12#ifndef AOM_AV1_COMMON_BLOCKD_H_
13#define AOM_AV1_COMMON_BLOCKD_H_
15#include "config/aom_config.h"
17#include "aom_dsp/aom_dsp_common.h"
18#include "aom_ports/mem.h"
19#include "aom_scale/yv12config.h"
21#include "av1/common/common_data.h"
22#include "av1/common/quant_common.h"
23#include "av1/common/entropy.h"
24#include "av1/common/entropymode.h"
25#include "av1/common/mv.h"
26#include "av1/common/scale.h"
27#include "av1/common/seg_common.h"
28#include "av1/common/tile_common.h"
34#define USE_B_QUANT_NO_TRELLIS 1
38#define MAX_DIFFWTD_MASK_BITS 1
40#define INTERINTRA_WEDGE_SIGN 0
42#define DEFAULT_INTER_TX_TYPE DCT_DCT
44#define MAX_PALETTE_BLOCK_WIDTH 64
46#define MAX_PALETTE_BLOCK_HEIGHT 64
55} UENUM1BYTE(DIFFWTD_MASK_TYPE);
63} UENUM1BYTE(FRAME_TYPE);
65static inline int is_comp_ref_allowed(BLOCK_SIZE bsize) {
66 return AOMMIN(block_size_wide[bsize], block_size_high[bsize]) >= 8;
69static inline int is_inter_mode(PREDICTION_MODE mode) {
70 return mode >= INTER_MODE_START && mode < INTER_MODE_END;
74 uint8_t *plane[MAX_MB_PLANE];
75 int stride[MAX_MB_PLANE];
78static inline int is_inter_singleref_mode(PREDICTION_MODE mode) {
79 return mode >= SINGLE_INTER_MODE_START && mode < SINGLE_INTER_MODE_END;
81static inline int is_inter_compound_mode(PREDICTION_MODE mode) {
82 return mode >= COMP_INTER_MODE_START && mode < COMP_INTER_MODE_END;
85static inline PREDICTION_MODE compound_ref0_mode(PREDICTION_MODE mode) {
86 static const PREDICTION_MODE lut[] = {
113 assert(NELEMENTS(lut) == MB_MODE_COUNT);
114 assert(is_inter_compound_mode(mode) || is_inter_singleref_mode(mode));
118static inline PREDICTION_MODE compound_ref1_mode(PREDICTION_MODE mode) {
119 static const PREDICTION_MODE lut[] = {
146 assert(NELEMENTS(lut) == MB_MODE_COUNT);
147 assert(is_inter_compound_mode(mode));
151static inline int have_nearmv_in_inter_mode(PREDICTION_MODE mode) {
152 return (mode == NEARMV || mode == NEAR_NEARMV || mode == NEAR_NEWMV ||
156static inline int have_newmv_in_inter_mode(PREDICTION_MODE mode) {
157 return (mode == NEWMV || mode == NEW_NEWMV || mode == NEAREST_NEWMV ||
158 mode == NEW_NEARESTMV || mode == NEAR_NEWMV || mode == NEW_NEARMV);
161static inline int is_masked_compound_type(COMPOUND_TYPE type) {
162 return (type == COMPOUND_WEDGE || type == COMPOUND_DIFFWTD);
171 uint16_t palette_colors[3 * PALETTE_MAX_SIZE];
173 uint8_t palette_size[2];
177 FILTER_INTRA_MODE filter_intra_mode;
178 uint8_t use_filter_intra;
179} FILTER_INTRA_MODE_INFO;
181static const PREDICTION_MODE fimode_to_intradir[FILTER_INTRA_MODES] = {
182 DC_PRED, V_PRED, H_PRED, D157_PRED, DC_PRED
186#define TXB_COEFF_COST_MAP_SIZE (MAX_MIB_SIZE)
189typedef struct RD_STATS {
202 int txb_coeff_cost[MAX_MB_PLANE];
212 DIFFWTD_MASK_TYPE mask_type;
214} INTERINTER_COMPOUND_DATA;
216#define INTER_TX_SIZE_BUF_LEN 16
217#define TXK_TYPE_BUF_LEN 64
339 int16_t tx_skip[TXK_TYPE_BUF_LEN];
345static inline int is_intrabc_block(
const MB_MODE_INFO *mbmi) {
349static inline PREDICTION_MODE get_uv_mode(UV_PREDICTION_MODE mode) {
350 assert(mode < UV_INTRA_MODES);
351 static const PREDICTION_MODE uv2y[] = {
372static inline int is_inter_block(
const MB_MODE_INFO *mbmi) {
373 return is_intrabc_block(mbmi) || mbmi->
ref_frame[0] > INTRA_FRAME;
376static inline int has_second_ref(
const MB_MODE_INFO *mbmi) {
380static inline int has_uni_comp_refs(
const MB_MODE_INFO *mbmi) {
381 return has_second_ref(mbmi) && (!((mbmi->
ref_frame[0] >= BWDREF_FRAME) ^
385static inline MV_REFERENCE_FRAME comp_ref0(
int ref_idx) {
