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51 #define OFFSET(x) offsetof(DebandContext, x)
52 #define FLAGS AV_OPT_FLAG_FILTERING_PARAM|AV_OPT_FLAG_VIDEO_PARAM
119 const float r =
sinf(x * 12.9898 + y * 78.233) * 43758.545;
121 return r - floorf(
r);
124 static int inline get_avg(
int ref0,
int ref1,
int ref2,
int ref3)
126 return (ref0 + ref1 + ref2 + ref3) / 4;
141 for (p = 0; p <
s->nb_components; p++) {
144 const int dst_linesize =
out->linesize[p];
145 const int src_linesize =
in->linesize[p];
146 const int thr =
s->thr[p];
147 const int start = (
s->planeheight[p] * jobnr ) / nb_jobs;
148 const int end = (
s->planeheight[p] * (jobnr+1)) / nb_jobs;
149 const int w =
s->planewidth[p] - 1;
150 const int h =
s->planeheight[p] - 1;
153 const int pos = y *
s->planewidth[0];
155 for (x = 0; x <
s->planewidth[p]; x++) {
156 const int x_pos =
s->x_pos[pos + x];
157 const int y_pos =
s->y_pos[pos + x];
158 const int ref0 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
159 const int ref1 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
160 const int ref2 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
161 const int ref3 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
162 const int src0 = src_ptr[y * src_linesize + x];
165 const int avg =
get_avg(ref0, ref1, ref2, ref3);
168 dst_ptr[y * dst_linesize + x] =
diff < thr ?
avg :
src0;
170 dst_ptr[y * dst_linesize + x] = (
FFABS(
src0 - ref0) < thr) &&
188 const int start = (
s->planeheight[0] * jobnr ) / nb_jobs;
189 const int end = (
s->planeheight[0] * (jobnr+1)) / nb_jobs;
193 const int pos = y *
s->planewidth[0];
195 for (x = 0; x <
s->planewidth[0]; x++) {
196 const int x_pos =
s->x_pos[pos + x];
197 const int y_pos =
s->y_pos[pos + x];
200 for (p = 0; p <
s->nb_components; p++) {
202 const int src_linesize =
in->linesize[p];
203 const int thr =
s->thr[p];
204 const int w =
s->planewidth[p] - 1;
205 const int h =
s->planeheight[p] - 1;
206 const int ref0 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
207 const int ref1 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
208 const int ref2 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
209 const int ref3 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
210 const int src0 = src_ptr[y * src_linesize + x];
225 for (p = 0; p <
s->nb_components; p++)
228 if (p ==
s->nb_components) {
229 for (p = 0; p <
s->nb_components; p++) {
230 const int dst_linesize =
out->linesize[p];
232 out->data[p][y * dst_linesize + x] =
avg[p];
235 for (p = 0; p <
s->nb_components; p++) {
236 const int dst_linesize =
out->linesize[p];
238 out->data[p][y * dst_linesize + x] =
src[p];
253 const int start = (
s->planeheight[0] * jobnr ) / nb_jobs;
254 const int end = (
s->planeheight[0] * (jobnr+1)) / nb_jobs;
258 const int pos = y *
s->planewidth[0];
260 for (x = 0; x <
s->planewidth[0]; x++) {
261 const int x_pos =
s->x_pos[pos + x];
262 const int y_pos =
s->y_pos[pos + x];
265 for (p = 0; p <
s->nb_components; p++) {
266 const uint16_t *src_ptr = (
const uint16_t *)
in->data[p];
267 const int src_linesize =
in->linesize[p] / 2;
268 const int thr =
s->thr[p];
269 const int w =
s->planewidth[p] - 1;
270 const int h =
s->planeheight[p] - 1;
271 const int ref0 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
272 const int ref1 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
273 const int ref2 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
274 const int ref3 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
275 const int src0 = src_ptr[y * src_linesize + x];
290 for (z = 0; z <
s->nb_components; z++)
293 if (z ==
s->nb_components) {
294 for (p = 0; p <
s->nb_components; p++) {
295 const int dst_linesize =
out->linesize[p] / 2;
296 uint16_t *dst = (uint16_t *)
out->data[p] + y * dst_linesize + x;
301 for (p = 0; p <
s->nb_components; p++) {
302 const int dst_linesize =
out->linesize[p] / 2;
303 uint16_t *dst = (uint16_t *)
out->data[p] + y * dst_linesize + x;
322 for (p = 0; p <
s->nb_components; p++) {
323 const uint16_t *src_ptr = (
const uint16_t *)
in->data[p];
324 uint16_t *dst_ptr = (uint16_t *)
out->data[p];
325 const int dst_linesize =
out->linesize[p] / 2;
326 const int src_linesize =
in->linesize[p] / 2;
327 const int thr =
s->thr[p];
328 const int start = (
s->planeheight[p] * jobnr ) / nb_jobs;
329 const int end = (
s->planeheight[p] * (jobnr+1)) / nb_jobs;
330 const int w =
s->planewidth[p] - 1;
331 const int h =
s->planeheight[p] - 1;
334 const int pos = y *
s->planewidth[0];
336 for (x = 0; x <
s->planewidth[p]; x++) {
337 const int x_pos =
s->x_pos[pos + x];
338 const int y_pos =
s->y_pos[pos + x];
339 const int ref0 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
340 const int ref1 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + x_pos, 0,
w)];
341 const int ref2 = src_ptr[av_clip(y + -y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
342 const int ref3 = src_ptr[av_clip(y + y_pos, 0,
h) * src_linesize + av_clip(x + -x_pos, 0,
w)];
343 const int src0 = src_ptr[y * src_linesize + x];
346 const int avg =
get_avg(ref0, ref1, ref2, ref3);
349 dst_ptr[y * dst_linesize + x] =
diff < thr ?
