35 #define CFACTOR_Y422 2
36 #define CFACTOR_Y444 3
38 #define MAX_MBS_PER_SLICE 8
62 4, 7, 9, 11, 13, 14, 15, 63,
63 7, 7, 11, 12, 14, 15, 63, 63,
64 9, 11, 13, 14, 15, 63, 63, 63,
65 11, 11, 13, 14, 63, 63, 63, 63,
66 11, 13, 14, 63, 63, 63, 63, 63,
67 13, 14, 63, 63, 63, 63, 63, 63,
68 13, 63, 63, 63, 63, 63, 63, 63,
69 63, 63, 63, 63, 63, 63, 63, 63,
72 4, 5, 6, 7, 9, 11, 13, 15,
73 5, 5, 7, 8, 11, 13, 15, 17,
74 6, 7, 9, 11, 13, 15, 15, 17,
75 7, 7, 9, 11, 13, 15, 17, 19,
76 7, 9, 11, 13, 14, 16, 19, 23,
77 9, 11, 13, 14, 16, 19, 23, 29,
78 9, 11, 13, 15, 17, 21, 28, 35,
79 11, 13, 16, 17, 21, 28, 35, 41,
82 4, 4, 5, 5, 6, 7, 7, 9,
83 4, 4, 5, 6, 7, 7, 9, 9,
84 5, 5, 6, 7, 7, 9, 9, 10,
85 5, 5, 6, 7, 7, 9, 9, 10,
86 5, 6, 7, 7, 8, 9, 10, 12,
87 6, 7, 7, 8, 9, 10, 12, 15,
88 6, 7, 7, 9, 10, 11, 14, 17,
89 7, 7, 9, 10, 11, 14, 17, 21,
92 4, 4, 4, 4, 4, 4, 4, 4,
93 4, 4, 4, 4, 4, 4, 4, 4,
94 4, 4, 4, 4, 4, 4, 4, 4,
95 4, 4, 4, 4, 4, 4, 4, 5,
96 4, 4, 4, 4, 4, 4, 5, 5,
97 4, 4, 4, 4, 4, 5, 5, 6,
98 4, 4, 4, 4, 5, 5, 6, 7,
99 4, 4, 4, 4, 5, 6, 7, 7,
102 4, 4, 4, 4, 4, 4, 4, 4,
103 4, 4, 4, 4, 4, 4, 4, 4,
104 4, 4, 4, 4, 4, 4, 4, 4,
105 4, 4, 4, 4, 4, 4, 4, 4,
106 4, 4, 4, 4, 4, 4, 4, 4,
107 4, 4, 4, 4, 4, 4, 4, 4,
108 4, 4, 4, 4, 4, 4, 4, 4,
109 4, 4, 4, 4, 4, 4, 4, 4,
113 #define NUM_MB_LIMITS 4
131 .tag =
MKTAG(
'a',
'p',
'c',
'o'),
134 .br_tab = { 300, 242, 220, 194 },
139 .tag =
MKTAG(
'a',
'p',
'c',
's'),
142 .br_tab = { 720, 560, 490, 440 },
146 .full_name =
"standard",
147 .tag =
MKTAG(
'a',
'p',
'c',
'n'),
150 .br_tab = { 1050, 808, 710, 632 },
154 .full_name =
"high quality",
155 .tag =
MKTAG(
'a',
'p',
'c',
'h'),
158 .br_tab = { 1566, 1216, 1070, 950 },
163 .tag =
MKTAG(
'a',
'p',
'4',
'h'),
166 .br_tab = { 2350, 1828, 1600, 1425 },
170 .full_name =
"4444XQ",
171 .tag =
MKTAG(
'a',
'p',
'4',
'x'),
174 .br_tab = { 3525, 2742, 2400, 2137 },
179 #define TRELLIS_WIDTH 16
180 #define SCORE_LIMIT INT_MAX / 2
189 #define MAX_STORED_Q 16
208 ptrdiff_t linesize, int16_t *
block);
239 ptrdiff_t linesize,
int x,
int y,
int w,
int h,
240 int16_t *blocks, uint16_t *emu_buf,
241 int mbs_per_slice,
int blocks_per_mb,
int is_chroma)
243 const uint16_t *esrc;
244 const int mb_width = 4 * blocks_per_mb;
248 for (i = 0; i < mbs_per_slice; i++, src += mb_width) {
250 memset(blocks, 0, 64 * (mbs_per_slice - i) * blocks_per_mb
254 if (x + mb_width <= w && y + 16 <= h) {
256 elinesize = linesize;
261 elinesize = 16 *
sizeof(*emu_buf);
263 bw =
FFMIN(w - x, mb_width);
264 bh =
FFMIN(h - y, 16);
266 for (j = 0; j < bh; j++) {
267 memcpy(emu_buf + j * 16,
268 (
const uint8_t*)src + j * linesize,
270 pix = emu_buf[j * 16 + bw - 1];
271 for (k = bw; k < mb_width; k++)
272 emu_buf[j * 16 + k] = pix;
275 memcpy(emu_buf + j * 16,
276 emu_buf + (bh - 1) * 16,
277 mb_width *
sizeof(*emu_buf));
280 ctx->
fdct(&ctx->
fdsp, esrc, elinesize, blocks);