386 static const MV_REFERENCE_FRAME lut[] = {
397 assert(NELEMENTS(lut) == TOTAL_UNIDIR_COMP_REFS);
401static inline MV_REFERENCE_FRAME comp_ref1(
int ref_idx) {
402 static const MV_REFERENCE_FRAME lut[] = {
413 assert(NELEMENTS(lut) == TOTAL_UNIDIR_COMP_REFS);
417PREDICTION_MODE av1_left_block_mode(
const MB_MODE_INFO *left_mi);
419PREDICTION_MODE av1_above_block_mode(
const MB_MODE_INFO *above_mi);
421static inline int is_global_mv_block(
const MB_MODE_INFO *
const mbmi,
422 TransformationType type) {
423 const PREDICTION_MODE mode = mbmi->
mode;
424 const BLOCK_SIZE bsize = mbmi->
bsize;
425 const int block_size_allowed =
426 AOMMIN(block_size_wide[bsize], block_size_high[bsize]) >= 8;
427 return (mode == GLOBALMV || mode == GLOBAL_GLOBALMV) && type > TRANSLATION &&
431#if CONFIG_MISMATCH_DEBUG
432static inline void mi_to_pixel_loc(
int *pixel_c,
int *pixel_r,
int mi_col,
433 int mi_row,
int tx_blk_col,
int tx_blk_row,
434 int subsampling_x,
int subsampling_y) {
435 *pixel_c = ((mi_col >> subsampling_x) << MI_SIZE_LOG2) +
436 (tx_blk_col << MI_SIZE_LOG2);
437 *pixel_r = ((mi_row >> subsampling_y) << MI_SIZE_LOG2) +
438 (tx_blk_row << MI_SIZE_LOG2);
442enum { MV_PRECISION_Q3, MV_PRECISION_Q4 } UENUM1BYTE(mv_precision);
452typedef struct eob_info {
454 uint16_t max_scan_line;
458 DECLARE_ALIGNED(32, tran_low_t, dqcoeff[MAX_MB_PLANE][MAX_SB_SQUARE]);
459 eob_info eob_data[MAX_MB_PLANE]
460 [MAX_SB_SQUARE / (TX_SIZE_W_MIN * TX_SIZE_H_MIN)];
461 DECLARE_ALIGNED(16, uint8_t, color_index_map[2][MAX_SB_SQUARE]);
464typedef struct macroblockd_plane {
465 PLANE_TYPE plane_type;
469 struct buf_2d pre[2];
470 ENTROPY_CONTEXT *above_entropy_context;
471 ENTROPY_CONTEXT *left_entropy_context;
476 int16_t seg_dequant_QTX[MAX_SEGMENTS][2];
480 uint8_t *color_index_map;
483 uint8_t width, height;
485 qm_val_t *seg_iqmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
486 qm_val_t *seg_qmatrix[MAX_SEGMENTS][TX_SIZES_ALL];
489#define BLOCK_OFFSET(i) ((i) << 4)
498 DECLARE_ALIGNED(16, InterpKernel, vfilter);
503 DECLARE_ALIGNED(16, InterpKernel, hfilter);
521#define CFL_MAX_BLOCK_SIZE (BLOCK_32X32)
522#define CFL_BUF_LINE (32)
523#define CFL_BUF_LINE_I128 (CFL_BUF_LINE >> 3)
524#define CFL_BUF_LINE_I256 (CFL_BUF_LINE >> 4)
525#define CFL_BUF_SQUARE (CFL_BUF_LINE * CFL_BUF_LINE)
526typedef struct cfl_ctx {
529 uint16_t recon_buf_q3[CFL_BUF_SQUARE];
531 int16_t ac_buf_q3[CFL_BUF_SQUARE];
535 bool dc_pred_is_cached[CFL_PRED_PLANES];
538 bool use_dc_pred_cache;
540 int16_t dc_pred_cache[CFL_PRED_PLANES][CFL_BUF_LINE];
543 int buf_height, buf_width;
545 int are_parameters_computed;
548 int subsampling_x, subsampling_y;
554typedef struct dist_wtd_comp_params {
555 int use_dist_wtd_comp_avg;
558} DIST_WTD_COMP_PARAMS;
606 struct macroblockd_plane
plane[MAX_MB_PLANE];
781 uint16_t
weight[MODE_CTX_REF_FRAMES][MAX_REF_MV_STACK_SIZE];
932static inline int is_cur_buf_hbd(
const MACROBLOCKD *xd) {
933#if CONFIG_AV1_HIGHBITDEPTH
934 return xd->
cur_buf->flags & YV12_FLAG_HIGHBITDEPTH ? 1 : 0;
941static inline uint8_t *get_buf_by_bd(
const MACROBLOCKD *xd, uint8_t *buf16) {
942#if CONFIG_AV1_HIGHBITDEPTH
943 return (xd->
cur_buf->flags & YV12_FLAG_HIGHBITDEPTH)
944 ? CONVERT_TO_BYTEPTR(buf16)
952typedef struct BitDepthInfo {
959 int use_highbitdepth_buf;
962static inline BitDepthInfo get_bit_depth_info(
const MACROBLOCKD *xd) {
963 BitDepthInfo bit_depth_info;
964 bit_depth_info.bit_depth = xd->
bd;
965 bit_depth_info.use_highbitdepth_buf = is_cur_buf_hbd(xd);
966 assert(IMPLIES(!bit_depth_info.use_highbitdepth_buf,
