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Comparing rxvt-unicode/src/rxvtimg.C (file contents):
Revision 1.56 by root, Thu Jun 7 20:31:26 2012 UTC vs.
Revision 1.108 by sf-exg, Fri Nov 7 13:45:55 2014 UTC

1/*----------------------------------------------------------------------*
2 * File: rxvtimg.C
3 *----------------------------------------------------------------------*
4 *
5 * All portions of code are copyright by their respective author/s.
6 * Copyright (c) 2012 Marc Lehmann <schmorp@schmorp.de>
7 * Copyright (c) 2012 Emanuele Giaquinta <e.giaquinta@glauco.it>
8 *
9 * 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 * the Free Software Foundation; either version 3 of the License, or
12 * (at your option) any later version.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * 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 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
22 *---------------------------------------------------------------------*/
23
24#include <string.h>
1#include <math.h> 25#include <math.h>
2#include "../config.h" 26#include "../config.h"
3#include "rxvt.h" 27#include "rxvt.h"
4 28
5#if HAVE_IMG 29#if HAVE_IMG
6 30
31typedef rxvt_img::nv nv;
32
33namespace
34{
35 struct mat3x3
36 {
37 nv v[3][3];
38
39 mat3x3 ()
40 {
41 }
42
43 mat3x3 (const nv *matrix)
44 {
45 memcpy (v, matrix, sizeof (v));
46 }
47
48 mat3x3 (nv v11, nv v12, nv v13, nv v21, nv v22, nv v23, nv v31, nv v32, nv v33)
49 {
50 v[0][0] = v11; v[0][1] = v12; v[0][2] = v13;
51 v[1][0] = v21; v[1][1] = v22; v[1][2] = v23;
52 v[2][0] = v31; v[2][1] = v32; v[2][2] = v33;
53 }
54
55 mat3x3 inverse ();
56
57 nv *operator [](int i) { return &v[i][0]; }
58 const nv *operator [](int i) const { return &v[i][0]; }
59
60 operator const nv * () const { return &v[0][0]; }
61 operator nv * () { return &v[0][0]; }
62
63 // quite inefficient, hopefully gcc pulls the w calc out of any loops
64 nv apply1 (int i, nv x, nv y)
65 {
66 mat3x3 &m = *this;
67
68 nv v = m[i][0] * x + m[i][1] * y + m[i][2];
69 nv w = m[2][0] * x + m[2][1] * y + m[2][2];
70
71 return v * (1. / w);
72 }
73
74 static mat3x3 translate (nv x, nv y);
75 static mat3x3 scale (nv s, nv t);
76 static mat3x3 rotate (nv phi);
77 };
78
79 mat3x3
80 mat3x3::inverse ()
81 {
82 mat3x3 &m = *this;
83 mat3x3 inv;
84
85 nv s0 = m[2][2] * m[1][1] - m[2][1] * m[1][2];
86 nv s1 = m[2][1] * m[0][2] - m[2][2] * m[0][1];
87 nv s2 = m[1][2] * m[0][1] - m[1][1] * m[0][2];
88
89 nv invdet = 1. / (m[0][0] * s0 + m[1][0] * s1 + m[2][0] * s2);
90
91 inv[0][0] = invdet * s0;
92 inv[0][1] = invdet * s1;
93 inv[0][2] = invdet * s2;
94
95 inv[1][0] = invdet * (m[2][0] * m[1][2] - m[2][2] * m[1][0]);
96 inv[1][1] = invdet * (m[2][2] * m[0][0] - m[2][0] * m[0][2]);
97 inv[1][2] = invdet * (m[1][0] * m[0][2] - m[1][2] * m[0][0]);
98
99 inv[2][0] = invdet * (m[2][1] * m[1][0] - m[2][0] * m[1][1]);
100 inv[2][1] = invdet * (m[2][0] * m[0][1] - m[2][1] * m[0][0]);
101 inv[2][2] = invdet * (m[1][1] * m[0][0] - m[1][0] * m[0][1]);
102
103 return inv;
104 }
105
106 static mat3x3
107 operator *(const mat3x3 &a, const mat3x3 &b)
108 {
109 mat3x3 r;
110
111 for (int i = 0; i < 3; ++i)
112 for (int j = 0; j < 3; ++j)
113 r[i][j] = a[i][0] * b[0][j]
114 + a[i][1] * b[1][j]
115 + a[i][2] * b[2][j];
116
117 return r;
118 }
119
120 mat3x3
121 mat3x3::translate (nv x, nv y)
122 {
123 return mat3x3 (
124 1, 0, x,
125 0, 1, y,
126 0, 0, 1
127 );
128 }
129
130 mat3x3
131 mat3x3::scale (nv s, nv t)
132 {
133 return mat3x3 (
134 s, 0, 0,
135 0, t, 0,
136 0, 0, 1
137 );
138 }
139
140 // clockwise
141 mat3x3
142 mat3x3::rotate (nv phi)
143 {
144 nv s = sin (phi);
145 nv c = cos (phi);
146
147 return mat3x3 (
148 c, -s, 0,
149 s, c, 0,
150 0, 0, 1
151 );
152 }
153
154 struct composer
155 {
156 rxvt_img *srcimg, *dstimg;
157 Picture src, dst, msk;
158 Display *dpy;
159
160 ecb_noinline
161 composer (rxvt_img *srcimg, rxvt_img *dstimg = 0)
162 : srcimg (srcimg), dstimg (dstimg), msk (0)
163 {
164 if (!this->dstimg)
165 this->dstimg = srcimg->new_empty ();
166 else if (!this->dstimg->pm) // somewhat unsatisfying
167 this->dstimg->alloc ();
168
169 dpy = srcimg->s->dpy;
170 src = srcimg->picture ();
171 dst = this->dstimg->picture ();
172 }
173
174 ecb_noinline
175 void mask (bool rgb = true, int w = 1, int h = 1)
176 {
177 Pixmap pixmap = XCreatePixmap (dpy, srcimg->pm, w, h, rgb ? 32 : 8);
178
179 XRenderPictFormat *format = XRenderFindStandardFormat (dpy, rgb ? PictStandardARGB32 : PictStandardA8);
180 XRenderPictureAttributes pa;
181 pa.repeat = RepeatNormal;
182 pa.component_alpha = rgb;
183 msk = XRenderCreatePicture (dpy, pixmap, format, CPRepeat | CPComponentAlpha, &pa);
