.blue = c.b;
384
385 background_tint = shading2tint32 (&as_shade);
386 }
387
388 if ((tr_flags & blurNeeded) && background != NULL)
389 {
390 ASImage *tmp = blur_asimage_gauss (asv, background, h_blurRadius, v_blurRadius, 0xFFFFFFFF,
391 (original_asim == NULL || tint == TINT_LEAVE_SAME) ? ASA_XImage : ASA_ASImage,
392 100, ASIMAGE_QUALITY_DEFAULT);
393 if (tmp)
394 {
395 destroy_asimage (&background);
396 background = tmp;
397 }
398 }
399# endif
400
410 ASImage *result = NULL; 401 ASImage *result = 0;
402
403 int target_width = szHint.width;
404 int target_height = szHint.height;
405 int new_pmap_width = target_width;
406 int new_pmap_height = target_height;
411 407
412 int x = 0; 408 int x = 0;
413 int y = 0; 409 int y = 0;
414 int w = h_scale * target_width / 100; 410 int w = 0;
415 int h = v_scale * target_height / 100; 411 int h = 0;
416
417 TIMING_TEST_START (asim);
418 412
419 if (original_asim) 413 if (original_asim)
420 { 414 get_image_geometry (original_asim->width, original_asim->height, w, h, x, y);
421 x = make_align_position (h_align, target_width, w > 0 ? w : (int)original_asim->width);
422 y = make_align_position (v_align, target_height, h > 0 ? h : (int)original_asim->height);
423 }
424 415
425 if (original_asim == NULL 416 if (!original_asim
417 || (!(bg_flags & rootAlign)
426 || x >= target_width 418 && (x >= target_width
427 || y >= target_height 419 || y >= target_height
428 || (w > 0 && x + w <= 0) 420 || (x + w <= 0)
429 || (h > 0 && y + h <= 0)) 421 || (y + h <= 0))))
430 { 422 {
431 if (background) 423 if (background)
432 { 424 {
433 new_pmap_width = background->width; 425 new_pmap_width = background->width;
434 new_pmap_height = background->height; 426 new_pmap_height = background->height;
435 result = background; 427 result = background;
428
436 if (background_tint != TINT_LEAVE_SAME) 429 if (background_tint != TINT_LEAVE_SAME)
437 { 430 {
438 ASImage* tmp = tile_asimage (target->asv, background, 0, 0, 431 ASImage *tmp = tile_asimage (asv, background, 0, 0,
439 target_width, target_height, background_tint, 432 target_width, target_height, background_tint,
440 ASA_XImage, 100, ASIMAGE_QUALITY_DEFAULT); 433 ASA_XImage, 100, ASIMAGE_QUALITY_DEFAULT);
441 if (tmp) 434 if (tmp)
442 result = tmp; 435 result = tmp;
443 } 436 }
446 new_pmap_width = new_pmap_height = 0; 439 new_pmap_width = new_pmap_height = 0;
447 } 440 }
448 else 441 else
449 { 442 {
450 result = original_asim; 443 result = original_asim;
444
451 if ((w > 0 && w != original_asim->width) 445 if ((w != original_asim->width)
452 || (h > 0 && h != original_asim->height)) 446 || (h != original_asim->height))
453 { 447 {
454 result = scale_asimage (target->asv, original_asim, 448 result = scale_asimage (asv, original_asim,
455 w > 0 ? w : original_asim->width, 449 w, h,
456 h > 0 ? h : original_asim->height,
457 background ? ASA_ASImage : ASA_XImage, 450 background ? ASA_ASImage : ASA_XImage,
458 100, ASIMAGE_QUALITY_DEFAULT); 451 100, ASIMAGE_QUALITY_DEFAULT);
459 } 452 }
453
460 if (background == NULL) 454 if (background == NULL)
461 {/* if tiling - pixmap has to be sized exactly as the image */ 455 {
462 if (h_scale == 0)
463 new_pmap_width = result->width;
464 if (v_scale == 0)
465 new_pmap_height = result->height;
466 /* we also need to tile our image in one or both directions */
467 if (h_scale == 0 || v_scale == 0) 456 if (h_scale == 0 || v_scale == 0)
468 { 457 {
458 /* if tiling - pixmap has to be sized exactly as the image,
459 but there is no need to make it bigger than the window! */
460 new_pmap_width = min (result->width, target_width);
461 new_pmap_height = min (result->height, target_height);
462
463 /* we also need to tile our image in both directions */
469 ASImage *tmp = tile_asimage (target->asv, result, 464 ASImage *tmp = tile_asimage (asv, result,
470 (h_scale > 0) ? 0 : (int)result->width - x, 465 (int)result->width - x,
471 (v_scale > 0) ? 0 : (int)result->height - y, 466 (int)result->height - y,
467 new_pmap_width,
472 result->width, result->height, 468 new_pmap_height,
473 TINT_LEAVE_SAME, ASA_XImage, 469 TINT_LEAVE_SAME, ASA_XImage,
474 100, ASIMAGE_QUALITY_DEFAULT); 470 100, ASIMAGE_QUALITY_DEFAULT);
475 if (tmp) 471 if (tmp)
476 { 472 {
477 if (result != original_asim) 473 if (result != original_asim)
478 destroy_asimage (&result); 474 destroy_asimage (&result);
475
479 result = tmp; 476 result = tmp;
480 } 477 }
481 } 478 }
482 } 479 }
483 else 480 else
481 {
484 {/* if blending background and image - pixmap has to be sized same as target window */ 482 /* if blending background and image - pixmap has to be sized same as target window */
485 ASImageLayer *layers = create_image_layers (2); 483 ASImageLayer *layers = create_image_layers (2);
486 ASImage *merged_im = NULL;
487 484
488 layers[0].im = background; 485 layers[0].im = background;
489 layers[0].clip_width = target_width; 486 layers[0].clip_width = target_width;
490 layers[0].clip_height = target_height; 487 layers[0].clip_height = target_height;
491 layers[0].tint = background_tint; 488 layers[0].tint = background_tint;
492 layers[1].im = result; 489 layers[1].im = result;
493 if (w <= 0) 490
491 if (h_scale == 0 || v_scale == 0)
492 {
494 {/* tile horizontally */ 493 /* tile horizontally */
495 while (x > 0) x -= (int)result->width; 494 while (x > 0) x -= (int)result->width;
496 layers[1].dst_x = x; 495 layers[1].dst_x = x;
497 layers[1].clip_width = result->width+target_width; 496 layers[1].clip_width = result->width+target_width;
498 } 497 }
499 else 498 else
499 {
500 {/* clip horizontally */ 500 /* clip horizontally */
501 layers[1].dst_x = x; 501 layers[1].dst_x = x;
502 layers[1].clip_width = result->width; 502 layers[1].clip_width = result->width;
503 } 503 }
504 if (h <= 0) 504
505 if (h_scale == 0 || v_scale == 0)
505 { 506 {
506 while (y > 0) y -= (int)result->height; 507 while (y > 0) y -= (int)result->height;
507 layers[1].dst_y = y; 508 layers[1].dst_y = y;
508 layers[1].clip_height = result->height + target_height; 509 layers[1].clip_height = result->height + target_height;
509 } 510 }
510 else 511 else
511 { 512 {
512 layers[1].dst_y = y; 513 layers[1].dst_y = y;
513 layers[1].clip_height = result->height; 514 layers[1].clip_height = result->height;
514 } 515 }
516
515 if (target->rs[Rs_blendtype]) 517 if (rs[Rs_blendtype])
516 { 518 {
517 layers[1].merge_scanlines = blend_scanlines_name2func (target->rs[Rs_blendtype]); 519 layers[1].merge_scanlines = blend_scanlines_name2func (rs[Rs_blendtype]);
518 if (layers[1].merge_scanlines == NULL) 520 if (layers[1].merge_scanlines == NULL)
519 layers[1].merge_scanlines = alphablend_scanlines; 521 layers[1].merge_scanlines = alphablend_scanlines;
520 } 522 }
523
521 ASImage *tmp = merge_layers (target->asv, layers, 2, target_width, target_height, 524 ASImage *tmp = merge_layers (asv, layers, 2, target_width, target_height,
522 ASA_XImage, 0, ASIMAGE_QUALITY_DEFAULT); 525 ASA_XImage, 0, ASIMAGE_QUALITY_DEFAULT);
526
523 if (tmp) 527 if (tmp)
524 { 528 {
525 if (result != original_asim) 529 if (result != original_asim)
526 destroy_asimage (&result); 530 destroy_asimage (&result);
531
527 result = tmp; 532 result = tmp;
528 } 533 }
534
529 free (layers); 535 free (layers);
530 } 536 }
531 } 537 }
532 TIMING_TEST_PRINT_RESULT (asim);
533 538
534 if (pixmap) 539 bool ret = false;
535 {
536 if (result == NULL
537 || pmap_width != new_pmap_width
538 || pmap_height != new_pmap_height