967 bit_depth_info.bit_depth == 8));
968 return bit_depth_info;
971static inline int get_sqr_bsize_idx(BLOCK_SIZE bsize) {
973 case BLOCK_4X4:
return 0;
974 case BLOCK_8X8:
return 1;
975 case BLOCK_16X16:
return 2;
976 case BLOCK_32X32:
return 3;
977 case BLOCK_64X64:
return 4;
978 case BLOCK_128X128:
return 5;
979 default:
return SQR_BLOCK_SIZES;
990static inline BLOCK_SIZE get_partition_subsize(BLOCK_SIZE bsize,
991 PARTITION_TYPE partition) {
992 if (partition == PARTITION_INVALID) {
993 return BLOCK_INVALID;
995 const int sqr_bsize_idx = get_sqr_bsize_idx(bsize);
996 return sqr_bsize_idx >= SQR_BLOCK_SIZES
998 : subsize_lookup[partition][sqr_bsize_idx];
1002static TX_TYPE intra_mode_to_tx_type(
const MB_MODE_INFO *mbmi,
1003 PLANE_TYPE plane_type) {
1004 static const TX_TYPE _intra_mode_to_tx_type[INTRA_MODES] = {
1019 const PREDICTION_MODE mode =
1020 (plane_type == PLANE_TYPE_Y) ? mbmi->
mode : get_uv_mode(mbmi->uv_mode);
1021 assert(mode < INTRA_MODES);
1022 return _intra_mode_to_tx_type[mode];
1025static inline int is_rect_tx(TX_SIZE tx_size) {
return tx_size >= TX_SIZES; }
1027static inline int block_signals_txsize(BLOCK_SIZE bsize) {
1028 return bsize > BLOCK_4X4;
1032static const int av1_num_ext_tx_set[EXT_TX_SET_TYPES] = {
1036static const int av1_ext_tx_used[EXT_TX_SET_TYPES][TX_TYPES] = {
1037 { 1, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 },
1038 { 1, 0, 0, 0, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0 },
1039 { 1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 0, 0, 0, 0, 0, 0 },
1040 { 1, 1, 1, 1, 0, 0, 0, 0, 0, 1, 1, 1, 0, 0, 0, 0 },
1041 { 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0 },
1042 { 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1 },
1051static const uint16_t av1_derived_intra_tx_used_flag[INTRA_MODES] = {
1067static const uint16_t av1_reduced_intra_tx_used_flag[INTRA_MODES] = {
1083static const uint16_t av1_ext_tx_used_flag[EXT_TX_SET_TYPES] = {
1092static const TxSetType av1_ext_tx_set_lookup[2][2] = {
1093 { EXT_TX_SET_DTT4_IDTX_1DDCT, EXT_TX_SET_DTT4_IDTX },
1094 { EXT_TX_SET_ALL16, EXT_TX_SET_DTT9_IDTX_1DDCT },
1097static inline TxSetType av1_get_ext_tx_set_type(TX_SIZE tx_size,
int is_inter,
1098 int use_reduced_set) {
1099 const TX_SIZE tx_size_sqr_up = txsize_sqr_up_map[tx_size];
1100 if (tx_size_sqr_up > TX_32X32)
return EXT_TX_SET_DCTONLY;
1101 if (tx_size_sqr_up == TX_32X32)
1102 return is_inter ? EXT_TX_SET_DCT_IDTX : EXT_TX_SET_DCTONLY;
1103 if (use_reduced_set)
1104 return is_inter ? EXT_TX_SET_DCT_IDTX : EXT_TX_SET_DTT4_IDTX;
1105 const TX_SIZE tx_size_sqr = txsize_sqr_map[tx_size];
1106 return av1_ext_tx_set_lookup[is_inter][tx_size_sqr == TX_16X16];
1110static const int ext_tx_set_index[2][EXT_TX_SET_TYPES] = {
1112 0, -1, 2, 1, -1, -1 },
1114 0, 3, -1, -1, 2, 1 },
1117static inline int get_ext_tx_set(TX_SIZE tx_size,
int is_inter,
1118 int use_reduced_set) {
1119 const TxSetType set_type =
1120 av1_get_ext_tx_set_type(tx_size, is_inter, use_reduced_set);
1121 return ext_tx_set_index[is_inter][set_type];
1124static inline int get_ext_tx_types(TX_SIZE tx_size,
int is_inter,
1125 int use_reduced_set) {
1126 const int set_type =
1127 av1_get_ext_tx_set_type(tx_size, is_inter, use_reduced_set);
1128 return av1_num_ext_tx_set[set_type];
1131#define TXSIZEMAX(t1, t2) (tx_size_2d[(t1)] >= tx_size_2d[(t2)] ? (t1) : (t2))
1132#define TXSIZEMIN(t1, t2) (tx_size_2d[(t1)] <= tx_size_2d[(t2)] ? (t1) : (t2))
1134static inline TX_SIZE tx_size_from_tx_mode(BLOCK_SIZE bsize, TX_MODE tx_mode) {
