|  | /* | 
|  | * Copyright (c) 2021, Alliance for Open Media. All rights reserved | 
|  | * | 
|  | * This source code is subject to the terms of the BSD 3-Clause Clear License | 
|  | * and the Alliance for Open Media Patent License 1.0. If the BSD 3-Clause Clear | 
|  | * License was not distributed with this source code in the LICENSE file, you | 
|  | * can obtain it at aomedia.org/license/software-license/bsd-3-c-c/.  If the | 
|  | * Alliance for Open Media Patent License 1.0 was not distributed with this | 
|  | * source code in the PATENTS file, you can obtain it at | 
|  | * aomedia.org/license/patent-license/. | 
|  | */ | 
|  |  | 
|  | #include <assert.h> | 
|  |  | 
|  | #include "av1/common/blockd.h" | 
|  | #if CONFIG_BRU | 
|  | #include "av1/common/bru.h" | 
|  | #endif  // CONFIG_BRU | 
|  | #include "av1/common/cdef.h" | 
|  | #include "av1/common/ccso.h" | 
|  | #include "av1/common/cdef_block.h" | 
|  | #include "av1/common/cfl.h" | 
|  | #include "av1/common/common.h" | 
|  | #include "av1/common/txb_common.h" | 
|  | #include "av1/common/entropy.h" | 
|  | #include "av1/common/entropymode.h" | 
|  | #include "av1/common/entropymv.h" | 
|  | #include "av1/common/intra_dip.h" | 
|  | #include "av1/common/mvref_common.h" | 
|  | #include "av1/common/pred_common.h" | 
|  | #include "av1/common/reconinter.h" | 
|  | #include "av1/common/reconintra.h" | 
|  | #include "av1/common/secondary_tx.h" | 
|  | #include "av1/common/seg_common.h" | 
|  | #include "av1/common/warped_motion.h" | 
|  |  | 
|  | #include "av1/decoder/decodeframe.h" | 
|  | #include "av1/decoder/decodemv.h" | 
|  |  | 
|  | #include "aom_dsp/aom_dsp_common.h" | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | #include "aom_dsp/binary_codes_reader.h" | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  | #include "aom_ports/bitops.h" | 
|  |  | 
|  | #if CONFIG_GDF | 
|  | #include "av1/common/gdf.h" | 
|  | #endif  // CONFIG_GDF | 
|  |  | 
|  | #define DEC_MISMATCH_DEBUG 0 | 
|  |  | 
|  | #if CONFIG_GDF | 
|  | #if CONFIG_BRU | 
|  | void read_gdf(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #else | 
|  | static void read_gdf(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #endif  // CONFIG_BRU | 
|  | if (!is_allow_gdf(cm)) return; | 
|  | #if !CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | if (is_global_intrabc_allowed(cm)) return; | 
|  | #endif  //! CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | if ((cm->gdf_info.gdf_mode < 2) || (cm->gdf_info.gdf_block_num <= 1)) return; | 
|  | if ((xd->mi_row % cm->mib_size != 0) || (xd->mi_col % cm->mib_size != 0)) | 
|  | return; | 
|  |  | 
|  | #if CONFIG_BRU | 
|  | if (cm->bru.frame_inactive_flag) return; | 
|  | if (cm->bru.enabled && cm->gdf_info.gdf_mode == 1) { | 
|  | aom_internal_error(&cm->error, AOM_CODEC_ERROR, | 
|  | "BRU frame cannnot use gdf_mode 1"); | 
|  | } | 
|  | #endif | 
|  |  | 
|  | for (int mi_row = xd->mi_row; mi_row < xd->mi_row + cm->mib_size; mi_row++) { | 
|  | for (int mi_col = xd->mi_col; mi_col < xd->mi_col + cm->mib_size; | 
|  | mi_col++) { | 
|  | int blk_idx = | 
|  | gdf_get_block_idx(cm, mi_row << MI_SIZE_LOG2, mi_col << MI_SIZE_LOG2); | 
|  | if (blk_idx >= 0) { | 
|  | cm->gdf_info.gdf_block_flags[blk_idx] = aom_read_symbol( | 
|  | r, xd->tile_ctx->gdf_cdf, 2, ACCT_INFO("gdf_onoff")); | 
|  | } | 
|  | } | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_GDF | 
|  |  | 
|  | #if CONFIG_BRU | 
|  | void read_cdef(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #else | 
|  | static void read_cdef(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #endif  // CONFIG_BRU | 
|  | assert(xd->tree_type != CHROMA_PART); | 
|  | const int skip_txfm = xd->mi[0]->skip_txfm[0]; | 
|  | if (cm->features.coded_lossless) return; | 
|  | #if !CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | if (is_global_intrabc_allowed(cm)) { | 
|  | #if CONFIG_FIX_CDEF_SYNTAX | 
|  | assert(cm->cdef_info.cdef_frame_enable == 0); | 
|  | #else | 
|  | #if CONFIG_CDEF_ENHANCEMENTS | 
|  | assert(cm->cdef_info.nb_cdef_strengths == 1); | 
|  | #else | 
|  | assert(cm->cdef_info.cdef_bits == 0); | 
|  | #endif  // CONFIG_CDEF_ENHANCEMENTS | 
|  | #endif  // CONFIG_FIX_CDEF_SYNTAX | 
|  | return; | 
|  | } | 
|  | #endif  // !CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | #if CONFIG_FIX_CDEF_SYNTAX | 
|  | if (!cm->cdef_info.cdef_frame_enable) return; | 
|  | #endif  // CONFIG_FIX_CDEF_SYNTAX | 
|  |  | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  |  | 
|  | // At the start of a superblock, mark that we haven't yet read CDEF strengths | 
|  | // for any of the CDEF units contained in this superblock. | 
|  | const int sb_mask = (cm->mib_size - 1); | 
|  | const int mi_row_in_sb = (mi_row & sb_mask); | 
|  | const int mi_col_in_sb = (mi_col & sb_mask); | 
|  | if (mi_row_in_sb == 0 && mi_col_in_sb == 0) { | 
|  | av1_zero(xd->cdef_transmitted); | 
|  | } | 
|  |  | 
|  | // Find index of this CDEF unit in this superblock. | 
|  | const int index = av1_get_cdef_transmitted_index(mi_row, mi_col); | 
|  |  | 
|  | CommonModeInfoParams *const mi_params = &cm->mi_params; | 
|  |  | 
|  | // Read CDEF strength from the first non-skip coding block in this CDEF unit. | 
|  | if (!xd->cdef_transmitted[index] && | 
|  | #if CONFIG_CDEF_ENHANCEMENTS | 
|  | (cm->cdef_info.cdef_on_skip_txfm_frame_enable == 1 || !skip_txfm) | 
|  | #else | 
|  | !skip_txfm | 
|  | #endif  // CONFIG_CDEF_ENHANCEMENTS | 
|  | ) { | 
|  | const int grid_idx = fetch_cdef_mi_grid_index(cm, xd); | 
|  | MB_MODE_INFO *const mbmi = mi_params->mi_grid_base[grid_idx]; | 
|  | #if CONFIG_CDEF_ENHANCEMENTS | 
|  | if (cm->cdef_info.nb_cdef_strengths == 1) { | 
|  | mbmi->cdef_strength = 0; | 
|  | } else { | 
|  | const int cdef_strength_index0_ctx = av1_get_cdef_context(cm, xd); | 
|  | const int is_strength_index0 = aom_read_symbol( | 
|  | r, xd->tile_ctx->cdef_strength_index0_cdf[cdef_strength_index0_ctx], | 
|  | 2, ACCT_INFO("cdef_strength_index0_cdf")); | 
|  | if (is_strength_index0) { | 
|  | mbmi->cdef_strength = 0; | 
|  | } else { | 
|  | const int nb_cdef_strengths = cm->cdef_info.nb_cdef_strengths; | 
|  | if (nb_cdef_strengths == 2) { | 
|  | mbmi->cdef_strength = 1; | 
|  | } else { | 
|  | mbmi->cdef_strength = | 
|  | aom_read_symbol(r, xd->tile_ctx->cdef_cdf[nb_cdef_strengths - 3], | 
|  | nb_cdef_strengths - 1, | 
|  | ACCT_INFO("cdef_strength")) + | 
|  | 1; | 
|  | } | 
|  | } | 
|  | } | 
|  | #else | 
|  | mbmi->cdef_strength = aom_read_literal(r, cm->cdef_info.cdef_bits, | 
|  | ACCT_INFO("cdef_strength")); | 
|  | #endif  // CONFIG_CDEF_ENHANCEMENTS | 
|  | xd->cdef_transmitted[index] = true; | 
|  | } | 
|  | #if CONFIG_CDEF_ENHANCEMENTS | 
|  | else { | 
|  | if (!xd->cdef_transmitted[index] && | 
|  | !cm->cdef_info.cdef_on_skip_txfm_frame_enable && skip_txfm) { | 
|  | const int grid_idx = fetch_cdef_mi_grid_index(cm, xd); | 
|  | MB_MODE_INFO *const mbmi = mi_params->mi_grid_base[grid_idx]; | 
|  | mbmi->cdef_strength = -1; | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_CDEF_ENHANCEMENTS | 
|  | } | 
|  |  | 
|  | // This function is to copy the block level ccso control flag when the | 
|  | // block size is larger than 128x128 chroma, e.g. 256x256 superblock with 444 | 
|  | // chroma subsampling. | 
|  | static void span_ccso(AV1_COMMON *cm, MACROBLOCKD *const xd, int pli, | 
|  | int blk_idc) { | 
|  | const CommonModeInfoParams *const mi_params = &cm->mi_params; | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | const BLOCK_SIZE bsize = xd->mi[0]->sb_type[PLANE_TYPE_Y]; | 
|  | const int bw = mi_size_wide[bsize]; | 
|  | const int bh = mi_size_high[bsize]; | 
|  | #if CONFIG_CCSO_FU_BUGFIX | 
|  | const int log2_w = CCSO_BLK_SIZE; | 
|  | const int log2_h = CCSO_BLK_SIZE; | 
|  | #else | 
|  | const int log2_w = CCSO_BLK_SIZE + xd->plane[1].subsampling_x; | 
|  | const int log2_h = CCSO_BLK_SIZE + xd->plane[1].subsampling_y; | 
|  | #endif  // CONFIG_CCSO_FU_BUGFIX | 
|  | const int f_w = 1 << log2_w >> MI_SIZE_LOG2; | 
|  | const int f_h = 1 << log2_h >> MI_SIZE_LOG2; | 
|  | const int ccso_nhfb = (mi_params->mi_cols + f_w - 1) / f_w; | 
|  | for (int row = mi_row; row < mi_row + bh; row += f_h) { | 
|  | for (int col = mi_col; col < mi_col + bw; col += f_w) { | 
|  | int sb_idx = (row / f_h) * ccso_nhfb + (col / f_w); | 
|  | cm->cur_frame->ccso_info.sb_filter_control[pli][sb_idx] = blk_idc; | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | #if CONFIG_BRU | 
|  | void read_ccso(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #else | 
|  | static void read_ccso(AV1_COMMON *cm, aom_reader *r, MACROBLOCKD *const xd) { | 
|  | #endif  // CONFIG_BRU | 
|  | if (cm->features.coded_lossless) return; | 
|  | #if !CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | if (is_global_intrabc_allowed(cm)) return; | 
|  | #endif  // !CONFIG_ENABLE_INLOOP_FILTER_GIBC | 
|  | const CommonModeInfoParams *const mi_params = &cm->mi_params; | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | #if CONFIG_CCSO_FU_BUGFIX | 
|  | const int blk_size_y = (1 << (CCSO_BLK_SIZE - MI_SIZE_LOG2)) - 1; | 
|  | const int blk_size_x = (1 << (CCSO_BLK_SIZE - MI_SIZE_LOG2)) - 1; | 
|  | #else | 
|  | const int blk_size_y = | 
|  | (1 << (CCSO_BLK_SIZE + xd->plane[1].subsampling_y - MI_SIZE_LOG2)) - 1; | 
|  | const int blk_size_x = | 
|  | (1 << (CCSO_BLK_SIZE + xd->plane[1].subsampling_x - MI_SIZE_LOG2)) - 1; | 
|  | #endif  // CONFIG_CCSO_FU_BUGFIX | 
|  | int blk_idc; | 
|  | if (!(mi_row & blk_size_y) && !(mi_col & blk_size_x) && | 
|  | cm->ccso_info.ccso_enable[0]) { | 
|  | #if CONFIG_CCSO_FU_BUGFIX | 
|  | const int log2_filter_unit_size = CCSO_BLK_SIZE; | 
|  | #else | 
|  | const int log2_filter_unit_size = | 
|  | CCSO_BLK_SIZE + xd->plane[1].subsampling_x; | 
|  | #endif  // CONFIG_CCSO_FU_BUGFIX | 
|  | const int ccso_nhfb = ((mi_params->mi_cols >> xd->plane[0].subsampling_x) + | 
|  | (1 << log2_filter_unit_size >> 2) - 1) / | 
|  | (1 << log2_filter_unit_size >> 2); | 
|  | int sb_idx = | 
|  | (mi_row / (blk_size_y + 1)) * ccso_nhfb + (mi_col / (blk_size_x + 1)); | 
|  |  | 
|  | if (!cm->ccso_info.sb_reuse_ccso[0]) { | 
|  | const int ccso_ctx = av1_get_ccso_context(xd, 0); | 
|  | blk_idc = aom_read_symbol(r, xd->tile_ctx->ccso_cdf[0][ccso_ctx], 2, | 
|  | ACCT_INFO("blk_idc")); | 
|  | } else { | 
|  | CcsoInfo *ref_frame_ccso_info = | 
|  | &get_ref_frame_buf(cm, cm->ccso_info.ccso_ref_idx[0])->ccso_info; | 
|  | blk_idc = ref_frame_ccso_info->sb_filter_control[0][sb_idx]; | 
|  | } | 
|  | xd->ccso_blk_y = blk_idc; | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_y = blk_idc; | 
|  | span_ccso(cm, xd, 0, blk_idc); | 
|  | } else if (cm->ccso_info.ccso_enable[0] && | 
|  | av1_check_ccso_mbmi_inside_tile(xd, xd->mi[0])) { | 
|  | mi_params->mi_grid_base[mi_row * mi_params->mi_stride + mi_col] | 
|  | ->ccso_blk_y = | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_y; | 
|  | } | 
|  |  | 
|  | if (!(mi_row & blk_size_y) && !(mi_col & blk_size_x) && | 
|  | cm->ccso_info.ccso_enable[1]) { | 
|  | #if CONFIG_CCSO_FU_BUGFIX | 
|  | const int log2_filter_unit_size = | 
|  | (CCSO_BLK_SIZE - xd->plane[1].subsampling_x); | 
|  | #else | 
|  | const int log2_filter_unit_size = CCSO_BLK_SIZE; | 
|  | #endif  // CONFIG_CCSO_FU_BUGFIX | 
|  | const int ccso_nhfb = ((mi_params->mi_cols >> xd->plane[1].subsampling_x) + | 
|  | (1 << log2_filter_unit_size >> 2) - 1) / | 
|  | (1 << log2_filter_unit_size >> 2); | 
|  | int sb_idx = | 
|  | (mi_row / (blk_size_y + 1)) * ccso_nhfb + (mi_col / (blk_size_x + 1)); | 
|  |  | 
|  | if (!cm->ccso_info.sb_reuse_ccso[1]) { | 
|  | const int ccso_ctx = av1_get_ccso_context(xd, 1); | 
|  | blk_idc = aom_read_symbol(r, xd->tile_ctx->ccso_cdf[1][ccso_ctx], 2, | 
|  | ACCT_INFO("blk_idc")); | 
|  | } else { | 
|  | CcsoInfo *ref_frame_ccso_info = | 
|  | &get_ref_frame_buf(cm, cm->ccso_info.ccso_ref_idx[1])->ccso_info; | 
|  | blk_idc = ref_frame_ccso_info->sb_filter_control[1][sb_idx]; | 
|  | } | 
|  | xd->ccso_blk_u = blk_idc; | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_u = blk_idc; | 
|  | span_ccso(cm, xd, 1, blk_idc); | 
|  | } else if (cm->ccso_info.ccso_enable[1] && | 
|  | av1_check_ccso_mbmi_inside_tile(xd, xd->mi[0])) { | 
|  | mi_params->mi_grid_base[mi_row * mi_params->mi_stride + mi_col] | 
|  | ->ccso_blk_u = | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_u; | 
|  | } | 
|  |  | 
|  | if (!(mi_row & blk_size_y) && !(mi_col & blk_size_x) && | 
|  | cm->ccso_info.ccso_enable[2]) { | 
|  | #if CONFIG_CCSO_FU_BUGFIX | 
