FFmpeg  4.4.8
vf_dctdnoiz.c
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1 /*
2  * Copyright (c) 2013-2014 Clément Bœsch
3  *
4  * This file is part of FFmpeg.
5  *
6  * FFmpeg is free software; you can redistribute it and/or
7  * modify it under the terms of the GNU Lesser General Public
8  * License as published by the Free Software Foundation; either
9  * version 2.1 of the License, or (at your option) any later version.
10  *
11  * FFmpeg is distributed in the hope that it will be useful,
12  * but WITHOUT ANY WARRANTY; without even the implied warranty of
13  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
14  * Lesser General Public License for more details.
15  *
16  * You should have received a copy of the GNU Lesser General Public
17  * License along with FFmpeg; if not, write to the Free Software
18  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
19  */
20 
21 /**
22  * A simple, relatively efficient and slow DCT image denoiser.
23  *
24  * @see http://www.ipol.im/pub/art/2011/ys-dct/
25  *
26  * The DCT factorization used is based on "Fast and numerically stable
27  * algorithms for discrete cosine transforms" from Gerlind Plonkaa & Manfred
28  * Tasche (DOI: 10.1016/j.laa.2004.07.015).
29  */
30 
31 #include "libavutil/avassert.h"
32 #include "libavutil/eval.h"
33 #include "libavutil/mem_internal.h"
34 #include "libavutil/opt.h"
35 #include "internal.h"
36 #include "filters.h"
37 
38 static const char *const var_names[] = { "c", NULL };
39 enum { VAR_C, VAR_VARS_NB };
40 
41 #define MAX_THREADS 8
42 
43 typedef struct DCTdnoizContext {
44  const AVClass *class;
45 
46  /* coefficient factor expression */
47  char *expr_str;
50 
52  int pr_width, pr_height; // width and height to process
53  float sigma; // used when no expression are st
54  float th; // threshold (3*sigma)
55  float *cbuf[2][3]; // two planar rgb color buffers
56  float *slices[MAX_THREADS]; // slices buffers (1 slice buffer per thread)
57  float *weights; // dct coeff are cumulated with overlapping; these values are used for averaging
58  int p_linesize; // line sizes for color and weights
59  int overlap; // number of block overlapping pixels
60  int step; // block step increment (blocksize - overlap)
61  int n; // 1<<n is the block size
62  int bsize; // block size, 1<<n
64  const float *src, int src_linesize,
65  float *dst, int dst_linesize,
66  int thread_id);
67  void (*color_decorrelation)(float **dst, int dst_linesize,
68  const uint8_t **src, int src_linesize,
69  int w, int h);
70  void (*color_correlation)(uint8_t **dst, int dst_linesize,
71  float **src, int src_linesize,
72  int w, int h);
74 
75 #define MIN_NBITS 3 /* blocksize = 1<<3 = 8 */
76 #define MAX_NBITS 4 /* blocksize = 1<<4 = 16 */
77 #define DEFAULT_NBITS 3
78 
79 #define OFFSET(x) offsetof(DCTdnoizContext, x)
80 #define FLAGS AV_OPT_FLAG_FILTERING_PARAM|AV_OPT_FLAG_VIDEO_PARAM
81 static const AVOption dctdnoiz_options[] = {
82  { "sigma", "set noise sigma constant", OFFSET(sigma), AV_OPT_TYPE_FLOAT, {.dbl=0}, 0, 999, .flags = FLAGS },
83  { "s", "set noise sigma constant", OFFSET(sigma), AV_OPT_TYPE_FLOAT, {.dbl=0}, 0, 999, .flags = FLAGS },
84  { "overlap", "set number of block overlapping pixels", OFFSET(overlap), AV_OPT_TYPE_INT, {.i64=-1}, -1, (1<<MAX_NBITS)-1, .flags = FLAGS },
85  { "expr", "set coefficient factor expression", OFFSET(expr_str), AV_OPT_TYPE_STRING, {.str=NULL}, .flags = FLAGS },
86  { "e", "set coefficient factor expression", OFFSET(expr_str), AV_OPT_TYPE_STRING, {.str=NULL}, .flags = FLAGS },
87  { "n", "set the block size, expressed in bits", OFFSET(n), AV_OPT_TYPE_INT, {.i64=DEFAULT_NBITS}, MIN_NBITS, MAX_NBITS, .flags = FLAGS },
88  { NULL }
89 };
90 
92 
93 static void av_always_inline fdct8_1d(float *dst, const float *src,
94  int dst_stridea, int dst_strideb,
95  int src_stridea, int src_strideb)
96 {
97  int i;
98 
99  for (i = 0; i < 8; i++) {
100  const float x00 = src[0*src_stridea] + src[7*src_stridea];
101  const float x01 = src[1*src_stridea] + src[6*src_stridea];
102  const float x02 = src[2*src_stridea] + src[5*src_stridea];
103  const float x03 = src[3*src_stridea] + src[4*src_stridea];
104  const float x04 = src[0*src_stridea] - src[7*src_stridea];
105  const float x05 = src[1*src_stridea] - src[6*src_stridea];
106  const float x06 = src[2*src_stridea] - src[5*src_stridea];
107  const float x07 = src[3*src_stridea] - src[4*src_stridea];
108  const float x08 = x00 + x03;
109  const float x09 = x01 + x02;
110  const float x0a = x00 - x03;
111  const float x0b = x01 - x02;
112  const float x0c = 1.38703984532215f*x04 + 0.275899379282943f*x07;
113  const float x0d = 1.17587560241936f*x05 + 0.785694958387102f*x06;
114  const float x0e = -0.785694958387102f*x05 + 1.17587560241936f*x06;
115  const float x0f = 0.275899379282943f*x04 - 1.38703984532215f*x07;
116  const float x10 = 0.353553390593274f * (x0c - x0d);
117  const float x11 = 0.353553390593274f * (x0e - x0f);
118  dst[0*dst_stridea] = 0.353553390593274f * (x08 + x09);
119  dst[1*dst_stridea] = 0.353553390593274f * (x0c + x0d);
120  dst[2*dst_stridea] = 0.461939766255643f*x0a + 0.191341716182545f*x0b;
121  dst[3*dst_stridea] = 0.707106781186547f * (x10 - x11);
122  dst[4*dst_stridea] = 0.353553390593274f * (x08 - x09);
123  dst[5*dst_stridea] = 0.707106781186547f * (x10 + x11);
124  dst[6*dst_stridea] = 0.191341716182545f*x0a - 0.461939766255643f*x0b;
125  dst[7*dst_stridea] = 0.353553390593274f * (x0e + x0f);
126  dst += dst_strideb;
127  src += src_strideb;
128  }
129 }
130 
131 static void av_always_inline idct8_1d(float *dst, const float *src,
132  int dst_stridea, int dst_strideb,
133  int src_stridea, int src_strideb,
134  int add)
135 {
136  int i;
137 
138  for (i = 0; i < 8; i++) {