1135 const TX_SIZE largest_tx_size = tx_mode_to_biggest_tx_size[tx_mode];
1136 const TX_SIZE max_rect_tx_size = max_txsize_rect_lookup[bsize];
1137 if (bsize == BLOCK_4X4)
1138 return AOMMIN(max_txsize_lookup[bsize], largest_tx_size);
1139 if (txsize_sqr_map[max_rect_tx_size] <= largest_tx_size)
1140 return max_rect_tx_size;
1142 return largest_tx_size;
1145static const uint8_t mode_to_angle_map[INTRA_MODES] = {
1146 0, 90, 180, 45, 135, 113, 157, 203, 67, 0, 0, 0, 0,
1151static inline int av1_block_index_to_raster_order(TX_SIZE tx_size,
1158 return (tx_size == TX_4X8 && block_idx == 2) ? 1 : block_idx;
1163static inline int av1_raster_order_to_block_index(TX_SIZE tx_size,
1165 assert(tx_size == TX_4X4 || tx_size == TX_4X8 || tx_size == TX_8X4);
1167 return (tx_size == TX_4X4) ? raster_order : (raster_order > 0) ? 2 : 0;
1170static inline TX_TYPE get_default_tx_type(PLANE_TYPE plane_type,
1173 int use_screen_content_tools) {
1176 if (is_inter_block(mbmi) || plane_type != PLANE_TYPE_Y ||
1178 use_screen_content_tools)
1179 return DEFAULT_INTER_TX_TYPE;
1181 return intra_mode_to_tx_type(mbmi, plane_type);
1186static inline BLOCK_SIZE get_plane_block_size(BLOCK_SIZE bsize,
1188 int subsampling_y) {
1189 assert(bsize < BLOCK_SIZES_ALL);
1190 assert(subsampling_x >= 0 && subsampling_x < 2);
1191 assert(subsampling_y >= 0 && subsampling_y < 2);
1192 return av1_ss_size_lookup[bsize][subsampling_x][subsampling_y];
1206static inline int av1_get_txb_size_index(BLOCK_SIZE bsize,
int blk_row,
1208 static const uint8_t tw_w_log2_table[BLOCK_SIZES_ALL] = {
1209 0, 0, 0, 0, 1, 1, 1, 2, 2, 2, 3, 3, 3, 3, 3, 3, 0, 1, 1, 2, 2, 3,
1211 static const uint8_t tw_h_log2_table[BLOCK_SIZES_ALL] = {
1212 0, 0, 0, 0, 1, 1, 1, 2, 2, 2, 3, 3, 3, 3, 3, 3, 1, 0, 2, 1, 3, 2,
1214 static const uint8_t stride_log2_table[BLOCK_SIZES_ALL] = {
1215 0, 0, 1, 1, 0, 1, 1, 0, 1, 1, 0, 1, 1, 1, 2, 2, 0, 1, 0, 1, 0, 1,
1218 ((blk_row >> tw_h_log2_table[bsize]) << stride_log2_table[bsize]) +
1219 (blk_col >> tw_w_log2_table[bsize]);
1220 assert(index < INTER_TX_SIZE_BUF_LEN);
1224#if CONFIG_INSPECTION
1236static inline int av1_get_txk_type_index(BLOCK_SIZE bsize,
int blk_row,
1238 static const uint8_t tw_w_log2_table[BLOCK_SIZES_ALL] = {
1239 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 2, 2, 2, 2, 2, 2, 0, 0, 1, 1, 2, 2,
1241 static const uint8_t tw_h_log2_table[BLOCK_SIZES_ALL] = {
1242 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 2, 2, 2, 2, 2, 2, 0, 0, 1, 1, 2, 2,
1244 static const uint8_t stride_log2_table[BLOCK_SIZES_ALL] = {
1245 0, 0, 1, 1, 1, 2, 2, 1, 2, 2, 1, 2, 2, 2, 3, 3, 0, 2, 0, 2, 0, 2,
1248 ((blk_row >> tw_h_log2_table[bsize]) << stride_log2_table[bsize]) +
1249 (blk_col >> tw_w_log2_table[bsize]);
1250 assert(index < TXK_TYPE_BUF_LEN);
1255static inline void update_txk_array(
MACROBLOCKD *
const xd,
int blk_row,
1256 int blk_col, TX_SIZE tx_size,
1259 xd->
tx_type_map[blk_row * stride + blk_col] = tx_type;
1261 const int txw = tx_size_wide_unit[tx_size];
1262 const int txh = tx_size_high_unit[tx_size];
1267 if (txw == tx_size_wide_unit[TX_64X64] ||
1268 txh == tx_size_high_unit[TX_64X64]) {
1269 const int tx_unit = tx_size_wide_unit[TX_16X16];
1270 for (
int idy = 0; idy < txh; idy += tx_unit) {
1271 for (
int idx = 0; idx < txw; idx += tx_unit) {
1272 xd->
tx_type_map[(blk_row + idy) * stride + blk_col + idx] = tx_type;
1278static inline TX_TYPE av1_get_tx_type(
const MACROBLOCKD *xd,
1279 PLANE_TYPE plane_type,
int blk_row,
1280 int blk_col, TX_SIZE tx_size,
