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00025 #define RC_VARIANCE 1 // use variance or ssd for fast rc
00026
00027 #include "avcodec.h"
00028 #include "dsputil.h"
00029 #include "mpegvideo.h"
00030 #include "dnxhddata.h"
00031
00032 typedef struct {
00033 uint16_t mb;
00034 int value;
00035 } RCCMPEntry;
00036
00037 typedef struct {
00038 int ssd;
00039 int bits;
00040 } RCEntry;
00041
00042 int dct_quantize_c(MpegEncContext *s, DCTELEM *block, int n, int qscale, int *overflow);
00043
00044 typedef struct DNXHDEncContext {
00045 MpegEncContext m;
00046
00047 AVFrame frame;
00048 int cid;
00049 const CIDEntry *cid_table;
00050 uint8_t *msip;
00051 uint32_t *slice_size;
00052
00053 struct DNXHDEncContext *thread[MAX_THREADS];
00054
00055 unsigned dct_y_offset;
00056 unsigned dct_uv_offset;
00057 int interlaced;
00058 int cur_field;
00059
00060 DECLARE_ALIGNED_16(DCTELEM, blocks[8][64]);
00061
00062 int (*qmatrix_c) [64];
00063 int (*qmatrix_l) [64];
00064 uint16_t (*qmatrix_l16)[2][64];
00065 uint16_t (*qmatrix_c16)[2][64];
00066
00067 unsigned frame_bits;
00068 uint8_t *src[3];
00069
00070 uint16_t *table_vlc_codes;
00071 uint8_t *table_vlc_bits;
00072 uint16_t *table_run_codes;
00073 uint8_t *table_run_bits;
00074
00076 unsigned slice_bits;
00077 unsigned qscale;
00078 unsigned lambda;
00079
00080 unsigned thread_size;
00081
00082 uint16_t *mb_bits;
00083 uint8_t *mb_qscale;
00084
00085 RCCMPEntry *mb_cmp;
00086 RCEntry (*mb_rc)[8160];
00087 } DNXHDEncContext;
00088
00089 #define LAMBDA_FRAC_BITS 10
00090
00091 static int dnxhd_init_vlc(DNXHDEncContext *ctx)
00092 {
00093 int i;
00094
00095 CHECKED_ALLOCZ(ctx->table_vlc_codes, 449*2);
00096 CHECKED_ALLOCZ(ctx->table_vlc_bits, 449);
00097 CHECKED_ALLOCZ(ctx->table_run_codes, 63*2);
00098 CHECKED_ALLOCZ(ctx->table_run_bits, 63);
00099
00100 for (i = 0; i < 257; i++) {
00101 int level = ctx->cid_table->ac_level[i] +
00102 (ctx->cid_table->ac_run_flag[i] << 7) + (ctx->cid_table->ac_index_flag[i] << 8);
00103 assert(level < 449);
00104 if (ctx->cid_table->ac_level[i] == 64 && ctx->cid_table->ac_index_flag[i])
00105 level -= 64;
00106 ctx->table_vlc_codes[level] = ctx->cid_table->ac_codes[i];
00107 ctx->table_vlc_bits [level] = ctx->cid_table->ac_bits[i];
00108 }
00109 for (i = 0; i < 62; i++) {
00110 int run = ctx->cid_table->run[i];
00111 assert(run < 63);
00112 ctx->table_run_codes[run] = ctx->cid_table->run_codes[i];
00113 ctx->table_run_bits [run] = ctx->cid_table->run_bits[i];
00114 }
00115 return 0;
00116 fail:
00117 return -1;
00118 }
00119
00120 static int dnxhd_init_qmat(DNXHDEncContext *ctx, int lbias, int cbias)
00121 {
00122
00123 uint16_t weight_matrix[64] = {1,};
00124 int qscale, i;
00125
00126 CHECKED_ALLOCZ(ctx->qmatrix_l, (ctx->m.avctx->qmax+1) * 64 * sizeof(int));
00127 CHECKED_ALLOCZ(ctx->qmatrix_c, (ctx->m.avctx->qmax+1) * 64 * sizeof(int));
00128 CHECKED_ALLOCZ(ctx->qmatrix_l16, (ctx->m.avctx->qmax+1) * 64 * 2 * sizeof(uint16_t));
00129 CHECKED_ALLOCZ(ctx->qmatrix_c16, (ctx->m.avctx->qmax+1) * 64 * 2 * sizeof(uint16_t));
00130
00131 for (i = 1; i < 64; i++) {
00132 int j = ctx->m.dsp.idct_permutation[ff_zigzag_direct[i]];
00133 weight_matrix[j] = ctx->cid_table->luma_weight[i];
