Go to the documentation of this file.
46 #define MAX_NB_THREADS 32
119 const uint8_t *
src,
int src_stride,
122 int plane,
int nb_jobs);
124 const uint8_t *
src,
int src_linesize,
125 const uint8_t *
ref,
int ref_linesize,
126 int y,
int x,
int plane,
int jobnr);
129 #define OFFSET(x) offsetof(BM3DContext, x)
130 #define FLAGS AV_OPT_FLAG_FILTERING_PARAM|AV_OPT_FLAG_VIDEO_PARAM
132 {
"sigma",
"set denoising strength",
134 {
"block",
"set log2(size) of local patch",
136 {
"bstep",
"set sliding step for processing blocks",
138 {
"group",
"set maximal number of similar blocks",
140 {
"range",
"set block matching range",
142 {
"mstep",
"set step for block matching",
144 {
"thmse",
"set threshold of mean square error for block matching",
146 {
"hdthr",
"set hard threshold for 3D transfer domain",
148 {
"estim",
"set filtering estimation mode",
150 {
"basic",
"basic estimate",
152 {
"final",
"final estimate",
154 {
"ref",
"have reference stream",
156 {
"planes",
"set planes to filter",
193 search_range = search_range / search_step * search_step;
195 if (
pos == plane_boundary) {
197 }
else if (
pos > plane_boundary) {
214 static int search_boundary(
int plane_boundary,
int search_range,
int search_step,
int vertical,
int y,
int x)
216 return do_search_boundary(vertical ? y : x, plane_boundary, search_range, search_step);
228 const uint8_t *srcp =
src +
pos->y * src_stride +
pos->x;
229 const uint8_t *refp =
src + r_y * src_stride + r_x;
230 const int block_size =
s->block_size;
234 for (
y = 0;
y < block_size;
y++) {
235 for (
x = 0;
x < block_size;
x++) {
236 double temp = refp[
x] - srcp[
x];
249 const uint16_t *srcp = (uint16_t *)
src +
pos->y * src_stride / 2 +
pos->x;
250 const uint16_t *refp = (uint16_t *)
src + r_y * src_stride / 2 + r_x;
251 const int block_size =
s->block_size;
255 for (
y = 0;
y < block_size;
y++) {
256 for (
x = 0;
x < block_size;
x++) {
257 double temp = refp[
x] - srcp[
x];
261 srcp += src_stride / 2;
262 refp += src_stride / 2;
269 const PosCode *search_pos,
int search_size,
float th_mse,
270 int r_y,
int r_x,
int plane,
int jobnr)
273 double MSE2SSE =
s->group_size *
s->block_size *
s->block_size * src_range * src_range / (
s->max *
s->max);
274 double distMul = 1. / MSE2SSE;
275 double th_sse = th_mse * MSE2SSE;
278 for (
i = 0;
i < search_size;
i++) {
282 dist =
s->do_block_ssd(
s, &
pos,
src, src_stride, r_y, r_x);
285 if (dist <= th_sse && dist != 0) {
286 const double score = dist * distMul;
292 if (
index >=
s->group_size)
293 index =
s->group_size - 1;
307 int exclude_cur_pos,
int plane,
int jobnr)
310 const int width =
s->planewidth[plane];
311 const int height =
s->planeheight[plane];
312 const int block_size =
s->block_size;
313 const int step =
s->bm_step;
314 const int range =
s->bm_range /
step *
step;
321 for (j = t; j <=
b; j +=
step) {
325 if (exclude_cur_pos > 0 && j ==
y &&
i ==
x) {
335 if (exclude_cur_pos == 1) {
347 int j,
int i,
int plane,
int jobnr)
351 if (
s->group_size == 1 ||
s->th_mse <= 0.f) {
364 int y,
int x,
int block_size,