539 || pmap_depth != target->depth)
540 {
541 XFreePixmap (target->dpy, pixmap);
542 pixmap = None;
543 }
544 }
545 540
546 if (result) 541 if (result)
547 { 542 {
548 XGCValues gcv; 543 XGCValues gcv;
549 GC gc; 544 GC gc;
550 545
551 /* create Pixmap */ 546 /* create Pixmap */
552 if (pixmap == None) 547 if (bg_pixmap == None
548 || bg_pmap_width != new_pmap_width
549 || bg_pmap_height != new_pmap_height)
553 { 550 {
551 if (bg_pixmap)
552 XFreePixmap (dpy, bg_pixmap);
554 pixmap = XCreatePixmap (target->dpy, target->vt, new_pmap_width, new_pmap_height, target->depth); 553 bg_pixmap = XCreatePixmap (dpy, vt, new_pmap_width, new_pmap_height, depth);
555 pmap_width = new_pmap_width; 554 bg_pmap_width = new_pmap_width;
556 pmap_height = new_pmap_height; 555 bg_pmap_height = new_pmap_height;
557 pmap_depth = target->depth;
558 } 556 }
559 /* fill with background color ( if result's not completely overlapping it)*/ 557 /* fill with background color (if result's not completely overlapping it) */
560 gcv.foreground = target->pix_colors[Color_bg]; 558 gcv.foreground = pix_colors[Color_bg];
561 gc = XCreateGC (target->dpy, target->vt, GCForeground, &gcv); 559 gc = XCreateGC (dpy, vt, GCForeground, &gcv);
562 560
563 int src_x = 0, src_y = 0, dst_x = 0, dst_y = 0; 561 int src_x = 0, src_y = 0, dst_x = 0, dst_y = 0;
564 int dst_width = result->width, dst_height = result->height; 562 int dst_width = result->width, dst_height = result->height;
565 if (background == NULL) 563 if (background == NULL)
566 { 564 {
567 if (h_scale > 0) 565 if (!(h_scale == 0 || v_scale == 0))
566 {
568 src_x = make_clip_rectangle (x, result->width, new_pmap_width, dst_x, dst_width); 567 src_x = make_clip_rectangle (x, result->width , new_pmap_width , dst_x, dst_width );
569 if (v_scale > 0)
570 src_y = make_clip_rectangle (y, result->height, new_pmap_height, dst_y, dst_height); 568 src_y = make_clip_rectangle (y, result->height, new_pmap_height, dst_y, dst_height);
569 }
571 570
572 if (dst_x > 0 || dst_y > 0 571 if (dst_x > 0 || dst_y > 0
573 || dst_x + dst_width < new_pmap_width 572 || dst_x + dst_width < new_pmap_width
574 || dst_y + dst_height < new_pmap_height) 573 || dst_y + dst_height < new_pmap_height)
575 {
576 XFillRectangle (target->dpy, pixmap, gc, 0, 0, new_pmap_width, new_pmap_height); 574 XFillRectangle (dpy, bg_pixmap, gc, 0, 0, new_pmap_width, new_pmap_height);
577 }
578 } 575 }
579 576
580 /* put result on pixmap */ 577 /* put result on pixmap */
581 if (dst_x < new_pmap_width && dst_y < new_pmap_height) 578 if (dst_x < new_pmap_width && dst_y < new_pmap_height)
582 asimage2drawable (target->asv, pixmap, result, gc, src_x, src_y, dst_x, dst_y, dst_width, dst_height, True); 579 asimage2drawable (asv, bg_pixmap, result, gc, src_x, src_y, dst_x, dst_y, dst_width, dst_height, True);
583 580
584 if (result != background && result != original_asim) 581 if (result != background && result != original_asim)
585 destroy_asimage (&result); 582 destroy_asimage (&result);
586 583
587 XFreeGC (target->dpy, gc); 584 XFreeGC (dpy, gc);
588 TIMING_TEST_PRINT_RESULT (asim); 585
586 ret = true;
587 }
588
589 if (background)
590 destroy_asimage (&background);
591
592 return ret;
593}
594# endif /* HAVE_AFTERIMAGE */
595
596# ifdef HAVE_PIXBUF
597bool
598rxvt_term::pixbuf_to_pixmap (GdkPixbuf *pixbuf, Pixmap pixmap, GC gc,
599 int src_x, int src_y, int dst_x, int dst_y,
600 unsigned int width, unsigned int height)
601{
602 XImage *ximage;
603 char *data, *line;
604 int bytes_per_pixel;
605 int width_r, width_g, width_b;
606 int sh_r, sh_g, sh_b;
607 int rowstride;
608 int channels;
609 unsigned char *row;
610
611 if (visual->c_class != TrueColor)
612 return false;
613
614 if (depth == 24 || depth == 32)
615 bytes_per_pixel = 4;
616 else if (depth == 15 || depth == 16)
617 bytes_per_pixel = 2;
618 else
619 return false;
620
621 width_r = rxvt_popcount (visual->red_mask);
622 width_g = rxvt_popcount (visual->green_mask);
623 width_b = rxvt_popcount (visual->blue_mask);
624
625 if (width_r > 8 || width_g > 8 || width_b > 8)
626 return false;
627
628 sh_r = rxvt_ctz (visual->red_mask);
629 sh_g = rxvt_ctz (visual->green_mask);
630 sh_b = rxvt_ctz (visual->blue_mask);
631
632 if (width > INT_MAX / height / bytes_per_pixel)
633 return false;
634
635 data = (char *)malloc (width * height * bytes_per_pixel);
636 if (!data)
637 return false;
638
639 ximage = XCreateImage (dpy, visual, depth, ZPixmap, 0, data,
640 width, height, bytes_per_pixel * 8, 0);
641 if (!ximage)
589 } 642 {
643 free (data);
644 return false;
645 }
590 646
647 ximage->byte_order = byteorder::big_endian () ? MSBFirst : LSBFirst;
648
649 rowstride = gdk_pixbuf_get_rowstride (pixbuf);
650 channels = gdk_pixbuf_get_n_channels (pixbuf);
651 row = gdk_pixbuf_get_pixels (pixbuf) + src_y * rowstride + src_x * channels;
652 line = data;
653
654 for (int y = 0; y < height; y++)
655 {
656 for (int x = 0; x < width; x++)
657 {
658 unsigned char *pixel = row + x * channels;
659 uint32_t value;
660
661 value = ((pixel[0] >> (8 - width_r)) << sh_r)
662 | ((pixel[1] >> (8 - width_g)) << sh_g)
663 | ((pixel[2] >> (8 - width_b)) << sh_b);
664
665 if (bytes_per_pixel == 4)
666 ((uint32_t *)line)[x] = value;
667 else
668 ((uint16_t *)line)[x] = value;
669 }
670
671 row += rowstride;
672 line += ximage->bytes_per_line;
673 }
674
675 XPutImage (dpy, pixmap, gc, ximage, 0, 0, dst_x, dst_y, width, height);
676 XDestroyImage (ximage);
591 return true; 677 return true;
592} 678}
593# endif /* HAVE_AFTERIMAGE */
594 679
595bool 680bool
596bgPixmap_t::set_file (const char *file) 681rxvt_term::render_image (unsigned long tr_flags)
597{ 682{
598 char *f; 683 if (!pixbuf)
684 return false;
599 685
600 assert (file != NULL); 686 if (tr_flags
687 && !(bg_flags & HAS_RENDER))
688 return false;
601 689
602 if (*file != '\0') 690 GdkPixbuf *result;
691
692 int image_width = gdk_pixbuf_get_width (pixbuf);
693 int image_height = gdk_pixbuf_get_height (pixbuf);
694
695 int target_width = szHint.width;
696 int target_height = szHint.height;
697 int new_pmap_width = target_width;
698 int new_pmap_height = target_height;
699
700 int x = 0;
701 int y = 0;
702 int w = 0;
703 int h = 0;
704
705 get_image_geometry (image_width, image_height, w, h, x, y);
706
707 if (!(bg_flags & rootAlign)
708 && (x >= target_width
709 || y >= target_height
710 || (x + w <= 0)
711 || (y + h <= 0)))
712 return false;
713
714 result = pixbuf;
715
716 if ((w != image_width)
717 || (h != image_height))
718 {
719 result = gdk_pixbuf_scale_simple (pixbuf,
720 w, h,
721 GDK_INTERP_BILINEAR);
603 { 722 }
723
724 bool ret = false;
725
726 if (result)
727 {
728 XGCValues gcv;
729 GC gc;
730 Pixmap root_pmap;
731
732 image_width = gdk_pixbuf_get_width (result);
733 image_height = gdk_pixbuf_get_height (result);
734
735 if (tr_flags)
736 {
737 root_pmap = bg_pixmap;
738 bg_pixmap = None;
739 }
740 else
741 {
742 if (h_scale == 0 || v_scale == 0)
743 {
744 new_pmap_width = min (image_width, target_width);
745 new_pmap_height = min (image_height, target_height);
746 }
747 }
748
749 if (bg_pixmap == None
750 || bg_pmap_width != new_pmap_width
751 || bg_pmap_height != new_pmap_height)
752 {
753 if (bg_pixmap)
754 XFreePixmap (dpy, bg_pixmap);
755 bg_pixmap = XCreatePixmap (dpy, vt, new_pmap_width, new_pmap_height, depth);
756 bg_pmap_width = new_pmap_width;
757 bg_pmap_height = new_pmap_height;
758 }
759