00134 }
00135 ff_convert_matrix(&ctx->m.dsp, ctx->qmatrix_l, ctx->qmatrix_l16, weight_matrix,
00136 ctx->m.intra_quant_bias, 1, ctx->m.avctx->qmax, 1);
00137 for (i = 1; i < 64; i++) {
00138 int j = ctx->m.dsp.idct_permutation[ff_zigzag_direct[i]];
00139 weight_matrix[j] = ctx->cid_table->chroma_weight[i];
00140 }
00141 ff_convert_matrix(&ctx->m.dsp, ctx->qmatrix_c, ctx->qmatrix_c16, weight_matrix,
00142 ctx->m.intra_quant_bias, 1, ctx->m.avctx->qmax, 1);
00143 for (qscale = 1; qscale <= ctx->m.avctx->qmax; qscale++) {
00144 for (i = 0; i < 64; i++) {
00145 ctx->qmatrix_l [qscale] [i] <<= 2; ctx->qmatrix_c [qscale] [i] <<= 2;
00146 ctx->qmatrix_l16[qscale][0][i] <<= 2; ctx->qmatrix_l16[qscale][1][i] <<= 2;
00147 ctx->qmatrix_c16[qscale][0][i] <<= 2; ctx->qmatrix_c16[qscale][1][i] <<= 2;
00148 }
00149 }
00150 return 0;
00151 fail:
00152 return -1;
00153 }
00154
00155 static int dnxhd_init_rc(DNXHDEncContext *ctx)
00156 {
00157 CHECKED_ALLOCZ(ctx->mb_rc, 8160*ctx->m.avctx->qmax*sizeof(RCEntry));
00158 if (ctx->m.avctx->mb_decision != FF_MB_DECISION_RD)
00159 CHECKED_ALLOCZ(ctx->mb_cmp, ctx->m.mb_num*sizeof(RCCMPEntry));
00160
00161 ctx->frame_bits = (ctx->cid_table->coding_unit_size - 640 - 4) * 8;
00162 ctx->qscale = 1;
00163 ctx->lambda = 2<<LAMBDA_FRAC_BITS;
00164 return 0;
00165 fail:
00166 return -1;
00167 }
00168
00169 static int dnxhd_encode_init(AVCodecContext *avctx)
00170 {
00171 DNXHDEncContext *ctx = avctx->priv_data;
00172 int i, index;
00173
00174 if (avctx->flags & CODEC_FLAG_INTERLACED_DCT) {
00175 if (avctx->bit_rate == 120000000)
00176 ctx->cid = 1242;
00177 else if (avctx->bit_rate == 185000000)
00178 ctx->cid = 1243;
00179 } else {
00180 if (avctx->bit_rate == 120000000)
00181 ctx->cid = 1237;
00182 else if (avctx->bit_rate == 185000000)
00183 ctx->cid = 1238;
00184 else if (avctx->bit_rate == 36000000)
00185 ctx->cid = 1253;
00186 }
00187 if (!ctx->cid || avctx->width != 1920 || avctx->height != 1080 || avctx->pix_fmt != PIX_FMT_YUV422P) {
00188 av_log(avctx, AV_LOG_ERROR, "video parameters incompatible with DNxHD\n");
00189 return -1;
00190 }
00191
00192 index = ff_dnxhd_get_cid_table(ctx->cid);
00193 ctx->cid_table = &ff_dnxhd_cid_table[index];
00194
00195 ctx->m.avctx = avctx;
00196 ctx->m.mb_intra = 1;
00197 ctx->m.h263_aic = 1;
00198
00199 dsputil_init(&ctx->m.dsp, avctx);
00200 ff_dct_common_init(&ctx->m);
00201 if (!ctx->m.dct_quantize)
00202 ctx->m.dct_quantize = dct_quantize_c;
00203
00204 ctx->m.mb_height = (avctx->height + 15) / 16;
00205 ctx->m.mb_width = (avctx->width + 15) / 16;
00206
00207 if (avctx->flags & CODEC_FLAG_INTERLACED_DCT) {
00208 ctx->interlaced = 1;
00209 ctx->m.mb_height /= 2;
00210 }
00211
00212 ctx->m.mb_num = ctx->m.mb_height * ctx->m.mb_width;
00213
00214 if (avctx->intra_quant_bias != FF_DEFAULT_QUANT_BIAS)
00215 ctx->m.intra_quant_bias = avctx->intra_quant_bias;
00216 if (dnxhd_init_qmat(ctx, ctx->m.intra_quant_bias, 0) < 0)
00217 return -1;
00218
00219 if (dnxhd_init_vlc(ctx) < 0)
00220 return -1;
00221 if (dnxhd_init_rc(ctx) < 0)
00222 return -1;
00223
00224 CHECKED_ALLOCZ(ctx->slice_size, ctx->m.mb_height*sizeof(uint32_t));
00225 CHECKED_ALLOCZ(ctx->mb_bits, ctx->m.mb_num *sizeof(uint16_t));