|  | const int log2_filter_unit_size = | 
|  | (CCSO_BLK_SIZE - xd->plane[2].subsampling_x); | 
|  | #else | 
|  | const int log2_filter_unit_size = CCSO_BLK_SIZE; | 
|  | #endif  // CONFIG_CCSO_FU_BUGFIX | 
|  | const int ccso_nhfb = ((mi_params->mi_cols >> xd->plane[2].subsampling_x) + | 
|  | (1 << log2_filter_unit_size >> 2) - 1) / | 
|  | (1 << log2_filter_unit_size >> 2); | 
|  | int sb_idx = | 
|  | (mi_row / (blk_size_y + 1)) * ccso_nhfb + (mi_col / (blk_size_x + 1)); | 
|  |  | 
|  | if (!cm->ccso_info.sb_reuse_ccso[2]) { | 
|  | const int ccso_ctx = av1_get_ccso_context(xd, 2); | 
|  | blk_idc = aom_read_symbol(r, xd->tile_ctx->ccso_cdf[2][ccso_ctx], 2, | 
|  | ACCT_INFO("blk_idc")); | 
|  | } else { | 
|  | CcsoInfo *ref_frame_ccso_info = | 
|  | &get_ref_frame_buf(cm, cm->ccso_info.ccso_ref_idx[2])->ccso_info; | 
|  | blk_idc = ref_frame_ccso_info->sb_filter_control[2][sb_idx]; | 
|  | } | 
|  | xd->ccso_blk_v = blk_idc; | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_v = blk_idc; | 
|  | span_ccso(cm, xd, 2, blk_idc); | 
|  | } else if (cm->ccso_info.ccso_enable[2] && | 
|  | av1_check_ccso_mbmi_inside_tile(xd, xd->mi[0])) { | 
|  | mi_params->mi_grid_base[mi_row * mi_params->mi_stride + mi_col] | 
|  | ->ccso_blk_v = | 
|  | mi_params | 
|  | ->mi_grid_base[(mi_row & ~blk_size_y) * mi_params->mi_stride + | 
|  | (mi_col & ~blk_size_x)] | 
|  | ->ccso_blk_v; | 
|  | } | 
|  | } | 
|  |  | 
|  | static int read_delta_qindex(AV1_COMMON *cm, const MACROBLOCKD *xd, | 
|  | aom_reader *r, MB_MODE_INFO *const mbmi) { | 
|  | int sign, abs, reduced_delta_qindex = 0; | 
|  | BLOCK_SIZE bsize = mbmi->sb_type[xd->tree_type == CHROMA_PART]; | 
|  | const int b_col = xd->mi_col & (cm->mib_size - 1); | 
|  | const int b_row = xd->mi_row & (cm->mib_size - 1); | 
|  | const int read_delta_q_flag = (b_col == 0 && b_row == 0); | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | if ((bsize != cm->sb_size || | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] == 0) && | 
|  | read_delta_q_flag) { | 
|  | abs = aom_read_symbol(r, ec_ctx->delta_q_cdf, DELTA_Q_PROBS + 1, | 
|  | ACCT_INFO("abs")); | 
|  | const int smallval = (abs < DELTA_Q_SMALL); | 
|  |  | 
|  | if (!smallval) { | 
|  | const int rem_bits = aom_read_literal(r, 3, ACCT_INFO("rem_bits")) + 1; | 
|  | const int thr = (1 << rem_bits) + DELTA_Q_SMALL_MINUS_2; | 
|  | abs = aom_read_literal(r, rem_bits, ACCT_INFO("abs")) + thr; | 
|  | } | 
|  |  | 
|  | if (abs) { | 
|  | sign = aom_read_bit(r, ACCT_INFO("sign")); | 
|  | } else { | 
|  | sign = 1; | 
|  | } | 
|  |  | 
|  | reduced_delta_qindex = sign ? -abs : abs; | 
|  | } | 
|  | return reduced_delta_qindex; | 
|  | } | 
|  | static int read_delta_lflevel(const AV1_COMMON *const cm, aom_reader *r, | 
|  | aom_cdf_prob *const cdf, | 
|  | const MB_MODE_INFO *const mbmi, int mi_col, | 
|  | int mi_row, int tree_type) { | 
|  | int reduced_delta_lflevel = 0; | 
|  | const int plane_type = (tree_type == CHROMA_PART); | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[plane_type]; | 
|  | const int b_col = mi_col & (cm->mib_size - 1); | 
|  | const int b_row = mi_row & (cm->mib_size - 1); | 
|  | const int read_delta_lf_flag = (b_col == 0 && b_row == 0); | 
|  | if ((bsize != cm->sb_size || mbmi->skip_txfm[plane_type] == 0) && | 
|  | read_delta_lf_flag) { | 
|  | int abs = aom_read_symbol(r, cdf, DELTA_LF_PROBS + 1, ACCT_INFO("abs")); | 
|  | const int smallval = (abs < DELTA_LF_SMALL); | 
|  | if (!smallval) { | 
|  | const int rem_bits = aom_read_literal(r, 3, ACCT_INFO("rem_bits")) + 1; | 
|  | const int thr = (1 << rem_bits) + 1; | 
|  | abs = aom_read_literal(r, rem_bits, ACCT_INFO("abs")) + thr; | 
|  | } | 
|  | const int sign = abs ? aom_read_bit(r, ACCT_INFO("sign")) : 1; | 
|  | reduced_delta_lflevel = sign ? -abs : abs; | 
|  | } | 
|  | return reduced_delta_lflevel; | 
|  | } | 
|  |  | 
|  | static uint8_t read_mrl_index(FRAME_CONTEXT *ec_ctx, aom_reader *r | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | , | 
|  | const MB_MODE_INFO *neighbor0, | 
|  | const MB_MODE_INFO *neighbor1 | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ) { | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | int ctx = get_mrl_index_ctx(neighbor0, neighbor1); | 
|  | aom_cdf_prob *mrl_cdf = ec_ctx->mrl_index_cdf[ctx]; | 
|  | const uint8_t mrl_index = | 
|  | aom_read_symbol(r, mrl_cdf, MRL_LINE_NUMBER, ACCT_INFO()); | 
|  | #else | 
|  | const uint8_t mrl_index = | 
|  | aom_read_symbol(r, ec_ctx->mrl_index_cdf, MRL_LINE_NUMBER, ACCT_INFO()); | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | return mrl_index; | 
|  | } | 
|  |  | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | static bool read_multi_line_mrl(FRAME_CONTEXT *ec_ctx, aom_reader *r | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | , | 
|  | const MB_MODE_INFO *neighbor0, | 
|  | const MB_MODE_INFO *neighbor1 | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ) { | 
|  | int multi_line_mrl_ctx = get_multi_line_mrl_index_ctx(neighbor0, neighbor1); | 
|  | aom_cdf_prob *multi_line_mrl_cdf = | 
|  | ec_ctx->multi_line_mrl_cdf[multi_line_mrl_ctx]; | 
|  | const bool multi_line_mrl = | 
|  | aom_read_symbol(r, multi_line_mrl_cdf, 2, ACCT_INFO()); | 
|  | return multi_line_mrl; | 
|  | } | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  |  | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | // read if dpcm lossless mode is used for luma | 
|  | static uint8_t read_dpcm_mode(FRAME_CONTEXT *ec_ctx, aom_reader *r) { | 
|  | const uint8_t dpcm_mode = | 
|  | aom_read_symbol(r, ec_ctx->dpcm_cdf, 2, ACCT_INFO()); | 
|  | return dpcm_mode; | 
|  | } | 
|  | // read dpcm lossless direction for luma | 
|  | static uint8_t read_dpcm_vert_horz_mode(FRAME_CONTEXT *ec_ctx, aom_reader *r) { | 
|  | const uint8_t dpcm_vert_horz_mode = | 
|  | aom_read_symbol(r, ec_ctx->dpcm_vert_horz_cdf, 2, ACCT_INFO()); | 
|  | return dpcm_vert_horz_mode; | 
|  | } | 
|  | // read if dpcm lossless mode is used for chroma | 
|  | static uint8_t read_dpcm_uv_mode(FRAME_CONTEXT *ec_ctx, aom_reader *r) { | 
|  | const uint8_t dpcm_uv_mode = | 
|  | aom_read_symbol(r, ec_ctx->dpcm_uv_cdf, 2, ACCT_INFO()); | 
|  | return dpcm_uv_mode; | 
|  | } | 
|  | // read dpcm lossless direction for chroma | 
|  | static uint8_t read_dpcm_uv_vert_horz_mode(FRAME_CONTEXT *ec_ctx, | 
|  | aom_reader *r) { | 
|  | const uint8_t dpcm_uv_vert_horz_mode = | 
|  | aom_read_symbol(r, ec_ctx->dpcm_uv_vert_horz_cdf, 2, ACCT_INFO()); | 
|  | return dpcm_uv_vert_horz_mode; | 
|  | } | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  |  | 
|  | static uint8_t read_fsc_mode(aom_reader *r, aom_cdf_prob *fsc_cdf) { | 
|  | const uint8_t fsc_mode = aom_read_symbol(r, fsc_cdf, FSC_MODES, ACCT_INFO()); | 
|  | return fsc_mode; | 
|  | } | 
|  |  | 
|  | static uint8_t read_cfl_index(FRAME_CONTEXT *ec_ctx, aom_reader *r) { | 
|  | #if CONFIG_ENABLE_MHCCP | 
|  | uint8_t cfl_index = aom_read_symbol(r, ec_ctx->cfl_index_cdf, | 
|  | CFL_TYPE_COUNT - 1, ACCT_INFO()); | 
|  | #else | 
|  | uint8_t cfl_index = | 
|  | aom_read_symbol(r, ec_ctx->cfl_index_cdf, CFL_TYPE_COUNT, ACCT_INFO()); | 
|  | #endif  // CONFIG_ENABLE_MHCCP | 
|  | return cfl_index; | 
|  | } | 
|  |  | 
|  | #if CONFIG_ENABLE_MHCCP | 
|  | // Read multi hypothesis cross component prediction filter direction | 
|  | static uint8_t read_mh_dir(aom_cdf_prob *mh_dir_cdf, aom_reader *r) { | 
|  | uint8_t mh_dir = aom_read_symbol(r, mh_dir_cdf, MHCCP_MODE_NUM, ACCT_INFO()); | 
|  | return mh_dir; | 
|  | } | 
|  | #endif  // CONFIG_ENABLE_MHCCP | 
|  |  | 
|  | static uint8_t read_cfl_alphas(FRAME_CONTEXT *const ec_ctx, aom_reader *r, | 
|  | int8_t *signs_out) { | 
|  | const int8_t joint_sign = aom_read_symbol( | 
|  | r, ec_ctx->cfl_sign_cdf, CFL_JOINT_SIGNS, ACCT_INFO("cfl:signs")); | 
|  | uint8_t idx = 0; | 
|  | // Magnitudes are only coded for nonzero values | 
|  | if (CFL_SIGN_U(joint_sign) != CFL_SIGN_ZERO) { | 
|  | aom_cdf_prob *cdf_u = ec_ctx->cfl_alpha_cdf[CFL_CONTEXT_U(joint_sign)]; | 
|  | idx = (uint8_t)aom_read_symbol(r, cdf_u, CFL_ALPHABET_SIZE, | 
|  | ACCT_INFO("cfl:alpha_u")) | 
|  | << CFL_ALPHABET_SIZE_LOG2; | 
|  | } | 
|  | if (CFL_SIGN_V(joint_sign) != CFL_SIGN_ZERO) { | 
|  | aom_cdf_prob *cdf_v = ec_ctx->cfl_alpha_cdf[CFL_CONTEXT_V(joint_sign)]; | 
|  | idx += (uint8_t)aom_read_symbol(r, cdf_v, CFL_ALPHABET_SIZE, | 
|  | ACCT_INFO("cfl:alpha_v")); | 
|  | } | 
|  | *signs_out = joint_sign; | 
|  | return idx; | 
|  | } | 
|  |  | 
|  | static INTERINTRA_MODE read_interintra_mode(MACROBLOCKD *xd, aom_reader *r, | 
|  | int size_group) { | 
|  | const INTERINTRA_MODE ii_mode = (INTERINTRA_MODE)aom_read_symbol( | 
|  | r, xd->tile_ctx->interintra_mode_cdf[size_group], INTERINTRA_MODES, | 
|  | ACCT_INFO()); | 
|  | return ii_mode; | 
|  | } | 
|  |  | 
|  | static PREDICTION_MODE read_inter_mode(FRAME_CONTEXT *ec_ctx, aom_reader *r, | 
|  | int16_t ctx, const AV1_COMMON *const cm, | 
|  | const MACROBLOCKD *xd, | 
|  | const MB_MODE_INFO *mbmi, | 
|  | BLOCK_SIZE bsize) { | 
|  | if (is_tip_ref_frame(mbmi->ref_frame[0])) { | 
|  | const int tip_pred_index = aom_read_symbol( | 
|  | r, ec_ctx->tip_pred_mode_cdf, TIP_PRED_MODES, ACCT_INFO("tip_mode")); | 
|  | return tip_pred_index_to_mode[tip_pred_index]; | 
|  | } | 
|  |  | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (is_warpmv_mode_allowed(cm, mbmi, bsize)) { | 
|  | const int16_t iswarpmvmode_ctx = inter_warpmv_mode_ctx(cm, xd, mbmi); | 
|  | const int is_warpmv_or_warp_newmv = | 
|  | aom_read_symbol(r, ec_ctx->inter_warp_mode_cdf[iswarpmvmode_ctx], 2, | 
|  | ACCT_INFO("is_warpmv_or_warp_newmv")); | 
|  | if (is_warpmv_or_warp_newmv) { | 
|  | if (is_warp_newmv_allowed(cm, xd, mbmi, bsize)) { | 
|  | const int is_warpmv = aom_read_symbol( | 
|  | r, ec_ctx->is_warpmv_or_warp_newmv_cdf, 2, ACCT_INFO("is_warpmv")); | 
|  | return is_warpmv ? WARPMV : WARP_NEWMV; | 
|  | } else { | 
|  | return WARPMV; | 
|  | } | 
|  | } | 
|  | } | 
|  | #else | 
|  | int is_warpmv = 0; | 
|  | if (is_warpmv_mode_allowed(cm, mbmi, bsize)) { | 
|  | const int16_t iswarpmvmode_ctx = inter_warpmv_mode_ctx(cm, xd, mbmi); | 
|  | is_warpmv = | 
|  | aom_read_symbol(r, ec_ctx->inter_warp_mode_cdf[iswarpmvmode_ctx], 2, | 
|  | ACCT_INFO("is_warpmv")); | 
|  | if (is_warpmv) { | 
|  | return WARPMV; | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  |  | 
|  | const int16_t ismode_ctx = inter_single_mode_ctx(ctx); | 
|  | return SINGLE_INTER_MODE_START + | 
|  | aom_read_symbol(r, ec_ctx->inter_single_mode_cdf[ismode_ctx], | 
|  | INTER_SINGLE_MODES, ACCT_INFO("inter_single_mode")); | 
|  | } | 
|  |  | 
|  | static void read_drl_idx(int max_drl_bits, const int16_t mode_ctx, | 
|  | FRAME_CONTEXT *ec_ctx, MB_MODE_INFO *mbmi, | 
|  | aom_reader *r) { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | mbmi->ref_mv_idx[0] = 0; | 
|  | mbmi->ref_mv_idx[1] = 0; | 
|  | #if !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | assert(!mbmi->skip_mode); | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | if (has_second_drl(mbmi)) { | 
|  | if (mbmi->mode == NEAR_NEWMV) | 
|  | max_drl_bits = AOMMIN(max_drl_bits, SEP_COMP_DRL_SIZE); | 
|  | else | 
|  | assert(mbmi->mode == NEAR_NEARMV); | 
|  | } | 
|  | for (int ref = 0; ref < 1 + has_second_drl(mbmi); ref++) { | 
|  | for (int idx = 0; idx < max_drl_bits; ++idx) { | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | if (ref && !mbmi->skip_mode && mbmi->ref_frame[0] == mbmi->ref_frame[1] && | 
|  | mbmi->mode == NEAR_NEARMV && idx <= mbmi->ref_mv_idx[0]) { | 
|  | mbmi->ref_mv_idx[ref] = idx + 1; | 
|  | continue; | 
|  | } | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | aom_cdf_prob *drl_cdf = av1_get_drl_cdf(mbmi, ec_ctx, mode_ctx, idx); | 
|  | int drl_idx = aom_read_symbol(r, drl_cdf, 2, ACCT_INFO("drl_idx")); | 
|  | mbmi->ref_mv_idx[ref] = idx + drl_idx; | 
|  | if (!drl_idx) break; | 
|  | } | 
|  | assert(mbmi->ref_mv_idx[ref] < max_drl_bits + 1); | 
|  | } | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | if (!mbmi->skip_mode && mbmi->ref_frame[0] == mbmi->ref_frame[1] && | 
|  | has_second_drl(mbmi) && mbmi->mode == NEAR_NEARMV && | 
|  | mbmi->ref_mv_idx[0] < max_drl_bits) | 
|  | assert(mbmi->ref_mv_idx[0] < mbmi->ref_mv_idx[1]); | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | #else | 
|  | mbmi->ref_mv_idx = 0; | 
|  | #if !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | assert(!mbmi->skip_mode); | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | for (int idx = 0; idx < max_drl_bits; ++idx) { | 
