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[vlc] / modules / video_filter / gaussianblur.c
1 /*****************************************************************************
2  * gaussianblur.c : gaussian blur video filter
3  *****************************************************************************
4  * Copyright (C) 2000-2007 the VideoLAN team
5  * $Id$
6  *
7  * Authors: Antoine Cellerier <dionoea -at- videolan -dot- org>
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 2 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., 51 Franklin Street, Fifth Floor, Boston MA 02110-1301, USA.
22  *****************************************************************************/
23
24 /*****************************************************************************
25  * Preamble
26  *****************************************************************************/
27
28 #ifdef HAVE_CONFIG_H
29 # include "config.h"
30 #endif
31
32 #include <vlc_common.h>
33 #include <vlc_plugin.h>
34 #include <vlc_vout.h>
35
36 #include "vlc_filter.h"
37 #include "filter_picture.h"
38
39 #include <math.h>                                          /* exp(), sqrt() */
40
41 /*****************************************************************************
42  * Local prototypes
43  *****************************************************************************/
44 static int  Create    ( vlc_object_t * );
45 static void Destroy   ( vlc_object_t * );
46
47 static picture_t *Filter( filter_t *, picture_t * );
48
49 #define SIGMA_TEXT N_("Gaussian's std deviation")
50 #define SIGMA_LONGTEXT N_( \
51     "Gaussian's standard deviation. The bluring will take " \
52     "into account pixels up to 3*sigma away in any direction.")
53
54 #define FILTER_PREFIX "gaussianblur-"
55
56 /*****************************************************************************
57  * Module descriptor
58  *****************************************************************************/
59 vlc_module_begin();
60     set_description( N_("Gaussian blur video filter") );
61     set_shortname( N_( "Gaussian Blur" ));
62     set_capability( "video filter2", 0 );
63     set_category( CAT_VIDEO );
64     set_subcategory( SUBCAT_VIDEO_VFILTER );
65
66     add_float( FILTER_PREFIX "sigma", 2., NULL, SIGMA_TEXT, SIGMA_LONGTEXT,
67                false );
68
69     set_callbacks( Create, Destroy );
70 vlc_module_end();
71
72 static const char *const ppsz_filter_options[] = {
73     "sigma", NULL
74 };
75
76 /* Comment this to use floats instead of integers (faster for bigger sigma
77  * values)
78  * For sigma = 2 ints are faster
79  * For sigma = 4 floats are faster
80  */
81 #define DONT_USE_FLOATS
82 struct filter_sys_t
83 {
84     double f_sigma;
85     int i_dim;
86 #ifdef DONT_USE_FLOATS
87     int *pi_distribution;
88     int *pi_buffer;
89     int *pi_scale;
90 #else
91     float *pf_distribution;
92     float *pf_buffer;
93     float *pf_scale;
94 #endif
95 };
96
97 static void gaussianblur_InitDistribution( filter_sys_t *p_sys )
98 {
99     double f_sigma = p_sys->f_sigma;
100     int i_dim = (int)(3.*f_sigma);
101 #ifdef DONT_USE_FLOATS
102     int *pi_distribution = (int*)malloc( (2*i_dim+1) * sizeof( int ) );
103 #else
104     float *pf_distribution = (float*)malloc( (2*i_dim+1) * sizeof( float ) );
105 #endif
106     int x;
107     for( x = -i_dim; x <= i_dim; x++ )
108     {
109 #ifdef DONT_USE_FLOATS
110         pi_distribution[i_dim+x] =
111             (int)( sqrt( exp(-(x*x)/(f_sigma*f_sigma) )
112                  / (2.*M_PI*f_sigma*f_sigma) )  * (double)(1<<8) );
113         printf("%d\n",pi_distribution[i_dim+x]);
114 #else
115         pf_distribution[i_dim+x] = (float)
116             sqrt( exp(-(x*x)/(f_sigma*f_sigma) ) / (2.*M_PI*f_sigma*f_sigma) );
117         printf("%f\n",pf_distribution[i_dim+x]);
118 #endif
119     }
120     p_sys->i_dim = i_dim;
121 #ifdef DONT_USE_FLOATS
122     p_sys->pi_distribution = pi_distribution;
123 #else
124     p_sys->pf_distribution = pf_distribution;
125 #endif
126 }
127
128 static int Create( vlc_object_t *p_this )
129 {
130     filter_t *p_filter = (filter_t *)p_this;
131
132     if(   p_filter->fmt_in.video.i_chroma != VLC_FOURCC('I','4','2','0')
133        && p_filter->fmt_in.video.i_chroma != VLC_FOURCC('I','Y','U','V')
134        && p_filter->fmt_in.video.i_chroma != VLC_FOURCC('J','4','2','0')
135        && p_filter->fmt_in.video.i_chroma != VLC_FOURCC('Y','V','1','2')