00226 CHECKED_ALLOCZ(ctx->mb_qscale, ctx->m.mb_num *sizeof(uint8_t));
00227
00228 ctx->frame.key_frame = 1;
00229 ctx->frame.pict_type = FF_I_TYPE;
00230 ctx->m.avctx->coded_frame = &ctx->frame;
00231
00232 if (avctx->thread_count > MAX_THREADS || (avctx->thread_count > ctx->m.mb_height)) {
00233 av_log(avctx, AV_LOG_ERROR, "too many threads\n");
00234 return -1;
00235 }
00236
00237 ctx->thread[0] = ctx;
00238 for (i = 1; i < avctx->thread_count; i++) {
00239 ctx->thread[i] = av_malloc(sizeof(DNXHDEncContext));
00240 memcpy(ctx->thread[i], ctx, sizeof(DNXHDEncContext));
00241 }
00242
00243 for (i = 0; i < avctx->thread_count; i++) {
00244 ctx->thread[i]->m.start_mb_y = (ctx->m.mb_height*(i ) + avctx->thread_count/2) / avctx->thread_count;
00245 ctx->thread[i]->m.end_mb_y = (ctx->m.mb_height*(i+1) + avctx->thread_count/2) / avctx->thread_count;
00246 }
00247
00248 return 0;
00249 fail:
00250 return -1;
00251 }
00252
00253 static int dnxhd_write_header(AVCodecContext *avctx, uint8_t *buf)
00254 {
00255 DNXHDEncContext *ctx = avctx->priv_data;
00256 const uint8_t header_prefix[5] = { 0x00,0x00,0x02,0x80,0x01 };
00257
00258 memcpy(buf, header_prefix, 5);
00259 buf[5] = ctx->interlaced ? ctx->cur_field+2 : 0x01;
00260 buf[6] = 0x80;
00261 buf[7] = 0xa0;
00262 AV_WB16(buf + 0x18, avctx->height);
00263 AV_WB16(buf + 0x1a, avctx->width);
00264 AV_WB16(buf + 0x1d, avctx->height);
00265
00266 buf[0x21] = 0x38;
00267 buf[0x22] = 0x88 + (ctx->frame.interlaced_frame<<2);
00268 AV_WB32(buf + 0x28, ctx->cid);
00269 buf[0x2c] = ctx->interlaced ? 0 : 0x80;
00270
00271 buf[0x5f] = 0x01;
00272
00273 buf[0x167] = 0x02;
00274 AV_WB16(buf + 0x16a, ctx->m.mb_height * 4 + 4);
00275 buf[0x16d] = ctx->m.mb_height;
00276 buf[0x16f] = 0x10;
00277
00278 ctx->msip = buf + 0x170;
00279 return 0;
00280 }
00281
00282 static av_always_inline void dnxhd_encode_dc(DNXHDEncContext *ctx, int diff)
00283 {
00284 int nbits;
00285 if (diff < 0) {
00286 nbits = av_log2_16bit(-2*diff);
00287 diff--;
00288 } else {
00289 nbits = av_log2_16bit(2*diff);
00290 }
00291 put_bits(&ctx->m.pb, ctx->cid_table->dc_bits[nbits] + nbits,
00292 (ctx->cid_table->dc_codes[nbits]<<nbits) + (diff & ((1 << nbits) - 1)));
00293 }
00294
00295 static av_always_inline void dnxhd_encode_block(DNXHDEncContext *ctx, DCTELEM *block, int last_index, int n)
00296 {
00297 int last_non_zero = 0;
00298 int offset = 0;
00299 int slevel, i, j;
00300
00301 dnxhd_encode_dc(ctx, block[0] - ctx->m.last_dc[n]);
00302 ctx->m.last_dc[n] = block[0];
00303
00304 for (i = 1; i <= last_index; i++) {
00305 j = ctx->m.intra_scantable.permutated[i];
00306 slevel = block[j];
00307 if (slevel) {
00308 int run_level = i - last_non_zero - 1;
00309 int sign;
00310 MASK_ABS(sign, slevel);
00311 if (slevel > 64) {
00312 offset = (slevel-1) >> 6;
00313 slevel = 256 | (slevel & 63);
00314 }
00315 if (run_level)
00316 slevel |= 128;
00317 put_bits(&ctx->m.pb, ctx->table_vlc_bits[slevel]+1, (ctx->table_vlc_codes[slevel]<<1)|(sign&1));
00318 if (offset) {
00319 put_bits(&ctx->m.pb, 4, offset);
00320 offset = 0;
00321 }
00322 if (run_level)
00323 put_bits(&ctx->m.pb, ctx->table_run_bits[run_level], ctx->table_run_codes[run_level]);
00324 last_non_zero = i;