|  | aom_cdf_prob *drl_cdf = av1_get_drl_cdf(mbmi, ec_ctx, mode_ctx, idx); | 
|  | int drl_idx = aom_read_symbol(r, drl_cdf, 2, ACCT_INFO("drl_idx")); | 
|  | mbmi->ref_mv_idx = idx + drl_idx; | 
|  | if (!drl_idx) break; | 
|  | } | 
|  | assert(mbmi->ref_mv_idx < max_drl_bits + 1); | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  | } | 
|  |  | 
|  | #if CONFIG_WEDGE_MOD_EXT | 
|  | static int8_t read_wedge_mode(aom_reader *r, FRAME_CONTEXT *ec_ctx, | 
|  | const BLOCK_SIZE bsize) { | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | (void)bsize; | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | #if CONFIG_REDUCE_SYMBOL_SIZE | 
|  | int wedge_quad_dir = aom_read_symbol(r, ec_ctx->wedge_quad_cdf, WEDGE_QUADS, | 
|  | ACCT_INFO("wedge_quad")); | 
|  | #else | 
|  | int wedge_angle_dir = aom_read_symbol(r, ec_ctx->wedge_angle_dir_cdf, 2, | 
|  | ACCT_INFO("wedge_angle_dir")); | 
|  | #endif  // CONFIG_REDUCE_SYMBOL_SIZE | 
|  | #else | 
|  | int wedge_angle_dir = aom_read_symbol(r, ec_ctx->wedge_angle_dir_cdf[bsize], | 
|  | 2, ACCT_INFO("wedge_angle_dir")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | int wedge_angle = WEDGE_ANGLES; | 
|  | #if CONFIG_REDUCE_SYMBOL_SIZE | 
|  | wedge_angle = QUAD_WEDGE_ANGLES * wedge_quad_dir + | 
|  | aom_read_symbol(r, ec_ctx->wedge_angle_cdf[wedge_quad_dir], | 
|  | QUAD_WEDGE_ANGLES, | 
|  | ACCT_INFO("wedge_angle", "wedge_angle_cdf")); | 
|  | #else | 
|  | if (wedge_angle_dir == 0) { | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | wedge_angle = | 
|  | aom_read_symbol(r, ec_ctx->wedge_angle_0_cdf, H_WEDGE_ANGLES, | 
|  | ACCT_INFO("wedge_angle", "wedge_angle_0_cdf")); | 
|  | #else | 
|  | wedge_angle = | 
|  | aom_read_symbol(r, ec_ctx->wedge_angle_0_cdf[bsize], H_WEDGE_ANGLES, | 
|  | ACCT_INFO("wedge_angle", "wedge_angle_0_cdf")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } else { | 
|  | wedge_angle = | 
|  | H_WEDGE_ANGLES + | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, ec_ctx->wedge_angle_1_cdf, H_WEDGE_ANGLES, | 
|  | ACCT_INFO("wedge_angle", "wedge_angle_1_cdf")); | 
|  | #else | 
|  | aom_read_symbol(r, ec_ctx->wedge_angle_1_cdf[bsize], H_WEDGE_ANGLES, | 
|  | ACCT_INFO("wedge_angle", "wedge_angle_1_cdf")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } | 
|  | #endif  // CONFIG_REDUCE_SYMBOL_SIZE | 
|  | int wedge_dist = 0; | 
|  | if ((wedge_angle >= H_WEDGE_ANGLES) || | 
|  | (wedge_angle == WEDGE_90 || wedge_angle == WEDGE_0)) { | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | wedge_dist = aom_read_symbol(r, ec_ctx->wedge_dist_cdf2, NUM_WEDGE_DIST - 1, | 
|  | ACCT_INFO("wedge_dist", "wedge_dist_cdf2")) + | 
|  | 1; | 
|  | #else | 
|  | wedge_dist = | 
|  | aom_read_symbol(r, ec_ctx->wedge_dist_cdf2[bsize], NUM_WEDGE_DIST - 1, | 
|  | ACCT_INFO("wedge_dist", "wedge_dist_cdf2")) + | 
|  | 1; | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } else { | 
|  | assert(wedge_angle < H_WEDGE_ANGLES); | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | wedge_dist = aom_read_symbol(r, ec_ctx->wedge_dist_cdf, NUM_WEDGE_DIST, | 
|  | ACCT_INFO("wedge_dist", "wedge_dist_cdf")); | 
|  | #else | 
|  | wedge_dist = | 
|  | aom_read_symbol(r, ec_ctx->wedge_dist_cdf[bsize], NUM_WEDGE_DIST, | 
|  | ACCT_INFO("wedge_dist", "wedge_dist_cdf")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } | 
|  | return wedge_angle_dist_2_index[wedge_angle][wedge_dist]; | 
|  | } | 
|  | #endif  // CONFIG_WEDGE_MOD_EXT | 
|  |  | 
|  | // read the reference index warp_ref_idx of WRL | 
|  | static void read_warp_ref_idx(FRAME_CONTEXT *ec_ctx, MB_MODE_INFO *mbmi, | 
|  | aom_reader *r) { | 
|  | if (mbmi->max_num_warp_candidates <= 1) { | 
|  | mbmi->warp_ref_idx = 0; | 
|  | return; | 
|  | } | 
|  | int max_idx_bits = mbmi->max_num_warp_candidates - 1; | 
|  | for (int bit_idx = 0; bit_idx < max_idx_bits; ++bit_idx) { | 
|  | aom_cdf_prob *warp_ref_idx_cdf = av1_get_warp_ref_idx_cdf(ec_ctx, bit_idx); | 
|  | int warp_idx = | 
|  | aom_read_symbol(r, warp_ref_idx_cdf, 2, ACCT_INFO("warp_idx")); | 
|  | mbmi->warp_ref_idx = bit_idx + warp_idx; | 
|  | if (!warp_idx) break; | 
|  | } | 
|  | } | 
|  |  | 
|  | static void read_warpmv_with_mvd_flag(FRAME_CONTEXT *ec_ctx, MB_MODE_INFO *mbmi, | 
|  | aom_reader *r) { | 
|  | mbmi->warpmv_with_mvd_flag = | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, ec_ctx->warpmv_with_mvd_flag_cdf, 2, | 
|  | ACCT_INFO("warpmv_with_mvd_flag")); | 
|  | #else | 
|  | aom_read_symbol( | 
|  | r, ec_ctx->warpmv_with_mvd_flag_cdf[mbmi->sb_type[PLANE_TYPE_Y]], 2, | 
|  | ACCT_INFO("warpmv_with_mvd_flag")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } | 
|  |  | 
|  | // Read the delta for a single warp parameter | 
|  | // The maximum index value is derived from the warp_precision_idx flag | 
|  | // if mbmi->warp_precision_idx == 0, max_coded_index is | 
|  | // (WARP_DELTA_NUMSYMBOLS_LOW - 1). Only one symbol with range 0, 1, | 
|  | // ......(WARP_DELTA_NUMSYMBOLS_LOW - 1) is decoded. if mbmi->warp_precision_idx | 
|  | // == 1, max_coded_index is 14; Two symbols are decoded. The first symbol cover | 
|  | // from 0, 1, ......(WARP_DELTA_NUMSYMBOLS_LOW - 2). (WARP_DELTA_NUMSYMBOLS_LOW | 
|  | // - 1) is considered as escape code and if the first symbol is equal to | 
|  | // (WARP_DELTA_NUMSYMBOLS_LOW - 1), then the second symbol is decoded to covers | 
|  | // rest of the indices. | 
|  | static int read_warp_delta_param(const MACROBLOCKD *xd, int index, aom_reader *r | 
|  | #if CONFIG_WARP_PRECISION | 
|  | , | 
|  | int max_coded_index | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  | ) { | 
|  | assert(2 <= index && index <= 5); | 
|  | int index_type = (index == 2 || index == 5) ? 0 : 1; | 
|  |  | 
|  | int coded_value = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_delta_param_cdf[index_type], | 
|  | WARP_DELTA_NUMSYMBOLS_LOW, ACCT_INFO()); | 
|  | #if CONFIG_WARP_PRECISION | 
|  | if (max_coded_index >= WARP_DELTA_NUMSYMBOLS_LOW && | 
|  | coded_value >= (WARP_DELTA_NUMSYMBOLS_LOW - 1)) { | 
|  | coded_value = | 
|  | 7 + aom_read_symbol(r, | 
|  | xd->tile_ctx->warp_delta_param_high_cdf[index_type], | 
|  | WARP_DELTA_NUMSYMBOLS_HIGH, ACCT_INFO()); | 
|  | } | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  |  | 
|  | return coded_value; | 
|  | } | 
|  |  | 
|  | static void read_warp_delta(const AV1_COMMON *cm, const MACROBLOCKD *xd, | 
|  | MB_MODE_INFO *mbmi, aom_reader *r, | 
|  | WARP_CANDIDATE *warp_param_stack) { | 
|  | WarpedMotionParams *params = &mbmi->wm_params[0]; | 
|  | int mi_row = xd->mi_row; | 
|  | int mi_col = xd->mi_col; | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[PLANE_TYPE_Y]; | 
|  |  | 
|  | // Figure out what parameters to use as a base | 
|  | WarpedMotionParams base_params; | 
|  | int_mv center_mv; | 
|  | av1_get_warp_base_params(cm, mbmi, &base_params, ¢er_mv, | 
|  | warp_param_stack); | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag = 0; | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  |  | 
|  | // TODO(rachelbarker): Allow signaling warp type? | 
|  | if (allow_warp_parameter_signaling(cm, mbmi)) { | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag = get_default_six_param_flag(cm, mbmi); | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  |  | 
|  | #if CONFIG_WARP_PRECISION | 
|  | mbmi->warp_precision_idx = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_precision_idx_cdf[bsize], | 
|  | NUM_WARP_PRECISION_MODES, ACCT_INFO()); | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  |  | 
|  | params->wmtype = | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag ? AFFINE : | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  | ROTZOOM; | 
|  |  | 
|  | int step_size = 0; | 
|  | int max_coded_index = 0; | 
|  | get_warp_model_steps(mbmi, &step_size, &max_coded_index); | 
|  | int32_t decoded_delta_param[6] = { 0, 0, 0, 0, 0, 0 }; | 
|  |  | 
|  | for (uint8_t index = 2; index < ( | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag ? 6 : | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  | 4); | 
|  | index++) { | 
|  | int coded_value = read_warp_delta_param(xd, index, r | 
|  | #if CONFIG_WARP_PRECISION | 
|  | , | 
|  | max_coded_index | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  | ); | 
|  |  | 
|  | #if CONFIG_WARP_PRECISION | 
|  | decoded_delta_param[index] = coded_value; | 
|  | // decode sign | 
|  | if (coded_value) { | 
|  | int sign = aom_read_symbol(r, xd->tile_ctx->warp_param_sign_cdf, 2, | 
|  | ACCT_INFO()); | 
|  | decoded_delta_param[index] = sign ? -coded_value : coded_value; | 
|  | } | 
|  | #else | 
|  | decoded_delta_param[index] = (coded_value - max_coded_index); | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  | } | 
|  |  | 
|  | params->wmmat[2] = | 
|  | base_params.wmmat[2] + decoded_delta_param[2] * step_size; | 
|  | params->wmmat[3] = | 
|  | base_params.wmmat[3] + decoded_delta_param[3] * step_size; | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | if (mbmi->six_param_warp_model_flag) { | 
|  | params->wmmat[4] = | 
|  | base_params.wmmat[4] + decoded_delta_param[4] * step_size; | 
|  | params->wmmat[5] = | 
|  | base_params.wmmat[5] + decoded_delta_param[5] * step_size; | 
|  | } else { | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  | params->wmmat[4] = -params->wmmat[3]; | 
|  | params->wmmat[5] = params->wmmat[2]; | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | } | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  | } else { | 
|  | *params = base_params; | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | assert(mbmi->six_param_warp_model_flag == 0); | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  | } | 
|  |  | 
|  | av1_reduce_warp_model(params); | 
|  | int valid = | 
|  | av1_get_shear_params(params | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | , | 
|  | get_ref_scale_factors_const(cm, mbmi->ref_frame[0]) | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | ); | 
|  | params->invalid = !valid; | 
|  | if (!valid) { | 
|  | #if WARPED_MOTION_DEBUG | 
|  | printf("Warning: unexpected WARP_DELTA model from aomenc\n"); | 
|  | #endif | 
|  | return; | 
|  | } | 
|  |  | 
|  | av1_set_warp_translation(mi_row, mi_col, bsize, center_mv.as_mv, params); | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | assign_warpmv(cm, xd->submi, bsize, params, mi_row, mi_col | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | , | 
|  | 0 | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | ); | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | } | 
|  |  | 
|  | static MOTION_MODE read_motion_mode(AV1_COMMON *cm, MACROBLOCKD *xd, | 
|  | MB_MODE_INFO *mbmi, aom_reader *r) { | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[PLANE_TYPE_Y]; | 
|  | mbmi->max_num_warp_candidates = 0; | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag = 0; | 
|  | #endif | 
|  |  | 
|  | #if CONFIG_WARP_PRECISION | 
|  | mbmi->warp_precision_idx = 0; | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  |  | 
|  | const int allowed_motion_modes = | 
|  | motion_mode_allowed(cm, xd, xd->ref_mv_stack[mbmi->ref_frame[0]], mbmi); | 
|  |  | 
|  | if (mbmi->mode == WARPMV) { | 
|  | if (allowed_motion_modes & (1 << WARP_CAUSAL)) { | 
|  | int use_warp_causal = | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_causal_warpmv_cdf, 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #else | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_causal_warpmv_cdf[bsize], 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | return use_warp_causal ? WARP_CAUSAL : WARP_DELTA; | 
|  | } | 
|  | return WARP_DELTA; | 
|  | } | 
|  |  | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (is_warp_newmv_allowed(cm, xd, mbmi, bsize) && mbmi->mode == WARP_NEWMV) { | 
|  | if (!((allowed_motion_modes & (1 << WARP_CAUSAL)) || | 
|  | (allowed_motion_modes & (1 << WARP_DELTA)))) | 
|  | return WARP_EXTEND; | 
|  |  | 
|  | if (allowed_motion_modes & (1 << WARP_EXTEND)) { | 
|  | const int ctx = av1_get_warp_extend_ctx(xd); | 
|  | const int use_warp_extend = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_extend_cdf[ctx], 2, | 
|  | ACCT_INFO("use_warp_extend")); | 
|  | if (use_warp_extend) { | 
|  | return WARP_EXTEND; | 
|  | } | 
|  | } | 
|  |  | 
|  | if (!(allowed_motion_modes & (1 << WARP_DELTA))) return WARP_CAUSAL; | 
|  |  | 
|  | if (allowed_motion_modes & (1 << WARP_CAUSAL)) { | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | const int ctx = av1_get_warp_causal_ctx(xd); | 