760 gcv.foreground = pix_colors[Color_bg];
761 gc = XCreateGC (dpy, vt, GCForeground, &gcv);
762
763 if (h_scale == 0 || v_scale == 0)
764 {
765 Pixmap tile = XCreatePixmap (dpy, vt, image_width, image_height, depth);
766 pixbuf_to_pixmap (result, tile, gc,
767 0, 0,
768 0, 0,
769 image_width, image_height);
770
771 gcv.tile = tile;
772 gcv.fill_style = FillTiled;
773 gcv.ts_x_origin = x;
774 gcv.ts_y_origin = y;
775 XChangeGC (dpy, gc, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv);
776
777 XFillRectangle (dpy, bg_pixmap, gc, 0, 0, new_pmap_width, new_pmap_height);
778 XFreePixmap (dpy, tile);
779 }
780 else
781 {
782 int src_x, src_y, dst_x, dst_y;
783 int dst_width, dst_height;
784
785 src_x = make_clip_rectangle (x, image_width , new_pmap_width , dst_x, dst_width );
786 src_y = make_clip_rectangle (y, image_height, new_pmap_height, dst_y, dst_height);
787
788 if (dst_x > 0 || dst_y > 0
789 || dst_x + dst_width < new_pmap_width
790 || dst_y + dst_height < new_pmap_height)
791 XFillRectangle (dpy, bg_pixmap, gc, 0, 0, new_pmap_width, new_pmap_height);
792
793 if (dst_x < new_pmap_width && dst_y < new_pmap_height)
794 pixbuf_to_pixmap (result, bg_pixmap, gc,
795 src_x, src_y,
796 dst_x, dst_y,
797 dst_width, dst_height);
798 }
799
800#if XRENDER
801 if (tr_flags)
802 {
803 XRenderPictureAttributes pa;
804
805 XRenderPictFormat *src_format = XRenderFindVisualFormat (dpy, visual);
806 Picture src = XRenderCreatePicture (dpy, root_pmap, src_format, 0, &pa);
807
808 XRenderPictFormat *dst_format = XRenderFindVisualFormat (dpy, visual);
809 Picture dst = XRenderCreatePicture (dpy, bg_pixmap, dst_format, 0, &pa);
810
811 pa.repeat = True;
812 Pixmap mask_pmap = XCreatePixmap (dpy, vt, 1, 1, 8);
813 XRenderPictFormat *mask_format = XRenderFindStandardFormat (dpy, PictStandardA8);
814 Picture mask = XRenderCreatePicture (dpy, mask_pmap, mask_format, CPRepeat, &pa);
815 XFreePixmap (dpy, mask_pmap);
816
817 if (src && dst && mask)
818 {
819 XRenderColor mask_c;
820
821 mask_c.alpha = 0x8000;
822 mask_c.red = 0;
823 mask_c.green = 0;
824 mask_c.blue = 0;
825 XRenderFillRectangle (dpy, PictOpSrc, mask, &mask_c, 0, 0, 1, 1);
826 XRenderComposite (dpy, PictOpOver, src, mask, dst, 0, 0, 0, 0, 0, 0, target_width, target_height);
827 }
828
829 XRenderFreePicture (dpy, src);
830 XRenderFreePicture (dpy, dst);
831 XRenderFreePicture (dpy, mask);
832
833 XFreePixmap (dpy, root_pmap);
834 }
835#endif
836
837 if (result != pixbuf)
838 g_object_unref (result);
839
840 XFreeGC (dpy, gc);
841
842 ret = true;
843 }
844
845 return ret;
846}
847# endif /* HAVE_PIXBUF */
848
849bool
850rxvt_term::bg_set_file (const char *file)
851{
852 if (!file || !*file)
853 return false;
854
855 if (const char *p = strchr (file, ';'))
856 {
857 size_t len = p - file;
858 char *f = rxvt_temp_buf<char> (len + 1);
859 memcpy (f, file, len);
860 f[len] = '\0';
861 file = f;
862 }
863
604# ifdef HAVE_AFTERIMAGE 864# ifdef HAVE_AFTERIMAGE
605 if (target->asimman == NULL) 865 if (!asimman)
606 target->asimman = create_generic_imageman (target->rs[Rs_path]); 866 asimman = create_generic_imageman (rs[Rs_path]);
607 if ((f = strchr (file, ';')) == NULL)
608 original_asim = get_asimage (target->asimman, file, 0xFFFFFFFF, 100); 867 ASImage *image = get_asimage (asimman, file, 0xFFFFFFFF, 100);
609 else 868 if (image)
610 {
611 size_t len = f - file;
612 f = (char *)malloc (len + 1);
613 strncpy (f, file, len);
614 f[len] = '\0';
615 original_asim = get_asimage (target->asimman, f, 0xFFFFFFFF, 100);
616 free (f);
617 }
618 return (original_asim != NULL);
619# endif
620 } 869 {
870 if (original_asim)
871 safe_asimage_destroy (original_asim);
872 original_asim = image;
873 bg_flags |= CLIENT_RENDER;
874 have_image = true;
875 return true;
876 }
877# endif
878
879# ifdef HAVE_PIXBUF
880 GdkPixbuf *image = gdk_pixbuf_new_from_file (file, NULL);
881 if (image)
882 {
883 if (pixbuf)
884 g_object_unref (pixbuf);
885 pixbuf = image;
886 have_image = true;
887 return true;
888 }
889# endif
890
621 return false; 891 return false;
622} 892}
623 893
624# endif /* BG_IMAGE_FROM_FILE */ 894# endif /* BG_IMAGE_FROM_FILE */
625 895
626# ifdef ENABLE_TRANSPARENCY 896# ifdef ENABLE_TRANSPARENCY
627bool 897bool
628bgPixmap_t::set_transparent () 898rxvt_term::bg_set_transparent ()
629{ 899{
630 if (!(flags & isTransparent)) 900 if (!(bg_flags & isTransparent))
631 { 901 {
632 flags |= isTransparent; 902 bg_flags |= isTransparent;
633 return true; 903 return true;
634 } 904 }
905
635 return false; 906 return false;
636} 907}
637 908
638bool 909bool
639bgPixmap_t::set_blur_radius (const char *geom) 910rxvt_term::bg_set_blur (const char *geom)
640{ 911{
641 int changed = 0; 912 bool changed = false;
642 unsigned int hr, vr; 913 unsigned int hr, vr;
643 int junk; 914 int junk;
644 int geom_flags = XParseGeometry (geom, &junk, &junk, &hr, &vr); 915 int geom_flags = XParseGeometry (geom, &junk, &junk, &hr, &vr);
645 916
646 if (!(geom_flags&WidthValue)) 917 if (!(geom_flags & WidthValue))
647 hr = 1; 918 hr = 1;
648 if (!(geom_flags&HeightValue)) 919 if (!(geom_flags & HeightValue))
649 vr = hr; 920 vr = hr;
650 921
922 min_it (hr, 128);
923 min_it (vr, 128);
924
651 if (h_blurRadius != hr) 925 if (h_blurRadius != hr)
652 { 926 {
653 ++changed; 927 changed = true;
654 h_blurRadius = hr; 928 h_blurRadius = hr;
655 } 929 }
656 930
657 if (v_blurRadius != vr) 931 if (v_blurRadius != vr)
658 { 932 {
659 ++changed; 933 changed = true;
660 v_blurRadius = vr; 934 v_blurRadius = vr;
661 } 935 }
662 936
663 if (v_blurRadius == 0 && h_blurRadius == 0) 937 if (v_blurRadius == 0 && h_blurRadius == 0)
664 flags &= ~blurNeeded; 938 bg_flags &= ~blurNeeded;
665 else 939 else
666 flags |= blurNeeded; 940 bg_flags |= blurNeeded;
667 941
668 return (changed>0); 942 return changed;
669} 943}
670 944
671static inline unsigned long 945static inline unsigned long
672compute_tint_shade_flags (rxvt_color *tint, int shade) 946compute_tint_shade_flags (rxvt_color *tint, int shade)
673{ 947{
674 unsigned long flags = 0; 948 unsigned long flags = 0;
675 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC); 949 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
676 bool has_shade = (shade > 0 && shade < 100) || (shade > 100 && shade < 200); 950 bool has_shade = shade != 100;
677 951
678 if (tint) 952 if (tint)
679 { 953 {
680 tint->get (c); 954 tint->get (c);
681# define IS_COMPONENT_WHOLESOME(cmp) ((cmp) <= 0x000700 || (cmp) >= 0x00f700) 955 if (!has_shade
682 if (!has_shade && IS_COMPONENT_WHOLESOME (c.r) 956 && (c.r <= 0x00ff || c.r >= 0xff00)
683 && IS_COMPONENT_WHOLESOME (c.g) 957 && (c.g <= 0x00ff || c.g >= 0xff00)
684 && IS_COMPONENT_WHOLESOME (c.b)) 958 && (c.b <= 0x00ff || c.b >= 0xff00))
685 flags |= bgPixmap_t::tintWholesome; 959 flags |= rxvt_term::tintWholesome;
686# undef IS_COMPONENT_WHOLESOME
687 }
688
689 if (has_shade)
690 flags |= bgPixmap_t::tintNeeded;
691 else if (tint)
692 {
693 if ((c.r > 0x000700 || c.g > 0x000700 || c.b > 0x000700)
694 && (c.r < 0x00f700 || c.g < 0x00f700 || c.b < 0x00f700))
695 {
696 flags |= bgPixmap_t::tintNeeded;
697 }
698 }
699 960 }
700 if (flags & bgPixmap_t::tintNeeded) 961
701 { 962 if (has_shade || tint)
702 if (flags & bgPixmap_t::tintWholesome) 963 flags |= rxvt_term::tintNeeded;
703 flags |= bgPixmap_t::tintServerSide;
704 else
705 {
706#if XFT
707 flags |= bgPixmap_t::tintServerSide;
708#endif
709 }
710 }
711 964