00325 }
00326 }
00327 put_bits(&ctx->m.pb, ctx->table_vlc_bits[0], ctx->table_vlc_codes[0]);
00328 }
00329
00330 static av_always_inline void dnxhd_unquantize_c(DNXHDEncContext *ctx, DCTELEM *block, int n, int qscale, int last_index)
00331 {
00332 const uint8_t *weight_matrix;
00333 int level;
00334 int i;
00335
00336 weight_matrix = (n&2) ? ctx->cid_table->chroma_weight : ctx->cid_table->luma_weight;
00337
00338 for (i = 1; i <= last_index; i++) {
00339 int j = ctx->m.intra_scantable.permutated[i];
00340 level = block[j];
00341 if (level) {
00342 if (level < 0) {
00343 level = (1-2*level) * qscale * weight_matrix[i];
00344 if (weight_matrix[i] != 32)
00345 level += 32;
00346 level >>= 6;
00347 level = -level;
00348 } else {
00349 level = (2*level+1) * qscale * weight_matrix[i];
00350 if (weight_matrix[i] != 32)
00351 level += 32;
00352 level >>= 6;
00353 }
00354 block[j] = level;
00355 }
00356 }
00357 }
00358
00359 static av_always_inline int dnxhd_ssd_block(DCTELEM *qblock, DCTELEM *block)
00360 {
00361 int score = 0;
00362 int i;
00363 for (i = 0; i < 64; i++)
00364 score += (block[i]-qblock[i])*(block[i]-qblock[i]);
00365 return score;
00366 }
00367
00368 static av_always_inline int dnxhd_calc_ac_bits(DNXHDEncContext *ctx, DCTELEM *block, int last_index)
00369 {
00370 int last_non_zero = 0;
00371 int bits = 0;
00372 int i, j, level;
00373 for (i = 1; i <= last_index; i++) {
00374 j = ctx->m.intra_scantable.permutated[i];
00375 level = block[j];
00376 if (level) {
00377 int run_level = i - last_non_zero - 1;
00378 level = FFABS(level);
00379 if (level > 64) {
00380 level = 256 | (level & 63);
00381 bits += 4;
00382 }
00383 level |= (!!run_level)<<7;
00384 bits += ctx->table_vlc_bits[level]+1 + ctx->table_run_bits[run_level];
00385 last_non_zero = i;
00386 }
00387 }
00388 return bits;
00389 }
00390
00391 static av_always_inline void dnxhd_get_pixels_4x8(DCTELEM *restrict block, const uint8_t *pixels, int line_size)
00392 {
00393 int i;
00394 for (i = 0; i < 4; i++) {
00395 block[0] = pixels[0];
00396 block[1] = pixels[1];
00397 block[2] = pixels[2];
00398 block[3] = pixels[3];
00399 block[4] = pixels[4];
00400 block[5] = pixels[5];
00401 block[6] = pixels[6];
00402 block[7] = pixels[7];
00403 pixels += line_size;
00404 block += 8;
00405 }
00406 memcpy(block , block- 8, sizeof(*block)*8);
00407 memcpy(block+ 8, block-16, sizeof(*block)*8);
00408 memcpy(block+16, block-24, sizeof(*block)*8);
00409 memcpy(block+24, block-32, sizeof(*block)*8);
00410 }
00411
00412 static av_always_inline void dnxhd_get_blocks(DNXHDEncContext *ctx, int mb_x, int mb_y)
00413 {
00414 const uint8_t *ptr_y = ctx->thread[0]->src[0] + ((mb_y << 4) * ctx->m.linesize) + (mb_x << 4);
00415 const uint8_t *ptr_u = ctx->thread[0]->src[1] + ((mb_y << 4) * ctx->m.uvlinesize) + (mb_x << 3);
00416 const uint8_t *ptr_v = ctx->thread[0]->src[2] + ((mb_y << 4) * ctx->m.uvlinesize) + (mb_x << 3);
00417 DSPContext *dsp = &ctx->m.dsp;
00418
00419 dsp->get_pixels(ctx->blocks[0], ptr_y , ctx->m.linesize);
00420 dsp->get_pixels(ctx->blocks[1], ptr_y + 8, ctx->m.linesize);
00421 dsp->get_pixels(ctx->blocks[2], ptr_u , ctx->m.uvlinesize);
00422 dsp->get_pixels(ctx->blocks[3], ptr_v , ctx->m.uvlinesize);