float *dst)
366 const uint8_t *
src = srcp +
y * src_linesize +
x;
369 for (j = 0; j < block_size; j++) {
375 int y,
int x,
int block_size,
float *dst)
377 const uint16_t *
src = (uint16_t *)srcp +
y * src_linesize / 2 +
x;
380 for (j = 0; j < block_size; j++) {
386 const uint8_t *
ref,
int ref_linesize,
387 int y,
int x,
int plane,
int jobnr)
390 const int buffer_linesize =
s->block_size *
s->block_size;
392 const int block_size =
s->block_size;
393 const int width =
s->planewidth[plane];
394 const int pgroup_size =
s->pgroup_size;
395 const int group_size =
s->group_size;
401 float den_weight, num_weight;
405 for (k = 0; k < nb_match_blocks; k++) {
409 for (
i = 0;
i < block_size;
i++) {
410 s->get_block_row(
src, src_linesize,
y +
i,
x, block_size, bufferh + block_size *
i);
414 for (
i = 0;
i < block_size;
i++) {
415 for (j = 0; j < block_size; j++) {
416 bufferv[
i * block_size + j] = bufferh[j * block_size +
i];
421 for (
i = 0;
i < block_size;
i++) {
422 memcpy(
buffer + k * buffer_linesize +
i * block_size,
423 bufferv +
i * block_size, block_size * 4);
427 for (
i = 0;
i < block_size;
i++) {
428 for (j = 0; j < block_size; j++) {
429 for (k = 0; k < nb_match_blocks; k++)
430 bufferz[k] =
buffer[buffer_linesize * k +
i * block_size + j];
433 bufferz += pgroup_size;
437 threshold[0] =
s->hard_threshold *
s->sigma *
M_SQRT2 * block_size * block_size * (1 << (
s->depth - 8)) / 255.f;
438 threshold[1] = threshold[0] * sqrtf(2.
f);
439 threshold[2] = threshold[0] * 2.f;
440 threshold[3] = threshold[0] * sqrtf(8.
f);
443 for (
i = 0;
i < block_size;
i++) {
444 for (j = 0; j < block_size; j++) {
445 for (k = 0; k < nb_match_blocks; k++) {
446 const float thresh = threshold[(j == 0) + (
i == 0) + (k == 0)];
448 if (bufferz[k] > thresh || bufferz[k] < -thresh) {
454 bufferz += pgroup_size;
460 for (
i = 0;
i < block_size;
i++) {
461 for (j = 0; j < block_size; j++) {
464 for (k = 0; k < nb_match_blocks; k++) {
465 buffer[buffer_linesize * k +
i * block_size + j] = bufferz[k];
467 bufferz += pgroup_size;
471 den_weight = retained < 1 ? 1.f : 1.f / retained;
472 num_weight = den_weight;
475 for (k = 0; k < nb_match_blocks; k++) {
479 for (
i = 0;
i < block_size;
i++) {
480 memcpy(bufferv +
i * block_size,
481 buffer + k * buffer_linesize +
i * block_size,
485 for (
i = 0;
i < block_size;
i++) {
487 for (j = 0; j < block_size; j++) {
488 bufferh[j * block_size +
i] = bufferv[
i * block_size + j];
492 for (
i = 0;
i < block_size;
i++) {
494 for (j = 0; j < block_size; j++) {
495 num[j] += bufferh[
i * block_size + j] * num_weight;
496 den[j] += den_weight;
505 const uint8_t *
ref,
int ref_linesize,
506 int y,
int x,
int plane,
int jobnr)
509 const int buffer_linesize =
s->block_size *
s->block_size;
511 const int block_size =
s->block_size;
512 const int width =
s->planewidth[plane];
513 const int pgroup_size =
s->pgroup_size;
514 const int group_size =
s->group_size;
515 const float sigma_sqr =
s->sigma *
s->sigma;
524 float den_weight, num_weight;
528 for (k = 0; k < nb_match_blocks; k++) {