avg :
src0;
351 dst_ptr[y * dst_linesize + x] = (
FFABS(
src0 - ref0) < thr) &&
368 const float direction =
s->direction;
369 const int range =
s->range;
372 s->nb_components =
desc->nb_components;
375 s->planeheight[0] =
s->planeheight[3] =
inlink->h;
377 s->planewidth[0] =
s->planewidth[3] =
inlink->w;
378 s->shift[0] =
desc->log2_chroma_w;
379 s->shift[1] =
desc->log2_chroma_h;
386 s->thr[0] = ((1 <<
desc->comp[0].depth) - 1) *
s->threshold[0];
387 s->thr[1] = ((1 <<
desc->comp[1].depth) - 1) *
s->threshold[1];
388 s->thr[2] = ((1 <<
desc->comp[2].depth) - 1) *
s->threshold[2];
389 s->thr[3] = ((1 <<
desc->comp[3].depth) - 1) *
s->threshold[3];
391 s->x_pos =
av_malloc(
s->planewidth[0] *
s->planeheight[0] *
sizeof(*
s->x_pos));
392 s->y_pos =
av_malloc(
s->planewidth[0] *
s->planeheight[0] *
sizeof(*
s->y_pos));
393 if (!
s->x_pos || !
s->y_pos)
396 for (y = 0; y <
s->planeheight[0]; y++) {
397 for (x = 0; x <
s->planewidth[0]; x++) {
398 const float r =
frand(x, y);
399 const float dir = direction < 0 ? -direction :
r * direction;
400 const int dist = range < 0 ? -range :
r * range;
402 s->x_pos[y *
s->planewidth[0] + x] =
cosf(dir) * dist;
403 s->y_pos[y *
s->planewidth[0] + x] =
sinf(dir) * dist;
464 .priv_class = &deband_class,
AVFrame * ff_get_video_buffer(AVFilterLink *link, int w, int h)
Request a picture buffer with a specific set of permissions.
#define AV_PIX_FMT_YUVA422P16
#define AV_PIX_FMT_GBRAP16
static int deband_16_coupling_c(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
AVPixelFormat
Pixel format.
Filter the word “frame” indicates either a video frame or a group of audio as stored in an AVFrame structure Format for each input and each output the list of supported formats For video that means pixel format For audio that means channel sample they are references to shared objects When the negotiation mechanism computes the intersection of the formats supported at each end of a all references to both lists are replaced with a reference to the intersection And when a single format is eventually chosen for a link amongst the remaining all references to the list are updated That means that if a filter requires that its input and output have the same format amongst a supported all it has to do is use a reference to the same list of formats query_formats can leave some formats unset and return AVERROR(EAGAIN) to cause the negotiation mechanism toagain later. That can be used by filters with complex requirements to use the format negotiated on one link to set the formats supported on another. Frame references ownership and permissions
int ff_filter_frame(AVFilterLink *link, AVFrame *frame)
Send a frame of data to the next filter.
const AVPixFmtDescriptor * av_pix_fmt_desc_get(enum AVPixelFormat pix_fmt)
static int deband_8_coupling_c(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
The exact code depends on how similar the blocks are and how related they are to the and needs to apply these operations to the correct inlink or outlink if there are several Macros are available to factor that when no extra processing is inlink
void av_frame_free(AVFrame **frame)
Free the frame and any dynamically allocated objects in it, e.g.
static av_cold int end(AVCodecContext *avctx)
#define AV_PIX_FMT_YUVA422P9
This structure describes decoded (raw) audio or video data.
#define AV_PIX_FMT_YUVA420P16
static float frand(int x, int y)
#define AV_PIX_FMT_YUVA420P10
static int config_input(AVFilterLink *inlink)
static int filter_frame(AVFilterLink *inlink, AVFrame *in)
@ AV_PIX_FMT_YUV440P
planar YUV 4:4:0 (1 Cr & Cb sample per 1x2 Y samples)
const char * name
Filter name.
AVFormatInternal * internal
An opaque field for libavformat internal usage.
A link between two filters.
#define AV_PIX_FMT_YUVA422P10
#define AV_PIX_FMT_YUVA420P9
static int deband_16_c(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
#define AV_PIX_FMT_GBRP14
@ AV_PIX_FMT_GBRAP
planar GBRA 4:4:4:4 32bpp
#define AV_PIX_FMT_GBRP10
#define AV_PIX_FMT_YUVA444P16
#define AV_PIX_FMT_YUV422P9
#define AV_PIX_FMT_GRAY16
int(* deband)(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
A filter pad used for either input or output.