1281 int reduced_tx_set) {
1288 if (plane_type == PLANE_TYPE_Y) {
1291 if (is_inter_block(mbmi)) {
1293 const struct macroblockd_plane *
const pd = &xd->
plane[plane_type];
1294 blk_row <<= pd->subsampling_y;
1295 blk_col <<= pd->subsampling_x;
1300 tx_type = intra_mode_to_tx_type(mbmi, PLANE_TYPE_UV);
1302 const TxSetType tx_set_type =
1303 av1_get_ext_tx_set_type(tx_size, is_inter_block(mbmi), reduced_tx_set);
1304 if (!av1_ext_tx_used[tx_set_type][tx_type]) tx_type = DCT_DCT;
1306 assert(tx_type < TX_TYPES);
1307 assert(av1_ext_tx_used[av1_get_ext_tx_set_type(tx_size, is_inter_block(mbmi),
1308 reduced_tx_set)][tx_type]);
1312void av1_setup_block_planes(
MACROBLOCKD *xd,
int ss_x,
int ss_y,
1313 const int num_planes);
1325static inline int bsize_to_max_depth(BLOCK_SIZE bsize) {
1326 static const uint8_t bsize_to_max_depth_table[BLOCK_SIZES_ALL] = {
1327 0, 1, 1, 1, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2, 2,
1329 return bsize_to_max_depth_table[bsize];
1344static inline int bsize_to_tx_size_cat(BLOCK_SIZE bsize) {
1345 assert(bsize < BLOCK_SIZES_ALL);
1346 static const uint8_t bsize_to_tx_size_depth_table[BLOCK_SIZES_ALL] = {
1347 0, 1, 1, 1, 2, 2, 2, 3, 3, 3, 4, 4, 4, 4, 4, 4, 2, 2, 3, 3, 4, 4,
1349 const int depth = bsize_to_tx_size_depth_table[bsize];
1350 assert(depth <= MAX_TX_CATS);
1354static inline TX_SIZE depth_to_tx_size(
int depth, BLOCK_SIZE bsize) {
1355 TX_SIZE max_tx_size = max_txsize_rect_lookup[bsize];
1356 TX_SIZE tx_size = max_tx_size;
1357 for (
int d = 0; d < depth; ++d) tx_size = sub_tx_size_map[tx_size];
1361static inline TX_SIZE av1_get_adjusted_tx_size(TX_SIZE tx_size) {
1365 case TX_32X64:
return TX_32X32;
1366 case TX_64X16:
return TX_32X16;
1367 case TX_16X64:
return TX_16X32;
1368 default:
return tx_size;
1372static inline TX_SIZE av1_get_max_uv_txsize(BLOCK_SIZE bsize,
int subsampling_x,
1373 int subsampling_y) {
1374 const BLOCK_SIZE plane_bsize =
1375 get_plane_block_size(bsize, subsampling_x, subsampling_y);
1376 assert(plane_bsize < BLOCK_SIZES_ALL);
1377 const TX_SIZE uv_tx = max_txsize_rect_lookup[plane_bsize];
1378 return av1_get_adjusted_tx_size(uv_tx);
1381static inline TX_SIZE av1_get_tx_size(
int plane,
const MACROBLOCKD *xd) {
1384 if (plane == 0)
return mbmi->
tx_size;
1385 const MACROBLOCKD_PLANE *pd = &xd->
plane[plane];
1386 return av1_get_max_uv_txsize(mbmi->
bsize, pd->subsampling_x,
1390void av1_reset_entropy_context(
MACROBLOCKD *xd, BLOCK_SIZE bsize,
1391 const int num_planes);
1393void av1_reset_loop_filter_delta(
MACROBLOCKD *xd,
int num_planes);
1395void av1_reset_loop_restoration(
MACROBLOCKD *xd,
const int num_planes);
1397typedef void (*foreach_transformed_block_visitor)(
int plane,
int block,
1398 int blk_row,
int blk_col,
1399 BLOCK_SIZE plane_bsize,
1400 TX_SIZE tx_size,
void *arg);
1402void av1_set_entropy_contexts(
const MACROBLOCKD *xd,
1403 struct macroblockd_plane *pd,
int plane,
1404 BLOCK_SIZE plane_bsize, TX_SIZE tx_size,
1405 int has_eob,
int aoff,
int loff);
1407#define MAX_INTERINTRA_SB_SQUARE 32 * 32
1408static inline int is_interintra_mode(
const MB_MODE_INFO *mbmi) {
1409 return (mbmi->
ref_frame[0] > INTRA_FRAME &&
1413static inline int is_interintra_allowed_bsize(
const BLOCK_SIZE bsize) {
1414 return (bsize >= BLOCK_8X8) && (bsize <= BLOCK_32X32);
1417static inline int is_interintra_allowed_mode(
const PREDICTION_MODE mode) {
1418 return (mode >= SINGLE_INTER_MODE_START) && (mode < SINGLE_INTER_MODE_END);
1421static inline int is_interintra_allowed_ref(
const MV_REFERENCE_FRAME rf[2]) {