00423
00424 if (mb_y+1 == ctx->m.mb_height) {
00425 if (ctx->interlaced) {
00426 dnxhd_get_pixels_4x8(ctx->blocks[4], ptr_y + ctx->dct_y_offset , ctx->m.linesize);
00427 dnxhd_get_pixels_4x8(ctx->blocks[5], ptr_y + ctx->dct_y_offset + 8, ctx->m.linesize);
00428 dnxhd_get_pixels_4x8(ctx->blocks[6], ptr_u + ctx->dct_uv_offset , ctx->m.uvlinesize);
00429 dnxhd_get_pixels_4x8(ctx->blocks[7], ptr_v + ctx->dct_uv_offset , ctx->m.uvlinesize);
00430 } else
00431 memset(ctx->blocks[4], 0, 4*64*sizeof(DCTELEM));
00432 } else {
00433 dsp->get_pixels(ctx->blocks[4], ptr_y + ctx->dct_y_offset , ctx->m.linesize);
00434 dsp->get_pixels(ctx->blocks[5], ptr_y + ctx->dct_y_offset + 8, ctx->m.linesize);
00435 dsp->get_pixels(ctx->blocks[6], ptr_u + ctx->dct_uv_offset , ctx->m.uvlinesize);
00436 dsp->get_pixels(ctx->blocks[7], ptr_v + ctx->dct_uv_offset , ctx->m.uvlinesize);
00437 }
00438 }
00439
00440 static av_always_inline int dnxhd_switch_matrix(DNXHDEncContext *ctx, int i)
00441 {
00442 if (i&2) {
00443 ctx->m.q_intra_matrix16 = ctx->qmatrix_c16;
00444 ctx->m.q_intra_matrix = ctx->qmatrix_c;
00445 return 1 + (i&1);
00446 } else {
00447 ctx->m.q_intra_matrix16 = ctx->qmatrix_l16;
00448 ctx->m.q_intra_matrix = ctx->qmatrix_l;
00449 return 0;
00450 }
00451 }
00452
00453 static int dnxhd_calc_bits_thread(AVCodecContext *avctx, void *arg)
00454 {
00455 DNXHDEncContext *ctx = arg;
00456 int mb_y, mb_x;
00457 int qscale = ctx->thread[0]->qscale;
00458
00459 for (mb_y = ctx->m.start_mb_y; mb_y < ctx->m.end_mb_y; mb_y++) {
00460 ctx->m.last_dc[0] =
00461 ctx->m.last_dc[1] =
00462 ctx->m.last_dc[2] = 1024;
00463
00464 for (mb_x = 0; mb_x < ctx->m.mb_width; mb_x++) {
00465 unsigned mb = mb_y * ctx->m.mb_width + mb_x;
00466 int ssd = 0;
00467 int ac_bits = 0;
00468 int dc_bits = 0;
00469 int i;
00470
00471 dnxhd_get_blocks(ctx, mb_x, mb_y);
00472
00473 for (i = 0; i < 8; i++) {
00474 DECLARE_ALIGNED_16(DCTELEM, block[64]);
00475 DCTELEM *src_block = ctx->blocks[i];
00476 int overflow, nbits, diff, last_index;
00477 int n = dnxhd_switch_matrix(ctx, i);
00478
00479 memcpy(block, src_block, sizeof(block));
00480 last_index = ctx->m.dct_quantize((MpegEncContext*)ctx, block, i, qscale, &overflow);
00481 ac_bits += dnxhd_calc_ac_bits(ctx, block, last_index);
00482
00483 diff = block[0] - ctx->m.last_dc[n];
00484 if (diff < 0) nbits = av_log2_16bit(-2*diff);
00485 else nbits = av_log2_16bit( 2*diff);
00486 dc_bits += ctx->cid_table->dc_bits[nbits] + nbits;
00487
00488 ctx->m.last_dc[n] = block[0];
00489
00490 if (avctx->mb_decision == FF_MB_DECISION_RD || !RC_VARIANCE) {
00491 dnxhd_unquantize_c(ctx, block, i, qscale, last_index);
00492 ctx->m.dsp.idct(block);
00493 ssd += dnxhd_ssd_block(block, src_block);
00494 }
00495 }
00496 ctx->mb_rc[qscale][mb].ssd = ssd;
00497 ctx->mb_rc[qscale][mb].bits = ac_bits+dc_bits+12+8*ctx->table_vlc_bits[0];
00498 }
00499 }
00500 return 0;
00501 }
00502
00503 static int dnxhd_encode_thread(AVCodecContext *avctx, void *arg)
00504 {
00505 DNXHDEncContext *ctx = arg;
00506 int mb_y, mb_x;
00507
00508 for (mb_y = ctx->m.start_mb_y; mb_y < ctx->m.end_mb_y; mb_y++) {
00509 ctx->m.last_dc[0] =
00510 ctx->m.last_dc[1] =
00511 ctx->m.last_dc[2] = 1024;