282 if (blocks_per_mb > 2) {
283 ctx->
fdct(&ctx->
fdsp, esrc + 8, elinesize, blocks);
286 ctx->
fdct(&ctx->
fdsp, esrc + elinesize * 4, elinesize, blocks);
288 if (blocks_per_mb > 2) {
289 ctx->
fdct(&ctx->
fdsp, esrc + elinesize * 4 + 8, elinesize, blocks);
293 ctx->
fdct(&ctx->
fdsp, esrc, elinesize, blocks);
295 ctx->
fdct(&ctx->
fdsp, esrc + elinesize * 4, elinesize, blocks);
297 if (blocks_per_mb > 2) {
298 ctx->
fdct(&ctx->
fdsp, esrc + 8, elinesize, blocks);
300 ctx->
fdct(&ctx->
fdsp, esrc + elinesize * 4 + 8, elinesize, blocks);
310 ptrdiff_t linesize,
int x,
int y,
int w,
int h,
311 int16_t *blocks,
int mbs_per_slice,
int abits)
313 const int slice_width = 16 * mbs_per_slice;
314 int i, j, copy_w, copy_h;
316 copy_w =
FFMIN(w - x, slice_width);
317 copy_h =
FFMIN(h - y, 16);
318 for (i = 0; i < copy_h; i++) {
319 memcpy(blocks, src, copy_w *
sizeof(*src));
321 for (j = 0; j < copy_w; j++)
324 for (j = 0; j < copy_w; j++)
325 blocks[j] = (blocks[j] << 6) | (blocks[j] >> 4);
326 for (j = copy_w; j < slice_width; j++)
327 blocks[j] = blocks[copy_w - 1];
328 blocks += slice_width;
329 src += linesize >> 1;
331 for (; i < 16; i++) {
332 memcpy(blocks, blocks - slice_width, slice_width *
sizeof(*blocks));
333 blocks += slice_width;
342 unsigned int rice_order, exp_order, switch_bits, switch_val;
346 switch_bits = (codebook & 3) + 1;
347 rice_order = codebook >> 5;
348 exp_order = (codebook >> 2) & 7;
350 switch_val = switch_bits << rice_order;
352 if (val >= switch_val) {
353 val -= switch_val - (1 << exp_order);
356 put_bits(pb, exponent - exp_order + switch_bits, 0);
359 exponent = val >> rice_order;
369 #define GET_SIGN(x) ((x) >> 31)
370 #define MAKE_CODE(x) ((((x)) * 2) ^ GET_SIGN(x))
373 int blocks_per_slice,
int scale)
376 int codebook = 3, code,
dc, prev_dc,
delta, sign, new_sign;
378 prev_dc = (blocks[0] - 0x4000) / scale;
384 for (i = 1; i < blocks_per_slice; i++, blocks += 64) {
385 dc = (blocks[0] - 0x4000) / scale;
386 delta = dc - prev_dc;
388 delta = (delta ^ sign) - sign;
391 codebook = (code + (code & 1)) >> 1;
392 codebook =
FFMIN(codebook, 3);
399 int blocks_per_slice,
400 int plane_size_factor,
401 const uint8_t *scan,
const int16_t *qmat)
405 int max_coeffs, abs_level;
407 max_coeffs = blocks_per_slice << 6;
412 for (i = 1; i < 64; i++) {
413 for (idx = scan[i]; idx < max_coeffs; idx += 64) {
414 level = blocks[idx] / qmat[scan[i]];
416 abs_level =
FFABS(level);
433 const uint16_t *
src, ptrdiff_t linesize,
434 int mbs_per_slice, int16_t *blocks,
435 int blocks_per_mb,
int plane_size_factor,
438 int blocks_per_slice, saved_pos;
441 blocks_per_slice = mbs_per_slice * blocks_per_mb;
443 encode_dcs(pb, blocks, blocks_per_slice, qmat[0]);
444 encode_acs(pb, blocks, blocks_per_slice, plane_size_factor,
453 const int dbits = (abits == 8) ? 4 : 7;
454 const int dsize = 1 << dbits - 1;