184
185 XFreePixmap (dpy, pixmap);
186
187 ecb_assume (msk);
188 }
189
190 // CreateSolidFill creates a very very very weird picture
191 void mask (const rgba &c)
192 {
193 // the casts are needed in C++11 (see 8.5.1)
194 XRenderColor rc = {
195 (unsigned short)(c.r * c.a / 65535),
196 (unsigned short)(c.g * c.a / 65535),
197 (unsigned short)(c.b * c.a / 65535),
198 c.a
199 };
200 msk = XRenderCreateSolidFill (dpy, &rc);
201 ecb_assume (msk);
202 }
203
204 void fill (const rgba &c)
205 {
206 XRenderColor rc = {
207 (unsigned short)(c.r * c.a / 65535),
208 (unsigned short)(c.g * c.a / 65535),
209 (unsigned short)(c.b * c.a / 65535),
210 c.a
211 };
212
213 XRenderFillRectangle (dpy, PictOpSrc, msk, &rc, 0, 0, 1, 1);
214 }
215
216 operator rxvt_img *()
217 {
218 return dstimg;
219 }
220
221 ecb_noinline
222 ~composer ()
223 {
224 XRenderFreePicture (dpy, src);
225 XRenderFreePicture (dpy, dst);
226 if (msk) XRenderFreePicture (dpy, msk);
227 }
228 };
229}
230
231static XRenderPictFormat *
232find_alpha_format_for (Display *dpy, XRenderPictFormat *format)
233{
234 if (format->direct.alphaMask)
235 return format; // already has alpha
236
237 // try to find a suitable alpha format, one bit alpha is enough for our purposes
238 if (format->type == PictTypeDirect)
239 for (int n = 0; XRenderPictFormat *f = XRenderFindFormat (dpy, 0, 0, n); ++n)
240 if (f->direct.alphaMask
241 && f->type == PictTypeDirect
242 && ecb_popcount32 (f->direct.redMask ) >= ecb_popcount32 (format->direct.redMask )
243 && ecb_popcount32 (f->direct.greenMask) >= ecb_popcount32 (format->direct.greenMask)
244 && ecb_popcount32 (f->direct.blueMask ) >= ecb_popcount32 (format->direct.blueMask ))
245 return f;
246
247 // should be a very good fallback
248 return XRenderFindStandardFormat (dpy, PictStandardARGB32);
249}
250
7rxvt_img::rxvt_img (rxvt_screen *screen, XRenderPictFormat *format, int x, int y, int width, int height, int repeat) 251rxvt_img::rxvt_img (rxvt_screen *screen, XRenderPictFormat *format, int x, int y, int width, int height, int repeat)
8: s(screen), x(x), y(y), w(width), h(height), format(format), repeat(repeat), 252: s(screen), x(x), y(y), w(width), h(height), format(format), repeat(repeat),
9 pm(0), ref(0) 253 pm(0), ref(0)
10{ 254{
11} 255}
14: s(img.s), x(img.x), y(img.y), w(img.w), h(img.h), format(img.format), repeat(img.repeat), pm(img.pm), ref(img.ref) 258: s(img.s), x(img.x), y(img.y), w(img.w), h(img.h), format(img.format), repeat(img.repeat), pm(img.pm), ref(img.ref)
15{ 259{
16 ++ref->cnt; 260 ++ref->cnt;
17} 261}
18 262
19#if 0
20rxvt_img::rxvt_img (rxvt_screen *screen, XRenderPictFormat *format, int width, int height, Pixmap pixmap)
21: s(screen), x(0), y(0), w(width), h(height), format(format), repeat(RepeatNormal), shared(false), pm(pixmap)
22{
23}
24#endif
25
26rxvt_img * 263rxvt_img *
27rxvt_img::new_from_root (rxvt_screen *s) 264rxvt_img::new_from_root (rxvt_screen *s)
28{ 265{
29 Display *dpy = s->display->dpy; 266 Display *dpy = s->dpy;
30 unsigned int root_pm_w, root_pm_h; 267 unsigned int root_pm_w, root_pm_h;
31 Pixmap root_pixmap = s->display->get_pixmap_property (s->display->xa[XA_XROOTPMAP_ID]); 268 Pixmap root_pixmap = s->display->get_pixmap_property (s->display->xa [XA_XROOTPMAP_ID]);
32 if (root_pixmap == None) 269 if (root_pixmap == None)
33 root_pixmap = s->display->get_pixmap_property (s->display->xa[XA_ESETROOT_PMAP_ID]); 270 root_pixmap = s->display->get_pixmap_property (s->display->xa [XA_ESETROOT_PMAP_ID]);
34 271
35 if (root_pixmap == None) 272 if (root_pixmap == None)
36 return 0; 273 return 0;
37 274
38 Window wdummy; 275 Window wdummy;
56 img->ref->ours = false; 293 img->ref->ours = false;
57 294
58 return img; 295 return img;
59} 296}
60 297
298# if HAVE_PIXBUF
299
61rxvt_img * 300rxvt_img *
62rxvt_img::new_from_pixbuf (rxvt_screen *s, GdkPixbuf *pb) 301rxvt_img::new_from_pixbuf (rxvt_screen *s, GdkPixbuf *pb)
63{ 302{
64 Display *dpy = s->display->dpy; 303 Display *dpy = s->dpy;
65 304
66 int width = gdk_pixbuf_get_width (pb); 305 int width = gdk_pixbuf_get_width (pb);
67 int height = gdk_pixbuf_get_height (pb); 306 int height = gdk_pixbuf_get_height (pb);
68 307
69 if (width > 32767 || height > 32767) // well, we *could* upload in chunks 308 if (width > 32767 || height > 32767) // well, we *could* upload in chunks
70 rxvt_fatal ("rxvt_img::new_from_pixbuf: image too big (maximum size 32768x32768).\n"); 309 rxvt_fatal ("rxvt_img::new_from_pixbuf: image too big (maximum size 32768x32768).\n");
71 310
72 // since we require rgb24/argb32 formats from xrender we assume 311 // since we require rgb24/argb32 formats from xrender we assume
