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Comparing rxvt-unicode/src/background.C (file contents):
Revision 1.53 by sf-exg, Wed Sep 1 13:18:55 2010 UTC vs.
Revision 1.223 by sf-exg, Sat May 26 08:55:27 2012 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) 2005-2008 Marc Lehmann <pcg@goof.com> 6 * Copyright (c) 2005-2008 Marc Lehmann <schmorp@schmorp.de>
7 * Copyright (c) 2007 Sasha Vasko <sasha@aftercode.net> 7 * Copyright (c) 2007 Sasha Vasko <sasha@aftercode.net>
8 * Copyright (c) 2010-2012 Emanuele Giaquinta <e.giaquinta@glauco.it>
8 * 9 *
9 * 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
10 * 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
11 * the Free Software Foundation; either version 2 of the License, or 12 * the Free Software Foundation; either version 2 of the License, or
12 * (at your option) any later version. 13 * (at your option) any later version.
19 * 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
20 * along with this program; if not, write to the Free Software 21 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. 22 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
22 *---------------------------------------------------------------------*/ 23 *---------------------------------------------------------------------*/
23 24
25#include <math.h>
24#include "../config.h" /* NECESSARY */ 26#include "../config.h" /* NECESSARY */
25#include "rxvt.h" /* NECESSARY */ 27#include "rxvt.h" /* NECESSARY */
26 28
27#define DO_TIMING_TEST 0 29#if XRENDER
28 30# include <X11/extensions/Xrender.h>
29#if DO_TIMING_TEST
30# include <sys/time.h>
31#define TIMING_TEST_START(id) \
32 struct timeval timing_test_##id##_stv; \
33 gettimeofday (&timing_test_##id##_stv, NULL);
34
35#define TIMING_TEST_PRINT_RESULT(id) \
36 do { \
37 struct timeval tv; \
38 gettimeofday (&tv, NULL); \
39 tv.tv_sec -= (timing_test_##id##_stv).tv_sec; \
40 fprintf (stderr, "%s: %s: %d: elapsed %ld usec\n", #id, __FILE__, __LINE__, \
41 tv.tv_sec * 1000000 + tv.tv_usec - (timing_test_##id##_stv).tv_usec); \
42 } while (0)
43
44#else
45#define TIMING_TEST_START(id) do {} while (0)
46#define TIMING_TEST_PRINT_RESULT(id) do {} while (0)
47#endif 31#endif
48 32
49/* 33#ifndef FilterConvolution
50 * Pixmap geometry string interpretation : 34#define FilterConvolution "convolution"
51 * Each geometry string contains zero or one scale/position 35#endif
52 * adjustment and may optionally be followed by a colon and one or more 36
53 * colon-delimited pixmap operations. 37#ifndef RepeatPad
54 * The following table shows the valid geometry strings and their 38#define RepeatPad True
55 * effects on the background image : 39#endif
56 *
57 * WxH+X+Y Set scaling to W% by H%, and position to X% by Y%.
58 * W and H are percentages of the terminal window size.
59 * X and Y are also percentages; e.g., +50+50 centers
60 * the image in the window.
61 * WxH+X Assumes Y == X
62 * WxH Assumes Y == X == 50 (centers the image)
63 * W+X+Y Assumes H == W
64 * W+X Assumes H == W and Y == X
65 * W Assumes H == W and Y == X == 50
66 *
67 * Adjusting position only :
68 * =+X+Y Set position to X% by Y% (absolute).
69 * =+X Set position to X% by X%.
70 * +X+Y Adjust position horizontally X% and vertically Y%
71 * from current position (relative).
72 * +X Adjust position horizontally X% and vertically X%
73 * from current position.
74 *
75 * Adjusting scale only :
76 * Wx0 Multiply horizontal scaling factor by W%
77 * 0xH Multiply vertical scaling factor by H%
78 * 0x0 No scaling (show image at normal size).
79 *
80 * Pixmap Operations : (should be prepended by a colon)
81 * tile Tile image. Scaling/position modifiers above will affect
82 * the tile size and origin.
83 * propscale When scaling, scale proportionally. That is, maintain the
84 * proper aspect ratio for the image. Any portion of the
85 * background not covered by the image is filled with the
86 * current background color.
87 * hscale Scale horizontally, tile vertically ?
88 * vscale Tile horizontally, scale vertically ?
89 * scale Scale both up and down
90 * auto Same as 100x100+50+50
91 */
92 40
93#ifdef HAVE_BG_PIXMAP 41#ifdef HAVE_BG_PIXMAP
94bgPixmap_t::bgPixmap_t () 42# if XRENDER
43static Picture
44create_xrender_mask (Display *dpy, Drawable drawable, Bool argb, Bool component_alpha)
95{ 45{
96 // this is basically redundant as bgPixmap_t is only used in 46 Pixmap pixmap = XCreatePixmap (dpy, drawable, 1, 1, argb ? 32 : 8);
97 // zero_initialised-derived structs 47
98#ifdef HAVE_AFTERIMAGE 48 XRenderPictFormat *format = XRenderFindStandardFormat (dpy, argb ? PictStandardARGB32 : PictStandardA8);
99 original_asim = NULL; 49 XRenderPictureAttributes pa;
50 pa.repeat = True;
51 pa.component_alpha = component_alpha;
52 Picture mask = XRenderCreatePicture (dpy, pixmap, format, CPRepeat | CPComponentAlpha, &pa);
53
54 XFreePixmap (dpy, pixmap);
55
56 return mask;
57}
100#endif 58# endif
101#ifdef BG_IMAGE_FROM_FILE
102 have_image = false;
103 h_scale = v_scale = 0;
104 h_align = v_align = 0;
105#endif
106 flags = 0;
107 pixmap = None;
108 valid_since = invalid_since = 0;
109 target = 0;
110}
111 59
112void 60void
113bgPixmap_t::destroy () 61rxvt_term::bg_destroy ()
114{ 62{
115#ifdef HAVE_AFTERIMAGE 63# ifdef BG_IMAGE_FROM_FILE
116 if (original_asim) 64 for (vector<rxvt_image>::iterator bg_image = image_vec.begin (); bg_image < image_vec.end (); bg_image++)
117 safe_asimage_destroy (original_asim); 65 bg_image->destroy ();
118#endif 66# endif
119 67
120 if (pixmap && target) 68 if (bg_pixmap)
121 XFreePixmap (target->dpy, pixmap); 69 XFreePixmap (dpy, bg_pixmap);
122} 70}
123 71
124bool 72bool
125bgPixmap_t::window_size_sensitive () 73rxvt_term::bg_set_position (int x, int y)
74{
75
76 if (target_x != x
77 || target_y != y)
78 {
79 target_x = x;
80 target_y = y;
81 return true;
82 }
83 return false;
84}
85
86bool
87rxvt_term::bg_window_size_sensitive ()
126{ 88{
127# ifdef ENABLE_TRANSPARENCY 89# ifdef ENABLE_TRANSPARENCY
128 if (flags & isTransparent) 90 if (bg_flags & BG_IS_TRANSPARENT)
129 return true; 91 return true;
130# endif 92# endif
131 93
132# ifdef BG_IMAGE_FROM_FILE 94# ifdef BG_IMAGE_FROM_FILE
133 if (have_image) 95 for (vector<rxvt_image>::iterator bg_image = image_vec.begin (); bg_image < image_vec.end (); bg_image++)
134 { 96 {
135 if (h_scale != 0 || v_scale != 0 97 if ((bg_image->flags & IM_IS_SIZE_SENSITIVE)
136 || h_align != 0 || v_align != 0) 98 || bg_image->width () > szHint.width
99 || bg_image->height () > szHint.height)
137 return true; 100 return true;
138 } 101 }
139# endif 102# endif
140 103
141 return false; 104 return false;
142} 105}
143 106
144bool 107bool
145bgPixmap_t::window_position_sensitive () 108rxvt_term::bg_window_position_sensitive ()
146{ 109{
147# ifdef ENABLE_TRANSPARENCY 110# ifdef ENABLE_TRANSPARENCY
148 if (flags & isTransparent) 111 if (bg_flags & BG_IS_TRANSPARENT)
149 return true; 112 return true;
150# endif 113# endif
151 114
152# ifdef BG_IMAGE_FROM_FILE 115# ifdef BG_IMAGE_FROM_FILE
153 if (have_image) 116 for (vector<rxvt_image>::iterator bg_image = image_vec.begin (); bg_image < image_vec.end (); bg_image++)
154 { 117 {
155 if (h_align == rootAlign || v_align == rootAlign) 118 if (bg_image->flags & IM_ROOT_ALIGN)
156 return true; 119 return true;
157 } 120 }
158# endif 121# endif
159 122
160 return false; 123 return false;
161};
162
163bool bgPixmap_t::need_client_side_rendering ()
164{
165# ifdef HAVE_AFTERIMAGE
166 if (original_asim)
167 return true;
168# endif
169# ifdef ENABLE_TRANSPARENCY
170 if (flags & isTransparent)
171 {
172# ifdef HAVE_AFTERIMAGE // can't blur without libAI anyways
173 if ((flags & blurNeeded) && !(flags & blurServerSide))
174 return true;
175# endif
176 if ((flags & tintNeeded) && !(flags & tintServerSide))
177 return true;
178 }
179# endif
180 return false;
181} 124}
182 125
183# ifdef BG_IMAGE_FROM_FILE 126# ifdef BG_IMAGE_FROM_FILE
184static inline bool
185check_set_scale_value (int geom_flags, int flag, unsigned int &scale, unsigned int new_value)
186{
187 if (geom_flags & flag)
188 {
189 if (new_value > 1000)
190 new_value = 1000;
191 if (new_value != scale)
192 {
193 scale = new_value;
194 return true;
195 }
196 }
197 return false;
198}
199
200static inline bool
201check_set_align_value (int geom_flags, int flag, int &align, int new_value)
202{
203 if (geom_flags & flag)
204 {
205 if (new_value != bgPixmap_t::rootAlign)
206 {
207 if (new_value < -100)
208 new_value = -100;
209 else if (new_value > 200)
210 new_value = 200;
211 }
212 if (new_value != align)
213 {
214 align = new_value;
215 return true;
216 }
217 }
218 return false;
219}
220
221static inline int 127static inline int
222make_align_position (int align, int window_size, int image_size) 128make_align_position (int align, int window_size, int image_size)
223{ 129{
224 int diff = window_size - image_size;
225 int smaller = MIN (image_size,window_size);
226
227 if (align >= 0 && align <= 50) 130 if (align >= 0 && align <= 100)
228 return diff * align / 100; 131 return lerp (0, window_size - image_size, align);
229 else if (align > 50 && align <= 100)
230 return window_size - image_size - diff * (100 - align) / 100;
231 else if (align > 100 && align <= 200 )
232 return ((align - 100) * smaller / 100) + window_size - smaller;
233 else if (align > -100 && align < 0) 132 else if (align > 100)
234 return ((align + 100) * smaller / 100) - image_size; 133 return lerp (window_size - image_size, window_size, align - 100);
235 return 0; 134 else
135 return lerp (-image_size, 0, align + 100);
236} 136}
237 137
238static inline int 138static inline int
239make_clip_rectangle (int pos, int size, int target_size, int &dst_pos, int &dst_size) 139make_clip_rectangle (int pos, int size, int target_size, int &dst_pos, int &dst_size)
240{ 140{
241 int src_pos = 0; 141 int src_pos = 0;
242 dst_pos = 0; 142 dst_pos = pos;