455 int diff = cur - prev;
457 diff = av_mod_uintp2(diff, abits);
458 if (diff >= (1 << abits) - dsize)
460 if (diff < -dsize || diff > dsize || !diff) {
485 int mbs_per_slice, uint16_t *blocks,
489 const int mask = (1 << abits) - 1;
490 const int num_coeffs = mbs_per_slice * 256;
492 int prev =
mask, cur;
509 }
while (idx < num_coeffs);
525 int slice_width_factor =
av_log2(mbs_per_slice);
526 int num_cblocks, pwidth, line_add;
528 int plane_factor, is_chroma;
542 for (i = 0; i < 64; i++)
547 is_chroma = (i == 1 || i == 2);
548 plane_factor = slice_width_factor + 2;
555 pwidth = avctx->
width;
560 pwidth = avctx->
width >> 1;
564 src = (
const uint16_t*)(pic->
data[i] + yp * linesize +
571 mbs_per_slice, num_cblocks, is_chroma);
573 mbs_per_slice, ctx->
blocks[0],
574 num_cblocks, plane_factor,
583 total_size += sizes[i];
586 "Underestimated required buffer size.\n");
595 unsigned int rice_order, exp_order, switch_bits, switch_val;
599 switch_bits = (codebook & 3) + 1;
600 rice_order = codebook >> 5;
601 exp_order = (codebook >> 2) & 7;
603 switch_val = switch_bits << rice_order;
605 if (val >= switch_val) {
606 val -= switch_val - (1 << exp_order);
609 return exponent * 2 - exp_order + switch_bits + 1;
611 return (val >> rice_order) + rice_order + 1;
619 int codebook = 3, code,
dc, prev_dc,
delta, sign, new_sign;
622 prev_dc = (blocks[0] - 0x4000) / scale;
627 *error +=
FFABS(blocks[0] - 0x4000) % scale;
629 for (i = 1; i < blocks_per_slice; i++, blocks += 64) {
630 dc = (blocks[0] - 0x4000) / scale;
631 *error +=
FFABS(blocks[0] - 0x4000) % scale;
632 delta = dc - prev_dc;
634 delta = (delta ^ sign) - sign;
637 codebook = (code + (code & 1)) >> 1;
638 codebook =
FFMIN(codebook, 3);
647 int plane_size_factor,
648 const uint8_t *scan,
const int16_t *qmat)
652 int max_coeffs, abs_level;
655 max_coeffs = blocks_per_slice << 6;
660 for (i = 1; i < 64; i++) {
661 for (idx = scan[i]; idx < max_coeffs; idx += 64) {
662 level = blocks[idx] / qmat[scan[i]];
663 *error +=
FFABS(blocks[idx]) % qmat[scan[i]];
665 abs_level =
FFABS(level);
683 const uint16_t *
src, ptrdiff_t linesize,
685 int blocks_per_mb,
int plane_size_factor,
688 int blocks_per_slice;
691 blocks_per_slice = mbs_per_slice * blocks_per_mb;
695 plane_size_factor, ctx->
scantable, qmat);
702 const int dbits = (abits == 8) ? 4 : 7;
703 const int dsize = 1 << dbits - 1;
704 int diff = cur - prev;
706 diff = av_mod_uintp2(diff, abits);
707 if (diff >= (1 << abits) - dsize)
709 if (diff < -dsize || diff > dsize || !diff)
716 const uint16_t *
src, ptrdiff_t linesize,
717 int mbs_per_slice,
int quant,
721 const int mask = (1 << abits) - 1;
722 const int num_coeffs = mbs_per_slice * 256;
723 int prev =
mask, cur;
747 }
while (idx < num_coeffs);
760 int trellis_node,
int x,
int y,
int mbs_per_slice,
764 int i, q, pq, xp, yp;
766 int slice_width_factor =
av_log2(mbs_per_slice);