73 // that both 24 and 32 bpp MUST be supported by any screen that supports xrender 312 // that both 24 and 32 bpp MUST be supported by any screen that supports xrender
74 int depth = gdk_pixbuf_get_has_alpha (pb) ? 32 : 24;
75 313
76 int byte_order = ecb_big_endian () ? MSBFirst : LSBFirst; 314 int byte_order = ecb_big_endian () ? MSBFirst : LSBFirst;
77 315
78 XImage xi; 316 XImage xi;
79 317
83 xi.format = ZPixmap; 321 xi.format = ZPixmap;
84 xi.byte_order = ImageByteOrder (dpy); 322 xi.byte_order = ImageByteOrder (dpy);
85 xi.bitmap_unit = 0; //XY only, unused 323 xi.bitmap_unit = 0; //XY only, unused
86 xi.bitmap_bit_order = 0; //XY only, unused 324 xi.bitmap_bit_order = 0; //XY only, unused
87 xi.bitmap_pad = BitmapPad (dpy); 325 xi.bitmap_pad = BitmapPad (dpy);
88 xi.depth = depth; 326 xi.depth = 32;
89 xi.bytes_per_line = 0; 327 xi.bytes_per_line = 0;
90 xi.bits_per_pixel = 32; //Z only 328 xi.bits_per_pixel = 32; //Z only
91 xi.red_mask = 0x00000000; //Z only, unused 329 xi.red_mask = 0x00000000; //Z only, unused
92 xi.green_mask = 0x00000000; //Z only, unused 330 xi.green_mask = 0x00000000; //Z only, unused
93 xi.blue_mask = 0x00000000; //Z only, unused 331 xi.blue_mask = 0x00000000; //Z only, unused
102 rxvt_fatal ("rxvt_img::new_from_pixbuf: image too big for Xlib.\n"); 340 rxvt_fatal ("rxvt_img::new_from_pixbuf: image too big for Xlib.\n");
103 341
104 xi.data = (char *)rxvt_malloc (height * xi.bytes_per_line); 342 xi.data = (char *)rxvt_malloc (height * xi.bytes_per_line);
105 343
106 int rowstride = gdk_pixbuf_get_rowstride (pb); 344 int rowstride = gdk_pixbuf_get_rowstride (pb);
107 345 bool pb_has_alpha = gdk_pixbuf_get_has_alpha (pb);
108 assert (3 + (depth == 32) == gdk_pixbuf_get_n_channels (pb));
109 unsigned char *row = gdk_pixbuf_get_pixels (pb); 346 unsigned char *row = gdk_pixbuf_get_pixels (pb);
347
110 char *line = xi.data; 348 char *line = xi.data;
111 349
112 for (int y = 0; y < height; y++) 350 for (int y = 0; y < height; y++)
113 { 351 {
114 unsigned char *src = row; 352 unsigned char *src = row;
115 uint32_t *dst = (uint32_t *)line; 353 uint32_t *dst = (uint32_t *)line;
116 354
117 if (depth == 24)
118 for (int x = 0; x < width; x++) 355 for (int x = 0; x < width; x++)
119 { 356 {
120 uint8_t r = *src++; 357 uint8_t r = *src++;
121 uint8_t g = *src++; 358 uint8_t g = *src++;
122 uint8_t b = *src++; 359 uint8_t b = *src++;
360 uint8_t a = *src;
123 361
362 // this is done so it can be jump-free, but newer gcc's clone inner the loop
363 a = pb_has_alpha ? a : 255;
364 src += pb_has_alpha;
365
366 r = (r * a + 127) / 255;
367 g = (g * a + 127) / 255;
368 b = (b * a + 127) / 255;
369
124 uint32_t v = (r << 16) | (g << 8) | b; 370 uint32_t v = (a << 24) | (r << 16) | (g << 8) | b;
125 371
126 if (ecb_big_endian () ? !byte_order_mismatch : byte_order_mismatch) 372 if (ecb_big_endian () ? !byte_order_mismatch : byte_order_mismatch)
127 v = ecb_bswap32 (v); 373 v = ecb_bswap32 (v);
128 374
129 *dst++ = v; 375 *dst++ = v;
130 } 376 }
131 else
132 for (int x = 0; x < width; x++)
133 {
134 uint32_t v = *(uint32_t *)src; src += 4;
135
136 if (ecb_little_endian ())
137 v = ecb_bswap32 (v);
138
139 v = ecb_rotr32 (v, 8);
140
141 if (byte_order_mismatch)
142 v = ecb_bswap32 (v);
143
144 *dst++ = v;
145 }
146 377
147 row += rowstride; 378 row += rowstride;
148 line += xi.bytes_per_line; 379 line += xi.bytes_per_line;
149 } 380 }
150 381
151 rxvt_img *img = new rxvt_img (s, XRenderFindStandardFormat (dpy, depth == 24 ? PictStandardRGB24 : PictStandardARGB32), 0, 0, width, height); 382 rxvt_img *img = new rxvt_img (s, XRenderFindStandardFormat (dpy, PictStandardARGB32), 0, 0, width, height);
152 img->alloc (); 383 img->alloc ();
153 384
154 GC gc = XCreateGC (dpy, img->pm, 0, 0); 385 GC gc = XCreateGC (dpy, img->pm, 0, 0);
155 XPutImage (dpy, img->pm, gc, &xi, 0, 0, 0, 0, width, height); 386 XPutImage (dpy, img->pm, gc, &xi, 0, 0, 0, 0, width, height);
156 XFreeGC (dpy, gc); 387 XFreeGC (dpy, gc);
174 g_object_unref (pb); 405 g_object_unref (pb);
175 406
176 return img; 407 return img;
177} 408}
178 409
410# endif
411
179void 412void
180rxvt_img::destroy () 413rxvt_img::destroy ()
181{ 414{
182 if (--ref->cnt) 415 if (--ref->cnt)
183 return; 416 return;
184 417
185 if (pm && ref->ours) 418 if (pm && ref->ours)
186 XFreePixmap (s->display->dpy, pm); 419 XFreePixmap (s->dpy, pm);
187 420
188 delete ref; 421 delete ref;
189} 422}
190 423
191rxvt_img::~rxvt_img () 424rxvt_img::~rxvt_img ()
194} 427}
195 428
196void 429void
197rxvt_img::alloc () 430rxvt_img::alloc ()
198{ 431{
199 pm = XCreatePixmap (s->display->dpy, s->display->root, w, h, format->depth); 432 pm = XCreatePixmap (s->dpy, s->display->root, w, h, format->depth);