136
137        && p_filter->fmt_in.video.i_chroma != VLC_FOURCC('I','4','2','2')
138        && p_filter->fmt_in.video.i_chroma != VLC_FOURCC('J','4','2','2')
139       )
140     {
141         /* We only want planar YUV 4:2:0 or 4:2:2 */
142         msg_Err( p_filter, "Unsupported input chroma (%4s)",
143                  (char*)&(p_filter->fmt_in.video.i_chroma) );
144         return VLC_EGENERIC;
145     }
146
147     if( p_filter->fmt_in.video.i_chroma != p_filter->fmt_out.video.i_chroma )
148     {
149         msg_Err( p_filter, "Input and output chromas don't match" );
150         return VLC_EGENERIC;
151     }
152
153     p_filter->p_sys = malloc( sizeof( filter_sys_t ) );
154     if( p_filter->p_sys == NULL )
155         return VLC_ENOMEM;
156
157     config_ChainParse( p_filter, FILTER_PREFIX, ppsz_filter_options,
158                        p_filter->p_cfg );
159
160     p_filter->pf_video_filter = Filter;
161
162     p_filter->p_sys->f_sigma =
163         var_CreateGetFloat( p_filter, FILTER_PREFIX "sigma" );
164     if( p_filter->p_sys->f_sigma <= 0. )
165     {
166         msg_Err( p_filter, "sigma must be positive" );
167         return VLC_EGENERIC;
168     }
169     gaussianblur_InitDistribution( p_filter->p_sys );
170     msg_Dbg( p_filter, "gaussian distribution is %d pixels wide",
171              p_filter->p_sys->i_dim*2+1 );
172 #ifdef DONT_USE_FLOATS
173     p_filter->p_sys->pi_buffer = NULL;
174     p_filter->p_sys->pi_scale = NULL;
175 #else
176     p_filter->p_sys->pf_buffer = NULL;
177     p_filter->p_sys->pf_scale = NULL;
178 #endif
179
180     return VLC_SUCCESS;
181 }
182
183 static void Destroy( vlc_object_t *p_this )
184 {
185     filter_t *p_filter = (filter_t *)p_this;
186 #ifdef DONT_USE_FLOATS
187     free( p_filter->p_sys->pi_distribution );
188     free( p_filter->p_sys->pi_buffer );
189     free( p_filter->p_sys->pi_scale );
190 #else
191     free( p_filter->p_sys->pf_distribution );
192     free( p_filter->p_sys->pf_buffer );
193     free( p_filter->p_sys->pf_scale );
194 #endif
195     free( p_filter->p_sys );
196 }
197
198 static picture_t *Filter( filter_t *p_filter, picture_t *p_pic )
199 {
200     picture_t *p_outpic;
201     filter_sys_t *p_sys = p_filter->p_sys;
202     int i_plane;
203     const int i_dim = p_sys->i_dim;
204 #ifdef DONT_USE_FLOATS
205     int *pi_buffer;
206     int *pi_scale;
207     const int *pi_distribution = p_sys->pi_distribution;
208 #else
209     float *pf_buffer;
210     float *pf_scale;
211     const float *pf_distribution = p_sys->pf_distribution;
212 #endif
213     if( !p_pic ) return NULL;
214
215     p_outpic = p_filter->pf_vout_buffer_new( p_filter );
216     if( !p_outpic )
217     {
218         msg_Warn( p_filter, "can't get output picture" );
219         if( p_pic->pf_release )
220             p_pic->pf_release( p_pic );
221         return NULL;
222     }
223 #ifdef DONT_USE_FLOATS
224     if( !p_sys->pi_buffer )
225     {
226         p_sys->pi_buffer = (int*)realloc( p_sys->pi_buffer,
227                                           p_pic->p[Y_PLANE].i_visible_lines
228                                           * p_pic->p[Y_PLANE].i_pitch
229                                           * sizeof( int ) );
230     }
231     pi_buffer = p_sys->pi_buffer;
232 #else
233     if( !p_sys->pf_buffer )
234     {
235         p_sys->pf_buffer = (float*)realloc( p_sys->pf_buffer,
236                                             p_pic->p[Y_PLANE].i_visible_lines
237                                             * p_pic->p[Y_PLANE].i_pitch
238                                             * sizeof( float ) );
239     }
240     pf_buffer = p_sys->pf_buffer;
241 #endif
242 #ifdef DONT_USE_FLOATS
243     if( !p_sys->pi_scale )
244 #else
245     if( !p_sys->pf_scale )
246 #endif
247     {
248         const int i_visible_lines = p_pic->p[Y_PLANE].i_visible_lines;
249         const int i_visible_pitch = p_pic->p[Y_PLANE].i_visible_pitch;
250         const int i_pitch = p_pic->p[Y_PLANE].i_pitch;
251         int i_col, i_line;
252 #ifdef DONT_USE_FLOATS
253         p_sys->pi_scale = (int*)malloc( i_visible_lines * i_pitch
254                                         * sizeof( int ) );
255         pi_scale = p_sys->pi_scale;
256 #else
257         p_sys->pf_scale = (float*)malloc( i_visible_lines * i_pitch
258                                           * sizeof( float ) );