532 for (
i = 0;
i < block_size;
i++) {
533 s->get_block_row(
src, src_linesize,
y +
i,
x, block_size, bufferh + block_size *
i);
534 s->get_block_row(
ref, ref_linesize,
y +
i,
x, block_size, rbufferh + block_size *
i);
539 for (
i = 0;
i < block_size;
i++) {
540 for (j = 0; j < block_size; j++) {
541 bufferv[
i * block_size + j] = bufferh[j * block_size +
i];
542 rbufferv[
i * block_size + j] = rbufferh[j * block_size +
i];
548 for (
i = 0;
i < block_size;
i++) {
549 memcpy(
buffer + k * buffer_linesize +
i * block_size,
550 bufferv +
i * block_size, block_size * 4);
551 memcpy(rbuffer + k * buffer_linesize +
i * block_size,
552 rbufferv +
i * block_size, block_size * 4);
556 for (
i = 0;
i < block_size;
i++) {
557 for (j = 0; j < block_size; j++) {
558 for (k = 0; k < nb_match_blocks; k++) {
559 bufferz[k] =
buffer[buffer_linesize * k +
i * block_size + j];
560 rbufferz[k] = rbuffer[buffer_linesize * k +
i * block_size + j];
562 if (group_size > 1) {
566 bufferz += pgroup_size;
567 rbufferz += pgroup_size;
574 for (
i = 0;
i < block_size;
i++) {
575 for (j = 0; j < block_size; j++) {
576 for (k = 0; k < nb_match_blocks; k++) {
577 const float ref_sqr = rbufferz[k] * rbufferz[k];
578 float wiener_coef = ref_sqr / (ref_sqr + sigma_sqr);
580 if (
isnan(wiener_coef))
582 bufferz[k] *= wiener_coef;
583 l2_wiener += wiener_coef * wiener_coef;
585 bufferz += pgroup_size;
586 rbufferz += pgroup_size;
592 for (
i = 0;
i < block_size;
i++) {
593 for (j = 0; j < block_size; j++) {
596 for (k = 0; k < nb_match_blocks; k++) {
597 buffer[buffer_linesize * k +
i * block_size + j] = bufferz[k];
599 bufferz += pgroup_size;
603 l2_wiener =
FFMAX(l2_wiener, 1e-15
f);
604 den_weight = 1.f / l2_wiener;
605 num_weight = den_weight;
607 for (k = 0; k < nb_match_blocks; k++) {
611 for (
i = 0;
i < block_size;
i++) {
612 memcpy(bufferv +
i * block_size,
613 buffer + k * buffer_linesize +
i * block_size,
617 for (
i = 0;
i < block_size;
i++) {
619 for (j = 0; j < block_size; j++) {
620 bufferh[j * block_size +
i] = bufferv[
i * block_size + j];
624 for (
i = 0;
i < block_size;
i++) {
626 for (j = 0; j < block_size; j++) {
627 num[j] += bufferh[
i * block_size + j] * num_weight;
628 den[j] += den_weight;
637 int plane,
int nb_jobs)
639 const int height =
s->planeheight[plane];
640 const int width =
s->planewidth[plane];
644 for (j = 0; j <
width; j++) {
645 uint8_t *dstp = dst +
i * dst_linesize;
649 for (k = 0; k < nb_jobs; k++) {
664 int plane,
int nb_jobs)
666 const int height =
s->planeheight[plane];
667 const int width =
s->planewidth[plane];
668 const int depth =
s->depth;
672 for (j = 0; j <
width; j++) {
673 uint16_t *dstp = (uint16_t *)dst +
i * dst_linesize / 2;
677 for (k = 0; k < nb_jobs; k++) {
695 const int block_step =
s->block_step;
697 const uint8_t *
src =
td->src;
698 const uint8_t *
ref =
td->ref;
699 const int src_linesize =
td->src_linesize;
700 const int ref_linesize =
td->ref_linesize;
701 const int plane =
td->plane;
702 const int width =
s->planewidth[plane];
703 const int height =