139  const float x00 = 1.4142135623731f *src[0*src_stridea];
140  const float x01 = 1.38703984532215f *src[1*src_stridea] + 0.275899379282943f*src[7*src_stridea];
141  const float x02 = 1.30656296487638f *src[2*src_stridea] + 0.541196100146197f*src[6*src_stridea];
142  const float x03 = 1.17587560241936f *src[3*src_stridea] + 0.785694958387102f*src[5*src_stridea];
143  const float x04 = 1.4142135623731f *src[4*src_stridea];
144  const float x05 = -0.785694958387102f*src[3*src_stridea] + 1.17587560241936f*src[5*src_stridea];
145  const float x06 = 0.541196100146197f*src[2*src_stridea] - 1.30656296487638f*src[6*src_stridea];
146  const float x07 = -0.275899379282943f*src[1*src_stridea] + 1.38703984532215f*src[7*src_stridea];
147  const float x09 = x00 + x04;
148  const float x0a = x01 + x03;
149  const float x0b = 1.4142135623731f*x02;
150  const float x0c = x00 - x04;
151  const float x0d = x01 - x03;
152  const float x0e = 0.353553390593274f * (x09 - x0b);
153  const float x0f = 0.353553390593274f * (x0c + x0d);
154  const float x10 = 0.353553390593274f * (x0c - x0d);
155  const float x11 = 1.4142135623731f*x06;
156  const float x12 = x05 + x07;
157  const float x13 = x05 - x07;
158  const float x14 = 0.353553390593274f * (x11 + x12);
159  const float x15 = 0.353553390593274f * (x11 - x12);
160  const float x16 = 0.5f*x13;
161  dst[0*dst_stridea] = (add ? dst[ 0*dst_stridea] : 0) + 0.25f * (x09 + x0b) + 0.353553390593274f*x0a;
162  dst[1*dst_stridea] = (add ? dst[ 1*dst_stridea] : 0) + 0.707106781186547f * (x0f + x15);
163  dst[2*dst_stridea] = (add ? dst[ 2*dst_stridea] : 0) + 0.707106781186547f * (x0f - x15);
164  dst[3*dst_stridea] = (add ? dst[ 3*dst_stridea] : 0) + 0.707106781186547f * (x0e + x16);
165  dst[4*dst_stridea] = (add ? dst[ 4*dst_stridea] : 0) + 0.707106781186547f * (x0e - x16);
166  dst[5*dst_stridea] = (add ? dst[ 5*dst_stridea] : 0) + 0.707106781186547f * (x10 - x14);
167  dst[6*dst_stridea] = (add ? dst[ 6*dst_stridea] : 0) + 0.707106781186547f * (x10 + x14);
168  dst[7*dst_stridea] = (add ? dst[ 7*dst_stridea] : 0) + 0.25f * (x09 + x0b) - 0.353553390593274f*x0a;
169  dst += dst_strideb;
170  src += src_strideb;
171  }
172 }
173 
174 
175 static void av_always_inline fdct16_1d(float *dst, const float *src,
176  int dst_stridea, int dst_strideb,
177  int src_stridea, int src_strideb)
178 {
179  int i;
180 
181  for (i = 0; i < 16; i++) {
182  const float x00 = src[ 0*src_stridea] + src[15*src_stridea];
183  const float x01 = src[ 1*src_stridea] + src[14*src_stridea];
184  const float x02 = src[ 2*src_stridea] + src[13*src_stridea];
185  const float x03 = src[ 3*src_stridea] + src[12*src_stridea];
186  const float x04 = src[ 4*src_stridea] + src[11*src_stridea];
187  const float x05 = src[ 5*src_stridea] + src[10*src_stridea];
188  const float x06 = src[ 6*src_stridea] + src[ 9*src_stridea];
189  const float x07 = src[ 7*src_stridea] + src[ 8*src_stridea];
190  const float x08 = src[ 0*src_stridea] - src[15*src_stridea];
191  const float x09 = src[ 1*src_stridea] - src[14*src_stridea];
192  const float x0a = src[ 2*src_stridea] - src[13*src_stridea];
193  const float x0b = src[ 3*src_stridea] - src[12*src_stridea];
194  const float x0c = src[ 4*src_stridea] - src[11*src_stridea];
195  const float x0d = src[ 5*src_stridea] - src[10*src_stridea];
196  const float x0e = src[ 6*src_stridea] - src[ 9*src_stridea];
197  const float x0f = src[ 7*src_stridea] - src[ 8*src_stridea];
198  const float x10 = x00 + x07;
199  const float x11 = x01 + x06;
200  const float x12 = x02 + x05;
201  const float x13 = x03 + x04;
202  const float x14 = x00 - x07;
203  const float x15 = x01 - x06;
204  const float x16 = x02 - x05;
205  const float x17 = x03 - x04;
206  const float x18 = x10 + x13;
207  const float x19 = x11 + x12;
208  const float x1a = x10 - x13;
209  const float x1b = x11 - x12;
210  const float x1c = 1.38703984532215f*x14 + 0.275899379282943f*x17;
211  const float x1d = 1.17587560241936f*x15 + 0.785694958387102f*x16;
212  const float x1e = -0.785694958387102f*x15 + 1.17587560241936f *x16;
213  const float x1f = 0.275899379282943f*x14 - 1.38703984532215f *x17;
214  const float x20 = 0.25f * (x1c - x1d);
215  const float x21 = 0.25f * (x1e - x1f);
216  const float x22 = 1.40740373752638f *x08 + 0.138617169199091f*x0f;
217  const float x23 = 1.35331800117435f *x09 + 0.410524527522357f*x0e;
218  const float x24 = 1.24722501298667f *x0a + 0.666655658477747f*x0d;
219  const float x25 = 1.09320186700176f *x0b + 0.897167586342636f*x0c;
220  const float x26 = -0.897167586342636f*x0b + 1.09320186700176f *x0c;
221  const float x27 = 0.666655658477747f*x0a - 1.24722501298667f *x0d;
222  const float x28 = -0.410524527522357f*x09 + 1.35331800117435f *x0e;
223  const float x29 = 0.138617169199091f*x08 - 1.40740373752638f *x0f;
224  const float x2a = x22 + x25;
225  const float x2b = x23 + x24;
226  const float x2c = x22 - x25;
227  const float x2d = x23 - x24;
228  const float x2e = 0.25f * (x2a - x2b);
229  const float x2f = 0.326640741219094f*x2c + 0.135299025036549f*x2d;
230  const float x30 = 0.135299025036549f*x2c - 0.326640741219094f*x2d;
231  const float x31 = x26 + x29;
232  const float x32 = x27 + x28;
233  const float x33 = x26 - x29;
234  const float x34 = x27 - x28;
235  const float x35 = 0.25f * (x31 - x32);
236  const float x36 = 0.326640741219094f*x33 + 0.135299025036549f*x34;
237  const float x37 = 0.135299025036549f*x33 - 0.326640741219094f*x34;
238  dst[ 0*dst_stridea] = 0.25f * (x18 + x19);
239  dst[ 1*dst_stridea] = 0.25f * (x2a + x2b);
240  dst[ 2*dst_stridea] = 0.25f * (x1c + x1d);
241  dst[ 3*dst_stridea] = 0.707106781186547f * (x2f - x37);
242  dst[ 4*dst_stridea] = 0.326640741219094f*x1a + 0.135299025036549f*x1b;