|  | const int use_warp_causal = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_causal_cdf[ctx], 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #else | 
|  | #if CONFIG_D149_CTX_MODELING_OPT && !NO_D149_FOR_WARP_CAUSAL | 
|  | int use_warp_causal = aom_read_symbol(r, xd->tile_ctx->warp_causal_cdf, 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #else | 
|  | int use_warp_causal = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_causal_cdf[bsize], 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT && !NO_D149_FOR_WARP_CAUSAL | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (use_warp_causal) { | 
|  | return WARP_CAUSAL; | 
|  | } | 
|  | } | 
|  |  | 
|  | return WARP_DELTA; | 
|  | } | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  |  | 
|  | mbmi->use_wedge_interintra = 0; | 
|  | if (allowed_motion_modes & (1 << INTERINTRA)) { | 
|  | const int bsize_group = size_group_lookup[bsize]; | 
|  | const int use_interintra = | 
|  | aom_read_symbol(r, xd->tile_ctx->interintra_cdf[bsize_group], 2, | 
|  | ACCT_INFO("use_interintra")); | 
|  | assert(mbmi->ref_frame[1] == NONE_FRAME); | 
|  | if (use_interintra) { | 
|  | const INTERINTRA_MODE interintra_mode = | 
|  | read_interintra_mode(xd, r, bsize_group); | 
|  |  | 
|  | #if !CONFIG_INTERINTRA_IMPROVEMENT | 
|  | mbmi->ref_frame[1] = INTRA_FRAME; | 
|  | #endif  // !CONFIG_INTERINTRA_IMPROVEMENT | 
|  |  | 
|  | mbmi->interintra_mode = interintra_mode; | 
|  | mbmi->angle_delta[PLANE_TYPE_Y] = 0; | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | mbmi->use_dpcm_uv = 0; | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | mbmi->filter_intra_mode_info.use_filter_intra = 0; | 
|  | #if CONFIG_DIP | 
|  | mbmi->use_intra_dip = 0; | 
|  | #endif  // CONFIG_DIP | 
|  | if (av1_is_wedge_used(bsize)) { | 
|  | mbmi->use_wedge_interintra = | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, xd->tile_ctx->wedge_interintra_cdf, 2, | 
|  | ACCT_INFO("use_wedge_interintra")); | 
|  | #else | 
|  | aom_read_symbol(r, xd->tile_ctx->wedge_interintra_cdf[bsize], 2, | 
|  | ACCT_INFO("use_wedge_interintra")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | if (mbmi->use_wedge_interintra) { | 
|  | #if CONFIG_WEDGE_MOD_EXT | 
|  | mbmi->interintra_wedge_index = | 
|  | read_wedge_mode(r, xd->tile_ctx, bsize); | 
|  | assert(mbmi->interintra_wedge_index != -1); | 
|  | #else | 
|  | mbmi->interintra_wedge_index = (int8_t)aom_read_symbol( | 
|  | r, xd->tile_ctx->wedge_idx_cdf[bsize], MAX_WEDGE_TYPES, | 
|  | ACCT_INFO("interintra_wedge_index")); | 
|  | #endif | 
|  | } | 
|  | } | 
|  | return INTERINTRA; | 
|  | } | 
|  | } | 
|  |  | 
|  | #if !CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (allowed_motion_modes & (1 << WARP_EXTEND)) { | 
|  | const int ctx = av1_get_warp_extend_ctx(xd); | 
|  | const int use_warp_extend = aom_read_symbol( | 
|  | r, xd->tile_ctx->warp_extend_cdf[ctx], 2, ACCT_INFO("use_warp_extend")); | 
|  | if (use_warp_extend) { | 
|  | return WARP_EXTEND; | 
|  | } | 
|  | } | 
|  | #endif  // !CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  |  | 
|  | if (allowed_motion_modes & (1 << WARP_CAUSAL)) { | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | const int ctx = av1_get_warp_causal_ctx(xd); | 
|  | const int use_warp_causal = aom_read_symbol( | 
|  | r, xd->tile_ctx->warp_causal_cdf[ctx], 2, ACCT_INFO("use_warp_causal")); | 
|  | #else | 
|  | #if CONFIG_D149_CTX_MODELING_OPT && !NO_D149_FOR_WARP_CAUSAL | 
|  | int use_warp_causal = aom_read_symbol(r, xd->tile_ctx->warp_causal_cdf, 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #else | 
|  | int use_warp_causal = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_causal_cdf[bsize], 2, | 
|  | ACCT_INFO("use_warp_causal")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT && !NO_D149_FOR_WARP_CAUSAL | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (use_warp_causal) { | 
|  | return WARP_CAUSAL; | 
|  | } | 
|  | } | 
|  |  | 
|  | #if !CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | if (allowed_motion_modes & (1 << WARP_DELTA)) { | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | int use_warp_delta = aom_read_symbol(r, xd->tile_ctx->warp_delta_cdf, 2, | 
|  | ACCT_INFO("use_warp_delta")); | 
|  | #else | 
|  | int use_warp_delta = aom_read_symbol(r, xd->tile_ctx->warp_delta_cdf[bsize], | 
|  | 2, ACCT_INFO("use_warp_delta")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | if (use_warp_delta) { | 
|  | mbmi->motion_mode = WARP_DELTA; | 
|  | return WARP_DELTA; | 
|  | } | 
|  | } | 
|  | #endif  // !CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  |  | 
|  | return SIMPLE_TRANSLATION; | 
|  | } | 
|  |  | 
|  | // Read scale mode flag for joint mvd coding mode | 
|  | static PREDICTION_MODE read_jmvd_scale_mode(MACROBLOCKD *xd, aom_reader *r, | 
|  | MB_MODE_INFO *const mbmi) { | 
|  | if (!is_joint_mvd_coding_mode(mbmi->mode)) return 0; | 
|  | const int is_joint_amvd_mode = is_joint_amvd_coding_mode(mbmi->mode | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | , | 
|  | mbmi->use_amvd | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | ); | 
|  | aom_cdf_prob *jmvd_scale_mode_cdf = | 
|  | is_joint_amvd_mode ? xd->tile_ctx->jmvd_amvd_scale_mode_cdf | 
|  | : xd->tile_ctx->jmvd_scale_mode_cdf; | 
|  | const int jmvd_scale_cnt = is_joint_amvd_mode ? JOINT_AMVD_SCALE_FACTOR_CNT | 
|  | : JOINT_NEWMV_SCALE_FACTOR_CNT; | 
|  | const int jmvd_scale_mode = aom_read_symbol( | 
|  | r, jmvd_scale_mode_cdf, jmvd_scale_cnt, ACCT_INFO("jmvd_scale_mode")); | 
|  | return jmvd_scale_mode; | 
|  | } | 
|  |  | 
|  | // Read index for the weighting factor of compound weighted prediction | 
|  | static int read_cwp_idx(MACROBLOCKD *xd, aom_reader *r, const AV1_COMMON *cm, | 
|  | MB_MODE_INFO *const mbmi) { | 
|  | int8_t cwp_idx = 0; | 
|  | int bit_cnt = 0; | 
|  | const int ctx = 0; | 
|  | for (int idx = 0; idx < MAX_CWP_NUM - 1; ++idx) { | 
|  | const int tmp_idx = aom_read_symbol( | 
|  | r, xd->tile_ctx->cwp_idx_cdf[ctx][bit_cnt], 2, ACCT_INFO()); | 
|  | cwp_idx = idx + tmp_idx; | 
|  | if (!tmp_idx) break; | 
|  | ++bit_cnt; | 
|  | } | 
|  | assert(cwp_idx <= CWP_MAX); | 
|  |  | 
|  | // convert index to weight | 
|  | return get_cwp_coding_idx(cwp_idx, 0, cm, mbmi); | 
|  | } | 
|  |  | 
|  | static PREDICTION_MODE read_inter_compound_mode(MACROBLOCKD *xd, aom_reader *r, | 
|  | const AV1_COMMON *cm, | 
|  | MB_MODE_INFO *const mbmi, | 
|  | int16_t ctx) { | 
|  | #if CONFIG_AFFINE_REFINEMENT | 
|  | mbmi->comp_refine_type = cm->features.opfl_refine_type == REFINE_ALL | 
|  | ? (cm->seq_params.enable_affine_refine | 
|  | ? COMP_REFINE_TYPE_FOR_REFINE_ALL | 
|  | : COMP_REFINE_SUBBLK2P) | 
|  | : COMP_REFINE_NONE; | 
|  | #endif  // CONFIG_AFFINE_REFINEMENT | 
|  |  | 
|  | int mode = 0; | 
|  | int use_optical_flow = 0; | 
|  | #if CONFIG_OPT_INTER_MODE_CTX | 
|  | if (is_new_nearmv_pred_mode_disallowed(mbmi)) { | 
|  | const int signal_mode_idx = | 
|  | aom_read_symbol(r, xd->tile_ctx->inter_compound_mode_same_refs_cdf[ctx], | 
|  | INTER_COMPOUND_SAME_REFS_TYPES, | 
|  | ACCT_INFO("inter_compound_mode_same_refs_cdf")); | 
|  | mode = comp_mode_signal_idx_to_mode_idx[signal_mode_idx]; | 
|  | } else { | 
|  | #endif  // CONFIG_OPT_INTER_MODE_CTX | 
|  |  | 
|  | #if CONFIG_INTER_COMPOUND_BY_JOINT | 
|  |  | 
|  | const int is_joint = aom_read_symbol( | 
|  | r, | 
|  | xd->tile_ctx->inter_compound_mode_is_joint_cdf | 
|  | [get_inter_compound_mode_is_joint_context(cm, mbmi)], | 
|  | NUM_OPTIONS_IS_JOINT, ACCT_INFO("inter_compound_mode_is_joint_cdf")); | 
|  | if (is_joint) { | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | mode = INTER_COMPOUND_OFFSET(JOINT_NEWMV); | 
|  | #else | 
|  | const int is_comp_mode_joint_newmv = aom_read_symbol( | 
|  | r, xd->tile_ctx->inter_compound_mode_joint_type_cdf[0], | 
|  | NUM_OPTIONS_JOINT_TYPE, | 
|  | ACCT_INFO("inter_compound_mode_is_joint_cdf")); | 
|  | mode = (is_comp_mode_joint_newmv) | 
|  | ? INTER_COMPOUND_OFFSET(JOINT_NEWMV) | 
|  | : INTER_COMPOUND_OFFSET(JOINT_AMVDNEWMV); | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | } else { | 
|  | mode = aom_read_symbol( | 
|  | r, xd->tile_ctx->inter_compound_mode_non_joint_type_cdf[ctx], | 
|  | NUM_OPTIONS_NON_JOINT_TYPE, | 
|  | ACCT_INFO("inter_compound_mode_non_joint_type_cdf")); | 
|  | } | 
|  |  | 
|  | #else | 
|  | mode = aom_read_symbol(r, xd->tile_ctx->inter_compound_mode_cdf[ctx], | 
|  | INTER_COMPOUND_REF_TYPES, | 
|  | ACCT_INFO("inter_compound_mode_cdf")); | 
|  | #endif  // CONFIG_INTER_COMPOUND_BY_JOINT | 
|  |  | 
|  | #if CONFIG_OPT_INTER_MODE_CTX | 
|  | } | 
|  | #endif  // CONFIG_OPT_INTER_MODE_CTX | 
|  |  | 
|  | if (cm->features.opfl_refine_type == REFINE_SWITCHABLE && | 
|  | opfl_allowed_for_cur_refs(cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | xd, | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | mbmi)) { | 
|  | #if CONFIG_AFFINE_REFINEMENT | 
|  | const int allow_translational = is_translational_refinement_allowed( | 
|  | cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | mbmi->sb_type[xd->tree_type == CHROMA_PART], | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | xd, | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | comp_idx_to_opfl_mode[mode]); | 
|  | const int allow_affine = | 
|  | is_affine_refinement_allowed(cm, xd, comp_idx_to_opfl_mode[mode]); | 
|  | if (allow_affine || allow_translational) | 
|  | #if CONFIG_OPFL_CTX_OPT | 
|  | { | 
|  | const int opfl_ctx = get_optflow_context(comp_idx_to_opfl_mode[mode]); | 
|  | use_optical_flow = | 
|  | aom_read_symbol(r, xd->tile_ctx->use_optflow_cdf[opfl_ctx], 2, | 
|  | ACCT_INFO("use_optical_flow")); | 
|  | } | 
|  | #else | 
|  | use_optical_flow = aom_read_symbol(r, xd->tile_ctx->use_optflow_cdf[ctx], | 
|  | 2, ACCT_INFO("use_optical_flow")); | 
|  | #endif  // CONFIG_OPFL_CTX_OPT | 
|  | mbmi->comp_refine_type = use_optical_flow | 
|  | ? COMP_REFINE_SUBBLK2P + allow_affine | 
|  | : COMP_REFINE_NONE; | 
|  | #else | 
|  | use_optical_flow = aom_read_symbol(r, xd->tile_ctx->use_optflow_cdf[ctx], 2, | 
|  | ACCT_INFO("use_optical_flow")); | 
|  | #endif  // CONFIG_AFFINE_REFINEMENT | 
|  | if (use_optical_flow) { | 
|  | assert(is_inter_compound_mode(comp_idx_to_opfl_mode[mode])); | 
|  | return comp_idx_to_opfl_mode[mode]; | 
|  | } | 
|  | } | 
|  |  | 
|  | assert(is_inter_compound_mode(NEAR_NEARMV + mode)); | 
|  | return NEAR_NEARMV + mode; | 
|  | } | 
|  |  | 
|  | int av1_neg_deinterleave(int diff, int ref, int max) { | 
|  | if (!ref) return diff; | 
|  | if (ref >= (max - 1)) return max - diff - 1; | 
|  | if (2 * ref < max) { | 
|  | if (diff <= 2 * ref) { | 
|  | if (diff & 1) | 
|  | return ref + ((diff + 1) >> 1); | 
|  | else | 
|  | return ref - (diff >> 1); | 
|  | } | 
|  | return diff; | 
|  | } else { | 
|  | if (diff <= 2 * (max - ref - 1)) { | 
|  | if (diff & 1) | 
|  | return ref + ((diff + 1) >> 1); | 
|  | else | 
|  | return ref - (diff >> 1); | 
|  | } | 
|  | return max - (diff + 1); | 
|  | } | 
|  | } | 
|  |  | 
|  | static int read_segment_id(AV1_COMMON *const cm, const MACROBLOCKD *const xd, | 
|  | aom_reader *r, int skip) { | 
|  | int cdf_num; | 
|  | const int pred = av1_get_spatial_seg_pred(cm, xd, &cdf_num); | 
|  | if (skip) return pred; | 
|  |  | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | struct segmentation *const seg = &cm->seg; | 
|  | struct segmentation_probs *const segp = &ec_ctx->seg; | 
|  | aom_cdf_prob *pred_cdf = segp->spatial_pred_seg_cdf[cdf_num]; | 
|  | const int coded_id = | 
|  | aom_read_symbol(r, pred_cdf, MAX_SEGMENTS, ACCT_INFO("coded_id")); | 
|  | const int segment_id = | 
|  | av1_neg_deinterleave(coded_id, pred, seg->last_active_segid + 1); | 
|  |  | 
|  | if (segment_id < 0 || segment_id > seg->last_active_segid) { | 
|  | aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME, | 
|  | "Corrupted segment_ids"); | 
|  | } | 
|  | return segment_id; | 
|  | } | 
|  |  | 
|  | static int dec_get_segment_id(const AV1_COMMON *cm, const uint8_t *segment_ids, | 
|  | int mi_offset, int x_inside_boundary, | 
|  | int y_inside_boundary) { | 
|  | int segment_id = INT_MAX; | 
|  |  | 
|  | for (int y = 0; y < y_inside_boundary; y++) | 
|  | for (int x = 0; x < x_inside_boundary; x++) | 
|  | segment_id = AOMMIN( | 
|  | segment_id, segment_ids[mi_offset + y * cm->mi_params.mi_cols + x]); | 
|  |  | 
|  | assert(segment_id >= 0 && segment_id < MAX_SEGMENTS); | 
|  | return segment_id; | 
|  | } | 
|  |  | 
|  | static void set_segment_id(AV1_COMMON *cm, int mi_offset, int x_inside_boundary, | 
|  | int y_inside_boundary, int segment_id) { | 