s->planeheight[plane];
704 const int block_pos_bottom =
FFMAX(0,
height -
s->block_size);
705 const int block_pos_right =
FFMAX(0,
width -
s->block_size);
706 const int slice_start = (((
height + block_step - 1) / block_step) * jobnr / nb_jobs) * block_step;
707 const int slice_end = (jobnr == nb_jobs - 1) ? block_pos_bottom + block_step :
708 (((
height + block_step - 1) / block_step) * (jobnr + 1) / nb_jobs) * block_step;
714 for (j = slice_start; j <
slice_end; j += block_step) {
715 if (j > block_pos_bottom) {
716 j = block_pos_bottom;
719 for (
i = 0;
i < block_pos_right + block_step;
i += block_step) {
720 if (
i > block_pos_right) {
726 s->block_filtering(
s,
src, src_linesize,
727 ref, ref_linesize, j,
i, plane, jobnr);
745 for (p = 0; p <
s->nb_planes; p++) {
746 const int nb_jobs =
FFMAX(1,
FFMIN(
s->nb_threads,
s->planeheight[p] /
s->block_size));
749 if (!((1 << p) &
s->planes) ||
ctx->is_disabled) {
752 s->planewidth[p],
s->planeheight[p]);
758 td.ref =
ref->data[p];
759 td.ref_linesize =
ref->linesize[p];
763 s->do_output(
s, (*out)->data[p], (*out)->linesize[p], p, nb_jobs);
769 #define SQR(x) ((x) * (x))
780 s->depth =
desc->comp[0].depth;
781 s->max = (1 <<
s->depth) - 1;
783 s->planeheight[0] =
s->planeheight[3] =
inlink->h;
785 s->planewidth[0] =
s->planewidth[3] =
inlink->w;
787 for (group_bits = 4; 1 << group_bits <
s->group_size; group_bits++);
788 s->group_bits = group_bits;
789 s->pgroup_size = 1 << group_bits;
791 for (
i = 0;
i <
s->nb_threads;
i++) {
804 if (
s->group_bits > 1) {
906 if (
s->th_mse == 0.f)
907 s->th_mse = 400.f +
s->sigma * 80.f;
909 }
else if (
s->mode ==
FINAL) {
914 if (
s->th_mse == 0.f)
915 s->th_mse = 200.f +
s->sigma * 10.f;
922 s->block_size = 1 <<
s->block_size;
924 if (
s->block_step >
s->block_size) {
926 s->block_step,
s->block_size);
927 s->block_step =
s->block_size;
929 if (
s->bm_step >
s->bm_range) {
931 s->bm_step,
s->bm_range);
932 s->bm_step =
s->bm_range;
944 pad.
name =
"reference";
969 "(size %dx%d) do not match the corresponding "
970 "second input link %s parameters (%dx%d) ",
972 ctx->input_pads[1].name,
ref->w,
ref->h);
1012 for (
i = 0;
i <
s->nb_threads;
i++) {
1054 .priv_class = &bm3d_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
AVRational time_base
Time base for the incoming frames.
int ff_framesync_configure(FFFrameSync *fs)
Configure a frame sync structure.
#define AV_LOG_WARNING
Something somehow does not look correct.
SliceContext slices[MAX_NB_THREADS]
AVPixelFormat
Pixel format.
they must not be accessed directly The fifo field contains the frames that are queued in the input for processing by the filter The status_in and status_out fields contains the queued status(EOF or error) of the link
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
void ff_framesync_uninit(FFFrameSync *fs)
Free all memory currently allocated.
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)
int ff_framesync_get_frame(FFFrameSync *fs, unsigned in, AVFrame **rframe, unsigned get)
Get the current frame in an input.