259         pf_scale = p_sys->pf_scale;
260 #endif
261         for( i_line = 0 ; i_line < i_visible_lines ; i_line++ )
262         {
263             for( i_col = 0; i_col < i_visible_pitch ; i_col++ )
264             {
265                 int x, y;
266 #ifdef DONT_USE_FLOATS
267                 int value = 0;
268 #else
269                 double value = 0.;
270 #endif
271                 for( y = __MAX( -i_dim, -i_line );
272                      y <= __MIN( i_dim, i_visible_lines - i_line - 1 );
273                      y++ )
274                 {
275                     for( x = __MAX( -i_dim, -i_col );
276                          x <= __MIN( i_dim, i_visible_pitch - i_col + 1 );
277                          x++ )
278                     {
279 #ifdef DONT_USE_FLOATS
280                         value += pi_distribution[y+i_dim]
281                                * pi_distribution[x+i_dim];
282 #else
283                         value += ((double)pf_distribution[y+i_dim])
284                                * ((double)pf_distribution[x+i_dim]);
285 #endif
286                     }
287                 }
288 #ifdef DONT_USE_FLOATS
289                 pi_scale[i_line*i_pitch+i_col] = value;
290 #else
291                 pf_scale[i_line*i_pitch+i_col] = (float)(1./value);
292 #endif
293             }
294         }
295     }
296 #ifdef DONT_USE_FLOATS
297     pi_scale = p_sys->pi_scale;
298 #else
299     pf_scale = p_sys->pf_scale;
300 #endif
301
302     for( i_plane = 0 ; i_plane < p_pic->i_planes ; i_plane++ )
303     {
304
305         uint8_t *p_in = p_pic->p[i_plane].p_pixels;
306         uint8_t *p_out = p_outpic->p[i_plane].p_pixels;
307
308         const int i_visible_lines = p_pic->p[i_plane].i_visible_lines;
309         const int i_visible_pitch = p_pic->p[i_plane].i_visible_pitch;
310         const int i_pitch = p_pic->p[i_plane].i_pitch;
311
312         int i_line, i_col;
313         const int x_factor = p_pic->p[Y_PLANE].i_visible_pitch/i_visible_pitch-1;
314         const int y_factor = p_pic->p[Y_PLANE].i_visible_lines/i_visible_lines-1;
315
316         for( i_line = 0 ; i_line < i_visible_lines ; i_line++ )
317         {
318             for( i_col = 0; i_col < i_visible_pitch ; i_col++ )
319             {
320 #ifdef DONT_USE_FLOATS
321                 int value = 0;
322 #else
323                 float value = 0.;
324 #endif
325                 int x;
326                 const int c = i_line*i_pitch+i_col;
327                 for( x = __MAX( -i_dim, -i_col*(x_factor+1) );
328                      x <= __MIN( i_dim, (i_visible_pitch - i_col)*(x_factor+1) + 1 );
329                      x++ )
330                 {
331 #ifdef DONT_USE_FLOATS
332                     value += pi_distribution[x+i_dim]
333                            * p_in[c+(x>>x_factor)];
334 #else
335                     value += pf_distribution[x+i_dim]
336                            * (float)p_in[c+(x>>x_factor)];
337 #endif
338                 }
339 #ifdef DONT_USE_FLOATS
340                 pi_buffer[c] = value;
341 #else
342                 pf_buffer[c] = value;
343 #endif
344             }
345         }
346         for( i_line = 0 ; i_line < i_visible_lines ; i_line++ )
347         {
348             for( i_col = 0; i_col < i_visible_pitch ; i_col++ )
349             {
350 #ifdef DONT_USE_FLOATS
351                 int value = 0;
352 #else
353                 float value = 0.;
354 #endif
355                 int y;
356                 const int c = i_line*i_pitch+i_col;
357                 for( y = __MAX( -i_dim, (-i_line)*(y_factor+1) );
358                      y <= __MIN( i_dim, (i_visible_lines - i_line)*(y_factor+1) - 1 );
359                      y++ )
360                 {
361 #ifdef DONT_USE_FLOATS
362                     value += pi_distribution[y+i_dim]
363                            * pi_buffer[c+(y>>y_factor)*i_pitch];
364 #else
365                     value += pf_distribution[y+i_dim]
366                            * pf_buffer[c+(y>>y_factor)*i_pitch];
367 #endif
368                 }
369 #ifdef DONT_USE_FLOATS
370                 p_out[c] = (uint8_t)(value/pi_scale[(i_line<<y_factor)*(i_pitch<<x_factor)+(i_col<<x_factor)]);
371 #else
372                 p_out[c] = (uint8_t)(value*pf_scale[(i_line<<y_factor)*(i_pitch<<x_factor)+(i_col<<x_factor)]);
373 #endif
374             }
375         }
376     }
377
378     return CopyInfoAndRelease( p_outpic, p_pic );
379 }