243  dst[ 5*dst_stridea] = 0.707106781186547f * (x2f + x37);
244  dst[ 6*dst_stridea] = 0.707106781186547f * (x20 - x21);
245  dst[ 7*dst_stridea] = 0.707106781186547f * (x2e + x35);
246  dst[ 8*dst_stridea] = 0.25f * (x18 - x19);
247  dst[ 9*dst_stridea] = 0.707106781186547f * (x2e - x35);
248  dst[10*dst_stridea] = 0.707106781186547f * (x20 + x21);
249  dst[11*dst_stridea] = 0.707106781186547f * (x30 - x36);
250  dst[12*dst_stridea] = 0.135299025036549f*x1a - 0.326640741219094f*x1b;
251  dst[13*dst_stridea] = 0.707106781186547f * (x30 + x36);
252  dst[14*dst_stridea] = 0.25f * (x1e + x1f);
253  dst[15*dst_stridea] = 0.25f * (x31 + x32);
254  dst += dst_strideb;
255  src += src_strideb;
256  }
257 }
258 
259 static void av_always_inline idct16_1d(float *dst, const float *src,
260  int dst_stridea, int dst_strideb,
261  int src_stridea, int src_strideb,
262  int add)
263 {
264  int i;
265 
266  for (i = 0; i < 16; i++) {
267  const float x00 = 1.4142135623731f *src[ 0*src_stridea];
268  const float x01 = 1.40740373752638f *src[ 1*src_stridea] + 0.138617169199091f*src[15*src_stridea];
269  const float x02 = 1.38703984532215f *src[ 2*src_stridea] + 0.275899379282943f*src[14*src_stridea];
270  const float x03 = 1.35331800117435f *src[ 3*src_stridea] + 0.410524527522357f*src[13*src_stridea];
271  const float x04 = 1.30656296487638f *src[ 4*src_stridea] + 0.541196100146197f*src[12*src_stridea];
272  const float x05 = 1.24722501298667f *src[ 5*src_stridea] + 0.666655658477747f*src[11*src_stridea];
273  const float x06 = 1.17587560241936f *src[ 6*src_stridea] + 0.785694958387102f*src[10*src_stridea];
274  const float x07 = 1.09320186700176f *src[ 7*src_stridea] + 0.897167586342636f*src[ 9*src_stridea];
275  const float x08 = 1.4142135623731f *src[ 8*src_stridea];
276  const float x09 = -0.897167586342636f*src[ 7*src_stridea] + 1.09320186700176f*src[ 9*src_stridea];
277  const float x0a = 0.785694958387102f*src[ 6*src_stridea] - 1.17587560241936f*src[10*src_stridea];
278  const float x0b = -0.666655658477747f*src[ 5*src_stridea] + 1.24722501298667f*src[11*src_stridea];
279  const float x0c = 0.541196100146197f*src[ 4*src_stridea] - 1.30656296487638f*src[12*src_stridea];
280  const float x0d = -0.410524527522357f*src[ 3*src_stridea] + 1.35331800117435f*src[13*src_stridea];
281  const float x0e = 0.275899379282943f*src[ 2*src_stridea] - 1.38703984532215f*src[14*src_stridea];
282  const float x0f = -0.138617169199091f*src[ 1*src_stridea] + 1.40740373752638f*src[15*src_stridea];
283  const float x12 = x00 + x08;
284  const float x13 = x01 + x07;
285  const float x14 = x02 + x06;
286  const float x15 = x03 + x05;
287  const float x16 = 1.4142135623731f*x04;
288  const float x17 = x00 - x08;
289  const float x18 = x01 - x07;
290  const float x19 = x02 - x06;
291  const float x1a = x03 - x05;
292  const float x1d = x12 + x16;
293  const float x1e = x13 + x15;
294  const float x1f = 1.4142135623731f*x14;
295  const float x20 = x12 - x16;
296  const float x21 = x13 - x15;
297  const float x22 = 0.25f * (x1d - x1f);
298  const float x23 = 0.25f * (x20 + x21);
299  const float x24 = 0.25f * (x20 - x21);
300  const float x25 = 1.4142135623731f*x17;
301  const float x26 = 1.30656296487638f*x18 + 0.541196100146197f*x1a;
302  const float x27 = 1.4142135623731f*x19;
303  const float x28 = -0.541196100146197f*x18 + 1.30656296487638f*x1a;
304  const float x29 = 0.176776695296637f * (x25 + x27) + 0.25f*x26;
305  const float x2a = 0.25f * (x25 - x27);
306  const float x2b = 0.176776695296637f * (x25 + x27) - 0.25f*x26;
307  const float x2c = 0.353553390593274f*x28;
308  const float x1b = 0.707106781186547f * (x2a - x2c);
309  const float x1c = 0.707106781186547f * (x2a + x2c);
310  const float x2d = 1.4142135623731f*x0c;
311  const float x2e = x0b + x0d;
312  const float x2f = x0a + x0e;
313  const float x30 = x09 + x0f;
314  const float x31 = x09 - x0f;
315  const float x32 = x0a - x0e;
316  const float x33 = x0b - x0d;
317  const float x37 = 1.4142135623731f*x2d;
318  const float x38 = 1.30656296487638f*x2e + 0.541196100146197f*x30;
319  const float x39 = 1.4142135623731f*x2f;
320  const float x3a = -0.541196100146197f*x2e + 1.30656296487638f*x30;
321  const float x3b = 0.176776695296637f * (x37 + x39) + 0.25f*x38;
322  const float x3c = 0.25f * (x37 - x39);
323  const float x3d = 0.176776695296637f * (x37 + x39) - 0.25f*x38;
324  const float x3e = 0.353553390593274f*x3a;
325  const float x34 = 0.707106781186547f * (x3c - x3e);
326  const float x35 = 0.707106781186547f * (x3c + x3e);
327  const float x3f = 1.4142135623731f*x32;
328  const float x40 = x31 + x33;
329  const float x41 = x31 - x33;
330  const float x42 = 0.25f * (x3f + x40);
331  const float x43 = 0.25f * (x3f - x40);
332  const float x44 = 0.353553390593274f*x41;
333  dst[ 0*dst_stridea] = (add ? dst[ 0*dst_stridea] : 0) + 0.176776695296637f * (x1d + x1f) + 0.25f*x1e;
334  dst[ 1*dst_stridea] = (add ? dst[ 1*dst_stridea] : 0) + 0.707106781186547f * (x29 + x3d);
335  dst[ 2*dst_stridea] = (add ? dst[ 2*dst_stridea] : 0) + 0.707106781186547f * (x29 - x3d);
336  dst[ 3*dst_stridea] = (add ? dst[ 3*dst_stridea] : 0) + 0.707106781186547f * (x23 - x43);
337  dst[ 4*dst_stridea] = (add ? dst[ 4*dst_stridea] : 0) + 0.707106781186547f * (x23 + x43);
338  dst[ 5*dst_stridea] = (add ? dst[ 5*dst_stridea] : 0) + 0.707106781186547f * (x1b - x35);
339  dst[ 6*dst_stridea] = (add ? dst[ 6*dst_stridea] : 0) + 0.707106781186547f * (x1b + x35);
340  dst[ 7*dst_stridea] = (add ? dst[ 7*dst_stridea] : 0) + 0.707106781186547f * (x22 + x44);
341  dst[ 8*dst_stridea] = (add ? dst[ 8*dst_stridea] : 0) + 0.707106781186547f * (x22 - x44);
342  dst[ 9*dst_stridea] = (add ? dst[ 9*dst_stridea] : 0) + 0.707106781186547f * (x1c + x34);