|  | assert(segment_id >= 0 && segment_id < MAX_SEGMENTS); | 
|  |  | 
|  | for (int y = 0; y < y_inside_boundary; y++) | 
|  | for (int x = 0; x < x_inside_boundary; x++) | 
|  | cm->cur_frame->seg_map[mi_offset + y * cm->mi_params.mi_cols + x] = | 
|  | segment_id; | 
|  | } | 
|  |  | 
|  | static int read_intra_segment_id(AV1_COMMON *const cm, | 
|  | const MACROBLOCKD *const xd, BLOCK_SIZE bsize, | 
|  | aom_reader *r, int skip) { | 
|  | struct segmentation *const seg = &cm->seg; | 
|  | if (!seg->enabled) return 0;  // Default for disabled segmentation | 
|  | if (frame_is_intra_only(cm)) assert(seg->update_map && !seg->temporal_update); | 
|  |  | 
|  | const CommonModeInfoParams *const mi_params = &cm->mi_params; | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | const int mi_offset = mi_row * mi_params->mi_cols + mi_col; | 
|  | const int bw = mi_size_wide[bsize]; | 
|  | const int bh = mi_size_high[bsize]; | 
|  | const int x_inside_boundary = AOMMIN(mi_params->mi_cols - mi_col, bw); | 
|  | const int y_inside_boundary = AOMMIN(mi_params->mi_rows - mi_row, bh); | 
|  | const int segment_id = read_segment_id(cm, xd, r, skip); | 
|  | set_segment_id(cm, mi_offset, x_inside_boundary, y_inside_boundary, | 
|  | segment_id); | 
|  | return segment_id; | 
|  | } | 
|  |  | 
|  | static void copy_segment_id(const CommonModeInfoParams *const mi_params, | 
|  | const uint8_t *last_segment_ids, | 
|  | uint8_t *current_segment_ids, int mi_offset, | 
|  | int x_inside_boundary, int y_inside_boundary) { | 
|  | for (int y = 0; y < y_inside_boundary; y++) | 
|  | for (int x = 0; x < x_inside_boundary; x++) | 
|  | current_segment_ids[mi_offset + y * mi_params->mi_cols + x] = | 
|  | last_segment_ids | 
|  | ? last_segment_ids[mi_offset + y * mi_params->mi_cols + x] | 
|  | : 0; | 
|  | } | 
|  |  | 
|  | static int get_predicted_segment_id(AV1_COMMON *const cm, int mi_offset, | 
|  | int x_inside_boundary, | 
|  | int y_inside_boundary) { | 
|  | return cm->last_frame_seg_map | 
|  | ? dec_get_segment_id(cm, cm->last_frame_seg_map, mi_offset, | 
|  | x_inside_boundary, y_inside_boundary) | 
|  | : 0; | 
|  | } | 
|  |  | 
|  | static int read_inter_segment_id(AV1_COMMON *const cm, MACROBLOCKD *const xd, | 
|  | int preskip, aom_reader *r) { | 
|  | struct segmentation *const seg = &cm->seg; | 
|  | const CommonModeInfoParams *const mi_params = &cm->mi_params; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | const int mi_offset = mi_row * mi_params->mi_cols + mi_col; | 
|  | const int bw = mi_size_wide[mbmi->sb_type[PLANE_TYPE_Y]]; | 
|  | const int bh = mi_size_high[mbmi->sb_type[PLANE_TYPE_Y]]; | 
|  |  | 
|  | // TODO(slavarnway): move x_inside_boundary, y_inside_boundary into xd ????? | 
|  | const int x_inside_boundary = AOMMIN(mi_params->mi_cols - mi_col, bw); | 
|  | const int y_inside_boundary = AOMMIN(mi_params->mi_rows - mi_row, bh); | 
|  |  | 
|  | if (!seg->enabled) return 0;  // Default for disabled segmentation | 
|  |  | 
|  | if (!seg->update_map) { | 
|  | copy_segment_id(mi_params, cm->last_frame_seg_map, cm->cur_frame->seg_map, | 
|  | mi_offset, x_inside_boundary, y_inside_boundary); | 
|  | return get_predicted_segment_id(cm, mi_offset, x_inside_boundary, | 
|  | y_inside_boundary); | 
|  | } | 
|  |  | 
|  | int segment_id; | 
|  | if (preskip) { | 
|  | if (!seg->segid_preskip) return 0; | 
|  | } else { | 
|  | if (mbmi->skip_txfm[xd->tree_type == CHROMA_PART]) { | 
|  | if (seg->temporal_update) { | 
|  | mbmi->seg_id_predicted = 0; | 
|  | } | 
|  | segment_id = read_segment_id(cm, xd, r, 1); | 
|  | set_segment_id(cm, mi_offset, x_inside_boundary, y_inside_boundary, | 
|  | segment_id); | 
|  | return segment_id; | 
|  | } | 
|  | } | 
|  |  | 
|  | if (seg->temporal_update) { | 
|  | const int ctx = av1_get_pred_context_seg_id(xd); | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | struct segmentation_probs *const segp = &ec_ctx->seg; | 
|  | aom_cdf_prob *pred_cdf = segp->pred_cdf[ctx]; | 
|  | mbmi->seg_id_predicted = | 
|  | aom_read_symbol(r, pred_cdf, 2, ACCT_INFO("seg_id_predicted")); | 
|  | if (mbmi->seg_id_predicted) { | 
|  | segment_id = get_predicted_segment_id(cm, mi_offset, x_inside_boundary, | 
|  | y_inside_boundary); | 
|  | } else { | 
|  | segment_id = read_segment_id(cm, xd, r, 0); | 
|  | } | 
|  | } else { | 
|  | segment_id = read_segment_id(cm, xd, r, 0); | 
|  | } | 
|  | set_segment_id(cm, mi_offset, x_inside_boundary, y_inside_boundary, | 
|  | segment_id); | 
|  | return segment_id; | 
|  | } | 
|  |  | 
|  | static int read_skip_mode(AV1_COMMON *cm, const MACROBLOCKD *xd, | 
|  | aom_reader *r) { | 
|  | if (!is_skip_mode_allowed(cm, xd)) return 0; | 
|  |  | 
|  | const int ctx = av1_get_skip_mode_context(xd); | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const int skip_mode = aom_read_symbol(r, ec_ctx->skip_mode_cdfs[ctx], 2, | 
|  | ACCT_INFO("skip_mode")); | 
|  | return skip_mode; | 
|  | } | 
|  |  | 
|  | static int read_skip_txfm(AV1_COMMON *cm, const MACROBLOCKD *xd, int segment_id, | 
|  | aom_reader *r) { | 
|  | if (segfeature_active(&cm->seg, segment_id, SEG_LVL_SKIP)) { | 
|  | return 1; | 
|  | } else { | 
|  | const int ctx = av1_get_skip_txfm_context(xd); | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const int skip_txfm = aom_read_symbol(r, ec_ctx->skip_txfm_cdfs[ctx], 2, | 
|  | ACCT_INFO("skip_txfm")); | 
|  | return skip_txfm; | 
|  | } | 
|  | } | 
|  |  | 
|  | #if !CONFIG_PALETTE_IMPROVEMENTS | 
|  | // Merge the sorted list of cached colors(cached_colors[0...n_cached_colors-1]) | 
|  | // and the sorted list of transmitted colors(colors[n_cached_colors...n-1]) into | 
|  | // one single sorted list(colors[...]). | 
|  | static void merge_colors(uint16_t *colors, uint16_t *cached_colors, | 
|  | int n_colors, int n_cached_colors) { | 
|  | if (n_cached_colors == 0) return; | 
|  | int cache_idx = 0, trans_idx = n_cached_colors; | 
|  | for (int i = 0; i < n_colors; ++i) { | 
|  | if (cache_idx < n_cached_colors && | 
|  | (trans_idx >= n_colors || | 
|  | cached_colors[cache_idx] <= colors[trans_idx])) { | 
|  | colors[i] = cached_colors[cache_idx++]; | 
|  | } else { | 
|  | assert(trans_idx < n_colors); | 
|  | colors[i] = colors[trans_idx++]; | 
|  | } | 
|  | } | 
|  | } | 
|  | #endif  //! CONFIG_PALETTE_IMPROVEMENTS | 
|  |  | 
|  | static void read_palette_colors_y(MACROBLOCKD *const xd, int bit_depth, | 
|  | PALETTE_MODE_INFO *const pmi, aom_reader *r) { | 
|  | #if CONFIG_PALETTE_IMPROVEMENTS | 
|  | uint16_t color_cache[2 * PALETTE_MAX_SIZE]; | 
|  | const int n_cache = av1_get_palette_cache(xd, 0, color_cache); | 
|  | const int n = pmi->palette_size[0]; | 
|  | int idx = 0; | 
|  | for (int i = 0; i < n_cache && idx < n; ++i) { | 
|  | if (aom_read_bit(r, ACCT_INFO("color_cache"))) | 
|  | pmi->palette_colors[idx++] = color_cache[i]; | 
|  | } | 
|  | if (idx < n) { | 
|  | pmi->palette_colors[idx++] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | if (idx < n) { | 
|  | const int min_bits = bit_depth - 3; | 
|  | int bits = min_bits + aom_read_literal(r, 2, ACCT_INFO("bits")); | 
|  | int range = (1 << bit_depth) - pmi->palette_colors[idx - 1] - 1; | 
|  | for (; idx < n; ++idx) { | 
|  | assert(range >= 0); | 
|  | const int delta = aom_read_literal(r, bits, ACCT_INFO("delta")) + 1; | 
|  | pmi->palette_colors[idx] = clamp(pmi->palette_colors[idx - 1] + delta, | 
|  | 0, (1 << bit_depth) - 1); | 
|  | range -= (pmi->palette_colors[idx] - pmi->palette_colors[idx - 1]); | 
|  | bits = AOMMIN(bits, aom_ceil_log2(range)); | 
|  | } | 
|  | } | 
|  | } | 
|  | // Sort Y palette | 
|  | for (int i = 0; i < n; i++) { | 
|  | for (int j = 1; j < n - i; j++) { | 
|  | if (pmi->palette_colors[j - 1] > pmi->palette_colors[j]) { | 
|  | const uint16_t tmp = pmi->palette_colors[j - 1]; | 
|  | pmi->palette_colors[j - 1] = pmi->palette_colors[j]; | 
|  | pmi->palette_colors[j] = tmp; | 
|  | } | 
|  | } | 
|  | } | 
|  | #else | 
|  | uint16_t color_cache[2 * PALETTE_MAX_SIZE]; | 
|  | uint16_t cached_colors[PALETTE_MAX_SIZE]; | 
|  | const int n_cache = av1_get_palette_cache(xd, 0, color_cache); | 
|  | const int n = pmi->palette_size[0]; | 
|  | int idx = 0; | 
|  | for (int i = 0; i < n_cache && idx < n; ++i) | 
|  | if (aom_read_bit(r, ACCT_INFO("color_cache"))) | 
|  | cached_colors[idx++] = color_cache[i]; | 
|  | if (idx < n) { | 
|  | const int n_cached_colors = idx; | 
|  | pmi->palette_colors[idx++] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | if (idx < n) { | 
|  | const int min_bits = bit_depth - 3; | 
|  | int bits = min_bits + aom_read_literal(r, 2, ACCT_INFO("bits")); | 
|  | int range = (1 << bit_depth) - pmi->palette_colors[idx - 1] - 1; | 
|  | for (; idx < n; ++idx) { | 
|  | assert(range >= 0); | 
|  | const int delta = aom_read_literal(r, bits, ACCT_INFO("delta")) + 1; | 
|  | pmi->palette_colors[idx] = clamp(pmi->palette_colors[idx - 1] + delta, | 
|  | 0, (1 << bit_depth) - 1); | 
|  | range -= (pmi->palette_colors[idx] - pmi->palette_colors[idx - 1]); | 
|  | bits = AOMMIN(bits, aom_ceil_log2(range)); | 
|  | } | 
|  | } | 
|  | merge_colors(pmi->palette_colors, cached_colors, n, n_cached_colors); | 
|  | } else { | 
|  | memcpy(pmi->palette_colors, cached_colors, n * sizeof(cached_colors[0])); | 
|  | } | 
|  | #endif  // CONFIG_PALETTE_IMPROVEMENTS | 
|  | } | 
|  |  | 
|  | static void read_palette_colors_uv(MACROBLOCKD *const xd, int bit_depth, | 
|  | PALETTE_MODE_INFO *const pmi, | 
|  | aom_reader *r) { | 
|  | #if CONFIG_PALETTE_IMPROVEMENTS | 
|  | const int n = pmi->palette_size[1]; | 
|  | // U channel colors. | 
|  | uint16_t color_cache[2 * PALETTE_MAX_SIZE]; | 
|  | const int n_cache = av1_get_palette_cache(xd, 1, color_cache); | 
|  | int idx = PALETTE_MAX_SIZE; | 
|  | for (int i = 0; i < n_cache && idx < PALETTE_MAX_SIZE + n; ++i) | 
|  | if (aom_read_bit(r, ACCT_INFO("color_cache"))) | 
|  | pmi->palette_colors[idx++] = color_cache[i]; | 
|  | if (idx < PALETTE_MAX_SIZE + n) { | 
|  | pmi->palette_colors[idx++] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | if (idx < PALETTE_MAX_SIZE + n) { | 
|  | const int min_bits = bit_depth - 3; | 
|  | int bits = min_bits + aom_read_literal(r, 2, ACCT_INFO("bits")); | 
|  | int range = (1 << bit_depth) - pmi->palette_colors[idx - 1]; | 
|  | for (; idx < PALETTE_MAX_SIZE + n; ++idx) { | 
|  | assert(range >= 0); | 
|  | const int delta = aom_read_literal(r, bits, ACCT_INFO("delta")); | 
|  | pmi->palette_colors[idx] = clamp(pmi->palette_colors[idx - 1] + delta, | 
|  | 0, (1 << bit_depth) - 1); | 
|  | range -= (pmi->palette_colors[idx] - pmi->palette_colors[idx - 1]); | 
|  | bits = AOMMIN(bits, aom_ceil_log2(range)); | 
|  | } | 
|  | } | 
|  | } | 
|  | // Sort U palette | 
|  | for (int i = 0; i < n; i++) { | 
|  | for (int j = 1; j < n - i; j++) { | 
|  | if (pmi->palette_colors[PALETTE_MAX_SIZE + j - 1] > | 
|  | pmi->palette_colors[PALETTE_MAX_SIZE + j]) { | 
|  | const uint16_t tmp = pmi->palette_colors[PALETTE_MAX_SIZE + j - 1]; | 
|  | pmi->palette_colors[PALETTE_MAX_SIZE + j - 1] = | 
|  | pmi->palette_colors[PALETTE_MAX_SIZE + j]; | 
|  | pmi->palette_colors[PALETTE_MAX_SIZE + j] = tmp; | 
|  | } | 
|  | } | 
|  | } | 
|  | #else | 
|  | const int n = pmi->palette_size[1]; | 
|  | // U channel colors. | 
|  | uint16_t color_cache[2 * PALETTE_MAX_SIZE]; | 
|  | uint16_t cached_colors[PALETTE_MAX_SIZE]; | 
|  | const int n_cache = av1_get_palette_cache(xd, 1, color_cache); | 
|  | int idx = 0; | 
|  | for (int i = 0; i < n_cache && idx < n; ++i) | 
|  | if (aom_read_bit(r, ACCT_INFO("color_cache"))) | 
|  | cached_colors[idx++] = color_cache[i]; | 
|  | if (idx < n) { | 
|  | const int n_cached_colors = idx; | 
|  | idx += PALETTE_MAX_SIZE; | 
|  | pmi->palette_colors[idx++] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | if (idx < PALETTE_MAX_SIZE + n) { | 
|  | const int min_bits = bit_depth - 3; | 
|  | int bits = min_bits + aom_read_literal(r, 2, ACCT_INFO("bits")); | 
|  | int range = (1 << bit_depth) - pmi->palette_colors[idx - 1]; | 
|  | for (; idx < PALETTE_MAX_SIZE + n; ++idx) { | 
|  | assert(range >= 0); | 
|  | const int delta = aom_read_literal(r, bits, ACCT_INFO("delta")); | 
|  | pmi->palette_colors[idx] = clamp(pmi->palette_colors[idx - 1] + delta, | 
|  | 0, (1 << bit_depth) - 1); | 
|  | range -= (pmi->palette_colors[idx] - pmi->palette_colors[idx - 1]); | 
|  | bits = AOMMIN(bits, aom_ceil_log2(range)); | 
|  | } | 
|  | } | 
|  | merge_colors(pmi->palette_colors + PALETTE_MAX_SIZE, cached_colors, n, | 
|  | n_cached_colors); | 
|  | } else { | 