243 dst_size = size; 143 dst_size = size;
244 if (pos < 0 && size > target_size) 144 if (pos < 0)
245 { 145 {
246 src_pos = -pos; 146 src_pos = -pos;
147 dst_pos = 0;
247 dst_size += pos; 148 dst_size += pos;
248 } 149 }
249 else if (pos > 0)
250 dst_pos = pos;
251 150
252 if (dst_pos + dst_size > target_size)
253 dst_size = target_size - dst_pos; 151 min_it (dst_size, target_size - dst_pos);
254 return src_pos; 152 return src_pos;
255} 153}
256 154
257bool 155static void
258bgPixmap_t::set_geometry (const char *geom) 156parse_style (const char *style, int &x, int &y, unsigned int &w, unsigned int &h, uint8_t &flags)
259{ 157{
158 if (!strcasecmp (style, "tiled"))
159 {
160 flags = IM_TILE;
161 w = h = noScale;
162 x = y = 0;
163 }
164 else if (!strcasecmp (style, "aspect-stretched"))
165 {
166 flags = IM_KEEP_ASPECT;
167 w = h = windowScale;
168 x = y = centerAlign;
169 }
170 else if (!strcasecmp (style, "stretched"))
171 {
172 flags = 0;
173 w = h = windowScale;
174 x = y = centerAlign;
175 }
176 else if (!strcasecmp (style, "centered"))
177 {
178 flags = 0;
179 w = h = noScale;
180 x = y = centerAlign;
181 }
182 else if (!strcasecmp (style, "root-tiled"))
183 {
184 flags = IM_TILE|IM_ROOT_ALIGN;
185 w = h = noScale;
186 x = y = 0;
187 }
188}
189
190bool
191rxvt_image::set_geometry (const char *geom, bool update)
192{
193 bool changed = false;
260 int geom_flags = 0, changed = 0; 194 int geom_flags = 0;
261 int x = 0, y = 0; 195 int x = h_align;
196 int y = v_align;
262 unsigned int w = 0, h = 0; 197 unsigned int w = h_scale;
263 unsigned int n; 198 unsigned int h = v_scale;
264 unsigned long new_flags = (flags & (~geometryFlags)); 199 uint8_t new_flags = 0;
265 const char *p;
266# define MAXLEN_GEOM 256 /* could be longer than regular geometry string */
267 200
268 if (geom == NULL) 201 if (geom == NULL)
269 return false; 202 return false;
270 203
271 char str[MAXLEN_GEOM]; 204 if (geom[0])
205 {
206 char **arr = rxvt_strsplit (':', geom);
272 207
273 while (isspace(*geom)) ++geom; 208 for (int i = 0; arr[i]; i++)
274 if ((p = strchr (geom, ';')) == NULL) 209 {
275 p = strchr (geom, '\0'); 210 if (!strncasecmp (arr[i], "style=", 6))
211 {
212 parse_style (arr[i] + 6, x, y, w, h, new_flags);
213 geom_flags = WidthValue|HeightValue|XValue|YValue;
214 }
215 else if (!strcasecmp (arr[i], "op=tile"))
216 new_flags |= IM_TILE;
217 else if (!strcasecmp (arr[i], "op=keep-aspect"))
218 new_flags |= IM_KEEP_ASPECT;
219 else if (!strcasecmp (arr[i], "op=root-align"))
220 new_flags |= IM_ROOT_ALIGN;
276 221
277 n = (p - geom); 222 // deprecated
278 if (n < MAXLEN_GEOM) 223 else if (!strcasecmp (arr[i], "tile"))
224 {
225 new_flags |= IM_TILE;
226 w = h = noScale;
227 geom_flags |= WidthValue|HeightValue;
228 }
229 else if (!strcasecmp (arr[i], "propscale"))
230 {
231 new_flags |= IM_KEEP_ASPECT;
232 w = h = windowScale;
233 geom_flags |= WidthValue|HeightValue;
234 }
235 else if (!strcasecmp (arr[i], "hscale"))
236 {
237 new_flags |= IM_TILE;
238 w = windowScale;
239 h = noScale;
240 geom_flags |= WidthValue|HeightValue;
241 }
242 else if (!strcasecmp (arr[i], "vscale"))
243 {
244 new_flags |= IM_TILE;
245 h = windowScale;
246 w = noScale;
247 geom_flags |= WidthValue|HeightValue;
248 }
249 else if (!strcasecmp (arr[i], "scale"))
250 {
251 w = h = windowScale;
252 geom_flags |= WidthValue|HeightValue;
253 }
254 else if (!strcasecmp (arr[i], "auto"))
255 {
256 w = h = windowScale;
257 x = y = centerAlign;
258 geom_flags |= WidthValue|HeightValue|XValue|YValue;
259 }
260 else if (!strcasecmp (arr[i], "root"))
261 {
262 new_flags |= IM_TILE|IM_ROOT_ALIGN;
263 w = h = noScale;
264 geom_flags |= WidthValue|HeightValue;
265 }
266
267 else
268 geom_flags |= XParseGeometry (arr[i], &x, &y, &w, &h);
269 } /* done parsing ops */
270
271 rxvt_free_strsplit (arr);
279 { 272 }
280 char *ops;
281 new_flags |= geometrySet;
282 273
283 memcpy (str, geom, n); 274 new_flags |= flags & ~IM_GEOMETRY_FLAGS;
284 str[n] = '\0'; 275
285 if (str[0] == ':') 276 if (!update)
286 ops = &str[0]; 277 {
287 else if (str[0] != 'x' && str[0] != 'X' && isalpha(str[0])) 278 if (!(geom_flags & XValue))
288 ops = &str[0]; 279 x = y = defaultAlign;
280 else if (!(geom_flags & YValue))
281 y = x;
282
283 if (!(geom_flags & (WidthValue|HeightValue)))
284 w = h = defaultScale;
285 else if (!(geom_flags & HeightValue))
286 h = w;
287 else if (!(geom_flags & WidthValue))
288 w = h;
289 }
290
291 clamp_it (x, -100, 200);
292 clamp_it (y, -100, 200);
293
294 if (flags != new_flags
295 || h_scale != w
296 || v_scale != h
297 || h_align != x
298 || v_align != y)
299 {
300 flags = new_flags;
301 h_scale = w;
302 v_scale = h;
303 h_align = x;
304 v_align = y;
305 changed = true;
306 }
307
308 if (!(flags & IM_TILE)
309 || h_scale || v_scale
310 || (!(flags & IM_ROOT_ALIGN) && (h_align || v_align)))
311 flags |= IM_IS_SIZE_SENSITIVE;
312 else
313 flags &= ~IM_IS_SIZE_SENSITIVE;
314
315 return changed;
316}
317
318void
319rxvt_term::get_image_geometry (rxvt_image &image, int &w, int &h, int &x, int &y)
320{
321 int image_width = image.width ();
322 int image_height = image.height ();
323 int target_width = szHint.width;
324 int target_height = szHint.height;
325 int h_scale = min (image.h_scale, 32767 * 100 / target_width);
326 int v_scale = min (image.v_scale, 32767 * 100 / target_height);
327
328 w = h_scale * target_width / 100;
329 h = v_scale * target_height / 100;
330
331 if (image.flags & IM_KEEP_ASPECT)
332 {
333 float scale = (float)w / image_width;
334 min_it (scale, (float)h / image_height);
335 w = image_width * scale + 0.5;
336 h = image_height * scale + 0.5;
337 }
338
339 if (!w) w = image_width;
340 if (!h) h = image_height;
341
342 if (image.flags & IM_ROOT_ALIGN)
343 {
344 x = -target_x;
345 y = -target_y;
346 }
347 else
348 {
349 x = make_align_position (image.h_align, target_width, w);
350 y = make_align_position (image.v_align, target_height, h);
351 }
352}
353
354# ifdef HAVE_PIXBUF
355bool
356rxvt_term::pixbuf_to_pixmap (GdkPixbuf *pixbuf, Pixmap pixmap, GC gc,
357 int src_x, int src_y, int dst_x, int dst_y,
358 unsigned int width, unsigned int height, bool argb)
359{
360 XImage *ximage;
361 char *line;
362 int width_r, width_g, width_b, width_a;
363 int sh_r, sh_g, sh_b, sh_a;
364 uint32_t red_mask, green_mask, blue_mask, alpha_mask;
365 int rowstride;
366 int channels;
367 unsigned char *row;
368
369 if (visual->c_class != TrueColor)
370 return false;
371
372 if (argb)
373 {
374 red_mask = 0xff << 16;
375 green_mask = 0xff << 8;
376 blue_mask = 0xff;
377 alpha_mask = 0xff << 24;
378 }
379 else
380 {
381 red_mask = visual->red_mask;
382 green_mask = visual->green_mask;
383 blue_mask = visual->blue_mask;
384#if XRENDER
385 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
386 if (format)
387 alpha_mask = (uint32_t)format->direct.alphaMask << format->direct.alpha;
289 else 388 else
389#endif
390 alpha_mask = 0;
391 }
392
393 width_r = ecb_popcount32 (red_mask);
394 width_g = ecb_popcount32 (green_mask);
395 width_b = ecb_popcount32 (blue_mask);
396 width_a = ecb_popcount32 (alpha_mask);
397
398 if (width_r > 8 || width_g > 8 || width_b > 8 || width_a > 8)
399 return false;
400
401 sh_r = ecb_ctz32 (red_mask);
402 sh_g = ecb_ctz32 (green_mask);
403 sh_b = ecb_ctz32 (blue_mask);
404 sh_a = ecb_ctz32 (alpha_mask);
405
406 if (width > 32767 || height > 32767)
407 return false;
408
409 ximage = XCreateImage (dpy, visual, argb ? 32 : depth, ZPixmap, 0, 0,
410 width, height, 32, 0);
411 if (!ximage)
412 return false;
413
414 if (height > INT_MAX / ximage->bytes_per_line
415 || !(ximage->data = (char *)malloc (height * ximage->bytes_per_line)))
416 {
417 XDestroyImage (ximage);
418 return false;
419 }
420
421 ximage->byte_order = ecb_big_endian () ? MSBFirst : LSBFirst;
422
423 rowstride = gdk_pixbuf_get_rowstride (pixbuf);
424 channels = gdk_pixbuf_get_n_channels (pixbuf);
425 row = gdk_pixbuf_get_pixels (pixbuf) + src_y * rowstride + src_x * channels;
426 line = ximage->data;
427
428 rgba c (0, 0, 0);
429
430 if (channels == 4 && alpha_mask == 0)
431 {
432 pix_colors[Color_bg].get (c);
433 c.r >>= 8;
434 c.g >>= 8;
435 c.b >>= 8;
436 }
437
438 for (int y = 0; y < height; y++)
439 {
440 for (int x = 0; x < width; x++)
290 { 441 {
291 char *tmp; 442 unsigned char *pixel = row + x * channels;
292 ops = strchr (str, ':'); 443 uint32_t value;
293 if (ops != NULL) 444 unsigned char r, g, b, a;
445
446 if (channels == 4)
294 { 447 {
295 for (tmp = ops-1; tmp >= str && isspace(*tmp); --tmp);
296 *(++tmp) = '\0';
297 if (ops == tmp) ++ops;
298 }
299 }
300
301 if (ops > str || ops == NULL)
302 {
303 /* we have geometry string - let's handle it prior to applying ops */
304 geom_flags = XParseGeometry (str, &x, &y, &w, &h);
305
306 if ((geom_flags & XValue) && !(geom_flags & YValue))
307 {
308 y = x; 448 a = pixel[3];
309 geom_flags |= YValue; 449 r = (pixel[0] * a + c.r * (0xff - a)) / 0xff;
310 } 450 g = (pixel[1] * a + c.g * (0xff - a)) / 0xff;
311 451 b = (pixel[2] * a + c.b * (0xff - a)) / 0xff;
312 if (flags & geometrySet)
313 {
314 /* new geometry is an adjustment to the old one ! */
315 if ((geom_flags & WidthValue) && (geom_flags & HeightValue))
316 {
317 if (w == 0 && h != 0)
318 {
319 w = h_scale;
320 h = (v_scale * h) / 100;
321 }
322 else if (h == 0 && w != 0)
323 {
324 w = (h_scale * w) / 100;
325 h = v_scale;
326 }
327 }
328 if (geom_flags & XValue)
329 {
330 if (str[0] != '=')
331 {
332 y += v_align;
333 x += h_align;
334 }
335 }
336 }
337 else /* setting up geometry from scratch */
338 {
339 if (!(geom_flags & XValue))
340 {
341 /* use default geometry - centered */
342 x = y = defaultAlign;
343 }
344 else if (!(geom_flags & YValue))
345 y = x;
346
347 if ((geom_flags & (WidthValue|HeightValue)) == 0)
348 {
349 /* use default geometry - scaled */
350 w = h = defaultScale;
351 }
352 else if (geom_flags & WidthValue)