343  dst[10*dst_stridea] = (add ? dst[10*dst_stridea] : 0) + 0.707106781186547f * (x1c - x34);
344  dst[11*dst_stridea] = (add ? dst[11*dst_stridea] : 0) + 0.707106781186547f * (x24 + x42);
345  dst[12*dst_stridea] = (add ? dst[12*dst_stridea] : 0) + 0.707106781186547f * (x24 - x42);
346  dst[13*dst_stridea] = (add ? dst[13*dst_stridea] : 0) + 0.707106781186547f * (x2b - x3b);
347  dst[14*dst_stridea] = (add ? dst[14*dst_stridea] : 0) + 0.707106781186547f * (x2b + x3b);
348  dst[15*dst_stridea] = (add ? dst[15*dst_stridea] : 0) + 0.176776695296637f * (x1d + x1f) - 0.25f*x1e;
349  dst += dst_strideb;
350  src += src_strideb;
351  }
352 }
353 
354 #define DEF_FILTER_FREQ_FUNCS(bsize) \
355 static av_always_inline void filter_freq_##bsize(const float *src, int src_linesize, \
356  float *dst, int dst_linesize, \
357  AVExpr *expr, double *var_values, \
358  int sigma_th) \
359 { \
360  unsigned i; \
361  DECLARE_ALIGNED(32, float, tmp_block1)[bsize * bsize]; \
362  DECLARE_ALIGNED(32, float, tmp_block2)[bsize * bsize]; \
363  \
364  /* forward DCT */ \
365  fdct##bsize##_1d(tmp_block1, src, 1, bsize, 1, src_linesize); \
366  fdct##bsize##_1d(tmp_block2, tmp_block1, bsize, 1, bsize, 1); \
367  \
368  for (i = 0; i < bsize*bsize; i++) { \
369  float *b = &tmp_block2[i]; \
370  /* frequency filtering */ \
371  if (expr) { \
372  var_values[VAR_C] = fabsf(*b); \
373  *b *= av_expr_eval(expr, var_values, NULL); \
374  } else { \
375  if (fabsf(*b) < sigma_th) \
376  *b = 0; \
377  } \
378  } \
379  \
380  /* inverse DCT */ \
381  idct##bsize##_1d(tmp_block1, tmp_block2, 1, bsize, 1, bsize, 0); \
382  idct##bsize##_1d(dst, tmp_block1, dst_linesize, 1, bsize, 1, 1); \
383 } \
384  \
385 static void filter_freq_sigma_##bsize(DCTdnoizContext *s, \
386  const float *src, int src_linesize, \
387  float *dst, int dst_linesize, int thread_id) \
388 { \
389  filter_freq_##bsize(src, src_linesize, dst, dst_linesize, NULL, NULL, s->th); \
390 } \
391  \
392 static void filter_freq_expr_##bsize(DCTdnoizContext *s, \
393  const float *src, int src_linesize, \
394  float *dst, int dst_linesize, int thread_id) \
395 { \
396  filter_freq_##bsize(src, src_linesize, dst, dst_linesize, \
397  s->expr[thread_id], s->var_values[thread_id], 0); \
398 }
399 
402 
403 #define DCT3X3_0_0 0.5773502691896258f /* 1/sqrt(3) */
404 #define DCT3X3_0_1 0.5773502691896258f /* 1/sqrt(3) */
405 #define DCT3X3_0_2 0.5773502691896258f /* 1/sqrt(3) */
406 #define DCT3X3_1_0 0.7071067811865475f /* 1/sqrt(2) */
407 #define DCT3X3_1_2 -0.7071067811865475f /* -1/sqrt(2) */
408 #define DCT3X3_2_0 0.4082482904638631f /* 1/sqrt(6) */
409 #define DCT3X3_2_1 -0.8164965809277261f /* -2/sqrt(6) */
410 #define DCT3X3_2_2 0.4082482904638631f /* 1/sqrt(6) */
411 
412 static av_always_inline void color_decorrelation(float **dst, int dst_linesize,
413  const uint8_t **src, int src_linesize,
414  int w, int h,
415  int r, int g, int b)
416 {
417  int x, y;
418  float *dstp_r = dst[0];
419  float *dstp_g = dst[1];
420  float *dstp_b = dst[2];
421  const uint8_t *srcp = src[0];
422 
423  for (y = 0; y < h; y++) {
424  for (x = 0; x < w; x++) {
425  dstp_r[x] = srcp[r] * DCT3X3_0_0 + srcp[g] * DCT3X3_0_1 + srcp[b] * DCT3X3_0_2;
426  dstp_g[x] = srcp[r] * DCT3X3_1_0 + srcp[b] * DCT3X3_1_2;
427  dstp_b[x] = srcp[r] * DCT3X3_2_0 + srcp[g] * DCT3X3_2_1 + srcp[b] * DCT3X3_2_2;
428  srcp += 3;
429  }
430  srcp += src_linesize - w * 3;
431  dstp_r += dst_linesize;
432  dstp_g += dst_linesize;
433  dstp_b += dst_linesize;
434  }
435 }
436 
437 static av_always_inline void color_correlation(uint8_t **dst, int dst_linesize,
438  float **src, int src_linesize,
439  int w, int h,
440  int r, int g, int b)
441 {
442  int x, y;
443  const float *src_r = src[0];
444  const float *src_g = src[1];
445  const float *src_b = src[2];
446  uint8_t *dstp = dst[0];
447 
448  for (y = 0; y < h; y++) {
449  for (x = 0; x < w; x++) {
450  dstp[r] = av_clip_uint8(src_r[x] * DCT3X3_0_0 + src_g[x] * DCT3X3_1_0 + src_b[x] * DCT3X3_2_0);
451  dstp[g] = av_clip_uint8(src_r[x] * DCT3X3_0_1 + src_b[x] * DCT3X3_2_1);
452  dstp[b] = av_clip_uint8(src_r[x] * DCT3X3_0_2 + src_g[x] * DCT3X3_1_2 + src_b[x] * DCT3X3_2_2);
453  dstp += 3;
454  }
455  dstp += dst_linesize - w * 3;
456  src_r += src_linesize;
457  src_g += src_linesize;
458  src_b += src_linesize;
459  }
460 }
461 
462 #define DECLARE_COLOR_FUNCS(name, r, g, b) \
463 static void color_decorrelation_##name(float **dst, int dst_linesize, \
464  const uint8_t **src, int src_linesize, \
465  int w, int h) \
466 { \
467  color_decorrelation(dst, dst_linesize, src, src_linesize, w, h, r, g, b); \
468 } \
469  \
470 static void color_correlation_##name(uint8_t **dst, int dst_linesize, \
471  float **src, int src_linesize, \
472  int w, int h) \
473 { \
474  color_correlation(dst, dst_linesize, src, src_linesize, w, h, r, g, b); \
475 }
476 
477 DECLARE_COLOR_FUNCS(rgb, 0, 1, 2)
478 DECLARE_COLOR_FUNCS(bgr, 2, 1, 0)
479 
480 static av_always_inline void color_decorrelation_gbrp(float **dst, int dst_linesize,
481  const uint8_t **src, int src_linesize,
482  int w, int h)
483 {
484  int x, y;
485  float *dstp_r = dst[0];
486  float *dstp_g = dst[1];
487  float *dstp_b = dst[2];
488  const uint8_t *srcp_r = src[2];
489  const uint8_t *srcp_g = src[0];
490  const uint8_t *srcp_b = src[1];
491 
492  for (y = 0; y < h; y++) {
493  for (x = 0; x < w; x++) {
494  dstp_r[x] = srcp_r[x] * DCT3X3_0_0 + srcp_g[x] * DCT3X3_0_1 + srcp_b[x] * DCT3X3_0_2;
495  dstp_g[x] = srcp_r[x] * DCT3X3_1_0 + srcp_b[x] * DCT3X3_1_2;
496  dstp_b[x] = srcp_r[x] * DCT3X3_2_0 + srcp_g[x] * DCT3X3_2_1 + srcp_b[x] * DCT3X3_2_2;
497  }
498  srcp_r += src_linesize;
499  srcp_g += src_linesize;
500  srcp_b += src_linesize;