772 int mbs, prev, cur, new_score;
776 int linesize[4], line_add;
782 mbs = x + mbs_per_slice;
785 is_chroma[i] = (i == 1 || i == 2);
786 plane_factor[i] = slice_width_factor + 2;
793 pwidth = avctx->
width;
798 pwidth = avctx->
width >> 1;
802 src = (
const uint16_t *)(ctx->
pic->
data[i] + yp * linesize[i] +
809 mbs_per_slice, num_cblocks[i], is_chroma[i]);
817 for (q = min_quant; q < max_quant + 2; q++) {
823 for (q = min_quant; q <=
max_quant; q++) {
830 num_cblocks[i], plane_factor[i],
835 mbs_per_slice, q, td->
blocks[3]);
836 if (bits > 65000 * 8)
839 slice_bits[q] =
bits;
840 slice_score[q] =
error;
842 if (slice_bits[max_quant] <= ctx->
bits_per_mb * mbs_per_slice) {
843 slice_bits[max_quant + 1] = slice_bits[
max_quant];
844 slice_score[max_quant + 1] = slice_score[
max_quant] + 1;
847 for (q = max_quant + 1; q < 128; q++) {
854 for (i = 0; i < 64; i++)
861 num_cblocks[i], plane_factor[i],
866 mbs_per_slice, q, td->
blocks[3]);
867 if (bits <= ctx->bits_per_mb * mbs_per_slice)
871 slice_bits[max_quant + 1] =
bits;
872 slice_score[max_quant + 1] =
error;
875 td->
nodes[trellis_node + max_quant + 1].
quant = overquant;
878 for (pq = min_quant; pq < max_quant + 2; pq++) {
881 for (q = min_quant; q < max_quant + 2; q++) {
882 cur = trellis_node + q;
884 bits = td->
nodes[prev].
bits + slice_bits[q];
885 error = slice_score[q];
886 if (bits > bits_limit)
905 for (q = min_quant + 1; q < max_quant + 2; q++) {
906 if (td->
nodes[trellis_node + q].
score <= error) {
908 pq = trellis_node + q;
916 int jobnr,
int threadnr)
921 int x, y = jobnr,
mb, q = 0;
923 for (x = mb = 0; x < ctx->
mb_width; x += mbs_per_slice, mb++) {
924 while (ctx->
mb_width - x < mbs_per_slice)
940 const AVFrame *pic,
int *got_packet)
946 int x, y, i,
mb, q = 0;
947 int sizes[4] = { 0 };
948 int slice_hdr_size = 2 + 2 * (ctx->
num_planes - 1);
960 orig_buf = pkt->
data;
964 bytestream_put_be32 (&orig_buf,
FRAME_ID);
970 bytestream_put_be16 (&buf, 0);
972 bytestream_put_be16 (&buf, avctx->
width);
973 bytestream_put_be16 (&buf, avctx->
height);
978 bytestream_put_byte (&buf, frame_flags);
980 bytestream_put_byte (&buf, 0);
982 bytestream_put_byte (&buf, pic->
color_trc);
984 bytestream_put_byte (&buf, 0x40 | (ctx->
alpha_bits >> 3));
985 bytestream_put_byte (&buf, 0);
987 bytestream_put_byte (&buf, 0x03);
989 for (i = 0; i < 64; i++)
990 bytestream_put_byte(&buf, ctx->
quant_mat[i]);
992 for (i = 0; i < 64; i++)
993 bytestream_put_byte(&buf, ctx->
quant_mat[i]);
995 bytestream_put_byte (&buf, 0x00);
997 bytestream_put_be16 (&tmp, buf - orig_buf);
1003 picture_size_pos = buf + 1;
1004 bytestream_put_byte (&buf, 0x40);
1023 for (x = mb = 0; x < ctx->
mb_width; x += mbs_per_slice, mb++) {
1027 while (ctx->
mb_width - x < mbs_per_slice)
1028 mbs_per_slice >>= 1;
1030 bytestream_put_byte(&buf, slice_hdr_size << 3);
1032 buf += slice_hdr_size - 1;