353 {
354 if (!(geom_flags & HeightValue))
355 h = w;
356 }
357 else
358 w = h;
359 }
360 } /* done parsing geometry string */
361 else if (!(flags & geometrySet))
362 {
363 /* default geometry - scaled and centered */
364 x = y = defaultAlign;
365 w = h = defaultScale;
366 }
367
368 if (!(flags & geometrySet))
369 geom_flags |= WidthValue|HeightValue|XValue|YValue;
370
371 if (ops)
372 {
373 while (*ops)
374 {
375 while (*ops == ':' || isspace(*ops)) ++ops;
376
377# define CHECK_GEOM_OPS(op_str) (strncasecmp (ops, (op_str), sizeof (op_str) - 1) == 0)
378 if (CHECK_GEOM_OPS ("tile"))
379 {
380 w = h = noScale;
381 geom_flags |= WidthValue|HeightValue;
382 }
383 else if (CHECK_GEOM_OPS ("propscale"))
384 {
385 if (w == 0 && h == 0)
386 {
387 w = windowScale;
388 geom_flags |= WidthValue;
389 }
390 new_flags |= propScale;
391 }
392 else if (CHECK_GEOM_OPS ("hscale"))
393 {
394 if (w == 0) w = windowScale;
395
396 h = noScale;
397 geom_flags |= WidthValue|HeightValue;
398 }
399 else if (CHECK_GEOM_OPS ("vscale"))
400 {
401 if (h == 0) h = windowScale;
402
403 w = noScale;
404 geom_flags |= WidthValue|HeightValue;
405 }
406 else if (CHECK_GEOM_OPS ("scale"))
407 {
408 if (h == 0) h = windowScale;
409 if (w == 0) w = windowScale;
410
411 geom_flags |= WidthValue|HeightValue;
412 }
413 else if (CHECK_GEOM_OPS ("auto"))
414 {
415 w = h = windowScale;
416 x = y = centerAlign;
417 geom_flags |= WidthValue|HeightValue|XValue|YValue;
418 }
419 else if (CHECK_GEOM_OPS ("root"))
420 {
421 w = h = noScale;
422 x = y = rootAlign;
423 geom_flags |= WidthValue|HeightValue|XValue|YValue;
424 }
425# undef CHECK_GEOM_OPS
426
427 while (*ops != ':' && *ops != '\0') ++ops;
428 } /* done parsing ops */
429 }
430
431 if (check_set_scale_value (geom_flags, WidthValue, h_scale, w)) ++changed;
432 if (check_set_scale_value (geom_flags, HeightValue, v_scale, h)) ++changed;
433 if (check_set_align_value (geom_flags, XValue, h_align, x)) ++changed;
434 if (check_set_align_value (geom_flags, YValue, v_align, y)) ++changed;
435 }
436
437 if (new_flags != flags)
438 {
439 flags = new_flags;
440 changed++;
441 }
442
443 //fprintf (stderr, "flags = %lX, scale = %ux%u, align=%+d%+d\n",
444 // flags, h_scale, v_scale, h_align, v_align);
445 return (changed > 0);
446}
447
448# ifdef HAVE_AFTERIMAGE
449bool
450bgPixmap_t::render_image (unsigned long background_flags)
451{
452 if (target == NULL)
453 return false;
454
455 target->init_asv ();
456
457 ASImage *background = NULL;
458 ARGB32 background_tint = TINT_LEAVE_SAME;
459
460# ifdef ENABLE_TRANSPARENCY
461 if (background_flags)
462 background = pixmap2ximage (target->asv, pixmap, 0, 0, pmap_width, pmap_height, AllPlanes, 100);
463
464 if (!(background_flags & transpPmapTinted) && (flags & tintNeeded))
465 {
466 ShadingInfo as_shade;
467 as_shade.shading = (shade == 0) ? 100 : shade;
468
469 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
470 if (flags & tintSet)
471 tint.get (c);
472 as_shade.tintColor.red = c.r;
473 as_shade.tintColor.green = c.g;
474 as_shade.tintColor.blue = c.b;
475
476 background_tint = shading2tint32 (&as_shade);
477 }
478
479 if (!(background_flags & transpPmapBlured) && (flags & blurNeeded) && background != NULL)
480 {
481 ASImage *tmp = blur_asimage_gauss (target->asv, background, h_blurRadius, v_blurRadius, 0xFFFFFFFF,
482 (original_asim == NULL || tint == TINT_LEAVE_SAME) ? ASA_XImage : ASA_ASImage,
483 100, ASIMAGE_QUALITY_DEFAULT);
484 if (tmp)
485 {
486 destroy_asimage (&background);
487 background = tmp;
488 }
489 }
490# endif
491
492 ASImage *result = 0;
493
494 int target_width = target->szHint.width;
495 int target_height = target->szHint.height;
496 int new_pmap_width = target_width;
497 int new_pmap_height = target_height;
498
499 int x = 0;
500 int y = 0;
501 int w = h_scale * target_width / 100;
502 int h = v_scale * target_height / 100;
503
504 TIMING_TEST_START (asim);
505
506 if (original_asim)
507 {
508 if (h_align == rootAlign || v_align == rootAlign)
509 {
510 target->get_window_origin (x, y);
511 x = -x;
512 y = -y;
513 }
514
515 if (h_align != rootAlign)
516 x = make_align_position (h_align, target_width, w > 0 ? w : (int)original_asim->width);
517
518 if (v_align != rootAlign)
519 y = make_align_position (v_align, target_height, h > 0 ? h : (int)original_asim->height);
520 }
521
522 if (!original_asim
523 || x >= target_width
524 || y >= target_height
525 || (w > 0 && x + w <= 0)
526 || (h > 0 && y + h <= 0))
527 {
528 if (background)
529 {
530 new_pmap_width = background->width;
531 new_pmap_height = background->height;
532 result = background;
533
534 if (background_tint != TINT_LEAVE_SAME)
535 {
536 ASImage *tmp = tile_asimage (target->asv, background, 0, 0,
537 target_width, target_height, background_tint,
538 ASA_XImage, 100, ASIMAGE_QUALITY_DEFAULT);
539 if (tmp)
540 result = tmp;
541 }
542 }
543 else
544 new_pmap_width = new_pmap_height = 0;
545 }
546 else
547 {
548 result = original_asim;
549
550 if ((w > 0 && w != original_asim->width)
551 || (h > 0 && h != original_asim->height))
552 {
553 result = scale_asimage (target->asv, original_asim,
554 w > 0 ? w : original_asim->width,
555 h > 0 ? h : original_asim->height,
556 background ? ASA_ASImage : ASA_XImage,
557 100, ASIMAGE_QUALITY_DEFAULT);
558 }
559
560 if (background == NULL)
561 {
562 /* if tiling - pixmap has to be sized exactly as the image,
563 but there is no need to make it bigger than the window! */
564 if (h_scale == 0)
565 new_pmap_width = min (result->width, target_width);
566 if (v_scale == 0)
567 new_pmap_height = min (result->height, target_height);
568 /* we also need to tile our image in one or both directions */
569 if (h_scale == 0 || v_scale == 0)
570 {
571 ASImage *tmp = tile_asimage (target->asv, result,
572 (h_scale > 0) ? 0 : (int)result->width - x,
573 (v_scale > 0) ? 0 : (int)result->height - y,
574 new_pmap_width,
575 new_pmap_height,
576 TINT_LEAVE_SAME, ASA_XImage,
577 100, ASIMAGE_QUALITY_DEFAULT);
578 if (tmp)
579 {
580 if (result != original_asim)
581 destroy_asimage (&result);
582
583 result = tmp;
584 }
585 }
586 }
587 else
588 {
589 /* if blending background and image - pixmap has to be sized same as target window */
590 ASImageLayer *layers = create_image_layers (2);
591
592 layers[0].im = background;
593 layers[0].clip_width = target_width;
594 layers[0].clip_height = target_height;
595 layers[0].tint = background_tint;
596 layers[1].im = result;
597
598 if (w <= 0)
599 {
600 /* tile horizontally */
601 while (x > 0) x -= (int)result->width;
602 layers[1].dst_x = x;
603 layers[1].clip_width = result->width+target_width;
604 } 452 }
605 else 453 else
606 { 454 {
607 /* clip horizontally */ 455 a = 0xff;
608 layers[1].dst_x = x; 456 r = pixel[0];
609 layers[1].clip_width = result->width; 457 g = pixel[1];
458 b = pixel[2];
610 } 459 }
611 460
612 if (h <= 0) 461 value = ((r >> (8 - width_r)) << sh_r)
613 { 462 | ((g >> (8 - width_g)) << sh_g)
614 while (y > 0) y -= (int)result->height; 463 | ((b >> (8 - width_b)) << sh_b)
615 layers[1].dst_y = y; 464 | ((a >> (8 - width_a)) << sh_a);
616 layers[1].clip_height = result->height + target_height; 465
617 } 466 if (ximage->bits_per_pixel == 32)
467 ((uint32_t *)line)[x] = value;
618 else 468 else
619 { 469 XPutPixel (ximage, x, y, value);
620 layers[1].dst_y = y;
621 layers[1].clip_height = result->height;
622 }
623
624 if (target->rs[Rs_blendtype])
625 {
626 layers[1].merge_scanlines = blend_scanlines_name2func (target->rs[Rs_blendtype]);
627 if (layers[1].merge_scanlines == NULL)
628 layers[1].merge_scanlines = alphablend_scanlines;
629 }
630
631 ASImage *tmp = merge_layers (target->asv, layers, 2, target_width, target_height,
632 ASA_XImage, 0, ASIMAGE_QUALITY_DEFAULT);
633
634 if (tmp)
635 {
636 if (result != original_asim)
637 destroy_asimage (&result);
638
639 result = tmp;
640 }
641
642 free (layers);
643 } 470 }
471
472 row += rowstride;
473 line += ximage->bytes_per_line;
474 }
475
476 XPutImage (dpy, pixmap, gc, ximage, 0, 0, dst_x, dst_y, width, height);
477 XDestroyImage (ximage);
478 return true;
479}
480
481bool
482rxvt_term::render_image (rxvt_image &image)
483{
484 GdkPixbuf *pixbuf = image.pixbuf;
485 if (!pixbuf)
486 return false;
487
488 bool need_blend = bg_flags & BG_IS_VALID;
489
490 if (need_blend
491 && !(bg_flags & BG_HAS_RENDER))
492 return false;
493
494 GdkPixbuf *result;
495
496 int image_width = gdk_pixbuf_get_width (pixbuf);
497 int image_height = gdk_pixbuf_get_height (pixbuf);
498
499 int target_width = szHint.width;
500 int target_height = szHint.height;
501 int new_pmap_width = target_width;
502 int new_pmap_height = target_height;
503
504 int x = 0;
505 int y = 0;
506 int w = 0;
507 int h = 0;
508
509 get_image_geometry (image, w, h, x, y);
510
511 if (!(image.flags & IM_ROOT_ALIGN)
512 && (x >= target_width
513 || y >= target_height
514 || x + w <= 0
515 || y + h <= 0))
516 return false;
517
518 result = pixbuf;
519
520 if (w != image_width
521 || h != image_height)
644 } 522 {
645 TIMING_TEST_PRINT_RESULT (asim); 523 result = gdk_pixbuf_scale_simple (pixbuf,
524 w, h,
525 GDK_INTERP_BILINEAR);
526 }
527
528 if (!result)
529 return false;
646 530
647 bool ret = false; 531 bool ret = false;
648 532
649 if (result)
650 {
651 XGCValues gcv; 533 XGCValues gcv;
652 GC gc; 534 GC gc;
535 Pixmap tmp_pixmap;
653 536
654 if (pixmap) 537 image_width = gdk_pixbuf_get_width (result);
655 { 538 image_height = gdk_pixbuf_get_height (result);
656 if (pmap_width != new_pmap_width 539
657 || pmap_height != new_pmap_height 540 if (need_blend)
658 || pmap_depth != target->depth) 541 tmp_pixmap = XCreatePixmap (dpy, vt, new_pmap_width, new_pmap_height, 32);
542 else
543 {
544 // optimise bg pixmap size when tiling, but only if there are no
545 // other pixbufs to render. Otherwise, the bg pixmap size must
546 // be equal to the window size.