712 return flags; 965 return flags;
713} 966}
714 967
715bool 968bool
716bgPixmap_t::set_tint (rxvt_color &new_tint) 969rxvt_term::bg_set_tint (rxvt_color &new_tint)
717{ 970{
718 if (tint != new_tint) 971 if (!(bg_flags & tintSet) || tint != new_tint)
719 { 972 {
720 unsigned long new_flags = compute_tint_shade_flags (&new_tint, shade); 973 unsigned long new_flags = compute_tint_shade_flags (&new_tint, shade);
721 tint = new_tint; 974 tint = new_tint;
722 flags = (flags & ~tintFlags) | new_flags | tintSet; 975 bg_flags = (bg_flags & ~tintFlags) | new_flags | tintSet;
723 return true; 976 return true;
724 } 977 }
978
725 return false; 979 return false;
726} 980}
727 981
728bool 982bool
729bgPixmap_t::unset_tint () 983rxvt_term::bg_set_shade (const char *shade_str)
730{ 984{
985 int new_shade = (shade_str) ? atoi (shade_str) : 100;
986
987 clamp_it (new_shade, -100, 200);
988 if (new_shade < 0)
989 new_shade = 200 - (100 + new_shade);
990
991 if (new_shade != shade)
992 {
731 unsigned long new_flags = compute_tint_shade_flags (NULL, shade); 993 unsigned long new_flags = compute_tint_shade_flags ((bg_flags & tintSet) ? &tint : NULL, new_shade);
732 994 shade = new_shade;
733 if (new_flags != (flags & tintFlags))
734 {
735 flags = (flags&~tintFlags)|new_flags; 995 bg_flags = (bg_flags & ~tintFlags) | new_flags;
736 return true; 996 return true;
737 } 997 }
998
738 return false; 999 return false;
739} 1000}
740 1001
1002#if XRENDER
1003static void
1004get_gaussian_kernel (int radius, int width, double *kernel, XFixed *params)
1005{
1006 double sigma = radius / 2.0;
1007 double scale = sqrt (2.0 * M_PI) * sigma;
1008 double sum = 0.0;
1009
1010 for (int i = 0; i < width; i++)
1011 {
1012 double x = i - width / 2;
1013 kernel[i] = exp (-(x * x) / (2.0 * sigma * sigma)) / scale;
1014 sum += kernel[i];
1015 }
1016
1017 params[0] = XDoubleToFixed (width);
1018 params[1] = XDoubleToFixed (1);
1019
1020 for (int i = 0; i < width; i++)
1021 params[i+2] = XDoubleToFixed (kernel[i] / sum);
1022}
1023#endif
1024
741bool 1025bool
742bgPixmap_t::set_shade (const char *shade_str) 1026rxvt_term::blur_pixmap (Pixmap pixmap, Visual *visual, int width, int height)
743{ 1027{
744 int new_shade = (shade_str) ? atoi (shade_str) : 0; 1028 bool ret = false;
1029#if XRENDER
1030 int size = max (h_blurRadius, v_blurRadius) * 2 + 1;
1031 double *kernel = (double *)malloc (size * sizeof (double));
1032 XFixed *params = (XFixed *)malloc ((size + 2) * sizeof (XFixed));
745 1033
746 if (new_shade < 0 && new_shade > -100) 1034 XRenderPictureAttributes pa;
747 new_shade = 200 - (100 + new_shade); 1035 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
748 else if (new_shade == 100)
749 new_shade = 0;
750 1036
751 if (new_shade != shade) 1037 Picture src = XRenderCreatePicture (dpy, pixmap, format, 0, &pa);
1038 Picture dst = XRenderCreatePicture (dpy, pixmap, format, 0, &pa);
1039
1040 if (kernel && params && src && dst)
752 { 1041 {
753 unsigned long new_flags = compute_tint_shade_flags ((flags & tintSet) ? &tint : NULL, new_shade); 1042 if (h_blurRadius)
754 shade = new_shade; 1043 {
755 flags = (flags & (~tintFlags | tintSet)) | new_flags; 1044 size = h_blurRadius * 2 + 1;
1045 get_gaussian_kernel (h_blurRadius, size, kernel, params);
1046
1047 XRenderSetPictureFilter (dpy, src, FilterConvolution, params, size+2);
1048 XRenderComposite (dpy,
1049 PictOpSrc,
1050 src,
1051 None,
1052 dst,
1053 0, 0,
1054 0, 0,
1055 0, 0,
1056 width, height);
1057 }
1058
1059 if (v_blurRadius)
1060 {
1061 size = v_blurRadius * 2 + 1;
1062 get_gaussian_kernel (v_blurRadius, size, kernel, params);
1063 ::swap (params[0], params[1]);
1064
1065 XRenderSetPictureFilter (dpy, src, FilterConvolution, params, size+2);
1066 XRenderComposite (dpy,
1067 PictOpSrc,
1068 src,
1069 None,
1070 dst,
1071 0, 0,
1072 0, 0,
1073 0, 0,
1074 width, height);
1075 }
1076
756 return true; 1077 ret = true;
1078 }
1079
1080 free (kernel);
1081 free (params);
1082 XRenderFreePicture (dpy, src);
1083 XRenderFreePicture (dpy, dst);
1084#endif
1085 return ret;
1086}
1087
1088bool
1089rxvt_term::tint_pixmap (Pixmap pixmap, Visual *visual, int width, int height)
1090{
1091 bool ret = false;
1092
1093 if (bg_flags & tintWholesome)
757 } 1094 {
1095 XGCValues gcv;
1096 GC gc;
1097
1098 /* In this case we can tint image server-side getting significant
1099 * performance improvements, as we eliminate XImage transfer
1100 */
1101 gcv.foreground = Pixel (tint);
1102 gcv.function = GXand;
1103 gcv.fill_style = FillSolid;
1104 gc = XCreateGC (dpy, pixmap, GCFillStyle | GCForeground | GCFunction, &gcv);
1105 if (gc)
1106 {
1107 XFillRectangle (dpy, pixmap, gc, 0, 0, width, height);
1108 ret = true;
1109 XFreeGC (dpy, gc);
1110 }
1111 }
1112 else
1113 {
1114# if XRENDER
1115 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1116
1117 if (bg_flags & tintSet)
1118 tint.get (c);
1119
1120 if (shade <= 100)
1121 {
1122 c.r = (c.r * shade) / 100;
1123 c.g = (c.g * shade) / 100;
1124 c.b = (c.b * shade) / 100;
1125 }
1126 else
1127 {
1128 c.r = (c.r * (200 - shade)) / 100;
1129 c.g = (c.g * (200 - shade)) / 100;
1130 c.b = (c.b * (200 - shade)) / 100;
1131 }
1132
1133 XRenderPictFormat *solid_format = XRenderFindStandardFormat (dpy, PictStandardARGB32);
1134 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
1135 XRenderPictureAttributes pa;
1136
1137 Picture back_pic = XRenderCreatePicture (dpy, pixmap, format, 0, &pa);
1138
1139 pa.repeat = True;
1140
1141 Pixmap overlay_pmap = XCreatePixmap (dpy, pixmap, 1, 1, 32);
1142 Picture overlay_pic = XRenderCreatePicture (dpy, overlay_pmap, solid_format, CPRepeat, &pa);
1143 XFreePixmap (dpy, overlay_pmap);
1144
1145 pa.component_alpha = True;
1146 Pixmap mask_pmap = XCreatePixmap (dpy, pixmap, 1, 1, 32);
1147 Picture mask_pic = XRenderCreatePicture (dpy, mask_pmap, solid_format, CPRepeat|CPComponentAlpha, &pa);
1148 XFreePixmap (dpy, mask_pmap);
1149
1150 if (mask_pic && overlay_pic && back_pic)
1151 {
1152 XRenderColor mask_c;
1153
1154 mask_c.red = mask_c.green = mask_c.blue = 0;
1155 mask_c.alpha = 0xffff;
1156 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
1157
1158 mask_c.alpha = 0;
1159 mask_c.red = 0xffff - c.r;
1160 mask_c.green = 0xffff - c.g;
1161 mask_c.blue = 0xffff - c.b;
1162 XRenderFillRectangle (dpy, PictOpSrc, mask_pic, &mask_c, 0, 0, 1, 1);
1163 XRenderComposite (dpy, PictOpOver, overlay_pic, mask_pic, back_pic, 0, 0, 0, 0, 0, 0, width, height);
1164
1165 if (shade > 100)
1166 {
1167 mask_c.red = mask_c.green = mask_c.blue = 0xffff * (shade - 100) / 100;
1168 mask_c.alpha = 0;
1169 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
1170
1171 XRenderComposite (dpy, PictOpOver, overlay_pic, None, back_pic, 0, 0, 0, 0, 0, 0, width, height);
1172 }
1173
1174 ret = true;
1175 }
1176
1177 XRenderFreePicture (dpy, mask_pic);
1178 XRenderFreePicture (dpy, overlay_pic);
1179 XRenderFreePicture (dpy, back_pic);
1180# endif
1181 }
1182
758 return false; 1183 return ret;
759} 1184}
760 1185
761/* make_transparency_pixmap() 1186/* make_transparency_pixmap()
762 * Builds a pixmap sized the same as terminal window, with depth same as the root window 1187 * Builds a pixmap of the same size as the terminal window that contains
763 * that pixmap contains tiled portion of the root pixmap that is supposed to be covered by 1188 * the tiled portion of the root pixmap that is supposed to be covered by
764 * our window. 1189 * our window.