1033 if (pkt_size <= buf - orig_buf + 2 * max_slice_size) {
1039 max_slice_size - pkt_size;
1041 delta =
FFMAX(delta, 2 * max_slice_size);
1046 "Packet too small: is %i,"
1047 " needs %i (slice: %i). "
1048 "Correct allocation",
1049 pkt_size, delta, max_slice_size);
1059 orig_buf = pkt->
data + (orig_buf -
start);
1061 picture_size_pos = pkt->
data + (picture_size_pos -
start);
1062 slice_sizes = pkt->
data + (slice_sizes -
start);
1063 slice_hdr = pkt->
data + (slice_hdr -
start);
1072 bytestream_put_byte(&slice_hdr, q);
1073 slice_size = slice_hdr_size + sizes[ctx->
num_planes - 1];
1075 bytestream_put_be16(&slice_hdr, sizes[i]);
1076 slice_size += sizes[i];
1078 bytestream_put_be16(&slice_sizes, slice_size);
1079 buf += slice_size - slice_hdr_size;
1080 if (max_slice_size < slice_size)
1081 max_slice_size = slice_size;
1085 picture_size = buf - (picture_size_pos - 1);
1086 bytestream_put_be32(&picture_size_pos, picture_size);
1090 frame_size = buf - orig_buf;
1091 bytestream_put_be32(&orig_buf, frame_size);
1116 ptrdiff_t linesize, int16_t *
block)
1119 const uint16_t *tsrc =
src;
1121 for (y = 0; y < 8; y++) {
1122 for (x = 0; x < 8; x++)
1123 block[y * 8 + x] = tsrc[x];
1124 tsrc += linesize >> 1;
1138 #if FF_API_CODED_FRAME
1151 if (mps & (mps - 1)) {
1153 "there should be an integer power of two MBs per slice\n");
1163 ?
"4:4:4:4 profile because of the used input colorspace"
1164 :
"HQ profile to keep best quality");
1171 "encode alpha. Override with -profile if needed.\n");
1206 if (strlen(ctx->
vendor) != 4) {
1229 for (j = 0; j < 64; j++)
1253 for (i = min_quant; i < max_quant + 2; i++) {
1267 for (j = 0; j < 64; j++) {
1294 "profile %d, %d slices, interlacing: %s, %d bits per MB\n",
1303 #define OFFSET(x) offsetof(ProresContext, x)
1304 #define VE AV_OPT_FLAG_VIDEO_PARAM | AV_OPT_FLAG_ENCODING_PARAM
1307 {
"mbs_per_slice",
"macroblocks per slice",
OFFSET(mbs_per_slice),
1313 0, 0,
VE,
"profile" },
1315 0, 0,
VE,
"profile" },
1317 0, 0,
VE,
"profile" },
1319 0, 0,
VE,
"profile" },
1321 0, 0,
VE,
"profile" },
1323 0, 0,
VE,
"profile" },
1325 0, 0,
VE,
"profile" },
1326 {
"vendor",
"vendor ID",
OFFSET(vendor),
1328 {
"bits_per_mb",
"desired bits per macroblock",
OFFSET(bits_per_mb),
1333 0, 0,
VE,
"quant_mat" },
1335 0, 0,
VE,
"quant_mat" },
1337 0, 0,
VE,
"quant_mat" },
1339 0, 0,
VE,
"quant_mat" },
1341 0, 0,
VE,
"quant_mat" },
1343 0, 0,
VE,
"quant_mat" },
1345 { .i64 = 16 }, 0, 16,
VE },
1357 .
name =
"prores_ks",
static const AVClass proresenc_class
#define MAX_MBS_PER_SLICE
const char const char void * val
static int encode_frame(AVCodecContext *avctx, AVPacket *pkt, const AVFrame *pic, int *got_packet)
#define AVERROR_INVALIDDATA
Invalid data found when processing input.
const AVPixFmtDescriptor * av_pix_fmt_desc_get(enum AVPixelFormat pix_fmt)
This structure describes decoded (raw) audio or video data.