547 if ((image.flags & IM_TILE)
548 && image_vec.size () == 1)
659 { 549 {
660 XFreePixmap (target->dpy, pixmap); 550 new_pmap_width = min (image_width, target_width);
661 pixmap = None; 551 new_pmap_height = min (image_height, target_height);
662 }
663 } 552 }
664 553
665 /* create Pixmap */
666 if (pixmap == None) 554 if (bg_pixmap == None
555 || bg_pmap_width != new_pmap_width
556 || bg_pmap_height != new_pmap_height)
667 { 557 {
558 if (bg_pixmap)
559 XFreePixmap (dpy, bg_pixmap);
668 pixmap = XCreatePixmap (target->dpy, target->vt, new_pmap_width, new_pmap_height, target->depth); 560 bg_pixmap = XCreatePixmap (dpy, vt, new_pmap_width, new_pmap_height, depth);
669 pmap_width = new_pmap_width; 561 bg_pmap_width = new_pmap_width;
670 pmap_height = new_pmap_height; 562 bg_pmap_height = new_pmap_height;
671 pmap_depth = target->depth;
672 } 563 }
673 /* fill with background color (if result's not completely overlapping it) */ 564
565 tmp_pixmap = bg_pixmap;
566 }
567
674 gcv.foreground = target->pix_colors[Color_bg]; 568 gcv.foreground = pix_colors[Color_bg];
675 gc = XCreateGC (target->dpy, target->vt, GCForeground, &gcv); 569 gc = XCreateGC (dpy, tmp_pixmap, GCForeground, &gcv);
676 570
677 int src_x = 0, src_y = 0, dst_x = 0, dst_y = 0; 571 if (gc)
678 int dst_width = result->width, dst_height = result->height; 572 {
679 if (background == NULL) 573 if (image.flags & IM_TILE)
574 {
575 Pixmap tile = XCreatePixmap (dpy, vt, image_width, image_height, need_blend ? 32 : depth);
576 pixbuf_to_pixmap (result, tile, gc,
577 0, 0,
578 0, 0,
579 image_width, image_height, need_blend);
580
581 gcv.tile = tile;
582 gcv.fill_style = FillTiled;
583 gcv.ts_x_origin = x;
584 gcv.ts_y_origin = y;
585 XChangeGC (dpy, gc, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv);
586
587 XFillRectangle (dpy, tmp_pixmap, gc, 0, 0, new_pmap_width, new_pmap_height);
588 XFreePixmap (dpy, tile);
680 { 589 }
590 else
591 {
592 int src_x, src_y, dst_x, dst_y;
593 int dst_width, dst_height;
594
681 if (h_scale > 0) src_x = make_clip_rectangle (x, result->width , new_pmap_width , dst_x, dst_width ); 595 src_x = make_clip_rectangle (x, image_width , new_pmap_width , dst_x, dst_width );
682 if (v_scale > 0) src_y = make_clip_rectangle (y, result->height, new_pmap_height, dst_y, dst_height); 596 src_y = make_clip_rectangle (y, image_height, new_pmap_height, dst_y, dst_height);
683 597
684 if (dst_x > 0 || dst_y > 0 598 if (dst_x > 0 || dst_y > 0
685 || dst_x + dst_width < new_pmap_width 599 || dst_x + dst_width < new_pmap_width
686 || dst_y + dst_height < new_pmap_height) 600 || dst_y + dst_height < new_pmap_height)
687 XFillRectangle (target->dpy, pixmap, gc, 0, 0, new_pmap_width, new_pmap_height); 601 XFillRectangle (dpy, tmp_pixmap, gc, 0, 0, new_pmap_width, new_pmap_height);
602
603 if (dst_x < new_pmap_width && dst_y < new_pmap_height)
604 pixbuf_to_pixmap (result, tmp_pixmap, gc,
605 src_x, src_y,
606 dst_x, dst_y,
607 dst_width, dst_height, need_blend);
688 } 608 }
689 609
690 /* put result on pixmap */ 610#if XRENDER
691 if (dst_x < new_pmap_width && dst_y < new_pmap_height) 611 if (need_blend)
692 asimage2drawable (target->asv, pixmap, result, gc, src_x, src_y, dst_x, dst_y, dst_width, dst_height, True); 612 {
613 XRenderPictFormat *argb_format = XRenderFindStandardFormat (dpy, PictStandardARGB32);
614 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
693 615
694 if (result != background && result != original_asim) 616 Picture src = XRenderCreatePicture (dpy, tmp_pixmap, argb_format, 0, 0);
695 destroy_asimage (&result);
696 617
618 Picture dst = XRenderCreatePicture (dpy, bg_pixmap, format, 0, 0);
619
620 Picture mask = create_xrender_mask (dpy, vt, False, False);
621
622 XRenderColor mask_c;
623
624 mask_c.alpha = image.alpha;
625 mask_c.red =
626 mask_c.green =
627 mask_c.blue = 0;
628 XRenderFillRectangle (dpy, PictOpSrc, mask, &mask_c, 0, 0, 1, 1);
629
630 XRenderComposite (dpy, PictOpOver, src, mask, dst, 0, 0, 0, 0, 0, 0, target_width, target_height);
631
632 XRenderFreePicture (dpy, src);
633 XRenderFreePicture (dpy, dst);
634 XRenderFreePicture (dpy, mask);
635 }
636#endif
637
697 XFreeGC (target->dpy, gc); 638 XFreeGC (dpy, gc);
698 TIMING_TEST_PRINT_RESULT (asim);
699 639
700 ret = true; 640 ret = true;
701 } 641 }
702 642
703 if (background) 643 if (result != pixbuf)
704 destroy_asimage (&background); 644 g_object_unref (result);
645
646 if (need_blend)
647 XFreePixmap (dpy, tmp_pixmap);
705 648
706 return ret; 649 return ret;
707} 650}
708# endif /* HAVE_AFTERIMAGE */ 651# endif /* HAVE_PIXBUF */
709 652
710bool 653# ifndef NO_RESOURCES
711bgPixmap_t::set_file (const char *file) 654static int
655rxvt_define_image (XrmDatabase *database ecb_unused,
656 XrmBindingList bindings ecb_unused,
657 XrmQuarkList quarks,
658 XrmRepresentation *type ecb_unused,
659 XrmValue *value,
660 XPointer closure ecb_unused)
712{ 661{
713 assert (file); 662 int size;
714 663
715 if (*file) 664 for (size = 0; quarks[size] != NULLQUARK; size++)
716 { 665 ;
717 if (const char *p = strchr (file, ';'))
718 {
719 size_t len = p - file;
720 char *f = rxvt_temp_buf<char> (len + 1);
721 memcpy (f, file, len);
722 f[len] = '\0';
723 file = f;
724 }
725 666
726# ifdef HAVE_AFTERIMAGE 667 if (size >= 2)
727 if (!target->asimman) 668 {
728 target->asimman = create_generic_imageman (target->rs[Rs_path]); 669 int id = strtol (XrmQuarkToString (quarks[size-2]), 0, 0);
729 original_asim = get_asimage (target->asimman, file, 0xFFFFFFFF, 100); 670 if (id >= 1)
730 if (original_asim) 671 GET_R->parse_image (id, XrmQuarkToString (quarks[size-1]), (char *)value->addr);
731 have_image = true; 672 }
732 return have_image; 673 return False;
674}
675
676void
677rxvt_term::parse_image (int id, const char *type, const char *arg)
678{
679 if (image_vec.size () < id + 1)
680 image_vec.resize (id + 1);
681
682 rxvt_image *image = &image_vec[id];
683}
733# endif 684# endif
734 }
735 685
686rxvt_image::rxvt_image ()
687{
688 alpha =
689 flags =
690 h_scale =
691 v_scale =
692 h_align =
693 v_align = 0;
694
695# ifdef HAVE_PIXBUF
696 pixbuf = 0;
697# endif
698}
699
700bool
701rxvt_image::set_file_geometry (const char *file)
702{
703 if (!file || !*file)
736 return false; 704 return false;
705
706 const char *p = strchr (file, ';');
707
708 if (p)
709 {
710 size_t len = p - file;
711 char *f = rxvt_temp_buf<char> (len + 1);
712 memcpy (f, file, len);
713 f[len] = '\0';
714 file = f;
715 }
716
717 bool ret = set_file (file);
718 alpha = 0x8000;
719 if (ret && p)
720 set_geometry (p + 1);
721 return ret;
722}
723
724bool
725rxvt_image::set_file (const char *file)
726{
727 bool ret = false;
728
729# ifdef HAVE_PIXBUF
730 GdkPixbuf *image = gdk_pixbuf_new_from_file (file, NULL);
731 if (image)
732 {
733 if (pixbuf)
734 g_object_unref (pixbuf);
735 pixbuf = image;
736 ret = true;
737 }
738# endif
739
740 if (ret)
741 {
742 alpha = 0xffff;
743 flags = IM_IS_SET | IM_IS_SIZE_SENSITIVE;
744 h_scale = v_scale = defaultScale;
745 h_align = v_align = defaultAlign;
746 }
747
748 return ret;
737} 749}
738 750
739# endif /* BG_IMAGE_FROM_FILE */ 751# endif /* BG_IMAGE_FROM_FILE */
740 752
741# ifdef ENABLE_TRANSPARENCY 753# ifdef ENABLE_TRANSPARENCY
742bool 754bool
743bgPixmap_t::set_transparent () 755rxvt_term::bg_set_blur (const char *geom)
744{ 756{
745 if (!(flags & isTransparent)) 757 bool changed = false;
746 {
747 flags |= isTransparent;
748 return true;
749 }
750
751 return false;
752}
753
754bool
755bgPixmap_t::set_blur_radius (const char *geom)
756{
757 int changed = 0;
758 unsigned int hr, vr; 758 unsigned int hr, vr;
759 int junk; 759 int junk;
760 int geom_flags = XParseGeometry (geom, &junk, &junk, &hr, &vr); 760 int geom_flags = XParseGeometry (geom, &junk, &junk, &hr, &vr);
761 761
762 if (!(geom_flags & WidthValue)) 762 if (!(geom_flags & WidthValue))
763 hr = 1; 763 hr = 1;
764 if (!(geom_flags & HeightValue)) 764 if (!(geom_flags & HeightValue))
765 vr = hr; 765 vr = hr;
766 766
767 min_it (hr, 128);
768 min_it (vr, 128);
769
767 if (h_blurRadius != hr) 770 if (h_blurRadius != hr)
768 { 771 {
769 ++changed; 772 changed = true;
770 h_blurRadius = hr; 773 h_blurRadius = hr;
771 } 774 }
772 775
773 if (v_blurRadius != vr) 776 if (v_blurRadius != vr)