501  dstp_r += dst_linesize;
502  dstp_g += dst_linesize;
503  dstp_b += dst_linesize;
504  }
505 }
506 
507 static av_always_inline void color_correlation_gbrp(uint8_t **dst, int dst_linesize,
508  float **src, int src_linesize,
509  int w, int h)
510 {
511  int x, y;
512  const float *src_r = src[0];
513  const float *src_g = src[1];
514  const float *src_b = src[2];
515  uint8_t *dstp_r = dst[2];
516  uint8_t *dstp_g = dst[0];
517  uint8_t *dstp_b = dst[1];
518 
519  for (y = 0; y < h; y++) {
520  for (x = 0; x < w; x++) {
521  dstp_r[x] = av_clip_uint8(src_r[x] * DCT3X3_0_0 + src_g[x] * DCT3X3_1_0 + src_b[x] * DCT3X3_2_0);
522  dstp_g[x] = av_clip_uint8(src_r[x] * DCT3X3_0_1 + src_b[x] * DCT3X3_2_1);
523  dstp_b[x] = av_clip_uint8(src_r[x] * DCT3X3_0_2 + src_g[x] * DCT3X3_1_2 + src_b[x] * DCT3X3_2_2);
524  }
525  dstp_r += dst_linesize;
526  dstp_g += dst_linesize;
527  dstp_b += dst_linesize;
528  src_r += src_linesize;
529  src_g += src_linesize;
530  src_b += src_linesize;
531  }
532 }
533 
534 static int config_input(AVFilterLink *inlink)
535 {
536  AVFilterContext *ctx = inlink->dst;
537  DCTdnoizContext *s = ctx->priv;
538  int i, x, y, bx, by, linesize, *iweights, max_slice_h, slice_h;
539  const int bsize = 1 << s->n;
540 
541  switch (inlink->format) {
542  case AV_PIX_FMT_BGR24:
543  s->color_decorrelation = color_decorrelation_bgr;
544  s->color_correlation = color_correlation_bgr;
545  break;
546  case AV_PIX_FMT_RGB24:
547  s->color_decorrelation = color_decorrelation_rgb;
548  s->color_correlation = color_correlation_rgb;
549  break;
550  case AV_PIX_FMT_GBRP:
551  s->color_decorrelation = color_decorrelation_gbrp;
552  s->color_correlation = color_correlation_gbrp;
553  break;
554  default:
555  av_assert0(0);
556  }
557 
558  s->pr_width = inlink->w - (inlink->w - bsize) % s->step;
559  s->pr_height = inlink->h - (inlink->h - bsize) % s->step;
560  if (s->pr_width != inlink->w)
561  av_log(ctx, AV_LOG_WARNING, "The last %d horizontal pixels won't be denoised\n",
562  inlink->w - s->pr_width);
563  if (s->pr_height != inlink->h)
564  av_log(ctx, AV_LOG_WARNING, "The last %d vertical pixels won't be denoised\n",
565  inlink->h - s->pr_height);
566 
567  max_slice_h = s->pr_height / ((s->bsize - 1) * 2);
568  if (max_slice_h == 0)
569  return AVERROR(EINVAL);
570 
571  s->nb_threads = FFMIN3(MAX_THREADS, ff_filter_get_nb_threads(ctx), max_slice_h);
572  av_log(ctx, AV_LOG_DEBUG, "threads: [max=%d hmax=%d user=%d] => %d\n",
573  MAX_THREADS, max_slice_h, ff_filter_get_nb_threads(ctx), s->nb_threads);
574 
575  s->p_linesize = linesize = FFALIGN(s->pr_width, 32);
576  for (i = 0; i < 2; i++) {
577  s->cbuf[i][0] = av_malloc_array(linesize * s->pr_height, sizeof(*s->cbuf[i][0]));
578  s->cbuf[i][1] = av_malloc_array(linesize * s->pr_height, sizeof(*s->cbuf[i][1]));
579  s->cbuf[i][2] = av_malloc_array(linesize * s->pr_height, sizeof(*s->cbuf[i][2]));
580  if (!s->cbuf[i][0] || !s->cbuf[i][1] || !s->cbuf[i][2])
581  return AVERROR(ENOMEM);
582  }
583 
584  /* eval expressions are probably not thread safe when the eval internal
585  * state can be changed (typically through load & store operations) */
586  if (s->expr_str) {
587  for (i = 0; i < s->nb_threads; i++) {
588  int ret = av_expr_parse(&s->expr[i], s->expr_str, var_names,
589  NULL, NULL, NULL, NULL, 0, ctx);
590  if (ret < 0)
591  return ret;
592  }
593  }
594 
595  /* each slice will need to (pre & re)process the top and bottom block of
596  * the previous one in in addition to its processing area. This is because
597  * each pixel is averaged by all the surrounding blocks */
598  slice_h = (int)ceilf(s->pr_height / (float)s->nb_threads) + (s->bsize - 1) * 2;
599  for (i = 0; i < s->nb_threads; i++) {
600  s->slices[i] = av_malloc_array(linesize, slice_h * sizeof(*s->slices[i]));
601  if (!s->slices[i])
602  return AVERROR(ENOMEM);
603  }
604 
605  s->weights = av_malloc(s->pr_height * linesize * sizeof(*s->weights));
606  if (!s->weights)
607  return AVERROR(ENOMEM);
608  iweights = av_calloc(s->pr_height, linesize * sizeof(*iweights));
609  if (!iweights)
610  return AVERROR(ENOMEM);
611  for (y = 0; y < s->pr_height - bsize + 1; y += s->step)
612  for (x = 0; x < s->pr_width - bsize + 1; x += s->step)
613  for (by = 0; by < bsize; by++)
614  for (bx = 0; bx < bsize; bx++)
615  iweights[(y + by)*linesize + x + bx]++;
616  for (y = 0; y < s->pr_height; y++)
617  for (x = 0; x < s->pr_width; x++)
618  s->weights[y*linesize + x] = 1. / iweights[y*linesize + x];
619  av_free(iweights);
620 
621  return 0;
622 }
623 
625 {
626  DCTdnoizContext *s = ctx->priv;
627 
628  s->bsize = 1 << s->n;
629  if (s->overlap == -1)
630  s->overlap = s->bsize - 1;
631 
632  if (s->overlap > s->bsize - 1) {
633  av_log(s, AV_LOG_ERROR, "Overlap value can not except %d "
634  "with a block size of %dx%d\n",
635  s->bsize - 1, s->bsize, s->bsize);
636  return AVERROR(EINVAL);
637  }
638 
639  if (s->expr_str) {
640  switch (s->n) {
641  case 3: s->filter_freq_func = filter_freq_expr_8; break;
642  case 4: s->filter_freq_func = filter_freq_expr_16; break;
643  default: av_assert0(0);
644  }
645  } else {
646  switch (s->n) {
647  case 3: s->filter_freq_func = filter_freq_sigma_8; break;
648  case 4: s->filter_freq_func = filter_freq_sigma_16; break;
649  default: av_assert0(0);
650  }
651  }
652 
653  s->th = s->sigma * 3.;
654  s->step = s->bsize - s->overlap;
655  return 0;
656 }
657 
659 {
660  static const enum AVPixelFormat pix_fmts[] = {
664  };
666  if (!fmts_list)
667  return AVERROR(ENOMEM);
668  return ff_set_common_formats(ctx, fmts_list);
669 }
670 
671 typedef struct ThreadData {
672  float *src, *dst;
673 } ThreadData;
674 
676  void *arg, int jobnr, int nb_jobs)
677 {
678  int x, y;