|  | memcpy(pmi->palette_colors + PALETTE_MAX_SIZE, cached_colors, | 
|  | n * sizeof(cached_colors[0])); | 
|  | } | 
|  | #endif  // CONFIG_PALETTE_IMPROVEMENTS | 
|  | // V channel colors. | 
|  | if (aom_read_bit(r, ACCT_INFO("use_delta"))) {  // Delta encoding. | 
|  | const int min_bits_v = bit_depth - 4; | 
|  | const int max_val = 1 << bit_depth; | 
|  | int bits = min_bits_v + aom_read_literal(r, 2, ACCT_INFO("bits")); | 
|  | pmi->palette_colors[2 * PALETTE_MAX_SIZE] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | for (int i = 1; i < n; ++i) { | 
|  | int delta = aom_read_literal(r, bits, ACCT_INFO("delta")); | 
|  | if (delta && aom_read_bit(r, ACCT_INFO("negate"))) delta = -delta; | 
|  | int val = (int)pmi->palette_colors[2 * PALETTE_MAX_SIZE + i - 1] + delta; | 
|  | if (val < 0) val += max_val; | 
|  | if (val >= max_val) val -= max_val; | 
|  | pmi->palette_colors[2 * PALETTE_MAX_SIZE + i] = val; | 
|  | } | 
|  | } else { | 
|  | for (int i = 0; i < n; ++i) { | 
|  | pmi->palette_colors[2 * PALETTE_MAX_SIZE + i] = | 
|  | aom_read_literal(r, bit_depth, ACCT_INFO("palette_colors")); | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | static void read_palette_mode_info(AV1_COMMON *const cm, MACROBLOCKD *const xd, | 
|  | aom_reader *r) { | 
|  | const int num_planes = av1_num_planes(cm); | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[xd->tree_type == CHROMA_PART]; | 
|  | assert(av1_allow_palette(cm->features.allow_screen_content_tools, bsize)); | 
|  | PALETTE_MODE_INFO *const pmi = &mbmi->palette_mode_info; | 
|  | const int bsize_ctx = av1_get_palette_bsize_ctx(bsize); | 
|  | if (mbmi->mode == DC_PRED && xd->tree_type != CHROMA_PART) { | 
|  | const int palette_mode_ctx = av1_get_palette_mode_ctx(xd); | 
|  | const int modev = aom_read_symbol( | 
|  | r, xd->tile_ctx->palette_y_mode_cdf[bsize_ctx][palette_mode_ctx], 2, | 
|  | ACCT_INFO("modev", "luma")); | 
|  | if (modev) { | 
|  | pmi->palette_size[0] = | 
|  | aom_read_symbol(r, xd->tile_ctx->palette_y_size_cdf[bsize_ctx], | 
|  | PALETTE_SIZES, ACCT_INFO("palette_size", "luma")) + | 
|  | 2; | 
|  | read_palette_colors_y(xd, cm->seq_params.bit_depth, pmi, r); | 
|  | } | 
|  | } | 
|  | if (num_planes > 1 && xd->tree_type != LUMA_PART && | 
|  | mbmi->uv_mode == UV_DC_PRED && xd->is_chroma_ref) { | 
|  | const int palette_uv_mode_ctx = (pmi->palette_size[0] > 0); | 
|  | const int modev = aom_read_symbol( | 
|  | r, xd->tile_ctx->palette_uv_mode_cdf[palette_uv_mode_ctx], 2, | 
|  | ACCT_INFO("modev", "chroma")); | 
|  | if (modev) { | 
|  | pmi->palette_size[1] = | 
|  | aom_read_symbol(r, xd->tile_ctx->palette_uv_size_cdf[bsize_ctx], | 
|  | PALETTE_SIZES, ACCT_INFO("palette_size", "chroma")) + | 
|  | 2; | 
|  | read_palette_colors_uv(xd, cm->seq_params.bit_depth, pmi, r); | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | static void read_filter_intra_mode_info(const AV1_COMMON *const cm, | 
|  | MACROBLOCKD *const xd, aom_reader *r) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | FILTER_INTRA_MODE_INFO *filter_intra_mode_info = | 
|  | &mbmi->filter_intra_mode_info; | 
|  | if (av1_filter_intra_allowed(cm, mbmi | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | , | 
|  | xd | 
|  | #endif | 
|  | ) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | filter_intra_mode_info->use_filter_intra = | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, xd->tile_ctx->filter_intra_cdfs, 2, | 
|  | ACCT_INFO("use_filter_intra")); | 
|  | #else | 
|  | aom_read_symbol( | 
|  | r, xd->tile_ctx->filter_intra_cdfs[mbmi->sb_type[PLANE_TYPE_Y]], 2, | 
|  | ACCT_INFO("use_filter_intra")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | if (filter_intra_mode_info->use_filter_intra) { | 
|  | filter_intra_mode_info->filter_intra_mode = | 
|  | aom_read_symbol(r, xd->tile_ctx->filter_intra_mode_cdf, | 
|  | FILTER_INTRA_MODES, ACCT_INFO("filter_intra_mode")); | 
|  | } | 
|  | } else { | 
|  | filter_intra_mode_info->use_filter_intra = 0; | 
|  | } | 
|  | } | 
|  |  | 
|  | #if CONFIG_DIP | 
|  | static void read_intra_dip_mode_info(const AV1_COMMON *const cm, | 
|  | MACROBLOCKD *const xd, aom_reader *r) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | mbmi->use_intra_dip = 0; | 
|  | mbmi->intra_dip_mode = 0; | 
|  | if (av1_intra_dip_allowed(cm, mbmi) && xd->tree_type != CHROMA_PART) { | 
|  | BLOCK_SIZE bsize = mbmi->sb_type[xd->tree_type == CHROMA_PART]; | 
|  | int ctx = get_intra_dip_ctx(xd->neighbors[0], xd->neighbors[1], bsize); | 
|  | aom_cdf_prob *cdf = xd->tile_ctx->intra_dip_cdf[ctx]; | 
|  | mbmi->use_intra_dip = | 
|  | aom_read_symbol(r, cdf, 2, ACCT_INFO("use_intra_dip")); | 
|  | if (mbmi->use_intra_dip) { | 
|  | // Read transpose bit + modes bits | 
|  | int has_transpose = av1_intra_dip_has_transpose(bsize); | 
|  | int transpose = | 
|  | has_transpose && | 
|  | aom_read_literal(r, 1, ACCT_INFO("intra_dip_mode_transpose")); | 
|  | mbmi->intra_dip_mode += transpose << 4; | 
|  | int n_modes = av1_intra_dip_modes(bsize); | 
|  | aom_cdf_prob *mode_cdf = xd->tile_ctx->intra_dip_mode_n6_cdf; | 
|  | mbmi->intra_dip_mode += | 
|  | aom_read_symbol(r, mode_cdf, n_modes, ACCT_INFO("intra_dip_mode_n6")); | 
|  | } | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_DIP | 
|  |  | 
|  | void av1_read_tx_type(const AV1_COMMON *const cm, MACROBLOCKD *xd, int blk_row, | 
|  | int blk_col, TX_SIZE tx_size, aom_reader *r, | 
|  | const int plane, const int eob, const int dc_skip) { | 
|  | if (plane != PLANE_TYPE_Y) return; | 
|  | MB_MODE_INFO *mbmi = xd->mi[0]; | 
|  | TX_TYPE *tx_type = | 
|  | &xd->tx_type_map[blk_row * xd->tx_type_map_stride + blk_col]; | 
|  | *tx_type = DCT_DCT; | 
|  |  | 
|  | if (dc_skip == 1) return; | 
|  | // No need to read transform type if block is skipped. | 
|  | if (mbmi->skip_txfm[xd->tree_type == CHROMA_PART] || | 
|  | segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP)) | 
|  | return; | 
|  |  | 
|  | #if CONFIG_IMPROVE_LOSSLESS_TXM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | if (is_inter_block(mbmi, xd->tree_type)) { | 
|  | int lossless_inter_tx_type = 0; | 
|  | if (tx_size == TX_4X4) { | 
|  | lossless_inter_tx_type = | 
|  | aom_read_symbol(r, xd->tile_ctx->lossless_inter_tx_type_cdf, 2, | 
|  | ACCT_INFO("lossless_inter_tx_type")); | 
|  | } | 
|  | if (lossless_inter_tx_type || tx_size == TX_8X8) *tx_type = IDTX; | 
|  | } | 
|  | return; | 
|  | } | 
|  | #else | 
|  | // No need to read transform type for lossless mode | 
|  | if (xd->lossless[mbmi->segment_id]) return; | 
|  | #endif  // CONFIG_IMPROVE_LOSSLESS_TXM | 
|  |  | 
|  | const int inter_block = is_inter_block(mbmi, xd->tree_type); | 
|  | if (get_ext_tx_types(tx_size, inter_block, cm->features.reduced_tx_set_used) > | 
|  | 1) { | 
|  | const TxSetType tx_set_type = av1_get_ext_tx_set_type( | 
|  | tx_size, inter_block, cm->features.reduced_tx_set_used); | 
|  | const int eset = | 
|  | get_ext_tx_set(tx_size, inter_block, cm->features.reduced_tx_set_used); | 
|  | // eset == 0 should correspond to a set with only DCT_DCT and | 
|  | // there is no need to read the tx_type | 
|  | assert(eset != 0); | 
|  |  | 
|  | const TX_SIZE square_tx_size = txsize_sqr_map[tx_size]; | 
|  | #if CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | const TX_SIZE tx_size_sqr_up = txsize_sqr_up_map[tx_size]; | 
|  | #endif  // CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | if (inter_block) { | 
|  | const int eob_tx_ctx = get_lp2tx_ctx(tx_size, get_txb_bwl(tx_size), eob); | 
|  | #if CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | if (tx_set_type != EXT_TX_SET_LONG_SIDE_64 && | 
|  | tx_set_type != EXT_TX_SET_LONG_SIDE_32) { | 
|  | int tx_type_idx = aom_read_symbol( | 
|  | r, ec_ctx->inter_ext_tx_cdf[eset][eob_tx_ctx][square_tx_size], | 
|  | av1_num_ext_tx_set[tx_set_type], ACCT_INFO("tx_type")); | 
|  | *tx_type = av1_ext_tx_inv[tx_set_type][tx_type_idx]; | 
|  | } else { | 
|  | int is_long_side_dct = 1; | 
|  | if (tx_size_sqr_up == TX_32X32) { | 
|  | is_long_side_dct = aom_read_symbol( | 
|  | r, ec_ctx->tx_ext_32_cdf[inter_block], 2, ACCT_INFO("tx_type")); | 
|  | } | 
|  |  | 
|  | int short_side_idx = aom_read_symbol( | 
|  | r, ec_ctx->inter_ext_tx_short_side_cdf[eob_tx_ctx][square_tx_size], | 
|  | 4, ACCT_INFO("tx_type")); | 
|  | *tx_type = get_txtype_from_idx_for_large_txfm( | 
|  | tx_size, tx_set_type, short_side_idx, is_long_side_dct); | 
|  | } | 
|  | #else | 
|  | *tx_type = av1_ext_tx_inv[tx_set_type][aom_read_symbol( | 
|  | r, ec_ctx->inter_ext_tx_cdf[eset][eob_tx_ctx][square_tx_size], | 
|  | av1_num_ext_tx_set[tx_set_type], ACCT_INFO("tx_type"))]; | 
|  | #endif  // CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | } else { | 
|  | if (mbmi->fsc_mode[xd->tree_type == CHROMA_PART]) { | 
|  | *tx_type = IDTX; | 
|  | return; | 
|  | } | 
|  | #if CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | if (tx_set_type != EXT_TX_SET_LONG_SIDE_64 && | 
|  | tx_set_type != EXT_TX_SET_LONG_SIDE_32) { | 
|  | const PREDICTION_MODE intra_mode = | 
|  | mbmi->filter_intra_mode_info.use_filter_intra | 
|  | ? fimode_to_intradir[mbmi->filter_intra_mode_info | 
|  | .filter_intra_mode] | 
|  | : get_intra_mode(mbmi, PLANE_TYPE_Y); | 
|  | const int size_info = av1_size_class[tx_size]; | 
|  | int tx_type_idx = aom_read_symbol( | 
|  | r, | 
|  | ec_ctx->intra_ext_tx_cdf[eset + cm->features.reduced_tx_set_used] | 
|  | [square_tx_size], | 
|  | cm->features.reduced_tx_set_used | 
|  | ? av1_num_reduced_tx_set | 
|  | : av1_num_ext_tx_set_intra[tx_set_type], | 
|  | ACCT_INFO("tx_type")); | 
|  | *tx_type = | 
|  | av1_tx_idx_to_type(tx_type_idx, tx_set_type, intra_mode, size_info); | 
|  | } else { | 
|  | int is_long_side_dct = 1; | 
|  | if (tx_size_sqr_up == TX_32X32) { | 
|  | is_long_side_dct = aom_read_symbol( | 
|  | r, ec_ctx->tx_ext_32_cdf[inter_block], 2, ACCT_INFO("tx_type")); | 
|  | } | 
|  | int short_side_idx = aom_read_symbol( | 
|  | r, ec_ctx->intra_ext_tx_short_side_cdf[square_tx_size], 4, | 
|  | ACCT_INFO("tx_type")); | 
|  | *tx_type = get_txtype_from_idx_for_large_txfm( | 
|  | tx_size, tx_set_type, short_side_idx, is_long_side_dct); | 
|  | } | 
|  | #else | 
|  | const PREDICTION_MODE intra_mode = | 
|  | mbmi->filter_intra_mode_info.use_filter_intra | 
|  | ? fimode_to_intradir[mbmi->filter_intra_mode_info | 
|  | .filter_intra_mode] | 
|  | : get_intra_mode(mbmi, PLANE_TYPE_Y); | 
|  | const int size_info = av1_size_class[tx_size]; | 
|  | *tx_type = av1_tx_idx_to_type( | 
|  | aom_read_symbol( | 
|  | r, | 
|  | ec_ctx->intra_ext_tx_cdf[eset + cm->features.reduced_tx_set_used] | 
|  | [square_tx_size], | 
|  | cm->features.reduced_tx_set_used | 
|  | ? av1_num_reduced_tx_set | 
|  | : av1_num_ext_tx_set_intra[tx_set_type], | 
|  | ACCT_INFO("tx_type")), | 
|  | tx_set_type, intra_mode, size_info); | 
|  | #endif  // CONFIG_TX_TYPE_FLEX_IMPROVE | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | void av1_read_cctx_type(const AV1_COMMON *const cm, MACROBLOCKD *xd, | 
|  | int blk_row, int blk_col, TX_SIZE tx_size, | 
|  | aom_reader *r) { | 
|  | MB_MODE_INFO *mbmi = xd->mi[0]; | 
|  | // If it is a sub 8x8 chroma block, derive the mi_row and mi_col of the | 
|  | // parent block area. Then apply cctx type update to this area w.r.t the | 
|  | // offsets derived | 
|  | int row_offset, col_offset; | 
|  | get_chroma_mi_offsets(xd, &row_offset, &col_offset); | 
|  | update_cctx_array(xd, blk_row, blk_col, row_offset, col_offset, tx_size, | 
|  | CCTX_NONE); | 
|  |  | 
|  | // No need to read transform type if block is skipped. | 
|  | if (mbmi->skip_txfm[xd->tree_type == CHROMA_PART] || | 
|  | segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP)) | 
|  | return; | 
|  |  | 
|  | assert(!xd->lossless[mbmi->segment_id]); | 
|  |  | 
|  | CctxType cctx_type = CCTX_NONE; | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const TX_SIZE square_tx_size = txsize_sqr_map[tx_size]; | 
|  | int above_cctx, left_cctx; | 
|  | get_above_and_left_cctx_type(cm, xd, &above_cctx, &left_cctx); | 
|  | const int cctx_ctx = get_cctx_context(xd, &above_cctx, &left_cctx); | 
|  | cctx_type = | 
|  | aom_read_symbol(r, ec_ctx->cctx_type_cdf[square_tx_size][cctx_ctx], | 
|  | CCTX_TYPES, ACCT_INFO("cctx_type")); | 
|  | update_cctx_array(xd, blk_row, blk_col, row_offset, col_offset, tx_size, | 
|  | cctx_type); | 
|  | } | 
|  |  | 
|  | // This function reads a 'secondary tx set' from the bitstream | 
|  | static void read_secondary_tx_set(MACROBLOCKD *xd, FRAME_CONTEXT *ec_ctx, | 
|  | aom_reader *r, MB_MODE_INFO *mbmi, | 