774 { 777 {
775 ++changed; 778 changed = true;
776 v_blurRadius = vr; 779 v_blurRadius = vr;
777 } 780 }
778 781
779 if (v_blurRadius == 0 && h_blurRadius == 0)
780 flags &= ~blurNeeded;
781 else
782 flags |= blurNeeded;
783
784 return (changed > 0); 782 return changed;
785} 783}
786 784
787static inline unsigned long 785bool
788compute_tint_shade_flags (rxvt_color *tint, int shade) 786rxvt_term::bg_set_tint (rxvt_color &new_tint)
789{ 787{
790 unsigned long flags = 0; 788 if (!(bg_flags & BG_TINT_SET) || tint != new_tint)
791 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
792 bool has_shade = (shade > 0 && shade < 100) || (shade > 100 && shade < 200);
793
794 if (tint)
795 { 789 {
790 tint = new_tint;
791 bg_flags |= BG_TINT_SET;
792
793 rgba c;
796 tint->get (c); 794 tint.get (c);
797# define IS_COMPONENT_WHOLESOME(cmp) ((cmp) <= 0x000700 || (cmp) >= 0x00f700) 795 if ((c.r <= 0x00ff || c.r >= 0xff00)
798 if (!has_shade && IS_COMPONENT_WHOLESOME (c.r) 796 && (c.g <= 0x00ff || c.g >= 0xff00)
799 && IS_COMPONENT_WHOLESOME (c.g) 797 && (c.b <= 0x00ff || c.b >= 0xff00))
800 && IS_COMPONENT_WHOLESOME (c.b)) 798 bg_flags |= BG_TINT_BITAND;
801 flags |= bgPixmap_t::tintWholesome; 799 else
802# undef IS_COMPONENT_WHOLESOME 800 bg_flags &= ~BG_TINT_BITAND;
803 }
804 801
805 if (has_shade) 802 return true;
806 flags |= bgPixmap_t::tintNeeded;
807 else if (tint)
808 { 803 }
809 if ((c.r > 0x000700 || c.g > 0x000700 || c.b > 0x000700) 804
810 && (c.r < 0x00f700 || c.g < 0x00f700 || c.b < 0x00f700)) 805 return false;
806}
807
808bool
809rxvt_term::bg_set_shade (const char *shade_str)
810{
811 int new_shade = atoi (shade_str);
812
813 clamp_it (new_shade, -100, 200);
814 if (new_shade < 0)
815 new_shade = 200 - (100 + new_shade);
816
817 if (new_shade != shade)
818 {
819 shade = new_shade;
820 return true;
821 }
822
823 return false;
824}
825
826#if XRENDER
827static void
828get_gaussian_kernel (int radius, int width, double *kernel, XFixed *params)
829{
830 double sigma = radius / 2.0;
831 double scale = sqrt (2.0 * M_PI) * sigma;
832 double sum = 0.0;
833
834 for (int i = 0; i < width; i++)
835 {
836 double x = i - width / 2;
837 kernel[i] = exp (-(x * x) / (2.0 * sigma * sigma)) / scale;
838 sum += kernel[i];
839 }
840
841 params[0] = XDoubleToFixed (width);
842 params[1] = XDoubleToFixed (1);
843
844 for (int i = 0; i < width; i++)
845 params[i+2] = XDoubleToFixed (kernel[i] / sum);
846}
847#endif
848
849bool
850rxvt_term::blur_pixmap (Pixmap pixmap, int width, int height)
851{
852 bool ret = false;
853#if XRENDER
854 if (!(bg_flags & BG_HAS_RENDER_CONV))
855 return false;
856
857 int size = max (h_blurRadius, v_blurRadius) * 2 + 1;
858 double *kernel = (double *)malloc (size * sizeof (double));
859 XFixed *params = (XFixed *)malloc ((size + 2) * sizeof (XFixed));
860
861 XRenderPictureAttributes pa;
862 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
863
864 pa.repeat = RepeatPad;
865 Picture src = XRenderCreatePicture (dpy, pixmap, format, CPRepeat, &pa);
866 Pixmap tmp = XCreatePixmap (dpy, pixmap, width, height, depth);
867 Picture dst = XRenderCreatePicture (dpy, tmp, format, CPRepeat, &pa);
868 XFreePixmap (dpy, tmp);
869
870 if (kernel && params)
871 {
872 size = h_blurRadius * 2 + 1;
873 get_gaussian_kernel (h_blurRadius, size, kernel, params);
874
875 XRenderSetPictureFilter (dpy, src, FilterConvolution, params, size+2);
876 XRenderComposite (dpy,
877 PictOpSrc,
878 src,
879 None,
880 dst,
881 0, 0,
882 0, 0,
883 0, 0,
884 width, height);
885
886 ::swap (src, dst);
887
888 size = v_blurRadius * 2 + 1;
889 get_gaussian_kernel (v_blurRadius, size, kernel, params);
890 ::swap (params[0], params[1]);
891
892 XRenderSetPictureFilter (dpy, src, FilterConvolution, params, size+2);
893 XRenderComposite (dpy,
894 PictOpSrc,
895 src,
896 None,
897 dst,
898 0, 0,
899 0, 0,
900 0, 0,
901 width, height);
902
903 ret = true;
904 }
905
906 free (kernel);
907 free (params);
908 XRenderFreePicture (dpy, src);
909 XRenderFreePicture (dpy, dst);
910#endif
911 return ret;
912}
913
914bool
915rxvt_term::tint_pixmap (Pixmap pixmap, int width, int height)
916{
917 bool ret = false;
918
919 if (shade == 100 && (bg_flags & BG_TINT_BITAND))
920 {
921 XGCValues gcv;
922 GC gc;
923
924 /* In this case we can tint image server-side getting significant
925 * performance improvements, as we eliminate XImage transfer
811 { 926 */
812 flags |= bgPixmap_t::tintNeeded; 927 gcv.foreground = Pixel (tint);
928 gcv.function = GXand;
929 gcv.fill_style = FillSolid;
930 gc = XCreateGC (dpy, pixmap, GCFillStyle | GCForeground | GCFunction, &gcv);
931 if (gc)
932 {
933 XFillRectangle (dpy, pixmap, gc, 0, 0, width, height);
934 ret = true;
935 XFreeGC (dpy, gc);
813 } 936 }
814 } 937 }
815 938# if XRENDER
816 if (flags & bgPixmap_t::tintNeeded) 939 else if (bg_flags & BG_HAS_RENDER)
817 { 940 {
818 if (flags & bgPixmap_t::tintWholesome) 941 rgba c (rgba::MAX_CC, rgba::MAX_CC, rgba::MAX_CC);
819 flags |= bgPixmap_t::tintServerSide; 942
943 if (bg_flags & BG_TINT_SET)
944 tint.get (c);
945
946 if (shade <= 100)
947 {
948 c.r = c.r * shade / 100;
949 c.g = c.g * shade / 100;
950 c.b = c.b * shade / 100;
951 }
820 else 952 else
821 { 953 {
822#if XFT 954 c.r = c.r * (200 - shade) / 100;
823 flags |= bgPixmap_t::tintServerSide; 955 c.g = c.g * (200 - shade) / 100;
824#endif 956 c.b = c.b * (200 - shade) / 100;
825 } 957 }
826 }
827 958
828 return flags; 959 XRenderPictFormat *format = XRenderFindVisualFormat (dpy, visual);
829}
830 960
831bool 961 Picture back_pic = XRenderCreatePicture (dpy, pixmap, format, 0, 0);
832bgPixmap_t::set_tint (rxvt_color &new_tint) 962
833{ 963 Picture overlay_pic = create_xrender_mask (dpy, pixmap, True, False);
834 if (tint != new_tint) 964
835 { 965 Picture mask_pic = create_xrender_mask (dpy, pixmap, True, True);
836 unsigned long new_flags = compute_tint_shade_flags (&new_tint, shade); 966
837 tint = new_tint; 967 XRenderColor mask_c;
838 flags = (flags & ~tintFlags) | new_flags | tintSet; 968
969 mask_c.alpha = 0xffff;
970 mask_c.red =
971 mask_c.green =
972 mask_c.blue = 0;
973 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
974
975 mask_c.alpha = 0;
976 mask_c.red = 0xffff - c.r;
977 mask_c.green = 0xffff - c.g;
978 mask_c.blue = 0xffff - c.b;
979 XRenderFillRectangle (dpy, PictOpSrc, mask_pic, &mask_c, 0, 0, 1, 1);
980
981 XRenderComposite (dpy, PictOpOver, overlay_pic, mask_pic, back_pic, 0, 0, 0, 0, 0, 0, width, height);
982
983 if (shade > 100)
984 {
985 mask_c.alpha = 0;
986 mask_c.red =
987 mask_c.green =
988 mask_c.blue = 0xffff * (shade - 100) / 100;
989 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
990
991 XRenderComposite (dpy, PictOpOver, overlay_pic, None, back_pic, 0, 0, 0, 0, 0, 0, width, height);
992 }
993
839 return true; 994 ret = true;
840 }
841 995
842 return false; 996 XRenderFreePicture (dpy, mask_pic);
843} 997 XRenderFreePicture (dpy, overlay_pic);
844 998 XRenderFreePicture (dpy, back_pic);
845bool
846bgPixmap_t::unset_tint ()
847{
848 unsigned long new_flags = compute_tint_shade_flags (NULL, shade);
849
850 if (new_flags != (flags & tintFlags))
851 { 999 }
852 flags = (flags & ~tintFlags) | new_flags; 1000# endif
853 return true;
854 }
855 1001
856 return false; 1002 return ret;
857} 1003}
858 1004
859bool 1005/*
860bgPixmap_t::set_shade (const char *shade_str) 1006 * Builds a pixmap of the same size as the terminal window that contains
861{
862 int new_shade = (shade_str) ? atoi (shade_str) : 0;
863
864 if (new_shade < 0 && new_shade > -100)
865 new_shade = 200 - (100 + new_shade);
866 else if (new_shade == 100)
867 new_shade = 0;
868
869 if (new_shade != shade)
870 {
871 unsigned long new_flags = compute_tint_shade_flags ((flags & tintSet) ? &tint : NULL, new_shade);
872 shade = new_shade;
873 flags = (flags & (~tintFlags | tintSet)) | new_flags;
874 return true;
875 }
876
877 return false;
878}
879
880/* make_transparency_pixmap()
881 * Builds a pixmap sized the same as terminal window, with depth same as the root window
882 * that pixmap contains tiled portion of the root pixmap that is supposed to be covered by 1007 * the tiled portion of the root pixmap that is supposed to be covered by
883 * our window. 1008 * our window.