00512 for (mb_x = 0; mb_x < ctx->m.mb_width; mb_x++) {
00513 unsigned mb = mb_y * ctx->m.mb_width + mb_x;
00514 int qscale = ctx->mb_qscale[mb];
00515 int i;
00516
00517 put_bits(&ctx->m.pb, 12, qscale<<1);
00518
00519 dnxhd_get_blocks(ctx, mb_x, mb_y);
00520
00521 for (i = 0; i < 8; i++) {
00522 DCTELEM *block = ctx->blocks[i];
00523 int last_index, overflow;
00524 int n = dnxhd_switch_matrix(ctx, i);
00525 last_index = ctx->m.dct_quantize((MpegEncContext*)ctx, block, i, qscale, &overflow);
00526 dnxhd_encode_block(ctx, block, last_index, n);
00527 }
00528 }
00529 if (put_bits_count(&ctx->m.pb)&31)
00530 put_bits(&ctx->m.pb, 32-(put_bits_count(&ctx->m.pb)&31), 0);
00531 }
00532 flush_put_bits(&ctx->m.pb);
00533 return 0;
00534 }
00535
00536 static void dnxhd_setup_threads_slices(DNXHDEncContext *ctx, uint8_t *buf)
00537 {
00538 int mb_y, mb_x;
00539 int i, offset = 0;
00540 for (i = 0; i < ctx->m.avctx->thread_count; i++) {
00541 int thread_size = 0;
00542 for (mb_y = ctx->thread[i]->m.start_mb_y; mb_y < ctx->thread[i]->m.end_mb_y; mb_y++) {
00543 ctx->slice_size[mb_y] = 0;
00544 for (mb_x = 0; mb_x < ctx->m.mb_width; mb_x++) {
00545 unsigned mb = mb_y * ctx->m.mb_width + mb_x;
00546 ctx->slice_size[mb_y] += ctx->mb_bits[mb];
00547 }
00548 ctx->slice_size[mb_y] = (ctx->slice_size[mb_y]+31)&~31;
00549 ctx->slice_size[mb_y] >>= 3;
00550 thread_size += ctx->slice_size[mb_y];
00551 }
00552 init_put_bits(&ctx->thread[i]->m.pb, buf + 640 + offset, thread_size);
00553 offset += thread_size;
00554 }
00555 }
00556
00557 static int dnxhd_mb_var_thread(AVCodecContext *avctx, void *arg)
00558 {
00559 DNXHDEncContext *ctx = arg;
00560 int mb_y, mb_x;
00561 for (mb_y = ctx->m.start_mb_y; mb_y < ctx->m.end_mb_y; mb_y++) {
00562 for (mb_x = 0; mb_x < ctx->m.mb_width; mb_x++) {
00563 unsigned mb = mb_y * ctx->m.mb_width + mb_x;
00564 uint8_t *pix = ctx->thread[0]->src[0] + ((mb_y<<4) * ctx->m.linesize) + (mb_x<<4);
00565 int sum = ctx->m.dsp.pix_sum(pix, ctx->m.linesize);
00566 int varc = (ctx->m.dsp.pix_norm1(pix, ctx->m.linesize) - (((unsigned)(sum*sum))>>8)+128)>>8;
00567 ctx->mb_cmp[mb].value = varc;
00568 ctx->mb_cmp[mb].mb = mb;
00569 }
00570 }
00571 return 0;
00572 }
00573
00574 static int dnxhd_encode_rdo(AVCodecContext *avctx, DNXHDEncContext *ctx)
00575 {
00576 int lambda, up_step, down_step;
00577 int last_lower = INT_MAX, last_higher = 0;
00578 int x, y, q;
00579
00580 for (q = 1; q < avctx->qmax; q++) {
00581 ctx->qscale = q;
00582 avctx->execute(avctx, dnxhd_calc_bits_thread, (void**)&ctx->thread[0], NULL, avctx->thread_count);
00583 }
00584 up_step = down_step = 2<<LAMBDA_FRAC_BITS;
00585 lambda = ctx->lambda;
00586
00587 for (;;) {
00588 int bits = 0;
00589 int end = 0;
00590 if (lambda == last_higher) {
00591 lambda++;
00592 end = 1;
00593 }
00594 for (y = 0; y < ctx->m.mb_height; y++) {
00595 for (x = 0; x < ctx->m.mb_width; x++) {
00596 unsigned min = UINT_MAX;
00597 int qscale = 1;
00598 int mb = y*ctx->m.mb_width+x;
00599 for (q = 1; q < avctx->qmax; q++) {
00600 unsigned score = ctx->mb_rc[q][mb].bits*lambda+(ctx->mb_rc[q][mb].ssd<<LAMBDA_FRAC_BITS);
00601 if (score < min) {
00602 min = score;
00603 qscale = q;
00604 }
00605 }
00606 bits += ctx->mb_rc[qscale][mb].bits;