#define AV_CODEC_FLAG_INTERLACED_DCT
Use interlaced DCT.
static void put_sbits(PutBitContext *pb, int n, int32_t value)
static av_cold int encode_init(AVCodecContext *avctx)
static void put_bits(Jpeg2000EncoderContext *s, int val, int n)
put n times val bit
#define AV_LOG_WARNING
Something somehow does not look correct.
#define LIBAVUTIL_VERSION_INT
const uint8_t ff_prores_ac_codebook[7]
static av_cold int init(AVCodecContext *avctx)
static int estimate_acs(int *error, int16_t *blocks, int blocks_per_slice, int plane_size_factor, const uint8_t *scan, const int16_t *qmat)
static void prores_fdct(FDCTDSPContext *fdsp, const uint16_t *src, ptrdiff_t linesize, int16_t *block)
enum AVPixelFormat pix_fmt
Pixel format, see AV_PIX_FMT_xxx.
void(* fdct)(FDCTDSPContext *fdsp, const uint16_t *src, ptrdiff_t linesize, int16_t *block)
unsigned mb_height
height of the current picture in mb
void * av_mallocz(size_t size)
Allocate a memory block with alignment suitable for all memory accesses (including vectors if availab...
const uint8_t * scantable
static const AVOption options[]
int bits_per_raw_sample
Bits per sample/pixel of internal libavcodec pixel/sample format.
static av_cold int encode_close(AVCodecContext *avctx)
av_cold void ff_fdctdsp_init(FDCTDSPContext *c, AVCodecContext *avctx)
static void get_slice_data(ProresContext *ctx, const uint16_t *src, ptrdiff_t linesize, int x, int y, int w, int h, int16_t *blocks, uint16_t *emu_buf, int mbs_per_slice, int blocks_per_mb, int is_chroma)
uint8_t log2_chroma_w
Amount to shift the luma width right to find the chroma width.
int16_t quants[MAX_STORED_Q][64]
#define AV_CODEC_CAP_INTRA_ONLY
Codec is intra only.
const char * class_name
The name of the class; usually it is the same name as the context structure type to which the AVClass...
int ff_alloc_packet2(AVCodecContext *avctx, AVPacket *avpkt, int64_t size, int64_t min_size)
Check AVPacket size and/or allocate data.
void void avpriv_request_sample(void *avc, const char *msg,...) av_printf_format(2
Log a generic warning message about a missing feature.
#define AV_PIX_FMT_FLAG_ALPHA
The pixel format has an alpha channel.
static int estimate_vlc(unsigned codebook, int val)
static int encode_slice(AVCodecContext *avctx, const AVFrame *pic, PutBitContext *pb, int sizes[4], int x, int y, int quant, int mbs_per_slice)
static int estimate_alpha_plane(ProresContext *ctx, int *error, const uint16_t *src, ptrdiff_t linesize, int mbs_per_slice, int quant, int16_t *blocks)
#define DECLARE_ALIGNED(n, t, v)
Declare a variable that is aligned in memory.
const uint8_t ff_prores_run_to_cb_index[16]
Lookup tables for adaptive switching between codebooks according with previous run/level value...
const uint8_t ff_prores_lev_to_cb_index[10]
int bits_per_coded_sample
bits per sample/pixel from the demuxer (needed for huffyuv).
static void encode_acs(PutBitContext *pb, int16_t *blocks, int blocks_per_slice, int plane_size_factor, const uint8_t *scan, const int16_t *qmat)
#define AV_INPUT_BUFFER_MIN_SIZE
minimum encoding buffer size Used to avoid some checks during header writing.
static int est_alpha_diff(int cur, int prev, int abits)
#define AV_PKT_FLAG_KEY
The packet contains a keyframe.
int16_t blocks[MAX_PLANES][64 *4 *MAX_MBS_PER_SLICE]
unsigned mb_width
width of the current picture in mb
#define AV_LOG_ERROR
Something went wrong and cannot losslessly be recovered.
uint8_t log2_chroma_h
Amount to shift the luma height right to find the chroma height.
static int put_bits_left(PutBitContext *s)
static const uint16_t mask[17]
static const int sizes[][2]
#define NULL_IF_CONFIG_SMALL(x)
Return NULL if CONFIG_SMALL is true, otherwise the argument without modification. ...