884 */ 1009 */
885unsigned long 1010bool
886bgPixmap_t::make_transparency_pixmap () 1011rxvt_term::make_transparency_pixmap ()
887{ 1012{
888 unsigned long result = 0; 1013 bool ret = false;
889
890 if (target == NULL)
891 return 0;
892 1014
893 /* root dimensions may change from call to call - but Display structure should 1015 /* root dimensions may change from call to call - but Display structure should
894 * be always up-to-date, so let's use it : 1016 * be always up-to-date, so let's use it :
895 */ 1017 */
896 Window root = target->display->root;
897 int screen = target->display->screen; 1018 int screen = display->screen;
898 Display *dpy = target->dpy; 1019 int root_depth = DefaultDepth (dpy, screen);
899 int root_width = DisplayWidth (dpy, screen); 1020 int root_width = DisplayWidth (dpy, screen);
900 int root_height = DisplayHeight (dpy, screen); 1021 int root_height = DisplayHeight (dpy, screen);
901 unsigned int root_pmap_width, root_pmap_height; 1022 unsigned int root_pmap_width, root_pmap_height;
902 int window_width = target->szHint.width; 1023 int window_width = szHint.width;
903 int window_height = target->szHint.height; 1024 int window_height = szHint.height;
904 int sx, sy; 1025 int sx, sy;
905 XGCValues gcv; 1026 XGCValues gcv;
1027 GC gc;
906 1028
907 TIMING_TEST_START (tp); 1029 sx = target_x;
908 target->get_window_origin (sx, sy); 1030 sy = target_y;
909 1031
910 /* check if we are outside of the visible part of the virtual screen : */ 1032 /* check if we are outside of the visible part of the virtual screen : */
911 if (sx + window_width <= 0 || sy + window_height <= 0 1033 if (sx + window_width <= 0 || sy + window_height <= 0
912 || sx >= root_width || sy >= root_height) 1034 || sx >= root_width || sy >= root_height)
913 return 0; 1035 return 0;
914 1036
1037 // validate root pixmap and get its size
915 if (root_pixmap != None) 1038 if (root_pixmap != None)
916 { 1039 {
917 /* we want to validate the pixmap and get it's size at the same time : */ 1040 Window wdummy;
918 int junk; 1041 int idummy;
919 unsigned int ujunk; 1042 unsigned int udummy;
920 /* root pixmap may be bad - allow a error */ 1043
921 target->allowedxerror = -1; 1044 allowedxerror = -1;
922 1045
923 if (!XGetGeometry (dpy, root_pixmap, &root, &junk, &junk, &root_pmap_width, &root_pmap_height, &ujunk, &ujunk)) 1046 if (!XGetGeometry (dpy, root_pixmap, &wdummy, &idummy, &idummy, &root_pmap_width, &root_pmap_height, &udummy, &udummy))
924 root_pixmap = None; 1047 root_pixmap = None;
925 1048
926 target->allowedxerror = 0; 1049 allowedxerror = 0;
927 }
928
929 Pixmap tiled_root_pmap = XCreatePixmap (dpy, root, window_width, window_height, root_depth);
930 GC gc = NULL;
931
932 if (tiled_root_pmap == None) /* something really bad happened - abort */
933 return 0;
934
935 if (root_pixmap == None)
936 { 1050 }
937 /* use tricks to obtain the root background image :*/
938 /* we want to create Overrideredirect window overlapping out window
939 with background type of Parent Relative and then grab it */
940 XSetWindowAttributes attr;
941 Window src;
942 bool success = false;
943 1051
944 attr.background_pixmap = ParentRelative; 1052 Pixmap recoded_root_pmap = root_pixmap;
945 attr.backing_store = Always;
946 attr.event_mask = ExposureMask;
947 attr.override_redirect = True;
948 src = XCreateWindow (dpy, root, sx, sy, window_width, window_height, 0,
949 CopyFromParent, CopyFromParent, CopyFromParent,
950 CWBackPixmap|CWBackingStore|CWOverrideRedirect|CWEventMask,
951 &attr);
952 1053
953 if (src != None) 1054 if (root_pixmap != None && root_depth != depth)
954 { 1055 {
955 XEvent event; 1056#if XRENDER
956 int ev_count = 0; 1057 if (bg_flags & BG_HAS_RENDER)
957 XGrabServer (dpy);
958 XMapRaised (dpy, src);
959 XSync (dpy, False);
960
961 /* XSync should get window where it's properly exposed,
962 * but to be on the safe side - let's check for the actual event to arrive : */
963 while (XCheckWindowEvent (dpy, src, ExposureMask, &event))
964 ++ev_count;
965
966 if (ev_count > 0);
967 {
968 /* hooray! - we can grab the image! */
969 gc = XCreateGC (dpy, root, 0, NULL);
970 if (gc)
971 {
972 XCopyArea (dpy, src, tiled_root_pmap, gc, 0, 0, window_width, window_height, 0, 0);
973 success = true;
974 }
975 }
976
977 XDestroyWindow (dpy, src);
978 XUngrabServer (dpy);
979 //fprintf (stderr, "%s:%d: ev_count = %d\n", __FUNCTION__, __LINE__, ev_count);
980 } 1058 {
1059 recoded_root_pmap = XCreatePixmap (dpy, vt, root_pmap_width, root_pmap_height, depth);
981 1060
982 if (!success) 1061 XRenderPictFormat *src_format = XRenderFindVisualFormat (dpy, DefaultVisual (dpy, screen));
983 { 1062 Picture src = XRenderCreatePicture (dpy, root_pixmap, src_format, 0, 0);
984 XFreePixmap (dpy, tiled_root_pmap); 1063
985 tiled_root_pmap = None; 1064 XRenderPictFormat *dst_format = XRenderFindVisualFormat (dpy, visual);
1065 Picture dst = XRenderCreatePicture (dpy, recoded_root_pmap, dst_format, 0, 0);
1066
1067 XRenderComposite (dpy, PictOpSrc, src, None, dst, 0, 0, 0, 0, 0, 0, root_pmap_width, root_pmap_height);
1068
1069 XRenderFreePicture (dpy, src);
1070 XRenderFreePicture (dpy, dst);
986 } 1071 }
987 else 1072 else
988 result |= transpPmapTiled; 1073#endif
989 } 1074 recoded_root_pmap = None;
990 else
991 { 1075 }
1076
1077 if (recoded_root_pmap == None)
1078 return 0;
1079
1080 if (bg_pixmap == None
1081 || bg_pmap_width != window_width
1082 || bg_pmap_height != window_height)
1083 {
1084 if (bg_pixmap)
1085 XFreePixmap (dpy, bg_pixmap);
1086 bg_pixmap = XCreatePixmap (dpy, vt, window_width, window_height, depth);
1087 bg_pmap_width = window_width;
1088 bg_pmap_height = window_height;
1089 }
1090
992 /* straightforward pixmap copy */ 1091 /* straightforward pixmap copy */
1092 while (sx < 0) sx += root_pmap_width;
1093 while (sy < 0) sy += root_pmap_height;
1094
993 gcv.tile = root_pixmap; 1095 gcv.tile = recoded_root_pmap;
994 gcv.fill_style = FillTiled; 1096 gcv.fill_style = FillTiled;
995
996 while (sx < 0) sx += (int)root_width;
997 while (sy < 0) sy += (int)root_height;
998
999 gcv.ts_x_origin = -sx; 1097 gcv.ts_x_origin = -sx;
1000 gcv.ts_y_origin = -sy; 1098 gcv.ts_y_origin = -sy;
1001 gc = XCreateGC (dpy, root, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv); 1099 gc = XCreateGC (dpy, vt, GCFillStyle | GCTile | GCTileStipXOrigin | GCTileStipYOrigin, &gcv);
1002 1100
1003 if (gc) 1101 if (gc)
1004 { 1102 {
1005 XFillRectangle (dpy, tiled_root_pmap, gc, 0, 0, window_width, window_height); 1103 XFillRectangle (dpy, bg_pixmap, gc, 0, 0, window_width, window_height);
1006 result |= transpPmapTiled; 1104 ret = true;
1105 bool need_blur = h_blurRadius && v_blurRadius;
1106 bool need_tint = shade != 100 || (bg_flags & BG_TINT_SET);
1107
1108 if (!(bg_flags & BG_CLIENT_RENDER))
1007 } 1109 {
1008 } 1110 if (need_blur)
1009 TIMING_TEST_PRINT_RESULT (tp);
1010
1011 if (tiled_root_pmap != None)
1012 {
1013 if (!need_client_side_rendering ())
1014 {
1015 if ((flags & tintNeeded))
1016 { 1111 {
1017 if (flags & tintWholesome) 1112 if (blur_pixmap (bg_pixmap, window_width, window_height))
1113 need_blur = false;
1114 }
1115 if (need_tint)
1116 {
1117 if (tint_pixmap (bg_pixmap, window_width, window_height))
1118 need_tint = false;
1119 }
1120 if (need_tint)
1121 {
1122 XImage *ximage = XGetImage (dpy, bg_pixmap, 0, 0, bg_pmap_width, bg_pmap_height, AllPlanes, ZPixmap);
1123 if (ximage)
1018 { 1124 {
1019 /* In this case we can tint image server-side getting significant 1125 /* our own client-side tinting */
1020 * performance improvements, as we eliminate XImage transfer
1021 */
1022 gcv.foreground = Pixel (tint);
1023 gcv.function = GXand;
1024 gcv.fill_style = FillSolid;
1025 if (gc)
1026 XChangeGC (dpy, gc, GCFillStyle | GCForeground | GCFunction, &gcv);
1027 else
1028 gc = XCreateGC (dpy, root, GCFillStyle | GCForeground | GCFunction, &gcv);
1029 if (gc)
1030 {
1031 XFillRectangle (dpy, tiled_root_pmap, gc, 0, 0, window_width, window_height);
1032 result |= transpPmapTinted;
1033 }
1034 }
1035 else
1036 {
1037# if XFT
1038 Picture back_pic = 0;
1039 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1040
1041 if (flags & tintSet)
1042 tint.get (c); 1126 tint_ximage (ximage);
1043 1127
1044 if (shade > 0 && shade < 100) 1128 XPutImage (dpy, bg_pixmap, gc, ximage, 0, 0, 0, 0, ximage->width, ximage->height);
1045 { 1129 XDestroyImage (ximage);
1046 c.r = (c.r * shade) / 100;
1047 c.g = (c.g * shade) / 100;
1048 c.b = (c.b * shade) / 100;
1049 }
1050 else if (shade > 100 && shade < 200)
1051 {
1052 c.r = (c.r * (200 - shade)) / 100;
1053 c.g = (c.g * (200 - shade)) / 100;
1054 c.b = (c.b * (200 - shade)) / 100;
1055 }
1056
1057 XRenderPictFormat pf;
1058 pf.type = PictTypeDirect;
1059 pf.depth = 32;
1060 pf.direct.redMask = 0xff;
1061 pf.direct.greenMask = 0xff;
1062 pf.direct.blueMask = 0xff;
1063 pf.direct.alphaMask = 0xff;
1064
1065 XRenderPictFormat *solid_format = XRenderFindFormat (dpy,
1066 (PictFormatType|
1067 PictFormatDepth|
1068 PictFormatRedMask|
1069 PictFormatGreenMask|
1070 PictFormatBlueMask|
1071 PictFormatAlphaMask),
1072 &pf,
1073 0);
1074 XRenderPictFormat *root_format = XRenderFindVisualFormat (dpy, DefaultVisualOfScreen (ScreenOfDisplay (dpy, target->display->screen)));
1075 XRenderPictureAttributes pa ;
1076
1077 back_pic = XRenderCreatePicture (dpy, tiled_root_pmap, root_format, 0, &pa);
1078
1079 pa.repeat = True;
1080
1081 Pixmap overlay_pmap = XCreatePixmap (dpy, root, 1, 1, 32);
1082 Picture overlay_pic = XRenderCreatePicture (dpy, overlay_pmap, solid_format, CPRepeat, &pa);
1083 XFreePixmap (dpy, overlay_pmap);
1084
1085 pa.component_alpha = True;
1086 Pixmap mask_pmap = XCreatePixmap (dpy, root, 1, 1, 32);
1087 Picture mask_pic = XRenderCreatePicture (dpy, mask_pmap, solid_format, CPRepeat|CPComponentAlpha, &pa);