679  DCTdnoizContext *s = ctx->priv;
680  const ThreadData *td = arg;
681  const int w = s->pr_width;
682  const int h = s->pr_height;
683  const int slice_start = ff_slice_pos(h, jobnr, nb_jobs);
684  const int slice_end = ff_slice_pos(h, jobnr + 1, nb_jobs);
685  const int slice_start_ctx = FFMAX(slice_start - s->bsize + 1, 0);
686  const int slice_end_ctx = FFMIN(slice_end, h - s->bsize + 1);
687  const int slice_h = slice_end_ctx - slice_start_ctx;
688  const int src_linesize = s->p_linesize;
689  const int dst_linesize = s->p_linesize;
690  const int slice_linesize = s->p_linesize;
691  float *dst;
692  const float *src = td->src + slice_start_ctx * src_linesize;
693  const float *weights = s->weights + slice_start * dst_linesize;
694  float *slice = s->slices[jobnr];
695 
696  // reset block sums
697  memset(slice, 0, (slice_h + s->bsize - 1) * dst_linesize * sizeof(*slice));
698 
699  // block dct sums
700  for (y = 0; y < slice_h; y += s->step) {
701  for (x = 0; x < w - s->bsize + 1; x += s->step)
702  s->filter_freq_func(s, src + x, src_linesize,
703  slice + x, slice_linesize,
704  jobnr);
705  src += s->step * src_linesize;
706  slice += s->step * slice_linesize;
707  }
708 
709  // average blocks
710  slice = s->slices[jobnr] + (slice_start - slice_start_ctx) * slice_linesize;
711  dst = td->dst + slice_start * dst_linesize;
712  for (y = slice_start; y < slice_end; y++) {
713  for (x = 0; x < w; x++)
714  dst[x] = slice[x] * weights[x];
715  slice += slice_linesize;
716  dst += dst_linesize;
717  weights += dst_linesize;
718  }
719 
720  return 0;
721 }
722 
723 static int filter_frame(AVFilterLink *inlink, AVFrame *in)
724 {
725  AVFilterContext *ctx = inlink->dst;
726  DCTdnoizContext *s = ctx->priv;
727  AVFilterLink *outlink = inlink->dst->outputs[0];
728  int direct, plane;
729  AVFrame *out;
730 
731  if (av_frame_is_writable(in)) {
732  direct = 1;
733  out = in;
734  } else {
735  direct = 0;
736  out = ff_get_video_buffer(outlink, outlink->w, outlink->h);
737  if (!out) {
738  av_frame_free(&in);
739  return AVERROR(ENOMEM);
740  }
742  }
743 
744  s->color_decorrelation(s->cbuf[0], s->p_linesize,
745  (const uint8_t **)in->data, in->linesize[0],
746  s->pr_width, s->pr_height);
747  for (plane = 0; plane < 3; plane++) {
748  ThreadData td = {
749  .src = s->cbuf[0][plane],
750  .dst = s->cbuf[1][plane],
751  };
752  ctx->internal->execute(ctx, filter_slice, &td, NULL, s->nb_threads);
753  }
754  s->color_correlation(out->data, out->linesize[0],
755  s->cbuf[1], s->p_linesize,
756  s->pr_width, s->pr_height);
757 
758  if (!direct) {
759  int y;
760  uint8_t *dst = out->data[0];
761  const uint8_t *src = in->data[0];
762  const int dst_linesize = out->linesize[0];
763  const int src_linesize = in->linesize[0];
764  const int hpad = (inlink->w - s->pr_width) * 3;
765  const int vpad = (inlink->h - s->pr_height);
766 
767  if (hpad) {
768  uint8_t *dstp = dst + s->pr_width * 3;
769  const uint8_t *srcp = src + s->pr_width * 3;
770 
771  for (y = 0; y < s->pr_height; y++) {
772  memcpy(dstp, srcp, hpad);
773  dstp += dst_linesize;
774  srcp += src_linesize;
775  }
776  }
777  if (vpad) {
778  uint8_t *dstp = dst + s->pr_height * dst_linesize;
779  const uint8_t *srcp = src + s->pr_height * src_linesize;
780 
781  for (y = 0; y < vpad; y++) {
782  memcpy(dstp, srcp, inlink->w * 3);
783  dstp += dst_linesize;
784  srcp += src_linesize;
785  }
786  }
787 
788  av_frame_free(&in);
789  }
790 
791  return ff_filter_frame(outlink, out);
792 }
793 
795 {
796  int i;
797  DCTdnoizContext *s = ctx->priv;
798 
799  av_freep(&s->weights);
800  for (i = 0; i < 2; i++) {
801  av_freep(&s->cbuf[i][0]);
802  av_freep(&s->cbuf[i][1]);
803  av_freep(&s->cbuf[i][2]);
804  }
805  for (i = 0; i < s->nb_threads; i++) {
806  av_freep(&s->slices[i]);
807  av_expr_free(s->expr[i]);
808  }
809 }
810 
811 static const AVFilterPad dctdnoiz_inputs[] = {
812  {
813  .name = "default",
814  .type = AVMEDIA_TYPE_VIDEO,
815  .filter_frame = filter_frame,
816  .config_props = config_input,
817  },
818  { NULL }
819 };
820 
821 static const AVFilterPad dctdnoiz_outputs[] = {
822  {
823  .name = "default",
824  .type = AVMEDIA_TYPE_VIDEO,
825  },
826  { NULL }
827 };
828 
830  .name = "dctdnoiz",
831  .description = NULL_IF_CONFIG_SMALL("Denoise frames using 2D DCT."),
832  .priv_size = sizeof(DCTdnoizContext),
833  .init = init,
834  .uninit = uninit,
838  .priv_class = &dctdnoiz_class,
840 };
static const AVFilterPad inputs[]
Definition: af_acontrast.c:193
static const AVFilterPad outputs[]
Definition: af_acontrast.c:203
#define av_always_inline
Definition: attributes.h:45
#define av_cold
Definition: attributes.h:88
uint8_t pi<< 24) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_U8, uint8_t,(*(const uint8_t *) pi - 0x80) *(1.0f/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_U8, uint8_t,(*(const uint8_t *) pi - 0x80) *(1.0/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S16, int16_t,(*(const int16_t *) pi >> 8)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S16, int16_t, *(const int16_t *) pi *(1.0f/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S16, int16_t, *(const int16_t *) pi *(1.0/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S32, int32_t,(*(const int32_t *) pi >> 24)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S32, int32_t, *(const int32_t *) pi *(1.0f/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S32, int32_t, *(const int32_t *) pi *(1.0/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_FLT, float, av_clip_uint8(lrintf(*(const float *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_FLT, float, av_clip_int16(lrintf(*(const float *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_FLT, float, av_clipl_int32(llrintf(*(const