200 ref = new pixref (w, h); 433 ref = new pixref (w, h);
201} 434}
202 435
436rxvt_img *
437rxvt_img::new_empty ()
438{
439 rxvt_img *img = new rxvt_img (s, format, x, y, w, h, repeat);
440 img->alloc ();
441
442 return img;
443}
444
203Picture 445Picture
204rxvt_img::src_picture () 446rxvt_img::picture ()
205{ 447{
206 Display *dpy = s->display->dpy; 448 Display *dpy = s->dpy;
207 449
208 XRenderPictureAttributes pa; 450 XRenderPictureAttributes pa;
209 pa.repeat = repeat; 451 pa.repeat = repeat;
210 Picture pic = XRenderCreatePicture (dpy, pm, format, CPRepeat, &pa); 452 Picture pic = XRenderCreatePicture (dpy, pm, format, CPRepeat, &pa);
211 453
216rxvt_img::unshare () 458rxvt_img::unshare ()
217{ 459{
218 if (ref->cnt == 1 && ref->ours) 460 if (ref->cnt == 1 && ref->ours)
219 return; 461 return;
220 462
221 //TODO: maybe should reify instead
222 Pixmap pm2 = XCreatePixmap (s->display->dpy, s->display->root, ref->w, ref->h, format->depth); 463 Pixmap pm2 = XCreatePixmap (s->dpy, s->display->root, ref->w, ref->h, format->depth);
223 GC gc = XCreateGC (s->display->dpy, pm, 0, 0); 464 GC gc = XCreateGC (s->dpy, pm, 0, 0);
224 XCopyArea (s->display->dpy, pm, pm2, gc, 0, 0, ref->w, ref->h, 0, 0); 465 XCopyArea (s->dpy, pm, pm2, gc, 0, 0, ref->w, ref->h, 0, 0);
225 XFreeGC (s->display->dpy, gc); 466 XFreeGC (s->dpy, gc);
226 467
227 destroy (); 468 destroy ();
228 469
229 pm = pm2; 470 pm = pm2;
230 ref = new pixref (ref->w, ref->h); 471 ref = new pixref (ref->w, ref->h);
231} 472}
232 473
233void 474void
475rxvt_img::fill (const rgba &c, int x, int y, int w, int h)
476{
477 XRenderColor rc = { c.r, c.g, c.b, c.a };
478
479 Display *dpy = s->dpy;
480 Picture src = picture ();
481 XRenderFillRectangle (dpy, PictOpSrc, src, &rc, x, y, w, h);
482 XRenderFreePicture (dpy, src);
483}
484
485void
234rxvt_img::fill (const rxvt_color &c) 486rxvt_img::fill (const rgba &c)
235{ 487{
236 XGCValues gcv; 488 fill (c, 0, 0, w, h);
237 gcv.foreground = c; 489}
238 GC gc = XCreateGC (s->display->dpy, pm, GCForeground, &gcv); 490
239 XFillRectangle (s->display->dpy, pm, gc, 0, 0, w, h); 491void
240 XFreeGC (s->display->dpy, gc); 492rxvt_img::add_alpha ()
493{
494 if (format->direct.alphaMask)
495 return;
496
497 composer cc (this, new rxvt_img (s, find_alpha_format_for (s->dpy, format), x, y, w, h, repeat));
498
499 XRenderComposite (cc.dpy, PictOpSrc, cc.src, None, cc.dst, 0, 0, 0, 0, 0, 0, w, h);
500
501 rxvt_img *img = cc;
502
503 ::swap (img->ref, ref);
504 ::swap (img->pm , pm );
505
506 delete img;
241} 507}
242 508
243static void 509static void
244get_gaussian_kernel (int radius, int width, double *kernel, XFixed *params) 510get_gaussian_kernel (int radius, int width, nv *kernel, XFixed *params)
245{ 511{
246 double sigma = radius / 2.0; 512 nv sigma = radius / 2.0;
247 double scale = sqrt (2.0 * M_PI) * sigma; 513 nv scale = sqrt (2.0 * M_PI) * sigma;
248 double sum = 0.0; 514 nv sum = 0.0;
249 515
250 for (int i = 0; i < width; i++) 516 for (int i = 0; i < width; i++)
251 { 517 {
252 double x = i - width / 2; 518 nv x = i - width / 2;
253 kernel[i] = exp (-(x * x) / (2.0 * sigma * sigma)) / scale; 519 kernel[i] = exp (-(x * x) / (2.0 * sigma * sigma)) / scale;
254 sum += kernel[i]; 520 sum += kernel[i];
255 } 521 }
256 522
257 params[0] = XDoubleToFixed (width); 523 params[0] = XDoubleToFixed (width);
265rxvt_img::blur (int rh, int rv) 531rxvt_img::blur (int rh, int rv)
266{ 532{
267 if (!(s->display->flags & DISPLAY_HAS_RENDER_CONV)) 533 if (!(s->display->flags & DISPLAY_HAS_RENDER_CONV))
268 return clone (); 534 return clone ();
269 535
270 Display *dpy = s->display->dpy; 536 Display *dpy = s->dpy;
271 int size = max (rh, rv) * 2 + 1; 537 int size = max (rh, rv) * 2 + 1;
272 double *kernel = (double *)malloc (size * sizeof (double)); 538 nv *kernel = (nv *)malloc (size * sizeof (nv));
273 XFixed *params = (XFixed *)malloc ((size + 2) * sizeof (XFixed)); 539 XFixed *params = rxvt_temp_buf<XFixed> (size + 2);
274 rxvt_img *img = new rxvt_img (s, format, x, y, w, h, repeat); 540 rxvt_img *img = new_empty ();
275 img->alloc ();
276
277 Picture src = src_picture ();
278 541
279 XRenderPictureAttributes pa; 542 XRenderPictureAttributes pa;
280 pa.repeat = RepeatPad; 543 pa.repeat = RepeatPad;
281 Picture dst = XRenderCreatePicture (dpy, img->pm, format, CPRepeat, &pa); 544 Picture src = XRenderCreatePicture (dpy, pm, format, CPRepeat, &pa);
545 Picture dst = XRenderCreatePicture (dpy, img->pm, format, 0, 0);
282 546
283 Pixmap tmp_pm = XCreatePixmap (dpy, pm, w, h, format->depth); 547 Pixmap tmp_pm = XCreatePixmap (dpy, pm, w, h, format->depth);