1422 return (rf[0] > INTRA_FRAME) && (rf[1] <= INTRA_FRAME);
1425static inline int is_interintra_allowed(
const MB_MODE_INFO *mbmi) {
1426 return is_interintra_allowed_bsize(mbmi->
bsize) &&
1427 is_interintra_allowed_mode(mbmi->
mode) &&
1428 is_interintra_allowed_ref(mbmi->
ref_frame);
1431static inline int is_interintra_allowed_bsize_group(
int group) {
1433 for (i = 0; i < BLOCK_SIZES_ALL; i++) {
1434 if (size_group_lookup[i] == group &&
1435 is_interintra_allowed_bsize((BLOCK_SIZE)i)) {
1442static inline int is_interintra_pred(
const MB_MODE_INFO *mbmi) {
1443 return mbmi->
ref_frame[0] > INTRA_FRAME &&
1444 mbmi->
ref_frame[1] == INTRA_FRAME && is_interintra_allowed(mbmi);
1447static inline int get_vartx_max_txsize(
const MACROBLOCKD *xd, BLOCK_SIZE bsize,
1450 const TX_SIZE max_txsize = max_txsize_rect_lookup[bsize];
1451 if (plane == 0)
return max_txsize;
1452 return av1_get_adjusted_tx_size(max_txsize);
1455static inline int is_motion_variation_allowed_bsize(BLOCK_SIZE bsize) {
1456 assert(bsize < BLOCK_SIZES_ALL);
1457 return AOMMIN(block_size_wide[bsize], block_size_high[bsize]) >= 8;
1460static inline int is_motion_variation_allowed_compound(
1462 return !has_second_ref(mbmi);
1466static const int max_neighbor_obmc[6] = { 0, 1, 2, 3, 4, 4 };
1468static inline int check_num_overlappable_neighbors(
const MB_MODE_INFO *mbmi) {
1472static inline MOTION_MODE motion_mode_allowed(
1473 const WarpedMotionParams *gm_params,
const MACROBLOCKD *xd,
1475 if (!check_num_overlappable_neighbors(mbmi))
return SIMPLE_TRANSLATION;
1477 const TransformationType gm_type = gm_params[mbmi->
ref_frame[0]].wmtype;
1478 if (is_global_mv_block(mbmi, gm_type))
return SIMPLE_TRANSLATION;
1480 if (is_motion_variation_allowed_bsize(mbmi->
bsize) &&
1481 is_inter_mode(mbmi->
mode) && mbmi->
ref_frame[1] != INTRA_FRAME &&
1482 is_motion_variation_allowed_compound(mbmi)) {
1483 assert(!has_second_ref(mbmi));
1487 return WARPED_CAUSAL;
1491 return SIMPLE_TRANSLATION;
1494static inline int is_neighbor_overlappable(
const MB_MODE_INFO *mbmi) {
1495 return (is_inter_block(mbmi));
1498static inline int av1_allow_palette(
int allow_screen_content_tools,
1499 BLOCK_SIZE sb_type) {
1500 assert(sb_type < BLOCK_SIZES_ALL);
1501 return allow_screen_content_tools &&
1502 block_size_wide[sb_type] <= MAX_PALETTE_BLOCK_WIDTH &&
1503 block_size_high[sb_type] <= MAX_PALETTE_BLOCK_HEIGHT &&
1504 sb_type >= BLOCK_8X8;
1512static inline void av1_get_block_dimensions(BLOCK_SIZE bsize,
int plane,
1515 int *rows_within_bounds,
1516 int *cols_within_bounds) {
1517 const int block_height = block_size_high[bsize];
1518 const int block_width = block_size_wide[bsize];
1521 : (xd->mb_to_bottom_edge >> 3) + block_height;
1525 const struct macroblockd_plane *
const pd = &xd->
plane[plane];
1526 assert(IMPLIES(plane == PLANE_TYPE_Y, pd->subsampling_x == 0));
1527 assert(IMPLIES(plane == PLANE_TYPE_Y, pd->subsampling_y == 0));
1528 assert(block_width >= block_cols);
1529 assert(block_height >= block_rows);
1530 const int plane_block_width = block_width >> pd->subsampling_x;
1531 const int plane_block_height = block_height >> pd->subsampling_y;
1533 const int is_chroma_sub8_x = plane > 0 && plane_block_width < 4;
1534 const int is_chroma_sub8_y = plane > 0 && plane_block_height < 4;
1536 *width = plane_block_width + 2 * is_chroma_sub8_x;
1537 assert(*width >= 0);
1540 *height = plane_block_height + 2 * is_chroma_sub8_y;
1541 assert(*height >= 0);
1543 if (rows_within_bounds) {
1544 *rows_within_bounds =