float *) pi *(1U<< 31)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_DBL, double, av_clip_uint8(lrint(*(const double *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_DBL, double, av_clip_int16(lrint(*(const double *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_DBL, double, av_clipl_int32(llrint(*(const double *) pi *(1U<< 31)))) #define SET_CONV_FUNC_GROUP(ofmt, ifmt) static void set_generic_function(AudioConvert *ac) { } void ff_audio_convert_free(AudioConvert **ac) { if(! *ac) return;ff_dither_free(&(*ac) ->dc);av_freep(ac);} AudioConvert *ff_audio_convert_alloc(AVAudioResampleContext *avr, enum AVSampleFormat out_fmt, enum AVSampleFormat in_fmt, int channels, int sample_rate, int apply_map) { AudioConvert *ac;int in_planar, out_planar;ac=av_mallocz(sizeof(*ac));if(!ac) return NULL;ac->avr=avr;ac->out_fmt=out_fmt;ac->in_fmt=in_fmt;ac->channels=channels;ac->apply_map=apply_map;if(avr->dither_method !=AV_RESAMPLE_DITHER_NONE &&av_get_packed_sample_fmt(out_fmt)==AV_SAMPLE_FMT_S16 &&av_get_bytes_per_sample(in_fmt) > 2) { ac->dc=ff_dither_alloc(avr, out_fmt, in_fmt, channels, sample_rate, apply_map);if(!ac->dc) { av_free(ac);return NULL;} return ac;} in_planar=ff_sample_fmt_is_planar(in_fmt, channels);out_planar=ff_sample_fmt_is_planar(out_fmt, channels);if(in_planar==out_planar) { ac->func_type=CONV_FUNC_TYPE_FLAT;ac->planes=in_planar ? ac->channels :1;} else if(in_planar) ac->func_type=CONV_FUNC_TYPE_INTERLEAVE;else ac->func_type=CONV_FUNC_TYPE_DEINTERLEAVE;set_generic_function(ac);if(ARCH_AARCH64) ff_audio_convert_init_aarch64(ac);if(ARCH_ARM) ff_audio_convert_init_arm(ac);if(ARCH_X86) ff_audio_convert_init_x86(ac);return ac;} int ff_audio_convert(AudioConvert *ac, AudioData *out, AudioData *in) { int use_generic=1;int len=in->nb_samples;int p;if(ac->dc) { av_log(ac->avr, AV_LOG_TRACE, "%d samples - audio_convert: %s to %s (dithered)\n", len, av_get_sample_fmt_name(ac->in_fmt), av_get_sample_fmt_name(ac->out_fmt));return ff_convert_dither(ac-> in
uint8_t
simple assert() macros that are a bit more flexible than ISO C assert().
#define av_assert0(cond)
assert() equivalent, that is always enabled.
Definition: avassert.h:37
int ff_filter_frame(AVFilterLink *link, AVFrame *frame)
Send a frame of data to the next filter.
Definition: avfilter.c:1096
int ff_filter_get_nb_threads(AVFilterContext *ctx)
Get number of threads for current filter instance.
Definition: avfilter.c:802
#define flags(name, subs,...)
Definition: cbs_av1.c:572
#define s(width, name)
Definition: cbs_vp9.c:257
#define FFMIN(a, b)
Definition: common.h:105
#define FFMAX(a, b)
Definition: common.h:103
#define av_clip_uint8
Definition: common.h:128
#define FFMIN3(a, b, c)
Definition: common.h:106
#define NULL
Definition: coverity.c:32
static __device__ float ceilf(float a)
Definition: cuda_runtime.h:175
static float add(float src0, float src1)
void av_expr_free(AVExpr *e)
Free a parsed expression previously created with av_expr_parse().
Definition: eval.c:339
int av_expr_parse(AVExpr **expr, const char *s, const char *const *const_names, const char *const *func1_names, double(*const *funcs1)(void *, double), const char *const *func2_names, double(*const *funcs2)(void *, double, double), int log_offset, void *log_ctx)
Parse an expression.
Definition: eval.c:700
simple arithmetic expression evaluator
int
static int ff_slice_pos(int total, int jobnr, int nb_jobs)
Compute the boundary index for a slice when work of size total is split into nb_jobs slices.
Definition: filters.h:271
int ff_set_common_formats(AVFilterContext *ctx, AVFilterFormats *formats)
A helper for query_formats() which sets all links to the same list of formats.
Definition: formats.c:587
AVFilterFormats * ff_make_format_list(const int *fmts)
Create a list of supported formats.
Definition: formats.c:286
@ AV_OPT_TYPE_INT
Definition: opt.h:225
@ AV_OPT_TYPE_FLOAT
Definition: opt.h:228
@ AV_OPT_TYPE_STRING
Definition: opt.h:229
#define AVFILTER_FLAG_SUPPORT_TIMELINE_GENERIC
Some filters support a generic "enable" expression option that can be used to enable or disable a fil...
Definition: avfilter.h:126
#define AVFILTER_FLAG_SLICE_THREADS
The filter supports multithreading by splitting frames into multiple parts and processing them concur...
Definition: avfilter.h:117
#define AVERROR(e)
Definition: error.h:43
int av_frame_is_writable(AVFrame *frame)
Check if the frame data is writable.
Definition: frame.c:594
void av_frame_free(AVFrame **frame)
Free the frame and any dynamically allocated objects in it, e.g.
Definition: frame.c:203
int av_frame_copy_props(AVFrame *dst, const AVFrame *src)
Copy only "metadata" fields from src to dst.
Definition: frame.c:658
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
Definition: log.h:215
#define AV_LOG_WARNING
Something somehow does not look correct.
Definition: log.h:200
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
Definition: log.h:194
void * av_calloc(size_t nmemb, size_t size)
Non-inlined equivalent of av_mallocz_array().
Definition: mem.c:245
@ AVMEDIA_TYPE_VIDEO
Definition: avutil.h:201
static const int weights[]
Definition: hevc_pel.c:32
int i
Definition: input.c:407
const char * arg
Definition: jacosubdec.c:66
static void direct(const float *in, const FFTComplex *ir, int len, float *out)
Definition: af_afir.c:60
common internal API header
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification.
Definition: internal.h:117
static enum AVPixelFormat pix_fmts[]
Definition: libkvazaar.c:309
uint8_t w
Definition: llviddspenc.c:39
#define FFALIGN(x, a)
Definition: macros.h:48
static int slice_end(AVCodecContext *avctx, AVFrame *pict)
Handle slice ends.
Definition: mpeg12dec.c:2033
AVOptions.
AVPixelFormat
Pixel format.