284 Picture tmp = XRenderCreatePicture (dpy, tmp_pm , format, CPRepeat, &pa); 548 Picture tmp = XRenderCreatePicture (dpy, tmp_pm , format, CPRepeat, &pa);
285 XFreePixmap (dpy, tmp_pm); 549 XFreePixmap (dpy, tmp_pm);
286 550
302 566
303 size = rv * 2 + 1; 567 size = rv * 2 + 1;
304 get_gaussian_kernel (rv, size, kernel, params); 568 get_gaussian_kernel (rv, size, kernel, params);
305 ::swap (params[0], params[1]); 569 ::swap (params[0], params[1]);
306 570
307 XRenderSetPictureFilter (dpy, src, FilterConvolution, params, size+2); 571 XRenderSetPictureFilter (dpy, tmp, FilterConvolution, params, size+2);
308 XRenderComposite (dpy, 572 XRenderComposite (dpy,
309 PictOpSrc, 573 PictOpSrc,
310 tmp, 574 tmp,
311 None, 575 None,
312 dst, 576 dst,
315 0, 0, 579 0, 0,
316 w, h); 580 w, h);
317 } 581 }
318 582
319 free (kernel); 583 free (kernel);
320 free (params); 584
321 XRenderFreePicture (dpy, src); 585 XRenderFreePicture (dpy, src);
322 XRenderFreePicture (dpy, dst); 586 XRenderFreePicture (dpy, dst);
323 XRenderFreePicture (dpy, tmp); 587 XRenderFreePicture (dpy, tmp);
324 588
325 return img; 589 return img;
326} 590}
327 591
328static Picture 592rxvt_img *
329create_xrender_mask (Display *dpy, Drawable drawable, Bool argb) 593rxvt_img::muladd (nv mul, nv add)
330{ 594{
331 Pixmap pixmap = XCreatePixmap (dpy, drawable, 1, 1, argb ? 32 : 8); 595 // STEP 1: double the image width, fill all odd columns with white (==1)
332 596
333 XRenderPictFormat *format = XRenderFindStandardFormat (dpy, argb ? PictStandardARGB32 : PictStandardA8); 597 composer cc (this, new rxvt_img (s, format, 0, 0, w * 2, h, repeat));
334 XRenderPictureAttributes pa;
335 pa.repeat = True;
336 Picture mask = XRenderCreatePicture (dpy, pixmap, format, CPRepeat, &pa);
337 598
338 XFreePixmap (dpy, pixmap); 599 // why the hell does XRenderSetPictureTransform want a writable matrix :(
600 // that keeps us from just static const'ing this matrix.
601 XTransform h_double = {
602 0x08000, 0, 0,
603 0, 0x10000, 0,
604 0, 0, 0x10000
605 };
339 606
340 return mask; 607 XRenderSetPictureFilter (cc.dpy, cc.src, "nearest", 0, 0);
608 XRenderSetPictureTransform (cc.dpy, cc.src, &h_double);
609 XRenderComposite (cc.dpy, PictOpSrc, cc.src, None, cc.dst, 0, 0, 0, 0, 0, 0, w * 2, h);
610
611 cc.mask (false, 2, 1);
612
613 static const XRenderColor c0 = { 0, 0, 0, 0 };
614 XRenderFillRectangle (cc.dpy, PictOpSrc, cc.msk, &c0, 0, 0, 1, 1);
615 static const XRenderColor c1 = { 65535, 65535, 65535, 65535 };
616 XRenderFillRectangle (cc.dpy, PictOpSrc, cc.msk, &c1, 1, 0, 1, 1);
617
618 Picture white = XRenderCreateSolidFill (cc.dpy, &c1);
619
620 XRenderComposite (cc.dpy, PictOpOver, white, cc.msk, cc.dst, 0, 0, 0, 0, 0, 0, w * 2, h);
621
622 XRenderFreePicture (cc.dpy, white);
623
624 // STEP 2: convolve the image with a 3x1 filter
625 // a 2x1 filter would obviously suffice, but given the total lack of specification
626 // for xrender, I expect different xrender implementations to randomly diverge.
627 // we also halve the image, and hope for the best (again, for lack of specs).
628 composer cc2 (cc.dstimg);
629
630 XFixed kernel [] = {
631 XDoubleToFixed (3), XDoubleToFixed (1),
632 XDoubleToFixed (0), XDoubleToFixed (mul), XDoubleToFixed (add)
633 };
634
635 XTransform h_halve = {
636 0x20000, 0, 0,
637 0, 0x10000, 0,
638 0, 0, 0x10000
639 };
640
641 XRenderSetPictureFilter (cc.dpy, cc2.src, "nearest", 0, 0);
642 XRenderSetPictureTransform (cc.dpy, cc2.src, &h_halve);
643 XRenderSetPictureFilter (cc.dpy, cc2.src, FilterConvolution, kernel, ecb_array_length (kernel));
644
645 XRenderComposite (cc.dpy, PictOpSrc, cc2.src, None, cc2.dst, 0, 0, 0, 0, 0, 0, w * 2, h);
646
647 return cc2;
648}
649
650ecb_noinline static void
651extract (int32_t cl0, int32_t cl1, int32_t &c, unsigned short &xc)
652{
653 int32_t x = clamp (c, cl0, cl1);
654 c -= x;
655 xc = x;
656}
657
658ecb_noinline static bool
659extract (int32_t cl0, int32_t cl1, int32_t &r, int32_t &g, int32_t &b, int32_t &a, unsigned short &xr, unsigned short &xg, unsigned short &xb, unsigned short &xa)
660{
661 extract (cl0, cl1, r, xr);
662 extract (cl0, cl1, g, xg);
663 extract (cl0, cl1, b, xb);
664 extract (cl0, cl1, a, xa);
665
666 return xr | xg | xb | xa;
341} 667}
342 668
343void 669void
344rxvt_img::brightness (unsigned short r, unsigned short g, unsigned short b, unsigned short a) 670rxvt_img::brightness (int32_t r, int32_t g, int32_t b, int32_t a)
345{ 671{
672 unshare ();
673
346 Display *dpy = s->display->dpy; 674 Display *dpy = s->dpy;
347 Picture src = create_xrender_mask (dpy, pm, True);