|  | #if CONFIG_F105_IST_MEM_REDUCE | 
|  | TX_SIZE tx_size, | 
|  | #endif  // CONFIG_F105_IST_MEM_REDUCE | 
|  | TX_TYPE *tx_type) { | 
|  | const int inter_block = is_inter_block(mbmi, xd->tree_type); | 
|  | TX_TYPE stx_set_flag = DC_PRED; | 
|  | if (!inter_block) { | 
|  | uint8_t intra_mode = get_intra_mode(mbmi, AOM_PLANE_Y); | 
|  | #if CONFIG_F105_IST_MEM_REDUCE | 
|  | TX_TYPE reordered_stx_set_flag; | 
|  | if (get_primary_tx_type(*tx_type) == ADST_ADST && | 
|  | tx_size_wide[tx_size] >= 8 && tx_size_high[tx_size] >= 8) { | 
|  | reordered_stx_set_flag = aom_read_symbol( | 
|  | r, ec_ctx->most_probable_stx_set_cdf_ADST_ADST, | 
|  | IST_REDUCE_SET_SIZE_ADST_ADST, ACCT_INFO("stx_set_flag_ADST_ADST")); | 
|  | assert(reordered_stx_set_flag < IST_REDUCE_SET_SIZE_ADST_ADST); | 
|  | stx_set_flag = | 
|  | inv_most_probable_stx_mapping_ADST_ADST[intra_mode] | 
|  | [reordered_stx_set_flag]; | 
|  | } else { | 
|  | reordered_stx_set_flag = | 
|  | aom_read_symbol(r, ec_ctx->most_probable_stx_set_cdf, IST_DIR_SIZE, | 
|  | ACCT_INFO("stx_set_flag")); | 
|  | assert(reordered_stx_set_flag < IST_DIR_SIZE); | 
|  | stx_set_flag = | 
|  | inv_most_probable_stx_mapping[intra_mode][reordered_stx_set_flag]; | 
|  | } | 
|  | #else | 
|  | const TX_TYPE reordered_stx_set_flag = | 
|  | aom_read_symbol(r, ec_ctx->most_probable_stx_set_cdf, IST_DIR_SIZE, | 
|  | ACCT_INFO("stx_set_flag")); | 
|  | stx_set_flag = | 
|  | inv_most_probable_stx_mapping[intra_mode][reordered_stx_set_flag]; | 
|  | #endif  // CONFIG_F105_IST_MEM_REDUCE | 
|  | assert(stx_set_flag < IST_DIR_SIZE); | 
|  | } | 
|  | #if !CONFIG_E124_IST_REDUCE_METHOD1 | 
|  | if (get_primary_tx_type(*tx_type) == ADST_ADST) stx_set_flag += IST_DIR_SIZE; | 
|  | #endif  // !CONFIG_E124_IST_REDUCE_METHOD1 | 
|  | set_secondary_tx_set(tx_type, stx_set_flag); | 
|  | } | 
|  |  | 
|  | void av1_read_sec_tx_type(const AV1_COMMON *const cm, MACROBLOCKD *xd, | 
|  | int blk_row, int blk_col, TX_SIZE tx_size, | 
|  | uint16_t *eob, aom_reader *r) { | 
|  | MB_MODE_INFO *mbmi = xd->mi[0]; | 
|  | TX_TYPE *tx_type = | 
|  | &xd->tx_type_map[blk_row * xd->tx_type_map_stride + blk_col]; | 
|  |  | 
|  | // No need to read transform type if block is skipped. | 
|  | if (mbmi->skip_txfm[xd->tree_type == CHROMA_PART] || | 
|  | segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP)) | 
|  | return; | 
|  |  | 
|  | // No need to read transform type for lossless mode | 
|  | if (xd->lossless[mbmi->segment_id]) return; | 
|  |  | 
|  | const int inter_block = is_inter_block(mbmi, xd->tree_type); | 
|  | if (get_ext_tx_types(tx_size, inter_block, cm->features.reduced_tx_set_used) > | 
|  | 1) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const TX_SIZE square_tx_size = txsize_sqr_map[tx_size]; | 
|  | if (block_signals_sec_tx_type(xd, tx_size, *tx_type, *eob)) { | 
|  | const uint8_t stx_flag = | 
|  | aom_read_symbol(r, ec_ctx->stx_cdf[inter_block][square_tx_size], | 
|  | STX_TYPES, ACCT_INFO("stx_flag")); | 
|  | *tx_type |= (stx_flag << PRIMARY_TX_BITS); | 
|  | #if CONFIG_IST_SET_FLAG | 
|  | if (stx_flag > 0) | 
|  | read_secondary_tx_set(xd, ec_ctx, r, mbmi, | 
|  | #if CONFIG_F105_IST_MEM_REDUCE | 
|  | tx_size, | 
|  | #endif  // CONFIG_F105_IST_MEM_REDUCE | 
|  | tx_type); | 
|  | #endif  // CONFIG_IST_SET_FLAG | 
|  | #if STX_SYNTAX_DEBUG | 
|  | const int sb_size = | 
|  | (tx_size_wide[tx_size] >= 8 && tx_size_high[tx_size] >= 8) ? 8 : 4; | 
|  | fprintf(stderr, | 
|  | "(read stx) mode %d sbsize %d txs %dx%d eob %d ptx %d stx_type " | 
|  | "%d stx_set %d\n", | 
|  | inter_block ? 12 : mbmi->mode, sb_size, tx_size_wide[tx_size], | 
|  | tx_size_high[tx_size], *eob, get_primary_tx_type(*tx_type), | 
|  | stx_flag, get_secondary_tx_set(*tx_type)); | 
|  | #endif  // STX_SYNTAX_DEBUG | 
|  | } | 
|  | } else { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const TX_SIZE square_tx_size = txsize_sqr_map[tx_size]; | 
|  | if (block_signals_sec_tx_type(xd, tx_size, *tx_type, *eob)) { | 
|  | const uint8_t stx_flag = | 
|  | aom_read_symbol(r, ec_ctx->stx_cdf[inter_block][square_tx_size], | 
|  | STX_TYPES, ACCT_INFO("stx_flag")); | 
|  | *tx_type |= (stx_flag << PRIMARY_TX_BITS); | 
|  | #if CONFIG_IST_SET_FLAG | 
|  | if (stx_flag > 0) | 
|  | read_secondary_tx_set(xd, ec_ctx, r, mbmi, | 
|  | #if CONFIG_F105_IST_MEM_REDUCE | 
|  | tx_size, | 
|  | #endif  // CONFIG_F105_IST_MEM_REDUCE | 
|  | tx_type); | 
|  | #endif  // CONFIG_IST_SET_FLAG | 
|  | #if STX_SYNTAX_DEBUG | 
|  | const int sb_size = | 
|  | (tx_size_wide[tx_size] >= 8 && tx_size_high[tx_size] >= 8) ? 8 : 4; | 
|  | fprintf(stderr, | 
|  | "(read stx) mode %d sbsize %d txs %dx%d eob %d ptx %d stx_type " | 
|  | "%d stx_set %d\n", | 
|  | inter_block ? 12 : mbmi->mode, sb_size, tx_size_wide[tx_size], | 
|  | tx_size_high[tx_size], *eob, get_primary_tx_type(*tx_type), | 
|  | stx_flag, get_secondary_tx_set(*tx_type)); | 
|  | #endif  // STX_SYNTAX_DEBUG | 
|  | } | 
|  | } | 
|  | } | 
|  | #if !CONFIG_VQ_MVD_CODING | 
|  | static INLINE void read_mv(aom_reader *r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | MV *mv_diff, | 
|  | #else | 
|  | MV *mv, MV ref, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | int is_adaptive_mvd, nmv_context *ctx, | 
|  | MvSubpelPrecision precision); | 
|  | #else | 
|  | static INLINE void read_mv(aom_reader *r, MV *mv_diff, int skip_sign_coding, | 
|  | nmv_context *ctx, MvSubpelPrecision precision, | 
|  | int is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | MV *mv, MV ref | 
|  | #endif | 
|  | ); | 
|  | #endif  // !CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | static INLINE int is_mv_valid(const MV *mv); | 
|  |  | 
|  | static INLINE int assign_dv(AV1_COMMON *cm, MACROBLOCKD *xd, int_mv *mv, | 
|  | const int_mv *ref_mv, int mi_row, int mi_col, | 
|  | BLOCK_SIZE bsize, aom_reader *r) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | const MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | if (mbmi->intrabc_mode == 1) { | 
|  | mv->as_int = ref_mv->as_int; | 
|  | } else { | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  | #if CONFIG_DERIVED_MVD_SIGN || CONFIG_VQ_MVD_CODING | 
|  | MV mv_diff = kZeroMv; | 
|  | #endif | 
|  | #if !CONFIG_IBC_SUBPEL_PRECISION | 
|  | assert(mbmi->pb_mv_precision == MV_PRECISION_ONE_PEL); | 
|  | #endif  //! CONFIG_IBC_SUBPEL_PRECISION | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff, 1, &ec_ctx->ndvc, mbmi->pb_mv_precision, 0 | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv->as_mv, ref_mv->as_mv | 
|  | #endif | 
|  | ); | 
|  | #else | 
|  |  | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff, | 
|  | #else | 
|  | &mv->as_mv, ref_mv->as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | 0, &ec_ctx->ndvc, mbmi->pb_mv_precision); | 
|  |  | 
|  | #endif  //   CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | // Encode sign | 
|  | if (mv_diff.row) { | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | int sign = aom_read_literal(r, 1, ACCT_INFO("sign")); | 
|  | #else | 
|  | int sign = aom_read_symbol(r, ec_ctx->ndvc.comps[0].sign_cdf, 2, | 
|  | ACCT_INFO("sign")); | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  |  | 
|  | if (sign) mv_diff.row = -mv_diff.row; | 
|  | } | 
|  | if (mv_diff.col) { | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | int sign = aom_read_literal(r, 1, ACCT_INFO("sign")); | 
|  | #else | 
|  | int sign = aom_read_symbol(r, ec_ctx->ndvc.comps[1].sign_cdf, 2, | 
|  | ACCT_INFO("sign")); | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  |  | 
|  | if (sign) mv_diff.col = -mv_diff.col; | 
|  | } | 
|  | #if CONFIG_IBC_SUBPEL_PRECISION | 
|  | MV low_prec_refmv = ref_mv->as_mv; | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (mbmi->pb_mv_precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&low_prec_refmv, mbmi->pb_mv_precision); | 
|  |  | 
|  | mv->as_mv.row = low_prec_refmv.row + mv_diff.row; | 
|  | mv->as_mv.col = low_prec_refmv.col + mv_diff.col; | 
|  | #else | 
|  | mv->as_mv.row = ref_mv->as_mv.row + mv_diff.row; | 
|  | mv->as_mv.col = ref_mv->as_mv.col + mv_diff.col; | 
|  | #endif  // CONFIG_IBC_SUBPEL_PRECISION | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | } | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  |  | 
|  | #if CONFIG_IBC_SUBPEL_PRECISION | 
|  | assert( | 
|  | is_this_mv_precision_compliant(mbmi->mv[0].as_mv, mbmi->pb_mv_precision)); | 
|  | #else | 
|  | // DV should not have sub-pel. | 
|  | assert((mv->as_mv.col & 7) == 0); | 
|  | assert((mv->as_mv.row & 7) == 0); | 
|  | mv->as_mv.col = (mv->as_mv.col >> 3) * 8; | 
|  | mv->as_mv.row = (mv->as_mv.row >> 3) * 8; | 
|  | #endif  // CONFIG_IBC_SUBPEL_PRECISION | 
|  |  | 
|  | int valid = is_mv_valid(&mv->as_mv) && | 
|  | av1_is_dv_valid(mv->as_mv, cm, xd, mi_row, mi_col, bsize, | 
|  | cm->mib_size_log2); | 
|  | return valid; | 
|  | } | 
|  |  | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | static void read_intrabc_drl_idx(int max_ref_bv_cnt, FRAME_CONTEXT *ec_ctx, | 
|  | MB_MODE_INFO *mbmi, aom_reader *r) { | 
|  | mbmi->intrabc_drl_idx = 0; | 
|  | int bit_cnt = 0; | 
|  | for (int idx = 0; idx < max_ref_bv_cnt - 1; ++idx) { | 
|  | const int intrabc_drl_idx = aom_read_symbol( | 
|  | r, ec_ctx->intrabc_drl_idx_cdf[bit_cnt], 2, ACCT_INFO()); | 
|  | mbmi->intrabc_drl_idx = idx + intrabc_drl_idx; | 
|  | if (!intrabc_drl_idx) break; | 
|  | ++bit_cnt; | 
|  | } | 
|  | assert(mbmi->intrabc_drl_idx < max_ref_bv_cnt); | 
|  | } | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  |  | 
|  | static void read_intrabc_info(AV1_COMMON *const cm, DecoderCodingBlock *dcb, | 
|  | aom_reader *r) { | 
|  | MACROBLOCKD *const xd = &dcb->xd; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | assert(xd->tree_type != CHROMA_PART); | 
|  | #if !CONFIG_SKIP_TXFM_OPT | 
|  | #if CONFIG_NEW_CONTEXT_MODELING | 
|  | mbmi->use_intrabc[0] = 0; | 
|  | mbmi->use_intrabc[1] = 0; | 
|  | const int intrabc_ctx = get_intrabc_ctx(xd); | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = | 
|  | aom_read_symbol(r, ec_ctx->intrabc_cdf[intrabc_ctx], 2, ACCT_INFO()); | 
|  | #else | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = | 
|  | aom_read_symbol(r, ec_ctx->intrabc_cdf, 2, ACCT_INFO()); | 
|  | #endif  // CONFIG_NEW_CONTEXT_MODELING | 
|  | #endif  // !CONFIG_SKIP_TXFM_OPT | 
|  | if (xd->tree_type == CHROMA_PART) | 
|  | assert(mbmi->use_intrabc[PLANE_TYPE_UV] == 0); | 
|  | if (mbmi->use_intrabc[xd->tree_type == CHROMA_PART]) { | 
|  | BLOCK_SIZE bsize = mbmi->sb_type[xd->tree_type == CHROMA_PART]; | 
|  | mbmi->mode = DC_PRED; | 
|  | mbmi->fsc_mode[PLANE_TYPE_Y] = 0; | 
|  | mbmi->fsc_mode[PLANE_TYPE_UV] = 0; | 
|  | mbmi->uv_mode = UV_DC_PRED; | 
|  | mbmi->interp_fltr = BILINEAR; | 
|  | mbmi->motion_mode = SIMPLE_TRANSLATION; | 
|  | // CHECK(cm->features.fr_mv_precision != MV_PRECISION_ONE_PEL, " | 
|  | // fr_mv_precision is not same as MV_PRECISION_ONE_PEL for intra-bc | 
|  | // blocks"); | 
|  | set_default_max_mv_precision(mbmi, xd->sbi->sb_mv_precision); | 
|  | #if CONFIG_IBC_SUBPEL_PRECISION | 
|  | set_default_intraBC_bv_precision(cm, mbmi); | 
|  | #else | 
|  | set_mv_precision(mbmi, MV_PRECISION_ONE_PEL); | 
|  | #endif  // CONFIG_IBC_SUBPEL_PRECISION | 
|  | set_default_precision_set(cm, mbmi, bsize); | 
|  | set_most_probable_mv_precision(cm, mbmi, bsize); | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | mbmi->refinemv_flag = 0; | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | mbmi->bawp_flag[0] = 0; | 
|  | mbmi->bawp_flag[1] = 0; | 
|  | #if !CONFIG_C076_INTER_MOD_CTX | 
|  | int16_t inter_mode_ctx[MODE_CTX_REF_FRAMES]; | 
|  | #endif  // !CONFIG_C076_INTER_MOD_CTX | 
|  |  | 
|  | // TODO(kslu): Rework av1_find_mv_refs to avoid having this big array | 
|  | // ref_mvs | 
|  | int_mv ref_mvs[INTRA_FRAME + 1][MAX_MV_REF_CANDIDATES]; | 
|  |  | 
|  | av1_find_mv_refs(cm, xd, mbmi, INTRA_FRAME, dcb->ref_mv_count, | 
|  | xd->ref_mv_stack, xd->weight, ref_mvs, /*global_mvs=*/NULL | 
|  | #if !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | inter_mode_ctx | 
|  | #endif  // !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | NULL, 0, NULL); | 
|  |  | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | mbmi->intrabc_mode = | 
|  | aom_read_symbol(r, ec_ctx->intrabc_mode_cdf, 2, ACCT_INFO()); | 
|  | #if CONFIG_IBC_MAX_DRL | 
|  | read_intrabc_drl_idx(cm->features.max_bvp_drl_bits + 1, ec_ctx, mbmi, r); | 
|  | #else | 
|  | read_intrabc_drl_idx(MAX_REF_BV_STACK_SIZE, ec_ctx, mbmi, r); | 
|  | #endif  // CONFIG_IBC_MAX_DRL | 