1088 XFreePixmap (dpy, mask_pmap);
1089
1090 if (mask_pic && overlay_pic && back_pic)
1091 {
1092 XRenderColor mask_c;
1093
1094 memset (&mask_c, (shade > 100) ? 0xFF : 0x0, sizeof (mask_c));
1095 mask_c.alpha = 0xffff;
1096 XRenderFillRectangle (dpy, PictOpSrc, overlay_pic, &mask_c, 0, 0, 1, 1);
1097
1098 mask_c.alpha = 0;
1099 mask_c.red = 0xffff - c.r;
1100 mask_c.green = 0xffff - c.g;
1101 mask_c.blue = 0xffff - c.b;
1102 XRenderFillRectangle (dpy, PictOpSrc, mask_pic, &mask_c, 0, 0, 1, 1);
1103 XRenderComposite (dpy, PictOpOver, overlay_pic, mask_pic, back_pic, 0, 0, 0, 0, 0, 0, window_width, window_height);
1104 result |= transpPmapTinted;
1105 }
1106
1107 XRenderFreePicture (dpy, mask_pic);
1108 XRenderFreePicture (dpy, overlay_pic);
1109 XRenderFreePicture (dpy, back_pic);
1110# if DO_TIMING_TEST
1111 XSync (dpy, False);
1112# endif
1113# endif
1114 } 1130 }
1115 } 1131 }
1116 } /* server side rendering completed */ 1132 } /* server side rendering completed */
1117 1133
1118 if (pixmap)
1119 XFreePixmap (dpy, pixmap);
1120
1121 pixmap = tiled_root_pmap;
1122 pmap_width = window_width;
1123 pmap_height = window_height;
1124 pmap_depth = root_depth;
1125 }
1126
1127 if (gc)
1128 XFreeGC (dpy, gc); 1134 XFreeGC (dpy, gc);
1135 }
1129 1136
1130 TIMING_TEST_PRINT_RESULT (tp); 1137 if (recoded_root_pmap != root_pixmap)
1138 XFreePixmap (dpy, recoded_root_pmap);
1131 1139
1132 return result; 1140 return ret;
1133} 1141}
1134 1142
1135bool 1143void
1136bgPixmap_t::set_root_pixmap () 1144rxvt_term::bg_set_root_pixmap ()
1137{ 1145{
1138 Pixmap new_root_pixmap = target->get_pixmap_property (XA_XROOTPMAP_ID); 1146 Pixmap new_root_pixmap = get_pixmap_property (xa[XA_XROOTPMAP_ID]);
1139 if (new_root_pixmap == None) 1147 if (new_root_pixmap == None)
1140 new_root_pixmap = target->get_pixmap_property (XA_ESETROOT_PMAP_ID); 1148 new_root_pixmap = get_pixmap_property (xa[XA_ESETROOT_PMAP_ID]);
1141 1149
1142 if (new_root_pixmap != root_pixmap)
1143 {
1144 root_pixmap = new_root_pixmap; 1150 root_pixmap = new_root_pixmap;
1145 return true;
1146 }
1147
1148 return false;
1149} 1151}
1150# endif /* ENABLE_TRANSPARENCY */ 1152# endif /* ENABLE_TRANSPARENCY */
1151 1153
1152# ifndef HAVE_AFTERIMAGE 1154bool
1153static void ShadeXImage(rxvt_term *term, XImage *srcImage, int shade, int rm, int gm, int bm); 1155rxvt_term::bg_render ()
1156{
1157 bg_invalidate ();
1158# ifdef ENABLE_TRANSPARENCY
1159 if (bg_flags & BG_IS_TRANSPARENT)
1160 {
1161 /* we need to re-generate transparency pixmap in that case ! */
1162 if (make_transparency_pixmap ())
1163 bg_flags |= BG_IS_VALID;
1164 }
1154# endif 1165# endif
1155 1166
1156bool 1167# ifdef BG_IMAGE_FROM_FILE
1157bgPixmap_t::render () 1168 for (vector<rxvt_image>::iterator bg_image = image_vec.begin (); bg_image < image_vec.end (); bg_image++)
1158{
1159 unsigned long background_flags = 0;
1160
1161 if (target == NULL)
1162 return false;
1163
1164 TIMING_TEST_START (tp);
1165
1166 invalidate ();
1167# ifdef ENABLE_TRANSPARENCY
1168 if (flags & isTransparent)
1169 { 1169 {
1170 /* we need to re-generate transparency pixmap in that case ! */ 1170 if (render_image (*bg_image))
1171 background_flags = make_transparency_pixmap (); 1171 bg_flags |= BG_IS_VALID;
1172 if (background_flags == 0)
1173 return false;
1174 else if ((background_flags & transpTransformations) == (flags & transpTransformations)
1175 && pmap_depth == target->depth)
1176 flags = flags & ~isInvalid;
1177 } 1172 }
1178# endif 1173# endif
1179 1174
1175 if (!(bg_flags & BG_IS_VALID))
1176 {
1177 if (bg_pixmap != None)
1178 {
1179 XFreePixmap (dpy, bg_pixmap);
1180 bg_pixmap = None;
1181 }
1182 }
1183
1184 scr_recolour (false);
1185 bg_flags |= BG_NEEDS_REFRESH;
1186
1187 bg_valid_since = ev::now ();
1188
1189 return true;
1190}
1191
1192void
1193rxvt_term::bg_init ()
1194{
1195#ifdef ENABLE_TRANSPARENCY
1196 shade = 100;
1197#endif
1198
1199 bg_flags &= ~(BG_HAS_RENDER | BG_HAS_RENDER_CONV);
1200#if XRENDER
1201 int major, minor;
1202 if (XRenderQueryVersion (dpy, &major, &minor))
1203 bg_flags |= BG_HAS_RENDER;
1204 XFilters *filters = XRenderQueryFilters (dpy, vt);
1205 if (filters)
1206 {
1207 for (int i = 0; i < filters->nfilter; i++)
1208 if (!strcmp (filters->filter[i], FilterConvolution))
1209 bg_flags |= BG_HAS_RENDER_CONV;
1210
1211 XFree (filters);
1212 }
1213#endif
1214
1180# ifdef BG_IMAGE_FROM_FILE 1215#ifdef BG_IMAGE_FROM_FILE
1181 if (have_image 1216 if (rs[Rs_backgroundPixmap])
1182 || (background_flags & transpTransformations) != (flags & transpTransformations)) 1217 {
1218 rxvt_image *image = new_image ();
1219 if (!image->set_file_geometry (rs[Rs_backgroundPixmap]))
1220 image_vec.pop_back ();
1183 { 1221 }
1184 if (render_image (background_flags)) 1222
1185 flags = flags & ~isInvalid; 1223# ifndef NO_RESOURCES
1224 find_resources ("image", "Image", XrmEnumAllLevels, rxvt_define_image);
1225 vector<rxvt_image>::iterator bg_image = image_vec.begin ();
1226 while (bg_image != image_vec.end ())
1227 {
1228 if (!(bg_image->flags & IM_IS_SET))
1229 bg_image = image_vec.erase (bg_image);
1230 else
1231 bg_image++;
1186 } 1232 }
1187# endif 1233# endif
1188 1234
1189 XImage *result = NULL; 1235 if (image_vec.size () > 0
1190 1236 && !bg_window_position_sensitive ())
1191 if (background_flags && (flags & isInvalid)) 1237 update_background ();
1192 {
1193 result = XGetImage (target->dpy, pixmap, 0, 0, pmap_width, pmap_height, AllPlanes, ZPixmap);
1194
1195# if !defined(HAVE_AFTERIMAGE) && !XFT
1196 /* our own client-side tinting */
1197 /* ATTENTION: We ASSUME that XFT will let us do all the tinting necessary server-side.
1198 This may need to be changed in need_client_side_rendering() logic is altered !!! */
1199 if (result != NULL && !(background_flags & transpPmapTinted) && (flags & tintNeeded))
1200 {
1201 rgba c (rgba::MAX_CC,rgba::MAX_CC,rgba::MAX_CC);
1202 if (flags & tintSet)
1203 tint.get (c);
1204 ShadeXImage (target, result, shade, c.r, c.g, c.b);
1205 }
1206# endif 1238#endif
1207 }
1208
1209 if (result)
1210 {
1211 GC gc = XCreateGC (target->dpy, target->vt, 0UL, NULL);
1212
1213 if (gc)
1214 {
1215 if (/*pmap_depth != target->depth &&*/ pixmap != None)
1216 {
1217 XFreePixmap (target->dpy, pixmap);
1218 pixmap = None;
1219 }
1220
1221 if (pixmap == None)
1222 {
1223 pixmap = XCreatePixmap (target->dpy, target->vt, result->width, result->height, target->depth);
1224 pmap_width = result->width;
1225 pmap_height = result->height;
1226 pmap_depth = target->depth;
1227 }
1228
1229 if (pmap_depth != result->depth)
1230 {
1231 /* Bad Match error will ensue ! stupid X !!!! */
1232 if (result->depth == 24 && pmap_depth == 32)
1233 result->depth = 32;
1234 else if (result->depth == 32 && pmap_depth == 24)
1235 result->depth = 24;
1236 else
1237 {
1238 /* TODO: implement image recoding */
1239 }
1240 }
1241
1242 if (pmap_depth == result->depth)
1243 XPutImage (target->dpy, pixmap, gc, result, 0, 0, 0, 0, result->width, result->height);
1244
1245 XFreeGC (target->dpy, gc);
1246 flags = flags & ~isInvalid;
1247 }
1248
1249 XDestroyImage (result);
1250 }
1251
1252 if (flags & isInvalid)
1253 {
1254 if (pixmap != None)
1255 {
1256 XFreePixmap (target->dpy, pixmap);
1257 pixmap = None;
1258 }
1259 }
1260
1261 apply ();
1262
1263 XSync (target->dpy, False);
1264 valid_since = ev::now ();
1265
1266 TIMING_TEST_PRINT_RESULT (tp);
1267
1268 return true;
1269} 1239}
1270 1240
1271bool 1241#endif /* HAVE_BG_PIXMAP */
1272bgPixmap_t::set_target (rxvt_term *new_target) 1242
1273{
1274 if (new_target)
1275 if (target != new_target)
1276 {
1277 target = new_target;
1278# ifdef ENABLE_TRANSPARENCY 1243#ifdef ENABLE_TRANSPARENCY
1279 root_depth = DefaultDepthOfScreen (ScreenOfDisplay (target->dpy, target->display->screen)); 1244/* based on code from aterm-0.4.2 */
1280# endif 1245
1281 return true; 1246static inline void
1247fill_lut (uint32_t *lookup, uint32_t mask, int sh, unsigned short low, unsigned short high)
1248{
1249 for (int i = 0; i <= mask >> sh; i++)
1250 {
1251 uint32_t tmp;
1252 tmp = i * high;
1253 tmp += (mask >> sh) * low;
1254 lookup[i] = (tmp / 0xffff) << sh;
1282 } 1255 }
1283
1284 return false;
1285} 1256}
1286 1257
1287void 1258void
1288bgPixmap_t::apply () 1259rxvt_term::tint_ximage (XImage *ximage)
1289{ 1260{
1290 if (target) 1261 unsigned int size_r, size_g, size_b;
1291 {
1292 flags &= ~isVtOrigin;
1293
1294 if (pixmap != None)
1295 {
1296 /* set target's background to pixmap */
1297# ifdef ENABLE_TRANSPARENCY
1298 if (flags & isTransparent)
1299 {
1300 XSetWindowBackgroundPixmap (target->dpy, target->parent[0], pixmap);
1301 XSetWindowBackgroundPixmap (target->dpy, target->vt, ParentRelative);
1302
1303 if (target->scrollBar.win)
1304 XSetWindowBackgroundPixmap (target->dpy, target->scrollBar.win, ParentRelative);
1305 }
1306 else
1307# endif
1308 {
1309 flags |= isVtOrigin;
1310 /* force old pixmap dereference in case it was transparent before :*/
1311 XSetWindowBackground (target->dpy, target->parent[0], target->pix_colors[Color_border]);
1312 XSetWindowBackgroundPixmap (target->dpy, target->vt, pixmap);
1313 /* do we also need to set scrollbar's background here ? */
1314
1315 if (target->scrollBar.win)
1316 XSetWindowBackground (target->dpy, target->scrollBar.win, target->pix_colors[Color_border]);
1317 }
1318 }
1319 else
1320 {
1321 /* set target background to a pixel */
1322 XSetWindowBackground (target->dpy, target->parent[0], target->pix_colors[Color_border]);
1323 XSetWindowBackground (target->dpy, target->vt, target->pix_colors[Color_bg]);
1324 /* do we also need to set scrollbar's background here ? */
1325 if (target->scrollBar.win)
1326 XSetWindowBackground (target->dpy, target->scrollBar.win, target->pix_colors[Color_border]);
1327 }
1328
1329 /* don't want Expose on the parent or vt. It is better to use