348 Picture dst = XRenderCreatePicture (dpy, pm, format, 0, 0); 675 Picture dst = XRenderCreatePicture (dpy, pm, format, 0, 0);
349 676
677 // loop should not be needed for brightness, as only -1..1 makes sense
678 //while (r | g | b | a)
679 {
680 unsigned short xr, xg, xb, xa;
350 XRenderColor mask_c; 681 XRenderColor mask_c;
351 mask_c.red = r; 682
352 mask_c.green = g; 683 if (extract (0, 65535, r, g, b, a, mask_c.red, mask_c.green, mask_c.blue, mask_c.alpha))
353 mask_c.blue = b;
354 mask_c.alpha = a;
355 XRenderFillRectangle (dpy, PictOpSrc, src, &mask_c, 0, 0, 1, 1); 684 XRenderFillRectangle (dpy, PictOpAdd, dst, &mask_c, 0, 0, w, h);
356 685
357 XRenderComposite (dpy, PictOpAdd, src, None, dst, 0, 0, 0, 0, 0, 0, w, h); 686 if (extract (-65535, 0, r, g, b, a, mask_c.red, mask_c.green, mask_c.blue, mask_c.alpha))
687 {
688 XRenderColor mask_w = { 65535, 65535, 65535, 65535 };
689 XRenderFillRectangle (dpy, PictOpDifference, dst, &mask_w, 0, 0, w, h);
690 mask_c.red = -mask_c.red; //TODO: verify that doing clamp, assign, and negation does the right thing
691 mask_c.green = -mask_c.green;
692 mask_c.blue = -mask_c.blue;
693 mask_c.alpha = -mask_c.alpha;
694 XRenderFillRectangle (dpy, PictOpAdd, dst, &mask_c, 0, 0, w, h);
695 XRenderFillRectangle (dpy, PictOpDifference, dst, &mask_w, 0, 0, w, h);
696 }
697 }
358 698
359 XRenderFreePicture (dpy, src);
360 XRenderFreePicture (dpy, dst); 699 XRenderFreePicture (dpy, dst);
361} 700}
362 701
363void 702void
364rxvt_img::contrast (unsigned short r, unsigned short g, unsigned short b, unsigned short a) 703rxvt_img::contrast (int32_t r, int32_t g, int32_t b, int32_t a)
365{ 704{
366 if (!(s->display->flags & DISPLAY_HAS_RENDER_MUL)) 705 if (r < 0 || g < 0 || b < 0 || a < 0)
367 return; 706 rxvt_fatal ("rxvt_img::contrast does not support negative values.\n");
368 707
369 Display *dpy = s->display->dpy; 708 // premultiply (yeah, these are not exact, sue me or fix it)
370 Picture src = create_xrender_mask (dpy, pm, True); 709 r = (r * (a >> 8)) >> 8;
371 Picture dst = XRenderCreatePicture (dpy, pm, format, 0, 0); 710 g = (g * (a >> 8)) >> 8;
711 b = (b * (a >> 8)) >> 8;
372 712
713 composer cc (this);
714 rxvt_img *img = cc;
715 img->fill (rgba (0, 0, 0, 0));
716
717 cc.mask (true);
718
719 //TODO: this operator does not yet implement some useful contrast
720 while (r | g | b | a)
721 {
722 unsigned short xr, xg, xb, xa;
373 XRenderColor mask_c; 723 XRenderColor mask_c;
374 mask_c.red = r; 724
375 mask_c.green = g; 725 if (extract (0, 65535, r, g, b, a, mask_c.red, mask_c.green, mask_c.blue, mask_c.alpha))
376 mask_c.blue = b; 726 {
377 mask_c.alpha = a;
378 XRenderFillRectangle (dpy, PictOpSrc, src, &mask_c, 0, 0, 1, 1); 727 XRenderFillRectangle (cc.dpy, PictOpSrc, cc.msk, &mask_c, 0, 0, 1, 1);
379
380 XRenderComposite (dpy, PictOpMultiply, src, None, dst, 0, 0, 0, 0, 0, 0, w, h); 728 XRenderComposite (cc.dpy, PictOpAdd, cc.src, cc.msk, cc.dst, 0, 0, 0, 0, 0, 0, w, h);
729 }
730 }
381 731
382 XRenderFreePicture (dpy, src); 732 ::swap (img->ref, ref);
383 XRenderFreePicture (dpy, dst); 733 ::swap (img->pm , pm );
734
735 delete img;
736}
737
738void
739rxvt_img::draw (rxvt_img *img, int op, nv mask)
740{
741 unshare ();
742
743 composer cc (img, this);
744
745 if (mask != 1.)
746 cc.mask (rgba (0, 0, 0, float_to_component (mask)));
747
748 XRenderComposite (cc.dpy, op, cc.src, cc.msk, cc.dst, x - img->x, y - img->y, 0, 0, 0, 0, w, h);
384} 749}
385 750
386rxvt_img * 751rxvt_img *
387rxvt_img::clone () 752rxvt_img::clone ()
388{ 753{
389 return new rxvt_img (*this); 754 return new rxvt_img (*this);
390}
391
392static XRenderPictFormat *
393find_alpha_format_for (Display *dpy, XRenderPictFormat *format)
394{
395 if (format->direct.alphaMask)
396 return format; // already has alpha
397
398 // try to find a suitable alpha format, one bit alpha is enough for our purposes
399 if (format->type == PictTypeDirect)
400 for (int n = 0; XRenderPictFormat *f = XRenderFindFormat (dpy, 0, 0, n); ++n)
401 if (f->direct.alphaMask
402 && f->type == PictTypeDirect
403 && ecb_popcount32 (f->direct.redMask ) >= ecb_popcount32 (format->direct.redMask )
404 && ecb_popcount32 (f->direct.greenMask) >= ecb_popcount32 (format->direct.greenMask)
405 && ecb_popcount32 (f->direct.blueMask ) >= ecb_popcount32 (format->direct.blueMask ))
406 return f;
407
408 // should be a very good fallback
409 return XRenderFindStandardFormat (dpy, PictStandardARGB32);
410} 755}
411 756
412rxvt_img * 757rxvt_img *
413rxvt_img::reify () 758rxvt_img::reify ()
414{ 759{
415 if (x == 0 && y == 0 && w == ref->w && h == ref->h) 760 if (x == 0 && y == 0 && w == ref->w && h == ref->h)
416 return clone (); 761 return clone ();