00607 ctx->mb_qscale[mb] = qscale;
00608 ctx->mb_bits[mb] = ctx->mb_rc[qscale][mb].bits;
00609 }
00610 bits = (bits+31)&~31;
00611 if (bits > ctx->frame_bits)
00612 break;
00613 }
00614
00615
00616 if (end) {
00617 if (bits > ctx->frame_bits)
00618 return -1;
00619 break;
00620 }
00621 if (bits < ctx->frame_bits) {
00622 last_lower = FFMIN(lambda, last_lower);
00623 if (last_higher != 0)
00624 lambda = (lambda+last_higher)>>1;
00625 else
00626 lambda -= down_step;
00627 down_step *= 5;
00628 up_step = 1<<LAMBDA_FRAC_BITS;
00629 lambda = FFMAX(1, lambda);
00630 if (lambda == last_lower)
00631 break;
00632 } else {
00633 last_higher = FFMAX(lambda, last_higher);
00634 if (last_lower != INT_MAX)
00635 lambda = (lambda+last_lower)>>1;
00636 else
00637 lambda += up_step;
00638 up_step *= 5;
00639 down_step = 1<<LAMBDA_FRAC_BITS;
00640 }
00641 }
00642
00643 ctx->lambda = lambda;
00644 return 0;
00645 }
00646
00647 static int dnxhd_find_qscale(DNXHDEncContext *ctx)
00648 {
00649 int bits = 0;
00650 int up_step = 1;
00651 int down_step = 1;
00652 int last_higher = 0;
00653 int last_lower = INT_MAX;
00654 int qscale;
00655 int x, y;
00656
00657 qscale = ctx->qscale;
00658 for (;;) {
00659 bits = 0;
00660 ctx->qscale = qscale;
00661
00662 ctx->m.avctx->execute(ctx->m.avctx, dnxhd_calc_bits_thread, (void**)&ctx->thread[0], NULL, ctx->m.avctx->thread_count);
00663 for (y = 0; y < ctx->m.mb_height; y++) {
00664 for (x = 0; x < ctx->m.mb_width; x++)
00665 bits += ctx->mb_rc[qscale][y*ctx->m.mb_width+x].bits;
00666 bits = (bits+31)&~31;
00667 if (bits > ctx->frame_bits)
00668 break;
00669 }
00670
00671
00672 if (bits < ctx->frame_bits) {
00673 if (qscale == 1)
00674 break;
00675 if (last_higher == qscale - 1) {
00676 qscale = last_higher;
00677 break;
00678 }
00679 last_lower = FFMIN(qscale, last_lower);
00680 if (last_higher != 0)
00681 qscale = (qscale+last_higher)>>1;
00682 else
00683 qscale -= down_step++;
00684 if (qscale < 1)
00685 qscale = 1;
00686 up_step = 1;
00687 } else {
00688 if (last_lower == qscale + 1)
00689 break;
00690 last_higher = FFMAX(qscale, last_higher);
00691 if (last_lower != INT_MAX)
00692 qscale = (qscale+last_lower)>>1;
00693 else
00694 qscale += up_step++;
00695 down_step = 1;
00696 if (qscale >= ctx->m.avctx->qmax)
00697 return -1;
00698 }
00699 }
00700
00701 ctx->qscale = qscale;
00702 return 0;
00703 }
00704
00705 static int dnxhd_rc_cmp(const void *a, const void *b)
00706 {
00707 return ((RCCMPEntry *)b)->value - ((RCCMPEntry *)a)->value;
00708 }
00709
00710 static int dnxhd_encode_variance(AVCodecContext *avctx, DNXHDEncContext *ctx)
00711 {
00712 int max_bits = 0;
00713 int x, y;
00714 if (dnxhd_find_qscale(ctx) < 0)
00715 return -1;
00716 for (y = 0; y < ctx->m.mb_height; y++) {
00717 for (x = 0; x < ctx->m.mb_width; x++) {
00718 int mb = y*ctx->m.mb_width+x;
00719 int delta_bits;
00720 ctx->mb_qscale[mb] = ctx->qscale;
00721 ctx->mb_bits[mb] = ctx->mb_rc[ctx->qscale][mb].bits;
00722 max_bits += ctx->mb_rc[ctx->qscale][mb].bits;
00723 if (!RC_VARIANCE) {
00724 delta_bits = ctx->mb_rc[ctx->qscale][mb].bits-ctx->mb_rc[ctx->qscale+1][mb].bits;
00725 ctx->mb_cmp[mb].mb = mb;
00726 ctx->mb_cmp[mb].value = delta_bits ?