#define AV_LOG_DEBUG
Stuff which is only useful for libav* developers.
const struct prores_profile * profile_info
int flags
AV_CODEC_FLAG_*.
enum AVColorSpace colorspace
YUV colorspace type.
static const struct prores_profile prores_profile_info[6]
const char * name
Name of the codec implementation.
#define AV_PIX_FMT_YUV444P10
static int estimate_slice_plane(ProresContext *ctx, int *error, int plane, const uint16_t *src, ptrdiff_t linesize, int mbs_per_slice, int blocks_per_mb, int plane_size_factor, const int16_t *qmat, ProresThreadData *td)
#define AV_CODEC_CAP_FRAME_THREADS
Codec supports frame-level multithreading.
static const int prores_mb_limits[NUM_MB_LIMITS]
int flags
A combination of AV_PKT_FLAG values.
struct TrellisNode * nodes
static int put_bits_count(PutBitContext *s)
uint64_t flags
Combination of AV_PIX_FMT_FLAG_...
static void encode_vlc_codeword(PutBitContext *pb, unsigned codebook, int val)
Write an unsigned rice/exp golomb codeword.
enum AVPictureType pict_type
Picture type of the frame.
int num_chroma_blocks
number of chrominance blocks in a macroblock
int width
picture width / height.
typedef void(APIENTRY *FF_PFNGLACTIVETEXTUREPROC)(GLenum texture)
static int encode_slice_plane(ProresContext *ctx, PutBitContext *pb, const uint16_t *src, ptrdiff_t linesize, int mbs_per_slice, int16_t *blocks, int blocks_per_mb, int plane_size_factor, const int16_t *qmat)
const uint8_t ff_prores_dc_codebook[4]
#define FFABS(a)
Absolute value, Note, INT_MIN / INT64_MIN result in undefined behavior as they are not representable ...
static void put_alpha_diff(PutBitContext *pb, int cur, int prev, int abits)
#define AV_PIX_FMT_YUVA444P10
static void encode_dcs(PutBitContext *pb, int16_t *blocks, int blocks_per_slice, int scale)
static void error(const char *err)
int thread_count
thread count is used to decide how many independent tasks should be passed to execute() ...
#define AV_CODEC_CAP_SLICE_THREADS
Codec supports slice-based (or partition-based) multithreading.
#define AV_LOG_INFO
Standard information.
const uint8_t ff_prores_interlaced_scan[64]
Libavcodec external API header.
int linesize[AV_NUM_DATA_POINTERS]
For video, size in bytes of each picture line.
Descriptor that unambiguously describes how the bits of a pixel are stored in the up to 4 data planes...
void(* fdct)(int16_t *block)
main external API structure.
const uint8_t ff_prores_progressive_scan[64]
unsigned int codec_tag
fourcc (LSB first, so "ABCD" -> ('D'<<24) + ('C'<<16) + ('B'<<8) + 'A').
#define AVERROR_BUG
Internal bug, also see AVERROR_BUG2.
Describe the class of an AVClass context structure.
static enum AVPixelFormat pix_fmts[]
int global_quality
Global quality for codecs which cannot change it per frame.
#define AV_PIX_FMT_YUV422P10
static int find_slice_quant(AVCodecContext *avctx, int trellis_node, int x, int y, int mbs_per_slice, ProresThreadData *td)
uint8_t * data[AV_NUM_DATA_POINTERS]
pointer to the picture/channel planes.
int br_tab[NUM_MB_LIMITS]
static void put_alpha_run(PutBitContext *pb, int run)
#define FF_DISABLE_DEPRECATION_WARNINGS
static int encode_alpha_plane(ProresContext *ctx, PutBitContext *pb, int mbs_per_slice, uint16_t *blocks, int quant)
static const uint8_t prores_quant_matrices[][64]
common internal api header.
static void flush_put_bits(PutBitContext *s)
Pad the end of the output stream with zeros.
static int find_quant_thread(AVCodecContext *avctx, void *arg, int jobnr, int threadnr)
attribute_deprecated AVFrame * coded_frame
the picture in the bitstream
int av_grow_packet(AVPacket *pkt, int grow_by)
Increase packet size, correctly zeroing padding.