417 762
418 Display *dpy = s->display->dpy; 763 // add an alpha channel if...
419
420 bool alpha = !format->direct.alphaMask 764 bool alpha = !format->direct.alphaMask // pixmap has none yet
421 && (x || y) 765 && (x || y) // we need one because of non-zero offset
422 && repeat == RepeatNone; 766 && repeat == RepeatNone; // and we have no good pixels to fill with
423 767
424 rxvt_img *img = new rxvt_img (s, alpha ? find_alpha_format_for (dpy, format) : format, 0, 0, w, h, repeat); 768 composer cc (this, new rxvt_img (s, alpha ? find_alpha_format_for (s->dpy, format) : format,
425 img->alloc (); 769 0, 0, w, h, repeat));
426 770
427 Picture src = src_picture (); 771 if (repeat == RepeatNone)
428 Picture dst = XRenderCreatePicture (dpy, img->pm, img->format, 0, 0);
429
430 if (alpha)
431 { 772 {
432 XRenderColor rc = { 0, 0, 0, 0 }; 773 XRenderColor rc = { 0, 0, 0, 0 };
433 XRenderFillRectangle (dpy, PictOpSrc, dst, &rc, 0, 0, w, h);//TODO: split into four fillrectangles 774 XRenderFillRectangle (cc.dpy, PictOpSrc, cc.dst, &rc, 0, 0, w, h);//TODO: split into four fillrectangles
434 XRenderComposite (dpy, PictOpSrc, src, None, dst, 0, 0, 0, 0, -x, -y, ref->w, ref->h); 775 XRenderComposite (cc.dpy, PictOpSrc, cc.src, None, cc.dst, 0, 0, 0, 0, x, y, ref->w, ref->h);
435 } 776 }
436 else 777 else
437 XRenderComposite (dpy, PictOpSrc, src, None, dst, x, y, 0, 0, 0, 0, w, h); 778 XRenderComposite (cc.dpy, PictOpSrc, cc.src, None, cc.dst, -x, -y, 0, 0, 0, 0, w, h);
438 779
439 XRenderFreePicture (dpy, src);
440 XRenderFreePicture (dpy, dst);
441
442 return img; 780 return cc;
443} 781}
444 782
445rxvt_img * 783rxvt_img *
446rxvt_img::sub_rect (int x, int y, int width, int height) 784rxvt_img::sub_rect (int x, int y, int width, int height)
447{ 785{
448 rxvt_img *img = clone (); 786 rxvt_img *img = clone ();
449 787
450 img->x += x; 788 img->x -= x;
451 img->y += y; 789 img->y -= y;
452 790
453 if (w != width || h != height) 791 if (w != width || h != height)
454 { 792 {
455 img->w = width; 793 img->w = width;
456 img->h = height; 794 img->h = height;
462 800
463 return img; 801 return img;
464} 802}
465 803
466rxvt_img * 804rxvt_img *
467rxvt_img::transform (int new_width, int new_height, double matrix[9]) 805rxvt_img::transform (const nv matrix[3][3])
468{ 806{
469 rxvt_img *img = new rxvt_img (s, format, 0, 0, new_width, new_height, repeat); 807 return transform (mat3x3 (&matrix[0][0]));
470 img->alloc (); 808}
471 809
472 Display *dpy = s->display->dpy; 810rxvt_img *
473 Picture src = src_picture (); 811rxvt_img::transform (const nv *matrix)
474 Picture dst = XRenderCreatePicture (dpy, img->pm, img->format, 0, 0); 812{
813 mat3x3 m (matrix);
814
815 // calculate new pixel bounding box coordinates
816 nv rmin[2], rmax[2];
817
818 for (int i = 0; i < 2; ++i)
819 {
820 nv v;
821
822 v = m.apply1 (i, 0+x, 0+y); rmin [i] = rmax [i] = v;
823 v = m.apply1 (i, w+x, 0+y); min_it (rmin [i], v); max_it (rmax [i], v);
824 v = m.apply1 (i, 0+x, h+y); min_it (rmin [i], v); max_it (rmax [i], v);
825 v = m.apply1 (i, w+x, h+y); min_it (rmin [i], v); max_it (rmax [i], v);
826 }
827
828 float sx = rmin [0] - x;
829 float sy = rmin [1] - y;
830
831 // TODO: adjust matrix for subpixel accuracy
832 int nx = floor (rmin [0]);
833 int ny = floor (rmin [1]);
834
835 int new_width = ceil (rmax [0] - rmin [0]);
836 int new_height = ceil (rmax [1] - rmin [1]);
837
838 mat3x3 inv = (mat3x3::translate (-x, -y) * m * mat3x3::translate (x, y)).inverse ();
839
840 composer cc (this, new rxvt_img (s, format, nx, ny, new_width, new_height, repeat));
475 841
476 XTransform xfrm; 842 XTransform xfrm;
477 843
478 for (int i = 0; i < 3; ++i) 844 for (int i = 0; i < 3; ++i)
479 for (int j = 0; j < 3; ++j) 845 for (int j = 0; j < 3; ++j)
480 xfrm.matrix [i][j] = XDoubleToFixed (matrix [i * 3 + j]); 846 xfrm.matrix [i][j] = XDoubleToFixed (inv [i][j]);
481 847
482#if 0
483 xfrm.matrix [0][2] -= XDoubleToFixed (x);//TODO
484 xfrm.matrix [1][2] -= XDoubleToFixed (y);
485#endif
486
487 XRenderSetPictureFilter (dpy, src, "good", 0, 0); 848 XRenderSetPictureFilter (cc.dpy, cc.src, "good", 0, 0);
488 XRenderSetPictureTransform (dpy, src, &xfrm); 849 XRenderSetPictureTransform (cc.dpy, cc.src, &xfrm);
489 XRenderComposite (dpy, PictOpSrc, src, None, dst, 0, 0, 0, 0, 0, 0, new_width, new_height); 850 XRenderComposite (cc.dpy, PictOpSrc, cc.src, None, cc.dst, sx, sy, 0, 0, 0, 0, new_width, new_height);
490 851
491 XRenderFreePicture (dpy, src);
492 XRenderFreePicture (dpy, dst);
493
494 return img; 852 return cc;
495} 853}
496 854
497rxvt_img * 855rxvt_img *
498rxvt_img::scale (int new_width, int new_height) 856rxvt_img::scale (int new_width, int new_height)
499{ 857{
500 if (w == new_width && h == new_height) 858 if (w == new_width && h == new_height)
501 return clone (); 859 return clone ();