765 */ 1190 */
766unsigned long 1191unsigned long
767bgPixmap_t::make_transparency_pixmap () 1192rxvt_term::make_transparency_pixmap ()
768{ 1193{
769 unsigned long result = 0; 1194 unsigned long result = 0;
770 1195
771 if (target == NULL)
772 return 0;
773
774 /* root dimentions may change from call to call - but Display structure should 1196 /* root dimensions may change from call to call - but Display structure should
775 * be always up-to-date, so let's use it : 1197 * be always up-to-date, so let's use it :
776 */ 1198 */
777 Window root = target->display->root;
778 int screen = target->display->screen; 1199 int screen = display->screen;
779 Display *dpy = target->dpy; 1200 int root_depth = DefaultDepth (dpy, screen);
780 int root_width = DisplayWidth (dpy, screen); 1201 int root_width = DisplayWidth (dpy, screen);
781 int root_height = DisplayHeight (dpy, screen); 1202 int root_height = DisplayHeight (dpy, screen);
782 unsigned int root_pmap_width, root_pmap_height; 1203 unsigned int root_pmap_width, root_pmap_height;
783 int window_width = target->szHint.width; 1204 int window_width = szHint.width;
784 int window_height = target->szHint.height; 1205 int window_height = szHint.height;
785 int sx, sy; 1206 int sx, sy;
786 XGCValues gcv; 1207 XGCValues gcv;
1208 GC gc;
787 1209
788 TIMING_TEST_START (tp); 1210 sx = target_x;
789 target->get_window_origin (sx, sy); 1211 sy = target_y;
790 1212
791 /* check if we are outside of the visible part of the virtual screen : */ 1213 /* check if we are outside of the visible part of the virtual screen : */
792 if (sx + window_width <= 0 || sy + window_height <= 0 1214 if (sx + window_width <= 0 || sy + window_height <= 0
793 || sx >= root_width || sy >= root_height) 1215 || sx >= root_width || sy >= root_height)
794 return 0; 1216 return 0;
795 1217
1218 // validate root pixmap and get its size
796 if (root_pixmap != None) 1219 if (root_pixmap != None)
797 {/* we want to validate the pixmap and get it's size at the same time : */ 1220 {
1221 Window wdummy;
798 int junk; 1222 int idummy;
799 unsigned int ujunk; 1223 unsigned int udummy;
800 /* root pixmap may be bad - allow a error */ 1224
801 target->allowedxerror = -1; 1225 allowedxerror = -1;
802 1226
803 if (!XGetGeometry (dpy, root_pixmap, &root, &junk, &junk, &root_pmap_width, &root_pmap_height, &ujunk, &ujunk)) 1227 if (!XGetGeometry (dpy, root_pixmap, &wdummy, &idummy, &idummy, &root_pmap_width, &root_pmap_height, &udummy, &udummy))
804 root_pixmap = None; 1228 root_pixmap = None;
805 1229
806 target->allowedxerror = 0; 1230 allowedxerror = 0;
1231 }
1232
1233 Pixmap recoded_root_pmap = root_pixmap;
1234
1235 if (root_pixmap != None && root_depth != depth)
807 } 1236 {
1237#if XRENDER
1238 if (bg_flags & HAS_RENDER)
1239 {
1240 XRenderPictureAttributes pa;
808 1241
809 Pixmap tiled_root_pmap = XCreatePixmap (dpy, root, window_width, window_height, root_depth); 1242 XRenderPictFormat *src_format = XRenderFindVisualFormat (dpy, DefaultVisual (dpy, screen));
810 GC gc = NULL; 1243 Picture src = XRenderCreatePicture (dpy, root_pixmap, src_format, 0, &pa);
811 1244
812 if (tiled_root_pmap == None) /* something really bad happened - abort */ 1245 recoded_root_pmap = XCreatePixmap (dpy, vt, root_pmap_width, root_pmap_height, depth);
1246 XRenderPictFormat *dst_format = XRenderFindVisualFormat (dpy, visual);
1247 Picture dst = XRenderCreatePicture (dpy, recoded_root_pmap, dst_format, 0, &pa);
1248
1249 if (src && dst)
1250 XRenderComposite (dpy, PictOpSrc, src, None, dst, 0, 0, 0, 0, 0, 0, root_pmap_width, root_pmap_height);
1251 else
1252 {
1253 XFreePixmap (dpy, recoded_root_pmap);
1254 root_pixmap = None;
1255 }
1256
1257 XRenderFreePicture (dpy, src);
1258 XRenderFreePicture (dpy, dst);
1259 }
1260 else
1261#endif
1262 root_pixmap = None;
1263 }
1264
1265 if (root_pixmap == None)
813 return 0; 1266 return 0;
814 1267
1268 if (bg_pixmap == None
1269 || bg_pmap_width != window_width
1270 || bg_pmap_height != window_height)
1271 {
1272 if (bg_pixmap)
1273 XFreePixmap (dpy, bg_pixmap);
1274 bg_pixmap = XCreatePixmap (dpy, vt, window_width, window_height, depth);
1275 bg_pmap_width = window_width;
1276 bg_pmap_height = window_height;
1277 }
1278
815 if (root_pixmap == None) 1279 if (bg_pixmap == None)
816 { /* use tricks to obtain the root background image :*/ 1280 return 0;
817 /* we want to create Overrideredirect window overlapping out window
818 with background type of Parent Relative and then grab it */
819 XSetWindowAttributes attr;
820 Window src;
821 bool success = false;
822 1281
823 attr.background_pixmap = ParentRelative;
824 attr.backing_store = Always;
825 attr.event_mask = ExposureMask;
826 attr.override_redirect = True;
827 src = XCreateWindow (dpy, root, sx, sy, window_width, window_height, 0,
828 CopyFromParent, CopyFromParent, CopyFromParent,
829 CWBackPixmap|CWBackingStore|CWOverrideRedirect|CWEventMask,
830 &attr);
831
832 if (src != None)
833 {
834 XEvent event;
835 int ev_count = 0;
836 XGrabServer (dpy);
837 XMapRaised (dpy, src);
838 XSync (dpy, False);
839
840 /* XSync should get window where it's properly exposed,
841 * but to be on the safe side - let's check for the actuall event to arrive : */
842 while (XCheckWindowEvent (dpy, src, ExposureMask, &event))
843 ++ev_count;
844
845 if (ev_count > 0);
846 { /* hooray! - we can grab the image! */
847 gc = XCreateGC (dpy, root, 0, NULL);
848 if (gc)
849 {
850 XCopyArea (dpy, src, tiled_root_pmap, gc, 0, 0, window_width, window_height, 0, 0);
851 success = true;
852 }
853 }
854 XDestroyWindow (dpy, src);
855 XUngrabServer (dpy);
856 //fprintf (stderr, "%s:%d: ev_count = %d\n", __FUNCTION__, __LINE__, ev_count);
857 }
858
859 if (!success)
860 {
861 XFreePixmap (dpy, tiled_root_pmap);
862 tiled_root_pmap = None;
863 }
864 else
865 result |= transpPmapTiled;
866 }
867 else
868 {/* strightforward pixmap copy */ 1282 /* straightforward pixmap copy */
869 gcv.tile = root_pixmap;
870 gcv.fill_style = FillTiled;
871
872 while (sx < 0) sx += (int)root_width; 1283 while (sx < 0) sx += (int)root_width;
873 while (sy < 0) sy += (int)root_height; 1284 while (sy < 0) sy += (int)root_height;
874 1285
1286 gcv.tile = recoded_root_pmap;
1287 gcv.fill_style = FillTiled;
875 gcv.ts_x_origin = -sx; 1288 gcv.ts_x_origin = -sx;
876 gcv.ts_y_origin = -sy; 1289 gcv.ts_y_origin = -sy;
877 gc = XCreateGC (dpy, root, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv); 1290 gc = XCreateGC (dpy, vt, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv);
1291
1292 if (gc)
1293 {
1294 XFillRectangle (dpy, bg_pixmap, gc, 0, 0, window_width, window_height);
1295 result |= isValid | (bg_flags & effectsFlags);
1296 XFreeGC (dpy, gc);
1297
1298 if (!(bg_flags & CLIENT_RENDER))
1299 {
1300 if ((bg_flags & blurNeeded)
1301 && (bg_flags & HAS_RENDER_CONV))
1302 {
1303 if (blur_pixmap (bg_pixmap, visual, window_width, window_height))
1304 result &= ~blurNeeded;
1305 }
1306 if ((bg_flags & tintNeeded)
1307 && (bg_flags & (tintWholesome | HAS_RENDER)))
1308 {
1309 if (tint_pixmap (bg_pixmap, visual, window_width, window_height))
1310 result &= ~tintNeeded;
1311 }
1312 } /* server side rendering completed */
1313 }
1314
1315 if (recoded_root_pmap != root_pixmap)
1316 XFreePixmap (dpy, recoded_root_pmap);
1317
1318 return result;
1319}
1320
1321void
1322rxvt_term::bg_set_root_pixmap ()
1323{
1324 Pixmap new_root_pixmap = get_pixmap_property (xa[XA_XROOTPMAP_ID]);
1325 if (new_root_pixmap == None)
1326 new_root_pixmap = get_pixmap_property (xa[XA_ESETROOT_PMAP_ID]);
1327
1328 root_pixmap = new_root_pixmap;
1329}
1330# endif /* ENABLE_TRANSPARENCY */
1331
1332#if defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE)
1333static void shade_ximage (Visual *visual, XImage *ximage, int shade, const rgba &c);
1334# endif
1335
1336bool
1337rxvt_term::bg_render ()
1338{
1339 unsigned long tr_flags = 0;
1340
1341 bg_invalidate ();
1342# ifdef ENABLE_TRANSPARENCY