static void init_put_bits(PutBitContext *s, uint8_t *buffer, int buffer_size)
Initialize the PutBitContext s.
static av_always_inline void bytestream_put_buffer(uint8_t **b, const uint8_t *src, unsigned int size)
static av_always_inline int diff(const uint32_t a, const uint32_t b)
#define FF_ENABLE_DEPRECATION_WARNINGS
int top_field_first
If the content is interlaced, is top field displayed first.
int(* execute2)(struct AVCodecContext *c, int(*func)(struct AVCodecContext *c2, void *arg, int jobnr, int threadnr), void *arg2, int *ret, int count)
The codec may call this to execute several independent things.
int key_frame
1 -> keyframe, 0-> not
#define FF_QP2LAMBDA
factor to convert from H.263 QP to lambda
enum AVColorPrimaries color_primaries
uint8_t pi<< 24) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_U8, uint8_t,(*(constuint8_t *) pi-0x80)*(1.0f/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_U8, uint8_t,(*(constuint8_t *) pi-0x80)*(1.0/(1<< 7))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S16, int16_t,(*(constint16_t *) pi >>8)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S16, int16_t,*(constint16_t *) pi *(1.0f/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S16, int16_t,*(constint16_t *) pi *(1.0/(1<< 15))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_S32, int32_t,(*(constint32_t *) pi >>24)+0x80) CONV_FUNC_GROUP(AV_SAMPLE_FMT_FLT, float, AV_SAMPLE_FMT_S32, int32_t,*(constint32_t *) pi *(1.0f/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_DBL, double, AV_SAMPLE_FMT_S32, int32_t,*(constint32_t *) pi *(1.0/(1U<< 31))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_FLT, float, av_clip_uint8(lrintf(*(constfloat *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_FLT, float, av_clip_int16(lrintf(*(constfloat *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_FLT, float, av_clipl_int32(llrintf(*(constfloat *) pi *(1U<< 31)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_U8, uint8_t, AV_SAMPLE_FMT_DBL, double, av_clip_uint8(lrint(*(constdouble *) pi *(1<< 7))+0x80)) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S16, int16_t, AV_SAMPLE_FMT_DBL, double, av_clip_int16(lrint(*(constdouble *) pi *(1<< 15)))) CONV_FUNC_GROUP(AV_SAMPLE_FMT_S32, int32_t, AV_SAMPLE_FMT_DBL, double, av_clipl_int32(llrint(*(constdouble *) pi *(1U<< 31))))#defineSET_CONV_FUNC_GROUP(ofmt, ifmt) staticvoidset_generic_function(AudioConvert *ac){}voidff_audio_convert_free(AudioConvert **ac){if(!*ac) return;ff_dither_free(&(*ac) ->dc);av_freep(ac);}AudioConvert *ff_audio_convert_alloc(AVAudioResampleContext *avr, enumAVSampleFormatout_fmt, enumAVSampleFormatin_fmt, intchannels, intsample_rate, intapply_map){AudioConvert *ac;intin_planar, out_planar;ac=av_mallocz(sizeof(*ac));if(!ac) returnNULL;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);returnNULL;}returnac;}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;}elseif(in_planar) ac->func_type=CONV_FUNC_TYPE_INTERLEAVE;elseac->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);returnac;}intff_audio_convert(AudioConvert *ac, AudioData *out, AudioData *in){intuse_generic=1;intlen=in->nb_samples;intp;if(ac->dc){av_log(ac->avr, AV_LOG_TRACE,"%dsamples-audio_convert:%sto%s(dithered)\n", len, av_get_sample_fmt_name(ac->in_fmt), av_get_sample_fmt_name(ac->out_fmt));returnff_convert_dither(ac-> dc
enum AVColorTransferCharacteristic color_trc
AVCodec ff_prores_ks_encoder
const uint8_t * quant_mat
#define MKTAG(a, b, c, d)
int frame_size_upper_bound
static void get_alpha_data(ProresContext *ctx, const uint16_t *src, ptrdiff_t linesize, int x, int y, int w, int h, int16_t *blocks, int mbs_per_slice, int abits)
AVPixelFormat
Pixel format.
This structure stores compressed data.
static int estimate_dcs(int *error, int16_t *blocks, int blocks_per_slice, int scale)