00727 ((ctx->mb_rc[ctx->qscale][mb].ssd-ctx->mb_rc[ctx->qscale+1][mb].ssd)*100)/delta_bits
00728 : INT_MIN;
00729 }
00730 }
00731 max_bits += 31;
00732 }
00733 if (max_bits > ctx->frame_bits) {
00734 if (RC_VARIANCE)
00735 avctx->execute(avctx, dnxhd_mb_var_thread, (void**)&ctx->thread[0], NULL, avctx->thread_count);
00736 qsort(ctx->mb_cmp, ctx->m.mb_num, sizeof(RCEntry), dnxhd_rc_cmp);
00737 for (x = 0; x < ctx->m.mb_num && max_bits > ctx->frame_bits; x++) {
00738 int mb = ctx->mb_cmp[x].mb;
00739 max_bits -= ctx->mb_rc[ctx->qscale][mb].bits - ctx->mb_rc[ctx->qscale+1][mb].bits;
00740 ctx->mb_qscale[mb] = ctx->qscale+1;
00741 ctx->mb_bits[mb] = ctx->mb_rc[ctx->qscale+1][mb].bits;
00742 }
00743 }
00744 return 0;
00745 }
00746
00747 static void dnxhd_load_picture(DNXHDEncContext *ctx, AVFrame *frame)
00748 {
00749 int i;
00750
00751 for (i = 0; i < 3; i++) {
00752 ctx->frame.data[i] = frame->data[i];
00753 ctx->frame.linesize[i] = frame->linesize[i];
00754 }
00755
00756 for (i = 0; i < ctx->m.avctx->thread_count; i++) {
00757 ctx->thread[i]->m.linesize = ctx->frame.linesize[0]<<ctx->interlaced;
00758 ctx->thread[i]->m.uvlinesize = ctx->frame.linesize[1]<<ctx->interlaced;
00759 ctx->thread[i]->dct_y_offset = ctx->m.linesize *8;
00760 ctx->thread[i]->dct_uv_offset = ctx->m.uvlinesize*8;
00761 }
00762
00763 ctx->frame.interlaced_frame = frame->interlaced_frame;
00764 ctx->cur_field = frame->interlaced_frame && !frame->top_field_first;
00765 }
00766
00767 static int dnxhd_encode_picture(AVCodecContext *avctx, unsigned char *buf, int buf_size, void *data)
00768 {
00769 DNXHDEncContext *ctx = avctx->priv_data;
00770 int first_field = 1;
00771 int offset, i, ret;
00772
00773 if (buf_size < ctx->cid_table->frame_size) {
00774 av_log(avctx, AV_LOG_ERROR, "output buffer is too small to compress picture\n");
00775 return -1;
00776 }
00777
00778 dnxhd_load_picture(ctx, data);
00779
00780 encode_coding_unit:
00781 for (i = 0; i < 3; i++) {
00782 ctx->src[i] = ctx->frame.data[i];
00783 if (ctx->interlaced && ctx->cur_field)
00784 ctx->src[i] += ctx->frame.linesize[i];
00785 }
00786
00787 dnxhd_write_header(avctx, buf);
00788
00789 if (avctx->mb_decision == FF_MB_DECISION_RD)
00790 ret = dnxhd_encode_rdo(avctx, ctx);
00791 else
00792 ret = dnxhd_encode_variance(avctx, ctx);
00793 if (ret < 0) {
00794 av_log(avctx, AV_LOG_ERROR, "picture could not fit ratecontrol constraints\n");
00795 return -1;
00796 }
00797
00798 dnxhd_setup_threads_slices(ctx, buf);
00799
00800 offset = 0;
00801 for (i = 0; i < ctx->m.mb_height; i++) {
00802 AV_WB32(ctx->msip + i * 4, offset);
00803 offset += ctx->slice_size[i];
00804 assert(!(ctx->slice_size[i] & 3));
00805 }
00806
00807 avctx->execute(avctx, dnxhd_encode_thread, (void**)&ctx->thread[0], NULL, avctx->thread_count);
00808
00809 AV_WB32(buf + ctx->cid_table->coding_unit_size - 4, 0x600DC0DE);
00810
00811 if (ctx->interlaced && first_field) {
00812 first_field = 0;
00813 ctx->cur_field ^= 1;
00814 buf += ctx->cid_table->coding_unit_size;
00815 buf_size -= ctx->cid_table->coding_unit_size;
00816 goto encode_coding_unit;
00817 }
00818
00819 return ctx->cid_table->frame_size;
00820 }
00821
00822 static int dnxhd_encode_end(AVCodecContext *avctx)
00823 {
00824 DNXHDEncContext *ctx = avctx->priv_data;
00825 int i;
00826
00827 av_freep(&ctx->table_vlc_codes);
00828 av_freep(&ctx->table_vlc_bits);
00829 av_freep(&ctx->table_run_codes);
00830 av_freep(&ctx->table_run_bits);
00831
00832 av_freep(&ctx->mb_bits);
00833 av_freep(&ctx->mb_qscale);
00834 av_freep(&ctx->mb_rc);
00835 av_freep(&ctx->mb_cmp);
00836 av_freep(&ctx->slice_size);
00837
00838 av_freep(&ctx->qmatrix_c);
00839 av_freep(&ctx->qmatrix_l);
00840 av_freep(&ctx->qmatrix_c16);
00841 av_freep(&ctx->qmatrix_l16);
00842
00843 for (i = 1; i < avctx->thread_count; i++)
00844 av_freep(&ctx->thread[i]);
00845
00846 return 0;
00847 }
00848
00849 AVCodec dnxhd_encoder = {
00850 "dnxhd",
00851 CODEC_TYPE_VIDEO,
00852 CODEC_ID_DNXHD,
00853 sizeof(DNXHDEncContext),
00854 dnxhd_encode_init,
00855 dnxhd_encode_picture,
00856 dnxhd_encode_end,
00857 .pix_fmts = (enum PixelFormat[]){PIX_FMT_YUV422P, -1},
00858 };