#define FILTER_PIXFMTS_ARRAY(array)
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.
double(* do_block_ssd)(struct BM3DContext *s, PosCode *pos, const uint8_t *src, int src_stride, int r_y, int r_x)
#define AV_PIX_FMT_YUVA422P9
This structure describes decoded (raw) audio or video data.
static av_always_inline av_const unsigned av_clip_uintp2_c(int a, int p)
Clip a signed integer to an unsigned power of two range.
static const AVOption bm3d_options[]
trying all byte sequences megabyte in length and selecting the best looking sequence will yield cases to try But a word about which is also called distortion Distortion can be quantified by almost any quality measurement one chooses the sum of squared differences is used but more complex methods that consider psychovisual effects can be used as well It makes no difference in this discussion First step
#define AV_PIX_FMT_YUVA420P16
#define AV_PIX_FMT_YUVA420P10
#define AV_PIX_FMT_YUV420P10
DCTContext * av_dct_init(int nbits, enum DCTTransformType type)
Set up DCT.
@ AV_PIX_FMT_YUV440P
planar YUV 4:4:0 (1 Cr & Cb sample per 1x2 Y samples)
const char * name
Filter name.
static void block_matching(BM3DContext *s, const uint8_t *ref, int ref_linesize, int j, int i, int plane, int jobnr)
A link between two filters.
#define AV_PIX_FMT_YUVA422P10
#define FF_FILTER_FORWARD_STATUS_BACK(outlink, inlink)
Forward the status on an output link to an input link.
uint8_t * data[AV_NUM_DATA_POINTERS]
pointer to the picture/channel planes.
void av_image_copy_plane(uint8_t *dst, int dst_linesize, const uint8_t *src, int src_linesize, int bytewidth, int height)
Copy image plane from src to dst.
static double do_block_ssd(BM3DContext *s, PosCode *pos, const uint8_t *src, int src_stride, int r_y, int r_x)
AVFILTER_DEFINE_CLASS(bm3d)
int ff_inlink_consume_frame(AVFilterLink *link, AVFrame **rframe)
Take a frame from the link's FIFO and update the link's stats.
int av_pix_fmt_count_planes(enum AVPixelFormat pix_fmt)
#define AV_PIX_FMT_YUVA420P9
@ EXT_STOP
Completely stop all streams with this one.
static enum AVPixelFormat pix_fmts[]
#define AV_PIX_FMT_GBRP14
int ff_append_inpad(AVFilterContext *f, AVFilterPad *p)
Append a new input/output pad to the filter's list of such pads.
@ 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
unsigned sync
Synchronization level: frames on input at the highest sync level will generate output frame events.
#define AVFILTER_FLAG_DYNAMIC_INPUTS
The number of the filter inputs is not determined just by AVFilter.inputs.
A filter pad used for either input or output.
#define FFDIFFSIGN(x, y)
Comparator.
#define AV_PIX_FMT_YUV444P10
@ 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_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
#define AV_PIX_FMT_YUV422P16
PosPairCode match_blocks[256]
void av_dct_end(DCTContext *s)
void(* do_output)(struct BM3DContext *s, uint8_t *dst, int dst_linesize, int plane, int nb_jobs)
@ AV_PIX_FMT_YUVJ422P
planar YUV 4:2:2, 16bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV422P and setting col...
#define AV_PIX_FMT_GBRAP10
static void ff_outlink_set_status(AVFilterLink *link, int status, int64_t pts)
Set the status field of a link from the source filter.
void ff_inlink_request_frame(AVFilterLink *link)
Mark that a frame is wanted on the link.
#define AV_PIX_FMT_GBRAP12
@ AV_PIX_FMT_YUVA420P
planar YUV 4:2:0, 20bpp, (1 Cr & Cb sample per 2x2 Y & A samples)
static int search_boundary(int plane_boundary, int search_range, int search_step, int vertical, int y, int x)
#define AV_PIX_FMT_YUV444P16
#define AV_CEIL_RSHIFT(a, b)
static int slice_end(AVCodecContext *avctx, AVFrame *pict)
Handle slice ends.
AVRational sample_aspect_ratio
agreed upon sample aspect ratio
AVRational frame_rate
Frame rate of the stream on the link, or 1/0 if unknown or variable; if left to 0/0,...