1545 (block_rows >> pd->subsampling_y) + 2 * is_chroma_sub8_y;
1546 assert(*rows_within_bounds >= 0);
1548 if (cols_within_bounds) {
1549 *cols_within_bounds =
1550 (block_cols >> pd->subsampling_x) + 2 * is_chroma_sub8_x;
1551 assert(*cols_within_bounds >= 0);
1557typedef aom_cdf_prob (*MapCdf)[PALETTE_COLOR_INDEX_CONTEXTS]
1558 [CDF_SIZE(PALETTE_COLORS)];
1561typedef const int (*ColorCost)[PALETTE_COLOR_INDEX_CONTEXTS][PALETTE_COLORS];
1572 ColorCost color_cost;
1575static inline int is_nontrans_global_motion(
const MACROBLOCKD *xd,
1580 if (mbmi->
mode != GLOBALMV && mbmi->
mode != GLOBAL_GLOBALMV)
return 0;
1582 if (AOMMIN(mi_size_wide[mbmi->
bsize], mi_size_high[mbmi->
bsize]) < 2)
1586 for (ref = 0; ref < 1 + has_second_ref(mbmi); ++ref) {
1592static inline PLANE_TYPE get_plane_type(
int plane) {
1593 return (plane == 0) ? PLANE_TYPE_Y : PLANE_TYPE_UV;
1596static inline int av1_get_max_eob(TX_SIZE tx_size) {
1597 if (tx_size == TX_64X64 || tx_size == TX_64X32 || tx_size == TX_32X64) {
1600 if (tx_size == TX_16X64 || tx_size == TX_64X16) {
1603 return tx_size_2d[tx_size];
Stores the prediction/txfm mode of the current coding block.
Definition blockd.h:222
int8_t delta_lf_from_base
Definition blockd.h:300
int_interpfilters interp_filters
Filter used in subpel interpolation.
Definition blockd.h:248
int8_t interintra_wedge_index
The type of wedge used in interintra mode.
Definition blockd.h:261
int_mv mv[2]
The motion vectors used by the current inter mode.
Definition blockd.h:244
int8_t delta_lf[FRAME_LF_COUNT]
Definition blockd.h:302
PREDICTION_MODE mode
The prediction mode used.
Definition blockd.h:232
INTERINTER_COMPOUND_DATA interinter_comp
Struct that stores the data used in interinter compound mode.
Definition blockd.h:263
uint8_t use_wedge_interintra
Whether to use interintra wedge.
Definition blockd.h:324
UV_PREDICTION_MODE uv_mode
The UV mode when intra is used.
Definition blockd.h:234
PALETTE_MODE_INFO palette_mode_info
Stores the size and colors of palette mode.
Definition blockd.h:280
uint8_t segment_id
The segment id.
Definition blockd.h:310
uint8_t cfl_alpha_idx
Chroma from Luma: Index of the alpha Cb and alpha Cr combination.
Definition blockd.h:278
uint8_t ref_mv_idx
Which ref_mv to use.
Definition blockd.h:314
uint8_t compound_idx
Indicates whether dist_wtd_comp(0) is used or not (0).
Definition blockd.h:322
uint8_t overlappable_neighbors
The number of overlapped neighbors above/left for obmc/warp motion mode.
Definition blockd.h:255
MV_REFERENCE_FRAME ref_frame[2]
The reference frames for the MV.
Definition blockd.h:246
uint8_t skip_txfm
Whether to skip transforming and sending.
Definition blockd.h:288
TX_SIZE inter_tx_size[INTER_TX_SIZE_BUF_LEN]
Transform size when recursive txfm tree is on.
Definition blockd.h:292
int8_t cdef_strength
CDEF strength per BLOCK_64X64.
Definition blockd.h:326
int current_qindex
The q index for the current coding block.
Definition blockd.h:236
int8_t angle_delta[PLANE_TYPES]
Directional mode delta: the angle is base angle + (angle_delta * step).
Definition blockd.h:272
FILTER_INTRA_MODE_INFO filter_intra_mode_info
The type of filter intra mode used (if applicable).
Definition blockd.h:274
WarpedMotionParams wm_params
The parameters used in warp motion mode.
Definition blockd.h:257
MOTION_MODE motion_mode
The motion mode used by the inter prediction.
Definition blockd.h:250
uint8_t num_proj_ref
Number of samples used by warp causal.
Definition blockd.h:252
uint8_t seg_id_predicted
Only valid when temporal update if off.