1330 scr_touch or we get a great deal of flicker otherwise: */
1331 XClearWindow (target->dpy, target->parent[0]);
1332
1333 if (target->scrollBar.state && target->scrollBar.win)
1334 {
1335 target->scrollBar.state = STATE_IDLE;
1336 target->scrollBar.show (0);
1337 }
1338
1339 target->want_refresh = 1;
1340 flags |= hasChanged;
1341 }
1342}
1343
1344#endif /* HAVE_BG_PIXMAP */
1345
1346#if defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE) && !XFT
1347/* taken from aterm-0.4.2 */
1348
1349typedef uint32_t RUINT32T;
1350
1351static void
1352ShadeXImage(rxvt_term *term, XImage *srcImage, int shade, int rm, int gm, int bm)
1353{
1354 int sh_r, sh_g, sh_b; 1262 int sh_r, sh_g, sh_b;
1355 RUINT32T mask_r, mask_g, mask_b; 1263 uint32_t mask_r, mask_g, mask_b;
1356 RUINT32T *lookup, *lookup_r, *lookup_g, *lookup_b; 1264 uint32_t *lookup, *lookup_r, *lookup_g, *lookup_b;
1357 unsigned int lower_lim_r, lower_lim_g, lower_lim_b; 1265 unsigned short low;
1358 unsigned int upper_lim_r, upper_lim_g, upper_lim_b; 1266 int host_byte_order = ecb_big_endian () ? MSBFirst : LSBFirst;
1359 int i;
1360 1267
1361 Visual *visual = term->visual;
1362
1363 if (visual->c_class != TrueColor || srcImage->format != ZPixmap) return ; 1268 if (visual->c_class != TrueColor || ximage->format != ZPixmap) return;
1364
1365 if (shade == 0)
1366 shade = 100;
1367 1269
1368 /* for convenience */ 1270 /* for convenience */
1369 mask_r = visual->red_mask; 1271 mask_r = visual->red_mask;
1370 mask_g = visual->green_mask; 1272 mask_g = visual->green_mask;
1371 mask_b = visual->blue_mask; 1273 mask_b = visual->blue_mask;
1372 1274
1373 /* boring lookup table pre-initialization */ 1275 /* boring lookup table pre-initialization */
1374 switch (srcImage->bits_per_pixel) { 1276 sh_r = ecb_ctz32 (mask_r);
1375 case 15: 1277 sh_g = ecb_ctz32 (mask_g);
1376 if ((mask_r != 0x7c00) || 1278 sh_b = ecb_ctz32 (mask_b);
1377 (mask_g != 0x03e0) || 1279
1378 (mask_b != 0x001f)) 1280 size_r = mask_r >> sh_r;
1281 size_g = mask_g >> sh_g;
1282 size_b = mask_b >> sh_b;
1283
1284 if (size_r++ > 255 || size_g++ > 255 || size_b++ > 255)
1379 return; 1285 return;
1380 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(32+32+32)); 1286
1287 lookup = (uint32_t *)malloc (sizeof (uint32_t) * (size_r + size_g + size_b));
1381 lookup_r = lookup; 1288 lookup_r = lookup;
1382 lookup_g = lookup+32; 1289 lookup_g = lookup + size_r;
1383 lookup_b = lookup+32+32; 1290 lookup_b = lookup + size_r + size_g;
1384 sh_r = 10; 1291
1385 sh_g = 5; 1292 rgba c (rgba::MAX_CC, rgba::MAX_CC, rgba::MAX_CC);
1386 sh_b = 0; 1293
1387 break; 1294 if (bg_flags & BG_TINT_SET)
1388 case 16: 1295 tint.get (c);
1389 if ((mask_r != 0xf800) ||
1390 (mask_g != 0x07e0) ||
1391 (mask_b != 0x001f))
1392 return;
1393 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(32+64+32));
1394 lookup_r = lookup;
1395 lookup_g = lookup+32;
1396 lookup_b = lookup+32+64;
1397 sh_r = 11;
1398 sh_g = 5;
1399 sh_b = 0;
1400 break;
1401 case 24:
1402 if ((mask_r != 0xff0000) ||
1403 (mask_g != 0x00ff00) ||
1404 (mask_b != 0x0000ff))
1405 return;
1406 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(256+256+256));
1407 lookup_r = lookup;
1408 lookup_g = lookup+256;
1409 lookup_b = lookup+256+256;
1410 sh_r = 16;
1411 sh_g = 8;
1412 sh_b = 0;
1413 break;
1414 case 32:
1415 if ((mask_r != 0xff0000) ||
1416 (mask_g != 0x00ff00) ||
1417 (mask_b != 0x0000ff))
1418 return;
1419 lookup = (RUINT32T *) malloc (sizeof (RUINT32T)*(256+256+256));
1420 lookup_r = lookup;
1421 lookup_g = lookup+256;
1422 lookup_b = lookup+256+256;
1423 sh_r = 16;
1424 sh_g = 8;
1425 sh_b = 0;
1426 break;
1427 default:
1428 return; /* we do not support this color depth */
1429 }
1430 1296
1431 /* prepare limits for color transformation (each channel is handled separately) */ 1297 /* prepare limits for color transformation (each channel is handled separately) */
1432 if (shade < 0) { 1298 if (shade > 100)
1433 shade = -shade;
1434 if (shade < 0) shade = 0;
1435 if (shade > 100) shade = 100;
1436
1437 lower_lim_r = 65535-rm;
1438 lower_lim_g = 65535-gm;
1439 lower_lim_b = 65535-bm;
1440
1441 lower_lim_r = 65535-(unsigned int)(((RUINT32T)lower_lim_r)*((RUINT32T)shade)/100);
1442 lower_lim_g = 65535-(unsigned int)(((RUINT32T)lower_lim_g)*((RUINT32T)shade)/100);
1443 lower_lim_b = 65535-(unsigned int)(((RUINT32T)lower_lim_b)*((RUINT32T)shade)/100);
1444
1445 upper_lim_r = upper_lim_g = upper_lim_b = 65535;
1446 } else {
1447 if (shade < 0) shade = 0;
1448 if (shade > 100) shade = 100;
1449
1450 lower_lim_r = lower_lim_g = lower_lim_b = 0;
1451
1452 upper_lim_r = (unsigned int)((((RUINT32T)rm)*((RUINT32T)shade))/100);
1453 upper_lim_g = (unsigned int)((((RUINT32T)gm)*((RUINT32T)shade))/100);
1454 upper_lim_b = (unsigned int)((((RUINT32T)bm)*((RUINT32T)shade))/100);
1455 }
1456
1457 /* switch red and blue bytes if necessary, we need it for some weird XServers like XFree86 3.3.3.1 */
1458 if ((srcImage->bits_per_pixel == 24) && (mask_r >= 0xFF0000 ))
1459 { 1299 {
1460 unsigned int tmp; 1300 c.r = c.r * (200 - shade) / 100;
1301 c.g = c.g * (200 - shade) / 100;
1302 c.b = c.b * (200 - shade) / 100;
1461 1303
1462 tmp = lower_lim_r; 1304 low = 0xffff * (shade - 100) / 100;
1463 lower_lim_r = lower_lim_b;
1464 lower_lim_b = tmp;
1465
1466 tmp = upper_lim_r;
1467 upper_lim_r = upper_lim_b;
1468 upper_lim_b = tmp;
1469 } 1305 }
1306 else
1307 {
1308 c.r = c.r * shade / 100;
1309 c.g = c.g * shade / 100;
1310 c.b = c.b * shade / 100;
1311
1312 low = 0;
1313 }
1470 1314
1471 /* fill our lookup tables */ 1315 /* fill our lookup tables */
1472 for (i = 0; i <= mask_r>>sh_r; i++) 1316 fill_lut (lookup_r, mask_r, sh_r, low, c.r);
1473 { 1317 fill_lut (lookup_g, mask_g, sh_g, low, c.g);
1474 RUINT32T tmp; 1318 fill_lut (lookup_b, mask_b, sh_b, low, c.b);
1475 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_r-lower_lim_r));
1476 tmp += ((RUINT32T)(mask_r>>sh_r))*((RUINT32T)lower_lim_r);
1477 lookup_r[i] = (tmp/65535)<<sh_r;
1478 }
1479 for (i = 0; i <= mask_g>>sh_g; i++)
1480 {
1481 RUINT32T tmp;
1482 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_g-lower_lim_g));
1483 tmp += ((RUINT32T)(mask_g>>sh_g))*((RUINT32T)lower_lim_g);
1484 lookup_g[i] = (tmp/65535)<<sh_g;
1485 }
1486 for (i = 0; i <= mask_b>>sh_b; i++)
1487 {
1488 RUINT32T tmp;
1489 tmp = ((RUINT32T)i)*((RUINT32T)(upper_lim_b-lower_lim_b));
1490 tmp += ((RUINT32T)(mask_b>>sh_b))*((RUINT32T)lower_lim_b);
1491 lookup_b[i] = (tmp/65535)<<sh_b;
1492 }
1493 1319
1494 /* apply table to input image (replacing colors by newly calculated ones) */ 1320 /* apply table to input image (replacing colors by newly calculated ones) */
1495 switch (srcImage->bits_per_pixel) 1321 if (ximage->bits_per_pixel == 32
1322 && ximage->byte_order == host_byte_order)
1496 { 1323 {
1497 case 15: 1324 char *line = ximage->data;
1498 { 1325
1499 unsigned short *p1, *pf, *p, *pl; 1326 for (int y = 0; y < ximage->height; y++)
1500 p1 = (unsigned short *) srcImage->data;
1501 pf = (unsigned short *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1502 while (p1 < pf)
1503 { 1327 {
1504 p = p1; 1328 uint32_t *p = (uint32_t *)line;
1505 pl = p1 + srcImage->width; 1329 for (int x = 0; x < ximage->width; x++)
1506 for (; p < pl; p++)
1507 { 1330 {
1508 *p = lookup_r[(*p & 0x7c00)>>10] | 1331 *p = lookup_r[(*p & mask_r) >> sh_r] |
1509 lookup_g[(*p & 0x03e0)>> 5] | 1332 lookup_g[(*p & mask_g) >> sh_g] |
1510 lookup_b[(*p & 0x001f)]; 1333 lookup_b[(*p & mask_b) >> sh_b];
1334 p++;
1335 }
1336 line += ximage->bytes_per_line;
1511 } 1337 }
1512 p1 = (unsigned short *) ((char *) p1 + srcImage->bytes_per_line);
1513 } 1338 }
1514 break; 1339 else
1515 }
1516 case 16:
1517 {
1518 unsigned short *p1, *pf, *p, *pl;
1519 p1 = (unsigned short *) srcImage->data;
1520 pf = (unsigned short *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1521 while (p1 < pf)
1522 { 1340 {
1523 p = p1; 1341 for (int y = 0; y < ximage->height; y++)
1524 pl = p1 + srcImage->width; 1342 for (int x = 0; x < ximage->width; x++)
1525 for (; p < pl; p++)
1526 { 1343 {
1527 *p = lookup_r[(*p & 0xf800)>>11] | 1344 unsigned long pixel = XGetPixel (ximage, x, y);
1528 lookup_g[(*p & 0x07e0)>> 5] | 1345 pixel = lookup_r[(pixel & mask_r) >> sh_r] |
1529 lookup_b[(*p & 0x001f)]; 1346 lookup_g[(pixel & mask_g) >> sh_g] |
1347 lookup_b[(pixel & mask_b) >> sh_b];
1348 XPutPixel (ximage, x, y, pixel);
1530 } 1349 }
1531 p1 = (unsigned short *) ((char *) p1 + srcImage->bytes_per_line);
1532 } 1350 }
1533 break;
1534 }
1535 case 24:
1536 {
1537 unsigned char *p1, *pf, *p, *pl;
1538 p1 = (unsigned char *) srcImage->data;
1539 pf = (unsigned char *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1540 while (p1 < pf)
1541 {
1542 p = p1;
1543 pl = p1 + srcImage->width * 3;
1544 for (; p < pl; p += 3)
1545 {
1546 p[0] = lookup_r[(p[0] & 0xff0000)>>16];
1547 p[1] = lookup_r[(p[1] & 0x00ff00)>> 8];
1548 p[2] = lookup_r[(p[2] & 0x0000ff)];
1549 }
1550 p1 = (unsigned char *) ((char *) p1 + srcImage->bytes_per_line);
1551 }
1552 break;
1553 }
1554 case 32:
1555 {
1556 RUINT32T *p1, *pf, *p, *pl;
1557 p1 = (RUINT32T *) srcImage->data;
1558 pf = (RUINT32T *) (srcImage->data + srcImage->height * srcImage->bytes_per_line);
1559
1560 while (p1 < pf)
1561 {
1562 p = p1;
1563 pl = p1 + srcImage->width;
1564 for (; p < pl; p++)
1565 {
1566 *p = lookup_r[(*p & 0xff0000)>>16] |
1567 lookup_g[(*p & 0x00ff00)>> 8] |
1568 lookup_b[(*p & 0x0000ff)] |
1569 (*p & ~0xffffff);
1570 }
1571 p1 = (RUINT32T *) ((char *) p1 + srcImage->bytes_per_line);
1572 }
1573 break;
1574 }
1575 }
1576 1351
1577 free (lookup); 1352 free (lookup);
1578} 1353}
1579#endif /* defined(ENABLE_TRANSPARENCY) && !defined(HAVE_AFTERIMAGE) */ 1354#endif /* ENABLE_TRANSPARENCY */

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