1343 if (bg_flags & isTransparent)
1344 {
1345 /* we need to re-generate transparency pixmap in that case ! */
1346 tr_flags = make_transparency_pixmap ();
1347 if (tr_flags == 0)
1348 return false;
1349 else if (!(tr_flags & effectsFlags))
1350 bg_flags |= isValid;
1351 }
1352# endif
1353
1354# ifdef BG_IMAGE_FROM_FILE
1355 if (have_image
1356 || (tr_flags & effectsFlags))
1357 {
1358 if (render_image (tr_flags))
1359 bg_flags |= isValid;
1360 }
1361# endif
1362
1363# if defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE)
1364 XImage *result = NULL;
1365
1366 if (tr_flags && !(bg_flags & isValid))
1367 {
1368 result = XGetImage (dpy, bg_pixmap, 0, 0, bg_pmap_width, bg_pmap_height, AllPlanes, ZPixmap);
1369 }
1370
1371 if (result)
1372 {
1373 /* our own client-side tinting */
1374 if (tr_flags & tintNeeded)
1375 {
1376 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1377 if (bg_flags & tintSet)
1378 tint.get (c);
1379 shade_ximage (DefaultVisual (dpy, display->screen), result, shade, c);
1380 }
1381
1382 GC gc = XCreateGC (dpy, vt, 0UL, NULL);
878 1383
879 if (gc) 1384 if (gc)
880 { 1385 {
881 XFillRectangle (dpy, tiled_root_pmap, gc, 0, 0, window_width, window_height); 1386 XPutImage (dpy, bg_pixmap, gc, result, 0, 0, 0, 0, result->width, result->height);
882 result |= transpPmapTiled;
883 }
884 }
885 TIMING_TEST_PRINT_RESULT (tp);
886 1387
887 if (tiled_root_pmap != None) 1388 XFreeGC (dpy, gc);
888 { 1389 bg_flags |= isValid;
889 if (!need_client_side_rendering ())
890 { 1390 }
891 if ((flags & tintNeeded))
892 {
893 if (flags & tintWholesome)
894 {
895 /* In this case we can tint image server-side getting significant
896 * performance improvements, as we eliminate XImage transfer
897 */
898 gcv.foreground = Pixel (tint);
899 gcv.function = GXand;
900 gcv.fill_style = FillSolid;
901 if (gc)
902 XChangeGC (dpy, gc, GCFillStyle | GCForeground | GCFunction, &gcv);
903 else
904 gc = XCreateGC (dpy, root, GCFillStyle | GCForeground | GCFunction, &gcv);
905 if (gc)
906 {
907 XFillRectangle (dpy, tiled_root_pmap, gc, 0, 0, window_width, window_height);
908 result |= transpPmapTinted;
909 }
910 }
911 else
912 {
913# if XFT
914 Picture back_pic = 0;
915 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
916 1391
917 if (flags & tintSet) 1392 XDestroyImage (result);
918 tint.get (c);
919
920 if (shade > 0 && shade < 100)
921 {
922 c.r = (c.r * shade) / 100;
923 c.g = (c.g * shade) / 100;
924 c.b = (c.b * shade) / 100;
925 }
926 else if( shade > 100 && shade < 200)
927 {
928 c.r = (c.r * (200 - shade)) / 100;
929 c.g = (c.g * (200 - shade)) / 100;
930 c.b = (c.b * (200 - shade)) / 100;
931 }
932
933 XRenderPictFormat pf;
934 pf.type = PictTypeDirect;
935 pf.depth = 32;
936 pf.direct.redMask = 0xff;
937 pf.direct.greenMask = 0xff;
938 pf.direct.blueMask = 0xff;
939 pf.direct.alphaMask = 0xff;
940
941 XRenderPictFormat *solid_format = XRenderFindFormat (dpy,
942 (PictFormatType|
943 PictFormatDepth|
944 PictFormatRedMask|
945 PictFormatGreenMask|
946 PictFormatBlueMask|
947 PictFormatAlphaMask),
948 &pf,
949 0);
950 XRenderPictFormat *root_format = XRenderFindVisualFormat (dpy, DefaultVisualOfScreen (ScreenOfDisplay (dpy, target->display->screen)));
951 XRenderPictureAttributes pa ;
952
953 back_pic = XRenderCreatePicture (dpy, tiled_root_pmap, root_format, 0, &pa);
954
955 pa.repeat = True;
956
957 Pixmap overlay_pmap = XCreatePixmap (dpy, root, 1, 1, 32);
958 Picture overlay_pic = XRenderCreatePicture (dpy, overlay_pmap, solid_format, CPRepeat, &pa);
959 XFreePixmap (dpy, overlay_pmap);
960
961 pa.component_alpha = True;
962 Pixmap mask_pmap = XCreatePixmap (dpy, root, 1, 1, 32);
963 Picture mask_pic = XRenderCreatePicture (dpy, mask_pmap, solid_format, CPRepeat|CPComponentAlpha, &pa);
964 XFreePixmap (dpy, mask_pmap);
965
966 if (mask_pic && overlay_pic && back_pic)
967 {
968 XRenderColor mask_c;
969
970 memset (&mask_c, (shade > 100) ? 0xFF : 0x0, sizeof (mask_c));
971 mask_c.alpha = 0xffff;
972 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
973
974 mask_c.alpha = 0;
975 mask_c.red = 0xffff - c.r;
976 mask_c.green = 0xffff - c.g;
977 mask_c.blue = 0xffff - c.b;
978 XRenderFillRectangle (dpy, PictOpSrc, mask_pic, &mask_c, 0, 0, 1, 1);
979 XRenderComposite (dpy, PictOpOver, overlay_pic, mask_pic, back_pic, 0, 0, 0, 0, 0, 0, window_width, window_height);
980 result |= transpPmapTinted;
981 }
982 XRenderFreePicture (dpy, mask_pic);
983 XRenderFreePicture (dpy, overlay_pic);
984 XRenderFreePicture (dpy, back_pic);
985# if DO_TIMING_TEST
986 XSync (dpy, False);
987# endif
988# endif
989 }
990 }
991 } /* server side rendering completed */
992
993 if (pixmap)
994 XFreePixmap (dpy, pixmap);
995
996 pixmap = tiled_root_pmap;
997 pmap_width = window_width;
998 pmap_height = window_height;
999 pmap_depth = root_depth;
1000 }
1001
1002 if (gc)
1003 XFreeGC (dpy, gc);
1004
1005 TIMING_TEST_PRINT_RESULT (tp);
1006 1393 }
1007 return result;
1008}
1009
1010bool
1011bgPixmap_t::set_root_pixmap ()
1012{
1013 Pixmap new_root_pixmap = None;
1014
1015 new_root_pixmap = target->get_pixmap_property (XA_XROOTPMAP_ID);
1016 if (new_root_pixmap == None)
1017 new_root_pixmap = target->get_pixmap_property (XA_ESETROOT_PMAP_ID);
1018
1019 if (new_root_pixmap != root_pixmap)
1020 {
1021 root_pixmap = new_root_pixmap;
1022 return true;
1023 }
1024 return false;
1025}
1026# endif /* ENABLE_TRANSPARENCY */
1027
1028# ifndef HAVE_AFTERIMAGE
1029static void ShadeXImage(rxvt_term *term, XImage* srcImage, int shade, int rm, int gm, int bm);
1030# endif 1394# endif
1031 1395
1032
1033bool
1034bgPixmap_t::render ()
1035{
1036 unsigned long background_flags = 0;
1037
1038 if (target == NULL)
1039 return false;
1040
1041 TIMING_TEST_START (tp);
1042
1043 invalidate();
1044# ifdef ENABLE_TRANSPARENCY
1045 if (flags & isTransparent)
1046 {
1047 /* we need to re-generate transparency pixmap in that case ! */
1048 background_flags = make_transparency_pixmap ();
1049 if (background_flags == 0)
1050 return false;
1051 else if ((background_flags & transpTransformations) == (flags & transpTransformations)
1052 && pmap_depth == target->depth)
1053 flags = flags & ~isInvalid;
1054 }
1055# endif
1056
1057 XImage *result = NULL;
1058# ifdef HAVE_AFTERIMAGE
1059 if (original_asim
1060 || (background_flags & transpTransformations) != (flags & transpTransformations))
1061 {
1062 ASImage *background = NULL;
1063 ARGB32 as_tint = TINT_LEAVE_SAME;
1064 if (background_flags)
1065 background = pixmap2ximage (target->asv, pixmap, 0, 0, pmap_width, pmap_height, AllPlanes, 100);
1066
1067# ifdef ENABLE_TRANSPARENCY
1068 if (!(background_flags & transpPmapTinted) && (flags & tintNeeded))
1069 {
1070 ShadingInfo as_shade;
1071 as_shade.shading = (shade == 0) ? 100 : shade;
1072
1073 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1074 if (flags & tintSet)
1075 tint.get (c);
1076 as_shade.tintColor.red = c.r;
1077 as_shade.tintColor.green = c.g;
1078 as_shade.tintColor.blue = c.b;
1079
1080 as_tint = shading2tint32 (&as_shade);
1081 }
1082 if (!(background_flags & transpPmapBlured) && (flags & blurNeeded) && background != NULL)
1083 {
1084 ASImage* tmp = blur_asimage_gauss (target->asv, background, h_blurRadius, v_blurRadius, 0xFFFFFFFF,
1085 (original_asim == NULL || tint == TINT_LEAVE_SAME)?ASA_XImage:ASA_ASImage,
1086 100, ASIMAGE_QUALITY_DEFAULT);
1087 if (tmp)
1088 {
1089 destroy_asimage (&background);
1090 background = tmp;
1091 }
1092 }
1093# endif
1094
1095 if (render_asim (background, as_tint))
1096 flags = flags & ~isInvalid;
1097 if (background)
1098 destroy_asimage (&background);
1099 }
1100 else if (background_flags && pmap_depth != target->depth)
1101 {
1102 result = XGetImage (target->dpy, pixmap, 0, 0, pmap_width, pmap_height, AllPlanes, ZPixmap);
1103 }
1104
1105# elif !XFT /* our own client-side tinting */
1106
1107 /* ATTENTION: We ASSUME that XFT will let us do all the tinting neccessary server-side.