@ AV_PIX_FMT_YUVJ411P
planar YUV 4:1:1, 12bpp, (1 Cr & Cb sample per 4x1 Y samples) full scale (JPEG), deprecated in favor ...
#define AV_PIX_FMT_YUV422P16
@ AV_PIX_FMT_YUVJ422P
planar YUV 4:2:2, 16bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV422P and setting col...
@ AV_PIX_FMT_YUVA420P
planar YUV 4:2:0, 20bpp, (1 Cr & Cb sample per 2x2 Y & A samples)
#define AV_PIX_FMT_YUV444P16
#define AV_CEIL_RSHIFT(a, b)
static const AVFilterPad outputs[]
static enum AVPixelFormat pix_fmts[]
#define AV_PIX_FMT_YUV420P9
#define AV_PIX_FMT_YUV420P16
@ AV_PIX_FMT_YUV420P
planar YUV 4:2:0, 12bpp, (1 Cr & Cb sample per 2x2 Y samples)
static av_always_inline int cmp(MpegEncContext *s, const int x, const int y, const int subx, const int suby, const int size, const int h, int ref_index, int src_index, me_cmp_func cmp_func, me_cmp_func chroma_cmp_func, const int flags)
compares a block (either a full macroblock or a partition thereof) against a proposed motion-compensa...
@ AV_PIX_FMT_YUVJ444P
planar YUV 4:4:4, 24bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV444P and setting col...
#define FFABS(a)
Absolute value, Note, INT_MIN / INT64_MIN result in undefined behavior as they are not representable ...
#define AV_PIX_FMT_GBRP16
Describe the class of an AVClass context structure.
int av_frame_copy_props(AVFrame *dst, const AVFrame *src)
Copy only "metadata" fields from src to dst.
@ AV_PIX_FMT_YUVJ420P
planar YUV 4:2:0, 12bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV420P and setting col...
these buffered frames must be flushed immediately if a new input produces new the filter must not call request_frame to get more It must just process the frame or queue it The task of requesting more frames is left to the filter s request_frame method or the application If a filter has several inputs
@ AV_PIX_FMT_GRAY8
Y , 8bpp.
static int get_avg(int ref0, int ref1, int ref2, int ref3)
static void blur(uint8_t *dst, int dst_step, const uint8_t *src, int src_step, int len, int radius, int pixsize)
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification.
#define AV_PIX_FMT_YUV422P12
#define AV_PIX_FMT_YUV444P12
static const AVFilterPad avfilter_vf_deband_inputs[]
@ AV_PIX_FMT_YUVA444P
planar YUV 4:4:4 32bpp, (1 Cr & Cb sample per 1x1 Y & A samples)
#define AV_PIX_FMT_YUVA444P10
#define AVFILTER_FLAG_SUPPORT_TIMELINE_GENERIC
Some filters support a generic "enable" expression option that can be used to enable or disable a fil...
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
int w
agreed upon image width
#define AV_PIX_FMT_GBRP12
int ff_filter_get_nb_threads(AVFilterContext *ctx)
Get number of threads for current filter instance.
Used for passing data between threads.
@ AV_PIX_FMT_YUVJ440P
planar YUV 4:4:0 full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV440P and setting color_range
static const AVOption deband_options[]
const char * name
Pad name.
#define AV_PIX_FMT_YUV444P9
static const AVFilterPad avfilter_vf_deband_outputs[]
static int query_formats(AVFilterContext *ctx)
#define AV_PIX_FMT_YUVA444P9
#define AV_PIX_FMT_YUV420P12
#define AV_PIX_FMT_YUV422P14
int h
agreed upon image height
AVFILTER_DEFINE_CLASS(deband)
@ AV_PIX_FMT_YUV444P
planar YUV 4:4:4, 24bpp, (1 Cr & Cb sample per 1x1 Y samples)
static int deband_8_c(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
@ AV_PIX_FMT_GBRP
planar GBR 4:4:4 24bpp
#define AVFILTER_FLAG_SLICE_THREADS
The filter supports multithreading by splitting frames into multiple parts and processing them concur...
@ AV_PIX_FMT_YUV422P
planar YUV 4:2:2, 16bpp, (1 Cr & Cb sample per 2x1 Y samples)
Descriptor that unambiguously describes how the bits of a pixel are stored in the up to 4 data planes...
static av_always_inline int diff(const uint32_t a, const uint32_t b)
@ AV_PIX_FMT_YUV411P
planar YUV 4:1:1, 12bpp, (1 Cr & Cb sample per 4x1 Y samples)
#define flags(name, subs,...)
@ AV_PIX_FMT_YUV410P
planar YUV 4:1:0, 9bpp, (1 Cr & Cb sample per 4x4 Y samples)
#define AV_PIX_FMT_YUV444P14
static av_cold void uninit(AVFilterContext *ctx)
@ AV_PIX_FMT_YUVA422P
planar YUV 4:2:2 24bpp, (1 Cr & Cb sample per 2x1 Y & A samples)
#define AV_PIX_FMT_YUV420P14