#define AV_PIX_FMT_YUVA444P12
#define AV_PIX_FMT_YUV420P9
#define AV_PIX_FMT_YUV420P16
static void final_block_filtering(BM3DContext *s, const uint8_t *src, int src_linesize, const uint8_t *ref, int ref_linesize, int y, int x, int plane, int jobnr)
#define AV_PIX_FMT_GRAY14
int64_t av_rescale_q(int64_t a, AVRational bq, AVRational cq)
Rescale a 64-bit integer by 2 rational numbers.
@ AV_PIX_FMT_YUV420P
planar YUV 4:2:0, 12bpp, (1 Cr & Cb sample per 2x2 Y samples)
static int filter_slice(AVFilterContext *ctx, void *arg, int jobnr, int nb_jobs)
@ AV_PIX_FMT_YUVJ444P
planar YUV 4:4:4, 24bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV444P and setting col...
static const struct @321 planes[]
#define AV_PIX_FMT_GRAY10
#define AV_PIX_FMT_GBRP16
void av_dct_calc(DCTContext *s, FFTSample *data)
Describe the class of an AVClass context structure.
static int process_frame(FFFrameSync *fs)
int av_frame_copy_props(AVFrame *dst, const AVFrame *src)
Copy only "metadata" fields from src to dst.
#define fs(width, name, subs,...)
static void basic_block_filtering(BM3DContext *s, const uint8_t *src, int src_linesize, const uint8_t *ref, int ref_linesize, int y, int x, int plane, int jobnr)
@ AV_PIX_FMT_YUVJ420P
planar YUV 4:2:0, 12bpp, full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV420P and setting col...
static void do_output(BM3DContext *s, uint8_t *dst, int dst_linesize, int plane, int nb_jobs)
#define AV_PIX_FMT_YUV440P10
#define AV_PIX_FMT_YUV422P10
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 av_cold void uninit(AVFilterContext *ctx)
int ff_inlink_acknowledge_status(AVFilterLink *link, int *rstatus, int64_t *rpts)
Test and acknowledge the change of status on the link.
int(* config_props)(AVFilterLink *link)
Link configuration callback.
static int cmp_scores(const void *a, const void *b)
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification.
#define AV_PIX_FMT_YUV422P12
static const AVFilterPad bm3d_outputs[]
#define AV_PIX_FMT_YUV444P12
AVFilterContext * src
source filter
The reader does not expect b to be semantically here and if the code is changed by maybe adding a a division or other the signedness will almost certainly be mistaken To avoid this confusion a new type was SUINT is the C unsigned type but it holds a signed int to use the same example SUINT a
@ AV_PIX_FMT_YUVA444P
planar YUV 4:4:4 32bpp, (1 Cr & Cb sample per 1x1 Y & A samples)
#define AV_PIX_FMT_YUVA444P10
PosCode * search_positions
#define i(width, name, range_min, range_max)
void(* get_block_row)(const uint8_t *srcp, int src_linesize, int y, int x, int block_size, float *dst)
int w
agreed upon image width
#define AV_PIX_FMT_GBRP12
static void do_output16(BM3DContext *s, uint8_t *dst, int dst_linesize, int plane, int nb_jobs)
int ff_filter_get_nb_threads(AVFilterContext *ctx)
Get number of threads for current filter instance.
Used for passing data between threads.
static int do_search_boundary(int pos, int plane_boundary, int search_range, int search_step)
static int config_input(AVFilterLink *inlink)
static void block_matching_multi(BM3DContext *s, const uint8_t *ref, int ref_linesize, int y, int x, int exclude_cur_pos, int plane, int jobnr)
@ AV_PIX_FMT_YUVJ440P
planar YUV 4:4:0 full scale (JPEG), deprecated in favor of AV_PIX_FMT_YUV440P and setting color_range
const char * name
Pad name.
void * av_calloc(size_t nmemb, size_t size)
#define AV_PIX_FMT_YUV444P9
static int filter_frame(AVFilterContext *ctx, AVFrame **out, AVFrame *in, AVFrame *ref)
static void do_block_matching_multi(BM3DContext *s, const uint8_t *src, int src_stride, int src_range, const PosCode *search_pos, int search_size, float th_mse, int r_y, int r_x, int plane, int jobnr)
enum AVMediaType type
AVFilterPad type.