1108 This may need to be changed in need_client_side_rendering() logic is altered !!! */
1109
1110 if (background_flags && (flags & isInvalid))
1111 {
1112 result = XGetImage (target->dpy, pixmap, 0, 0, pmap_width, pmap_height, AllPlanes, ZPixmap);
1113 if (result != NULL && !(background_flags & transpPmapTinted) && (flags & tintNeeded))
1114 {
1115 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1116 if (flags & tintSet)
1117 tint.get (c);
1118 ShadeXImage (target, result, shade, c.r, c.g, c.b);
1119 }
1120 }
1121# endif /* HAVE_AFTERIMAGE */
1122
1123 if (result != NULL)
1124 {
1125 GC gc = XCreateGC (target->dpy, target->vt, 0UL, NULL);
1126 if (gc)
1127 {
1128 if (/*pmap_depth != target->depth &&*/ pixmap != None)
1129 {
1130 XFreePixmap (target->dpy, pixmap);
1131 pixmap = None;
1132 }
1133 if (pixmap == None)
1134 {
1135 pixmap = XCreatePixmap (target->dpy, target->vt, result->width, result->height, target->depth);
1136 pmap_width = result->width;
1137 pmap_height = result->height;
1138 pmap_depth = target->depth;
1139 }
1140 if (pmap_depth != result->depth)
1141 { /* Bad Match error will ensue ! stupid X !!!! */
1142 if( result->depth == 24 && pmap_depth == 32)
1143 result->depth = 32;
1144 else if( result->depth == 32 && pmap_depth == 24)
1145 result->depth = 24;
1146 else
1147 {
1148 /* TODO: implement image recoding */
1149 }
1150 }
1151 if (pmap_depth == result->depth)
1152 XPutImage (target->dpy, pixmap, gc, result, 0, 0, 0, 0, result->width, result->height);
1153 XFreeGC (target->dpy, gc);
1154 flags = flags & ~isInvalid;
1155 }
1156 XDestroyImage (result);
1157 }
1158
1159 if (flags & isInvalid) 1396 if (!(bg_flags & isValid))
1160 { 1397 {
1161 if (pixmap != None) 1398 if (bg_pixmap != None)
1162 { 1399 {
1163 XFreePixmap (target->dpy, pixmap); 1400 XFreePixmap (dpy, bg_pixmap);
1164 pixmap = None; 1401 bg_pixmap = None;
1165 }
1166 }
1167
1168 apply ();
1169
1170 TIMING_TEST_PRINT_RESULT (tp);
1171
1172 return true;
1173}
1174
1175bool
1176bgPixmap_t::set_target (rxvt_term *new_target)
1177{
1178 if (new_target)
1179 if (target != new_target)
1180 {
1181 target = new_target;
1182# ifdef ENABLE_TRANSPARENCY
1183 root_depth = DefaultDepthOfScreen (ScreenOfDisplay (target->dpy, target->display->screen));
1184# endif
1185 return true;
1186 } 1402 }
1403 }
1404
1405 scr_recolour (false);
1406 bg_flags |= hasChanged;
1407
1408 bg_valid_since = ev::now ();
1409
1187 return false; 1410 return true;
1188} 1411}
1189 1412
1190void 1413void
1191bgPixmap_t::apply() 1414rxvt_term::bg_init ()
1192{ 1415{
1193 if (target)
1194 {
1195 flags &= ~isVtOrigin;
1196 if (pixmap != None)
1197 { /* set target's background to pixmap */
1198# ifdef ENABLE_TRANSPARENCY 1416#ifdef ENABLE_TRANSPARENCY
1199 if (flags & isTransparent) 1417 shade = 100;
1200 {
1201 XSetWindowBackgroundPixmap (target->dpy, target->parent[0], pixmap);
1202 XSetWindowBackgroundPixmap (target->dpy, target->vt, ParentRelative);
1203# if HAVE_SCROLLBARS
1204 if (target->scrollBar.win)
1205 XSetWindowBackgroundPixmap (target->dpy, target->scrollBar.win, ParentRelative);
1206# endif
1207 }
1208 else
1209# endif 1418#endif
1210 { 1419
1211 flags |= isVtOrigin; 1420 bg_flags &= ~(HAS_RENDER | HAS_RENDER_CONV);
1212 /* force old pixmap dereference in case it was transparent before :*/ 1421#if XRENDER
1213 XSetWindowBackground (target->dpy, target->parent[0], target->pix_colors[Color_border]); 1422 int major, minor;
1214 XSetWindowBackgroundPixmap (target->dpy, target->vt, pixmap); 1423 if (XRenderQueryVersion (dpy, &major, &minor))
1215 /* do we also need to set scrollbar's background here ? */ 1424 bg_flags |= HAS_RENDER;
1216# if HAVE_SCROLLBARS 1425 XFilters *filters = XRenderQueryFilters (dpy, vt);
1217 if (target->scrollBar.win) 1426 if (filters)
1218 XSetWindowBackground (target->dpy, target->scrollBar.win, target->pix_colors[Color_border]); 1427 {
1428 for (int i = 0; i < filters->nfilter; i++)
1429 if (!strcmp (filters->filter[i], FilterConvolution))
1430 bg_flags |= HAS_RENDER_CONV;
1431
1432 XFree (filters);
1433 }
1219# endif 1434#endif
1220 }
1221 }
1222 else
1223 { /* set target background to a pixel */
1224 XSetWindowBackground (target->dpy, target->parent[0], target->pix_colors[Color_border]);
1225 XSetWindowBackground (target->dpy, target->vt, target->pix_colors[Color_bg]);
1226 /* do we also need to set scrollbar's background here ? */
1227# if HAVE_SCROLLBARS
1228 if (target->scrollBar.win)
1229 XSetWindowBackground (target->dpy, target->scrollBar.win, target->pix_colors[Color_border]);
1230# endif
1231 }
1232 /* don't want Expose on the parent or vt. It is better to use
1233 scr_touch or we get a great deal of flicker otherwise: */
1234 XClearWindow (target->dpy, target->parent[0]);
1235
1236# if HAVE_SCROLLBARS
1237 if (target->scrollBar.win)
1238 {
1239 target->scrollBar.setIdle ();
1240 target->scrollbar_show (0);
1241 }
1242# endif
1243
1244 target->want_refresh = 1;
1245 flags |= hasChanged;
1246 }
1247} 1435}
1248 1436
1249#endif /* HAVE_BG_PIXMAP */ 1437#endif /* HAVE_BG_PIXMAP */
1250 1438
1251#if defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE) && !XFT 1439#if defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE)
1252/* taken from aterm-0.4.2 */ 1440/* taken from aterm-0.4.2 */
1253 1441
1254typedef uint32_t RUINT32T;
1255
1256static void 1442static void
1257ShadeXImage(rxvt_term *term, XImage* srcImage, int shade, int rm, int gm, int bm) 1443shade_ximage (Visual *visual, XImage *ximage, int shade, const rgba &c)
1258{ 1444{
1259 int sh_r, sh_g, sh_b; 1445 int sh_r, sh_g, sh_b;
1260 RUINT32T mask_r, mask_g, mask_b; 1446 uint32_t mask_r, mask_g, mask_b;
1261 RUINT32T *lookup, *lookup_r, *lookup_g, *lookup_b; 1447 uint32_t *lookup, *lookup_r, *lookup_g, *lookup_b;
1262 unsigned int lower_lim_r, lower_lim_g, lower_lim_b; 1448 rgba low;
1263 unsigned int upper_lim_r, upper_lim_g, upper_lim_b; 1449 rgba high;
1264 int i; 1450 int i;
1451 int host_byte_order = byteorder::big_endian () ? MSBFirst : LSBFirst;
1265 1452
1266 Visual *visual = term->visual;
1267
1268 if (visual->c_class != TrueColor || srcImage->format != ZPixmap) return ; 1453 if (visual->c_class != TrueColor || ximage->format != ZPixmap) return;
1269
1270 if (shade == 0)
1271 shade = 100;
1272 1454
1273 /* for convenience */ 1455 /* for convenience */
1274 mask_r = visual->red_mask; 1456 mask_r = visual->red_mask;
1275 mask_g = visual->green_mask; 1457 mask_g = visual->green_mask;
1276 mask_b = visual->blue_mask; 1458 mask_b = visual->blue_mask;
1277 1459
1278 /* boring lookup table pre-initialization */ 1460 /* boring lookup table pre-initialization */
1279 switch (srcImage->bits_per_pixel) { 1461 switch (ximage->depth)
1462 {
1280 case 15: 1463 case 15:
1281 if ((mask_r != 0x7c00) || 1464 if ((mask_r != 0x7c00) ||
1282 (mask_g != 0x03e0) || 1465 (mask_g != 0x03e0) ||
1283 (mask_b != 0x001f)) 1466 (mask_b != 0x001f))
1284 return; 1467 return;
1285 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(32+32+32)); 1468 lookup = (uint32_t *) malloc (sizeof (uint32_t)*(32+32+32));
1286 lookup_r = lookup; 1469 lookup_r = lookup;
1287 lookup_g = lookup+32; 1470 lookup_g = lookup+32;
1288 lookup_b = lookup+32+32; 1471 lookup_b = lookup+32+32;
1289 sh_r = 10; 1472 sh_r = 10;
1290 sh_g = 5; 1473 sh_g = 5;
1291 sh_b = 0; 1474 sh_b = 0;
1292 break; 1475 break;
1293 case 16: 1476 case 16:
1294 if ((mask_r != 0xf800) || 1477 if ((mask_r != 0xf800) ||
1295 (mask_g != 0x07e0) || 1478 (mask_g != 0x07e0) ||
1296 (mask_b != 0x001f)) 1479 (mask_b != 0x001f))
1297 return; 1480 return;
1298 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(32+64+32)); 1481 lookup = (uint32_t *) malloc (sizeof (uint32_t)*(32+64+32));
1299 lookup_r = lookup; 1482 lookup_r = lookup;
1300 lookup_g = lookup+32; 1483 lookup_g = lookup+32;
1301 lookup_b = lookup+32+64; 1484 lookup_b = lookup+32+64;
1302 sh_r = 11; 1485 sh_r = 11;
1303 sh_g = 5; 1486 sh_g = 5;
1304 sh_b = 0; 1487 sh_b = 0;
1305 break; 1488 break;
1306 case 24: 1489 case 24:
1307 if ((mask_r != 0xff0000) || 1490 if ((mask_r != 0xff0000) ||
1308 (mask_g != 0x00ff00) || 1491 (mask_g != 0x00ff00) ||