Definition: pixfmt.h:64
@ AV_PIX_FMT_NONE
Definition: pixfmt.h:65
@ AV_PIX_FMT_RGB24
packed RGB 8:8:8, 24bpp, RGBRGB...
Definition: pixfmt.h:68
@ AV_PIX_FMT_BGR24
packed RGB 8:8:8, 24bpp, BGRBGR...
Definition: pixfmt.h:69
@ AV_PIX_FMT_GBRP
planar GBR 4:4:4 24bpp
Definition: pixfmt.h:168
#define td
Definition: regdef.h:70
typedef void(RENAME(mix_any_func_type))
Describe the class of an AVClass context structure.
Definition: log.h:67
Definition: eval.c:159
An instance of a filter.
Definition: avfilter.h:341
AVFilterLink ** outputs
array of pointers to output links
Definition: avfilter.h:353
A list of supported formats for one end of a filter link.
Definition: formats.h:65
A filter pad used for either input or output.
Definition: internal.h:54
const char * name
Pad name.
Definition: internal.h:60
Filter definition.
Definition: avfilter.h:145
const char * name
Filter name.
Definition: avfilter.h:149
AVFormatInternal * internal
An opaque field for libavformat internal usage.
Definition: avformat.h:1699
This structure describes decoded (raw) audio or video data.
Definition: frame.h:318
AVOption.
Definition: opt.h:248
void(* color_correlation)(uint8_t **dst, int dst_linesize, float **src, int src_linesize, int w, int h)
Definition: vf_dctdnoiz.c:70
double var_values[MAX_THREADS][VAR_VARS_NB]
Definition: vf_dctdnoiz.c:49
AVExpr * expr[MAX_THREADS]
Definition: vf_dctdnoiz.c:48
void(* filter_freq_func)(struct DCTdnoizContext *s, const float *src, int src_linesize, float *dst, int dst_linesize, int thread_id)
Definition: vf_dctdnoiz.c:63
float * cbuf[2][3]
Definition: vf_dctdnoiz.c:55
void(* color_decorrelation)(float **dst, int dst_linesize, const uint8_t **src, int src_linesize, int w, int h)
Definition: vf_dctdnoiz.c:67
float * slices[MAX_THREADS]
Definition: vf_dctdnoiz.c:56
float * weights
Definition: vf_dctdnoiz.c:57
Used for passing data between threads.
Definition: dsddec.c:67
float * dst
Definition: vf_dctdnoiz.c:672
const uint8_t * src
Definition: vf_bm3d.c:56
Definition: rpzaenc.c:58
#define av_free(p)
#define av_malloc_array(a, b)
#define av_freep(p)
#define av_malloc(s)
#define av_log(a,...)
#define src
Definition: vp8dsp.c:255
FILE * out
Definition: movenc.c:54
AVFormatContext * ctx
Definition: movenc.c:48
const char * b
Definition: vf_curves.c:119
const char * g
Definition: vf_curves.c:118
const char * r
Definition: vf_curves.c:117
#define MAX_NBITS
Definition: vf_dctdnoiz.c:76
static av_always_inline void color_correlation(uint8_t **dst, int dst_linesize, float **src, int src_linesize, int w, int h, int r, int g, int b)
Definition: vf_dctdnoiz.c:437
static int filter_slice(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
Definition: vf_dctdnoiz.c:675
#define DCT3X3_0_0
Definition: vf_dctdnoiz.c:403
#define DCT3X3_2_0
Definition: vf_dctdnoiz.c:408
static void av_always_inline idct16_1d(float *dst, const float *src, int dst_stridea, int dst_strideb, int src_stridea, int src_strideb, int add)
Definition: vf_dctdnoiz.c:259
#define DCT3X3_0_2
Definition: vf_dctdnoiz.c:405
#define DCT3X3_2_1
Definition: vf_dctdnoiz.c:409
AVFilter ff_vf_dctdnoiz
Definition: vf_dctdnoiz.c:829
static int query_formats(AVFilterContext *ctx)
Definition: vf_dctdnoiz.c:658
static const AVFilterPad dctdnoiz_outputs[]
Definition: vf_dctdnoiz.c:821
static int config_input(AVFilterLink *inlink)
Definition: vf_dctdnoiz.c:534
#define FLAGS
Definition: vf_dctdnoiz.c:80
#define DEFAULT_NBITS
Definition: vf_dctdnoiz.c:77
static void av_always_inline fdct8_1d(float *dst, const float *src, int dst_stridea, int dst_strideb, int src_stridea, int src_strideb)
Definition: vf_dctdnoiz.c:93
#define MIN_NBITS
Definition: vf_dctdnoiz.c:75
static av_always_inline void color_decorrelation(float **dst, int dst_linesize, const uint8_t **src, int src_linesize, int w, int h, int r, int g, int b)
Definition: vf_dctdnoiz.c:412
#define MAX_THREADS
Definition: vf_dctdnoiz.c:41
#define DCT3X3_1_0
Definition: vf_dctdnoiz.c:406
#define DCT3X3_1_2
Definition: vf_dctdnoiz.c:407
static int filter_frame(AVFilterLink *inlink, AVFrame *in)
Definition: vf_dctdnoiz.c:723
static av_always_inline void color_decorrelation_gbrp(float **dst, int dst_linesize, const uint8_t **src, int src_linesize, int w, int h)
Definition: vf_dctdnoiz.c:480
static const AVOption dctdnoiz_options[]
Definition: vf_dctdnoiz.c:81
static void av_always_inline fdct16_1d(float *dst, const float *src, int dst_stridea, int dst_strideb, int src_stridea, int src_strideb)
Definition: vf_dctdnoiz.c:175
static void av_always_inline idct8_1d(float *dst, const float *src, int dst_stridea, int dst_strideb, int src_stridea, int src_strideb, int add)
Definition: vf_dctdnoiz.c:131
static const char *const var_names[]
A simple, relatively efficient and slow DCT image denoiser.
Definition: vf_dctdnoiz.c:38
AVFILTER_DEFINE_CLASS(dctdnoiz)
static av_always_inline void color_correlation_gbrp(uint8_t **dst, int dst_linesize, float **src, int src_linesize, int w, int h)
Definition: vf_dctdnoiz.c:507
static av_cold int init(AVFilterContext *ctx)
Definition: vf_dctdnoiz.c:624
static av_cold void uninit(AVFilterContext *ctx)
Definition: vf_dctdnoiz.c:794
static const AVFilterPad dctdnoiz_inputs[]
Definition: vf_dctdnoiz.c:811
#define OFFSET(x)
Definition: vf_dctdnoiz.c:79
#define DECLARE_COLOR_FUNCS(name, r, g, b)
Definition: vf_dctdnoiz.c:462
#define DEF_FILTER_FREQ_FUNCS(bsize)
Definition: vf_dctdnoiz.c:354
#define DCT3X3_2_2
Definition: vf_dctdnoiz.c:410
#define DCT3X3_0_1
Definition: vf_dctdnoiz.c:404
@ VAR_VARS_NB
Definition: vf_dctdnoiz.c:39
@ VAR_C
Definition: vf_dctdnoiz.c:39
AVFrame * ff_get_video_buffer(AVFilterLink *link, int w, int h)
Request a picture buffer with a specific set of permissions.
Definition: video.c:104