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 the filter must be ready for frames arriving randomly on any input any filter with several inputs will most likely require some kind of queuing mechanism It is perfectly acceptable to have a limited queue and to drop frames when the inputs are too unbalanced request_frame For filters that do not use the this method is called when a frame is wanted on an output For a it should directly call filter_frame on the corresponding output For a if there are queued frames already one of these frames should be pushed If the filter should request a frame on one of its repeatedly until at least one frame has been pushed Return or at least make progress towards producing a frame
#define AV_PIX_FMT_YUVA444P9
int ff_framesync_init(FFFrameSync *fs, AVFilterContext *parent, unsigned nb_in)
Initialize a frame sync structure.
#define AV_PIX_FMT_YUV420P12
#define AV_PIX_FMT_YUV422P14
static av_cold int init(AVFilterContext *ctx)
enum FFFrameSyncExtMode before
Extrapolation mode for timestamps before the first frame.
int h
agreed upon image height
the frame and frame reference mechanism is intended to as much as expensive copies of that data while still allowing the filters to produce correct results The data is stored in buffers represented by AVFrame structures Several references can point to the same frame buffer
static void get_block_row(const uint8_t *srcp, int src_linesize, int y, int x, int block_size, float *dst)
#define AV_PIX_FMT_YUVA422P12
static int config_output(AVFilterLink *outlink)
static int ref[MAX_W *MAX_W]
AVRational time_base
Define the time base used by the PTS of the frames/samples which will pass through this link.
static double do_block_ssd16(BM3DContext *s, PosCode *pos, const uint8_t *src, int src_stride, int r_y, int r_x)
@ AV_PIX_FMT_YUV444P
planar YUV 4:4:4, 24bpp, (1 Cr & Cb sample per 1x1 Y samples)
@ 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...
#define FILTER_OUTPUTS(array)
@ AV_PIX_FMT_YUV411P
planar YUV 4:1:1, 12bpp, (1 Cr & Cb sample per 4x1 Y samples)
#define AVFILTER_FLAG_SUPPORT_TIMELINE_INTERNAL
Same as AVFILTER_FLAG_SUPPORT_TIMELINE_GENERIC, except that the filter will have its filter_frame() c...
#define AVERROR_BUG
Internal bug, also see AVERROR_BUG2.
int linesize[AV_NUM_DATA_POINTERS]
For video, a positive or negative value, which is typically indicating the size in bytes of each pict...
@ AV_PIX_FMT_YUV410P
planar YUV 4:1:0, 9bpp, (1 Cr & Cb sample per 4x4 Y samples)
enum FFFrameSyncExtMode after
Extrapolation mode for timestamps after the last frame.
#define AV_PIX_FMT_YUV440P12
the definition of that something depends on the semantic of the filter The callback must examine the status of the filter s links and proceed accordingly The status of output links is stored in the status_in and status_out fields and tested by the ff_outlink_frame_wanted() function. If this function returns true
#define AV_PIX_FMT_YUV444P14
void(* block_filtering)(struct BM3DContext *s, const uint8_t *src, int src_linesize, const uint8_t *ref, int ref_linesize, int y, int x, int plane, int jobnr)
static void get_block_row16(const uint8_t *srcp, int src_linesize, int y, int x, int block_size, float *dst)
int ff_framesync_activate(FFFrameSync *fs)
Examine the frames in the filter's input and try to produce output.
#define AV_PIX_FMT_GRAY12
static av_always_inline int ff_filter_execute(AVFilterContext *ctx, avfilter_action_func *func, void *arg, int *ret, int nb_jobs)
const AVFilter ff_vf_bm3d
@ AV_PIX_FMT_YUVA422P
planar YUV 4:2:2 24bpp, (1 Cr & Cb sample per 2x1 Y & A samples)
#define AV_PIX_FMT_YUV420P14
static int activate(AVFilterContext *ctx)