1309 (mask_b != 0x0000ff)) 1492 (mask_b != 0x0000ff))
1310 return; 1493 return;
1311 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(256+256+256)); 1494 lookup = (uint32_t *) malloc (sizeof (uint32_t)*(256+256+256));
1312 lookup_r = lookup; 1495 lookup_r = lookup;
1313 lookup_g = lookup+256; 1496 lookup_g = lookup+256;
1314 lookup_b = lookup+256+256; 1497 lookup_b = lookup+256+256;
1315 sh_r = 16; 1498 sh_r = 16;
1316 sh_g = 8; 1499 sh_g = 8;
1317 sh_b = 0; 1500 sh_b = 0;
1318 break; 1501 break;
1319 case 32: 1502 case 32:
1320 if ((mask_r != 0xff0000) || 1503 if ((mask_r != 0xff0000) ||
1321 (mask_g != 0x00ff00) || 1504 (mask_g != 0x00ff00) ||
1322 (mask_b != 0x0000ff)) 1505 (mask_b != 0x0000ff))
1323 return; 1506 return;
1324 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(256+256+256)); 1507 lookup = (uint32_t *) malloc (sizeof (uint32_t)*(256+256+256));
1325 lookup_r = lookup; 1508 lookup_r = lookup;
1326 lookup_g = lookup+256; 1509 lookup_g = lookup+256;
1327 lookup_b = lookup+256+256; 1510 lookup_b = lookup+256+256;
1328 sh_r = 16; 1511 sh_r = 16;
1329 sh_g = 8; 1512 sh_g = 8;
1330 sh_b = 0; 1513 sh_b = 0;
1331 break; 1514 break;
1332 default: 1515 default:
1333 return; /* we do not support this color depth */ 1516 return; /* we do not support this color depth */
1334 } 1517 }
1335 1518
1336 /* prepare limits for color transformation (each channel is handled separately) */ 1519 /* prepare limits for color transformation (each channel is handled separately) */
1337 if (shade < 0) { 1520 if (shade > 100)
1521 {
1338 shade = -shade; 1522 shade = 200 - shade;
1339 if (shade < 0) shade = 0;
1340 if (shade > 100) shade = 100;
1341 1523
1342 lower_lim_r = 65535-rm; 1524 high.r = c.r * shade / 100;
1343 lower_lim_g = 65535-gm; 1525 high.g = c.g * shade / 100;
1344 lower_lim_b = 65535-bm; 1526 high.b = c.b * shade / 100;
1345 1527
1346 lower_lim_r = 65535-(unsigned int)(((RUINT32T)lower_lim_r)*((RUINT32T)shade)/100); 1528 low.r = 65535 * (100 - shade) / 100;
1347 lower_lim_g = 65535-(unsigned int)(((RUINT32T)lower_lim_g)*((RUINT32T)shade)/100); 1529 low.g = 65535 * (100 - shade) / 100;
1348 lower_lim_b = 65535-(unsigned int)(((RUINT32T)lower_lim_b)*((RUINT32T)shade)/100); 1530 low.b = 65535 * (100 - shade) / 100;
1349
1350 upper_lim_r = upper_lim_g = upper_lim_b = 65535;
1351 } else {
1352 if (shade < 0) shade = 0;
1353 if (shade > 100) shade = 100;
1354
1355 lower_lim_r = lower_lim_g = lower_lim_b = 0;
1356
1357 upper_lim_r = (unsigned int)((((RUINT32T)rm)*((RUINT32T)shade))/100);
1358 upper_lim_g = (unsigned int)((((RUINT32T)gm)*((RUINT32T)shade))/100);
1359 upper_lim_b = (unsigned int)((((RUINT32T)bm)*((RUINT32T)shade))/100);
1360 } 1531 }
1361 1532 else
1362 /* switch red and blue bytes if necessary, we need it for some weird XServers like XFree86 3.3.3.1 */
1363 if ((srcImage->bits_per_pixel == 24) && (mask_r >= 0xFF0000 ))
1364 { 1533 {
1365 unsigned int tmp; 1534 high.r = c.r * shade / 100;
1535 high.g = c.g * shade / 100;
1536 high.b = c.b * shade / 100;
1366 1537
1367 tmp = lower_lim_r; 1538 low.r = low.g = low.b = 0;
1368 lower_lim_r = lower_lim_b;
1369 lower_lim_b = tmp;
1370
1371 tmp = upper_lim_r;
1372 upper_lim_r = upper_lim_b;
1373 upper_lim_b = tmp;
1374 } 1539 }
1375 1540
1376 /* fill our lookup tables */ 1541 /* fill our lookup tables */
1377 for (i = 0; i <= mask_r>>sh_r; i++) 1542 for (i = 0; i <= mask_r>>sh_r; i++)
1378 { 1543 {
1379 RUINT32T tmp; 1544 uint32_t tmp;
1380 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_r-lower_lim_r)); 1545 tmp = i * high.r;
1381 tmp += ((RUINT32T)(mask_r>>sh_r))*((RUINT32T)lower_lim_r); 1546 tmp += (mask_r>>sh_r) * low.r;
1382 lookup_r[i] = (tmp/65535)<<sh_r; 1547 lookup_r[i] = (tmp/65535)<<sh_r;
1383 } 1548 }
1384 for (i = 0; i <= mask_g>>sh_g; i++) 1549 for (i = 0; i <= mask_g>>sh_g; i++)
1385 { 1550 {
1386 RUINT32T tmp; 1551 uint32_t tmp;
1387 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_g-lower_lim_g)); 1552 tmp = i * high.g;
1388 tmp += ((RUINT32T)(mask_g>>sh_g))*((RUINT32T)lower_lim_g); 1553 tmp += (mask_g>>sh_g) * low.g;
1389 lookup_g[i] = (tmp/65535)<<sh_g; 1554 lookup_g[i] = (tmp/65535)<<sh_g;
1390 } 1555 }
1391 for (i = 0; i <= mask_b>>sh_b; i++) 1556 for (i = 0; i <= mask_b>>sh_b; i++)
1392 { 1557 {
1393 RUINT32T tmp; 1558 uint32_t tmp;
1394 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_b-lower_lim_b)); 1559 tmp = i * high.b;
1395 tmp += ((RUINT32T)(mask_b>>sh_b))*((RUINT32T)lower_lim_b); 1560 tmp += (mask_b>>sh_b) * low.b;
1396 lookup_b[i] = (tmp/65535)<<sh_b; 1561 lookup_b[i] = (tmp/65535)<<sh_b;
1397 } 1562 }
1398 1563
1399 /* apply table to input image (replacing colors by newly calculated ones) */ 1564 /* apply table to input image (replacing colors by newly calculated ones) */
1400 switch (srcImage->bits_per_pixel) 1565 if (ximage->bits_per_pixel == 32
1566 && (ximage->depth == 24 || ximage->depth == 32)
1567 && ximage->byte_order == host_byte_order)
1401 { 1568 {
1402 case 15:
1403 {
1404 unsigned short *p1, *pf, *p, *pl; 1569 uint32_t *p1, *pf, *p, *pl;
1405 p1 = (unsigned short *) srcImage->data; 1570 p1 = (uint32_t *) ximage->data;
1406 pf = (unsigned short *) (srcImage->data + srcImage->height * srcImage->bytes_per_line); 1571 pf = (uint32_t *) (ximage->data + ximage->height * ximage->bytes_per_line);
1572
1407 while (p1 < pf) 1573 while (p1 < pf)
1408 { 1574 {
1409 p = p1; 1575 p = p1;
1410 pl = p1 + srcImage->width; 1576 pl = p1 + ximage->width;
1411 for (; p < pl; p++) 1577 for (; p < pl; p++)
1412 { 1578 {
1413 *p = lookup_r[(*p & 0x7c00)>>10] |
1414 lookup_g[(*p & 0x03e0)>> 5] |
1415 lookup_b[(*p & 0x001f)];
1416 }
1417 p1 = (unsigned short *) ((char *) p1 + srcImage->bytes_per_line);
1418 }
1419 break;
1420 }
1421 case 16:
1422 {
1423 unsigned short *p1, *pf, *p, *pl;
1424 p1 = (unsigned short *) srcImage->data;
1425 pf = (unsigned short *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1426 while (p1 < pf)
1427 {
1428 p = p1;
1429 pl = p1 + srcImage->width;
1430 for (; p < pl; p++)
1431 {
1432 *p = lookup_r[(*p & 0xf800)>>11] |
1433 lookup_g[(*p & 0x07e0)>> 5] |
1434 lookup_b[(*p & 0x001f)];
1435 }
1436 p1 = (unsigned short *) ((char *) p1 + srcImage->bytes_per_line);
1437 }
1438 break;
1439 }
1440 case 24:
1441 {
1442 unsigned char *p1, *pf, *p, *pl;
1443 p1 = (unsigned char *) srcImage->data;
1444 pf = (unsigned char *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1445 while (p1 < pf)
1446 {
1447 p = p1;
1448 pl = p1 + srcImage->width * 3;
1449 for (; p < pl; p += 3)
1450 {
1451 p[0] = lookup_r[(p[0] & 0xff0000)>>16];
1452 p[1] = lookup_r[(p[1] & 0x00ff00)>> 8];
1453 p[2] = lookup_r[(p[2] & 0x0000ff)];
1454 }
1455 p1 = (unsigned char *) ((char *) p1 + srcImage->bytes_per_line);
1456 }
1457 break;
1458 }
1459 case 32:
1460 {
1461 RUINT32T *p1, *pf, *p, *pl;
1462 p1 = (RUINT32T *) srcImage->data;
1463 pf = (RUINT32T *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1464
1465 while (p1 < pf)
1466 {
1467 p = p1;
1468 pl = p1 + srcImage->width;
1469 for (; p < pl; p++)
1470 {
1471 *p = lookup_r[(*p & 0xff0000)>>16] | 1579 *p = lookup_r[(*p & 0xff0000) >> 16] |
1472 lookup_g[(*p & 0x00ff00)>> 8] | 1580 lookup_g[(*p & 0x00ff00) >> 8] |
1473 lookup_b[(*p & 0x0000ff)] | 1581 lookup_b[(*p & 0x0000ff)] |
1474 (*p & ~0xffffff); 1582 (*p & 0xff000000);
1583 }
1584 p1 = (uint32_t *) ((char *) p1 + ximage->bytes_per_line);
1585 }
1586 }
1587 else
1588 {
1589 for (int y = 0; y < ximage->height; y++)
1590 for (int x = 0; x < ximage->width; x++)
1591 {
1592 unsigned long pixel = XGetPixel (ximage, x, y);
1593 pixel = lookup_r[(pixel & mask_r) >> sh_r] |
1594 lookup_g[(pixel & mask_g) >> sh_g] |
1595 lookup_b[(pixel & mask_b) >> sh_b];
1596 XPutPixel (ximage, x, y, pixel);
1475 } 1597 }
1476 p1 = (RUINT32T *) ((char *) p1 + srcImage->bytes_per_line);
1477 } 1598 }
1478 break;
1479 }
1480 }
1481 1599
1482 free (lookup); 1600 free (lookup);
1483} 1601}
1484#endif /* defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE) */ 1602#endif /* defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE) */

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