Definition blockd.h:312
int8_t cfl_alpha_signs
Chroma from Luma: Joint sign of alpha Cb and alpha Cr.
Definition blockd.h:276
uint8_t comp_group_idx
Indicates if masked compound is used(1) or not (0).
Definition blockd.h:320
uint8_t skip_mode
Inter skip mode.
Definition blockd.h:316
INTERINTRA_MODE interintra_mode
The type of intra mode used by inter-intra.
Definition blockd.h:259
PARTITION_TYPE partition
The partition type of the current coding block.
Definition blockd.h:230
BLOCK_SIZE bsize
The block size of the current coding block.
Definition blockd.h:228
TX_SIZE tx_size
Transform size when fixed size txfm is used (e.g. intra modes).
Definition blockd.h:290
uint8_t use_intrabc
Whether intrabc is used.
Definition blockd.h:318
Parameters related to Sgrproj Filter.
Definition blockd.h:507
int ep
Definition blockd.h:511
Parameters related to Wiener Filter.
Definition blockd.h:494
Variables related to current coding block.
Definition blockd.h:570
bool left_available
Definition blockd.h:626
uint8_t * tx_type_map
Definition blockd.h:666
int mb_to_bottom_edge
Definition blockd.h:680
TXFM_CONTEXT * left_txfm_context
Definition blockd.h:740
struct macroblockd_plane plane[3]
Definition blockd.h:606
TileInfo tile
Definition blockd.h:611
int mb_to_top_edge
Definition blockd.h:679
int8_t delta_lf_from_base
Definition blockd.h:853
int mb_to_right_edge
Definition blockd.h:678
WienerInfo wiener_info[3]
Definition blockd.h:757
bool up_available
Definition blockd.h:622
CONV_BUF_TYPE * tmp_conv_dst
Definition blockd.h:916
MB_MODE_INFO * above_mbmi
Definition blockd.h:645
bool chroma_up_available
Definition blockd.h:630
TXFM_CONTEXT * above_txfm_context
Definition blockd.h:733
int bd
Definition blockd.h:808
bool chroma_left_available
Definition blockd.h:634
PARTITION_CONTEXT * above_partition_context
Definition blockd.h:718
uint8_t * seg_mask
Definition blockd.h:889
int qindex[8]
Definition blockd.h:813
uint16_t weight[MODE_CTX_REF_FRAMES][MAX_REF_MV_STACK_SIZE]
Definition blockd.h:781
MB_MODE_INFO * chroma_left_mbmi
Definition blockd.h:652
TXFM_CONTEXT left_txfm_context_buffer[MAX_MIB_SIZE]
Definition blockd.h:747
int tx_type_map_stride
Definition blockd.h:671
const WarpedMotionParams * global_motion
Definition blockd.h:843
MB_MODE_INFO * chroma_above_mbmi
Definition blockd.h:659
FRAME_CONTEXT * tile_ctx
Definition blockd.h:803
uint8_t * tmp_obmc_bufs[2]
Definition blockd.h:927
int mi_row
Definition blockd.h:575
const YV12_BUFFER_CONFIG * cur_buf
Definition blockd.h:695
int mi_stride
Definition blockd.h:582
bool is_last_vertical_rect
Definition blockd.h:787
bool is_first_horizontal_rect
Definition blockd.h:792
uint8_t width
Definition blockd.h:765
struct aom_internal_error_info * error_info
Definition blockd.h:838
CANDIDATE_MV ref_mv_stack[MODE_CTX_REF_FRAMES][MAX_REF_MV_STACK_SIZE]
Definition blockd.h:776
int current_base_qindex
Definition blockd.h:828
CFL_CTX cfl
Definition blockd.h:894
const struct scale_factors * block_ref_scale_factors[2]
Definition blockd.h:687
int lossless[8]
Definition blockd.h:817
ENTROPY_CONTEXT left_entropy_context[3][MAX_MIB_SIZE]
Definition blockd.h:710
bool cdef_transmitted[4]
Definition blockd.h:884
ENTROPY_CONTEXT * above_entropy_context[3]
Definition blockd.h:703
int8_t delta_lf[FRAME_LF_COUNT]
Definition blockd.h:868
MB_MODE_INFO ** mi
Definition blockd.h:617
uint8_t height
Definition blockd.h:766
MB_MODE_INFO * left_mbmi
Definition blockd.h:640
uint16_t color_index_map_offset[2]
Definition blockd.h:905
SgrprojInfo sgrproj_info[3]
Definition blockd.h:758
int cur_frame_force_integer_mv
Definition blockd.h:833
PARTITION_CONTEXT left_partition_context[MAX_MIB_SIZE]
Definition blockd.h:725
uint8_t neighbors_ref_counts[REF_FRAMES]
Definition blockd.h:798
bool is_chroma_ref
Definition blockd.h:601
int mi_col
Definition blockd.h:576
int mb_to_left_edge
Definition blockd.h:677
YV12 frame buffer data structure.
Definition yv12config.h:46