502 860
503 double matrix[9] = {
504 w / (double)new_width, 0, 0,
505 0, h / (double)new_height, 0,
506 0, 0, 1
507 };
508
509 int old_repeat_mode = repeat; 861 int old_repeat_mode = repeat;
510 repeat = RepeatPad; // not right, but xrender can't proeprly scale it seems 862 repeat = RepeatPad; // not right, but xrender can't properly scale it seems
511 863
512 rxvt_img *img = transform (new_width, new_height, matrix); 864 rxvt_img *img = transform (mat3x3::scale (new_width / (nv)w, new_height / (nv)h));
513 865
514 repeat = old_repeat_mode; 866 repeat = old_repeat_mode;
515 img->repeat = repeat; 867 img->repeat = repeat;
516 868
517 return img; 869 return img;
518} 870}
519 871
520rxvt_img * 872rxvt_img *
521rxvt_img::rotate (int new_width, int new_height, int x, int y, double phi) 873rxvt_img::rotate (int cx, int cy, nv phi)
522{ 874{
523 double s = sin (phi); 875 move (-cx, -cy);
524 double c = cos (phi); 876 rxvt_img *img = transform (mat3x3::rotate (phi));
877 move ( cx, cy);
878 img->move (cx, cy);
525 879
526 double matrix[9] = { 880 return img;
527 c, -s, -c * x + s * y + x,
528 s, c, -s * x - c * y + y,
529 0, 0, 1
530 };
531
532 return transform (new_width, new_height, matrix);
533} 881}
534 882
535rxvt_img * 883rxvt_img *
536rxvt_img::convert_format (XRenderPictFormat *new_format, const rxvt_color &bg) 884rxvt_img::convert_format (XRenderPictFormat *new_format, const rgba &bg)
537{ 885{
538 if (new_format == format) 886 if (new_format == format)
539 return clone (); 887 return clone ();
540 888
541 rxvt_img *img = new rxvt_img (s, new_format, x, y, w, h, repeat); 889 composer cc (this, new rxvt_img (s, new_format, x, y, w, h, repeat));
542 img->alloc ();
543 890
544 Display *dpy = s->display->dpy;
545 Picture src = src_picture ();
546 Picture dst = XRenderCreatePicture (dpy, img->pm, new_format, 0, 0);
547 int op = PictOpSrc; 891 int op = PictOpSrc;
548 892
549 if (format->direct.alphaMask && !new_format->direct.alphaMask) 893 if (format->direct.alphaMask && !new_format->direct.alphaMask)
550 { 894 {
551 // does it have to be that complicated 895 // does it have to be that complicated
552 rgba c;
553 bg.get (c);
554
555 XRenderColor rc = { c.r, c.g, c.b, 0xffff }; 896 XRenderColor rc = { bg.r, bg.g, bg.b, bg.a };
556 XRenderFillRectangle (dpy, PictOpSrc, dst, &rc, 0, 0, w, h); 897 XRenderFillRectangle (cc.dpy, PictOpSrc, cc.dst, &rc, 0, 0, w, h);
557 898
558 op = PictOpOver; 899 op = PictOpOver;
559 } 900 }
560 901
561 XRenderComposite (dpy, op, src, None, dst, 0, 0, 0, 0, 0, 0, w, h); 902 XRenderComposite (cc.dpy, op, cc.src, None, cc.dst, 0, 0, 0, 0, 0, 0, w, h);
562 903
563 XRenderFreePicture (dpy, src); 904 return cc;
564 XRenderFreePicture (dpy, dst); 905}
906
907rxvt_img *
908rxvt_img::tint (const rgba &c)
909{
910 composer cc (this);
911 cc.mask (true);
912 cc.fill (c);
913
914 XRenderComposite (cc.dpy, PictOpSrc, cc.src, cc.msk, cc.dst, 0, 0, 0, 0, 0, 0, w, h);
915
916 return cc;
917}
918
919rxvt_img *
920rxvt_img::shade (nv factor, rgba c)
921{
922 clamp_it (factor, -1., 1.);
923 factor++;
924
925 if (factor > 1)
926 {
927 c.r = c.r * (2 - factor);
928 c.g = c.g * (2 - factor);
929 c.b = c.b * (2 - factor);
930 }
931 else
932 {
933 c.r = c.r * factor;
934 c.g = c.g * factor;
935 c.b = c.b * factor;
936 }
937
938 rxvt_img *img = this->tint (c);
939
940 if (factor > 1)
941 {
942 c.a = 0xffff;
943 c.r =
944 c.g =
945 c.b = 0xffff * (factor - 1);
946
947 img->brightness (c.r, c.g, c.b, c.a);
948 }
565 949
566 return img; 950 return img;
567} 951}
568 952
569rxvt_img * 953rxvt_img *
570rxvt_img::blend (rxvt_img *img, double factor) 954rxvt_img::filter (const char *name, int nparams, nv *params)
571{ 955{
572 rxvt_img *img2 = clone (); 956 composer cc (this);
573 Display *dpy = s->display->dpy;
574 Picture src = img->src_picture ();
575 Picture dst = XRenderCreatePicture (dpy, img2->pm, img2->format, 0, 0);
576 Picture mask = create_xrender_mask (dpy, img->pm, False);
577 957
578 XRenderColor mask_c; 958 XFixed *xparams = rxvt_temp_buf<XFixed> (nparams);
579 959
580 mask_c.alpha = float_to_component (factor); 960 for (int i = 0; i < nparams; ++i)
581 mask_c.red = 961 xparams [i] = XDoubleToFixed (params [i]);
582 mask_c.green =
583 mask_c.blue = 0;
584 XRenderFillRectangle (dpy, PictOpSrc, mask, &mask_c, 0, 0, 1, 1);
585 962
963 XRenderSetPictureFilter (cc.dpy, cc.src, name, xparams, nparams);
964
586 XRenderComposite (dpy, PictOpOver, src, mask, dst, 0, 0, 0, 0, 0, 0, w, h); 965 XRenderComposite (cc.dpy, PictOpSrc, cc.src, 0, cc.dst, 0, 0, 0, 0, 0, 0, w, h);
587 966
588 XRenderFreePicture (dpy, src);
589 XRenderFreePicture (dpy, dst);
590 XRenderFreePicture (dpy, mask);
591
592 return img2; 967 return cc;
593} 968}
594 969
595#endif 970#endif
596 971

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