|  | int_mv dv_ref = | 
|  | xd->ref_mv_stack[INTRA_FRAME][mbmi->intrabc_drl_idx].this_mv; | 
|  | #else | 
|  | int_mv nearestmv, nearmv; | 
|  | av1_find_best_ref_mvs(ref_mvs[INTRA_FRAME], &nearestmv, &nearmv, | 
|  | mbmi->pb_mv_precision); | 
|  |  | 
|  | assert(cm->features.fr_mv_precision == MV_PRECISION_ONE_PEL && | 
|  | mbmi->max_mv_precision == MV_PRECISION_ONE_PEL); | 
|  | int_mv dv_ref = nearestmv.as_int == 0 ? nearmv : nearestmv; | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  | if (dv_ref.as_int == 0) | 
|  | av1_find_ref_dv(&dv_ref, &xd->tile, cm->mib_size, xd->mi_row); | 
|  |  | 
|  | #if CONFIG_IBC_SUBPEL_PRECISION | 
|  | int valid_dv = 1; | 
|  | assert(is_this_mv_precision_compliant(dv_ref.as_mv, mbmi->pb_mv_precision)); | 
|  | if (is_intraBC_bv_precision_active(cm, mbmi->intrabc_mode)) { | 
|  | int index = aom_read_symbol(r, ec_ctx->intrabc_bv_precision_cdf[0], | 
|  | av1_intraBc_precision_sets.num_precisions, | 
|  | ACCT_INFO()); | 
|  | mbmi->pb_mv_precision = av1_intraBc_precision_sets.precision[index]; | 
|  | } | 
|  | #else | 
|  | // Ref DV should not have sub-pel. | 
|  | int valid_dv = (dv_ref.as_mv.col & 7) == 0 && (dv_ref.as_mv.row & 7) == 0; | 
|  | dv_ref.as_mv.col = (dv_ref.as_mv.col >> 3) * 8; | 
|  | dv_ref.as_mv.row = (dv_ref.as_mv.row >> 3) * 8; | 
|  | #endif  // CONFIG_IBC_SUBPEL_PRECISION | 
|  |  | 
|  | valid_dv = valid_dv && assign_dv(cm, xd, &mbmi->mv[0], &dv_ref, xd->mi_row, | 
|  | xd->mi_col, bsize, r); | 
|  | if (!valid_dv) { | 
|  | // Intra bc motion vectors are not valid - signal corrupt frame | 
|  | aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME, | 
|  | "Invalid intrabc dv"); | 
|  | } | 
|  |  | 
|  | #if CONFIG_IBC_SUBPEL_PRECISION | 
|  | assert(is_this_mv_precision_compliant(mbmi->mv[0].as_mv, | 
|  | mbmi->pb_mv_precision)); | 
|  | #endif  // CONFIG_IBC_SUBPEL_PRECISION | 
|  |  | 
|  | #if CONFIG_MORPH_PRED | 
|  | #if CONFIG_IMPROVED_MORPH_PRED | 
|  | if (av1_allow_intrabc_morph_pred(cm)) { | 
|  | #endif  // CONFIG_IMPROVED_MORPH_PRED | 
|  | const int morph_pred_ctx = get_morph_pred_ctx(xd); | 
|  | mbmi->morph_pred = aom_read_symbol( | 
|  | r, ec_ctx->morph_pred_cdf[morph_pred_ctx], 2, ACCT_INFO()); | 
|  | #if CONFIG_IMPROVED_MORPH_PRED | 
|  | } | 
|  | #endif  // CONFIG_IMPROVED_MORPH_PRED | 
|  | #endif  // CONFIG_MORPH_PRED | 
|  | } | 
|  | } | 
|  |  | 
|  | // If delta q is present, reads delta_q index. | 
|  | // Also reads delta_q loop filter levels, if present. | 
|  | static void read_delta_q_params(AV1_COMMON *const cm, MACROBLOCKD *const xd, | 
|  | aom_reader *r) { | 
|  | DeltaQInfo *const delta_q_info = &cm->delta_q_info; | 
|  |  | 
|  | if (delta_q_info->delta_q_present_flag) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | xd->current_base_qindex += | 
|  | read_delta_qindex(cm, xd, r, mbmi) * delta_q_info->delta_q_res; | 
|  | /* Normative: Clamp to [1,MAXQ] to not interfere with lossless mode */ | 
|  | xd->current_base_qindex = | 
|  | clamp(xd->current_base_qindex, 1, | 
|  | cm->seq_params.bit_depth == AOM_BITS_8    ? MAXQ_8_BITS | 
|  | : cm->seq_params.bit_depth == AOM_BITS_10 ? MAXQ_10_BITS | 
|  | : MAXQ); | 
|  | FRAME_CONTEXT *const ec_ctx = xd->tile_ctx; | 
|  | if (delta_q_info->delta_lf_present_flag) { | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | if (delta_q_info->delta_lf_multi) { | 
|  | const int frame_lf_count = | 
|  | av1_num_planes(cm) > 1 ? FRAME_LF_COUNT : FRAME_LF_COUNT - 2; | 
|  | for (int lf_id = 0; lf_id < frame_lf_count; ++lf_id) { | 
|  | const int tmp_lvl = | 
|  | xd->delta_lf[lf_id] + | 
|  | read_delta_lflevel(cm, r, ec_ctx->delta_lf_multi_cdf[lf_id], mbmi, | 
|  | mi_col, mi_row, xd->tree_type) * | 
|  | delta_q_info->delta_lf_res; | 
|  | mbmi->delta_lf[lf_id] = xd->delta_lf[lf_id] = | 
|  | clamp(tmp_lvl, -MAX_LOOP_FILTER, MAX_LOOP_FILTER); | 
|  | } | 
|  | } else { | 
|  | const int tmp_lvl = | 
|  | xd->delta_lf_from_base + | 
|  | read_delta_lflevel(cm, r, ec_ctx->delta_lf_cdf, mbmi, mi_col, | 
|  | mi_row, xd->tree_type) * | 
|  | delta_q_info->delta_lf_res; | 
|  | mbmi->delta_lf_from_base = xd->delta_lf_from_base = | 
|  | clamp(tmp_lvl, -MAX_LOOP_FILTER, MAX_LOOP_FILTER); | 
|  | } | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | // read mode set index and mode index in set for y component, | 
|  | // and map it to y mode and delta angle | 
|  | static void read_intra_luma_mode(MACROBLOCKD *const xd, aom_reader *r) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | uint8_t mode_idx = 0; | 
|  | const int context = get_y_mode_idx_ctx(xd); | 
|  | int mode_set_index = | 
|  | aom_read_symbol(r, ec_ctx->y_mode_set_cdf, INTRA_MODE_SETS, | 
|  | ACCT_INFO("mode_set_index", "y_mode_set_cdf")); | 
|  | if (mode_set_index == 0) { | 
|  | mode_idx = | 
|  | aom_read_symbol(r, ec_ctx->y_mode_idx_cdf_0[context], FIRST_MODE_COUNT, | 
|  | ACCT_INFO("mode_idx", "y_mode_idx_cdf_0")); | 
|  | } else { | 
|  | mode_idx = | 
|  | FIRST_MODE_COUNT + (mode_set_index - 1) * SECOND_MODE_COUNT + | 
|  | aom_read_symbol(r, ec_ctx->y_mode_idx_cdf_1[context], SECOND_MODE_COUNT, | 
|  | ACCT_INFO("mode_idx", "y_mode_idx_cdf_1")); | 
|  | } | 
|  | assert(mode_idx < LUMA_MODE_COUNT); | 
|  | get_y_intra_mode_set(mbmi, xd); | 
|  | mbmi->joint_y_mode_delta_angle = mbmi->y_intra_mode_list[mode_idx]; | 
|  | set_y_mode_and_delta_angle(mbmi->joint_y_mode_delta_angle, mbmi); | 
|  | mbmi->y_mode_idx = mode_idx; | 
|  | if (mbmi->joint_y_mode_delta_angle < NON_DIRECTIONAL_MODES_COUNT) | 
|  | assert(mbmi->joint_y_mode_delta_angle == mbmi->y_mode_idx); | 
|  | } | 
|  |  | 
|  | // Read mode index for uv component and map it to uv mode and delta angle. | 
|  | // First we read if the uv mode is UV_CFL_PRED. | 
|  | // If yes, uv mode is set to UV_CFL_PRED, delta angle is set to 0. Done. | 
|  | // If not, we read mode index and map it to uv mode and delta angle. | 
|  | static void read_intra_uv_mode(MACROBLOCKD *const xd, | 
|  | CFL_ALLOWED_TYPE cfl_allowed, aom_reader *r) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | int is_cfl_mode = 0; | 
|  | if (cfl_allowed) { | 
|  | const int cfl_ctx = get_cfl_ctx(xd); | 
|  | is_cfl_mode = aom_read_symbol(r, ec_ctx->cfl_cdf[cfl_ctx], 2, | 
|  | ACCT_INFO("is_cfl_idx")); | 
|  | } | 
|  | if (is_cfl_mode) { | 
|  | mbmi->uv_mode = UV_CFL_PRED; | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | return; | 
|  | } | 
|  |  | 
|  | const int context = av1_is_directional_mode(mbmi->mode) ? 1 : 0; | 
|  | const int uv_mode_idx = | 
|  | aom_read_symbol(r, ec_ctx->uv_mode_cdf[context], UV_INTRA_MODES - 1, | 
|  | ACCT_INFO("uv_mode_idx")); | 
|  | assert(uv_mode_idx >= 0 && uv_mode_idx < UV_INTRA_MODES); | 
|  | get_uv_intra_mode_set(mbmi); | 
|  | mbmi->uv_mode = mbmi->uv_intra_mode_list[uv_mode_idx]; | 
|  | if (mbmi->uv_mode == mbmi->mode) | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = mbmi->angle_delta[PLANE_TYPE_Y]; | 
|  | else | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | } | 
|  |  | 
|  | static void read_intra_frame_mode_info(AV1_COMMON *const cm, | 
|  | DecoderCodingBlock *dcb, aom_reader *r) { | 
|  | MACROBLOCKD *const xd = &dcb->xd; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[xd->tree_type == CHROMA_PART]; | 
|  | struct segmentation *const seg = &cm->seg; | 
|  |  | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  |  | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | set_default_max_mv_precision(mbmi, xd->sbi->sb_mv_precision); | 
|  | set_mv_precision(mbmi, mbmi->max_mv_precision);  // initialize to max | 
|  | } | 
|  |  | 
|  | if (seg->segid_preskip && xd->tree_type != CHROMA_PART) | 
|  | mbmi->segment_id = read_intra_segment_id(cm, xd, bsize, r, 0); | 
|  |  | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | mbmi->skip_mode = 0; | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_MORPH_PRED | 
|  | if (xd->tree_type != CHROMA_PART) mbmi->morph_pred = 0; | 
|  | #endif  // CONFIG_MORPH_PRED | 
|  | mbmi->motion_mode = SIMPLE_TRANSLATION; | 
|  | #if CONFIG_REFINEMV | 
|  | mbmi->refinemv_flag = 0; | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | #if CONFIG_SKIP_TXFM_OPT | 
|  | if (av1_allow_intrabc(cm, xd | 
|  | #if CONFIG_ENABLE_IBC_NAT | 
|  | , | 
|  | bsize | 
|  | #endif  // CONFIG_ENABLE_IBC_NAT | 
|  | ) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | #if CONFIG_NEW_CONTEXT_MODELING | 
|  | mbmi->use_intrabc[0] = 0; | 
|  | mbmi->use_intrabc[1] = 0; | 
|  | const int intrabc_ctx = get_intrabc_ctx(xd); | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = | 
|  | aom_read_symbol(r, ec_ctx->intrabc_cdf[intrabc_ctx], 2, | 
|  | ACCT_INFO("use_intrabc", "chroma")); | 
|  | #else | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = aom_read_symbol( | 
|  | r, ec_ctx->intrabc_cdf, 2, ACCT_INFO("use_intrabc", "chroma")); | 
|  | #endif  // CONFIG_NEW_CONTEXT_MODELING | 
|  | } | 
|  | if (is_intrabc_block(mbmi, xd->tree_type)) { | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = | 
|  | read_skip_txfm(cm, xd, mbmi->segment_id, r); | 
|  | } else { | 
|  | // Segment SEG_LVL_SKIP should be disabled for intra prediction | 
|  | if (segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP)) { | 
|  | aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME, | 
|  | "Corrupted segment features"); | 
|  | } | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = 0; | 
|  | } | 
|  | #else | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = | 
|  | read_skip_txfm(cm, xd, mbmi->segment_id, r); | 
|  | #endif  // CONFIG_SKIP_TXFM_OPT | 
|  |  | 
|  | if (!seg->segid_preskip && xd->tree_type != CHROMA_PART) | 
|  | mbmi->segment_id = read_intra_segment_id( | 
|  | cm, xd, bsize, r, mbmi->skip_txfm[xd->tree_type == CHROMA_PART]); | 
|  |  | 
|  | mbmi->seg_id_predicted = 0; | 
|  |  | 
|  | #if CONFIG_GDF | 
|  | if (xd->tree_type != CHROMA_PART) read_gdf(cm, r, xd); | 
|  | #endif  // CONFIG_GDF | 
|  |  | 
|  | if (xd->tree_type != CHROMA_PART) read_cdef(cm, r, xd); | 
|  |  | 
|  | if (cm->seq_params.enable_ccso && xd->tree_type != CHROMA_PART) | 
|  | read_ccso(cm, r, xd); | 
|  |  | 
|  | read_delta_q_params(cm, xd, r); | 
|  |  | 
|  | mbmi->current_qindex = xd->current_base_qindex; | 
|  |  | 
|  | mbmi->ref_frame[0] = INTRA_FRAME; | 
|  | mbmi->ref_frame[1] = NONE_FRAME; | 
|  | if (xd->tree_type != CHROMA_PART) mbmi->palette_mode_info.palette_size[0] = 0; | 
|  | mbmi->palette_mode_info.palette_size[1] = 0; | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | mbmi->filter_intra_mode_info.use_filter_intra = 0; | 
|  | #if CONFIG_DIP | 
|  | mbmi->use_intra_dip = 0; | 
|  | #endif  // CONFIG_DIP | 
|  | } | 
|  |  | 
|  | #if !CONFIG_TX_PARTITION_CTX | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  | xd->above_txfm_context = cm->above_contexts.txfm[xd->tile.tile_row] + mi_col; | 
|  | xd->left_txfm_context = | 
|  | xd->left_txfm_context_buffer + (mi_row & MAX_MIB_MASK); | 
|  | #endif  // !CONFIG_TX_PARTITION_CTX | 
|  | if (av1_allow_intrabc(cm, xd | 
|  | #if CONFIG_ENABLE_IBC_NAT | 
|  | , | 
|  | bsize | 
|  | #endif  // CONFIG_ENABLE_IBC_NAT | 
|  | ) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | read_intrabc_info(cm, dcb, r); | 
|  | if (is_intrabc_block(mbmi, xd->tree_type)) { | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | mbmi->use_amvd = 0; | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | return; | 
|  | } | 
|  | } | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | mbmi->use_dpcm_y = read_dpcm_mode(ec_ctx, r); | 
|  | if (mbmi->use_dpcm_y == 0) { | 
|  | read_intra_luma_mode(xd, r); | 
|  | } else { | 
|  | mbmi->dpcm_mode_y = read_dpcm_vert_horz_mode(ec_ctx, r); | 
|  | if (mbmi->dpcm_mode_y == 0) { | 
|  | mbmi->joint_y_mode_delta_angle = 22; | 
|  | mbmi->mode = V_PRED; | 
|  | mbmi->angle_delta[0] = 0; | 
|  | } else { | 
|  | mbmi->joint_y_mode_delta_angle = 50; | 
|  | mbmi->mode = H_PRED; | 
|  | mbmi->angle_delta[0] = 0; | 
|  | } | 
|  | } | 
|  | } else { | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | read_intra_luma_mode(xd, r); | 
|  | } | 
|  | #else   // CONFIG_LOSSLESS_DPCM | 
|  | read_intra_luma_mode(xd, r); | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | if (allow_fsc_intra(cm, | 
|  | #if !CONFIG_LOSSLESS_DPCM | 
|  | xd, | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | bsize, mbmi)) { | 
|  | aom_cdf_prob *fsc_cdf = get_fsc_mode_cdf(xd, bsize, 1); | 
|  | mbmi->fsc_mode[xd->tree_type == CHROMA_PART] = read_fsc_mode(r, fsc_cdf); | 
|  | } else { | 
|  | mbmi->fsc_mode[xd->tree_type == CHROMA_PART] = 0; | 
|  | } | 
|  |  | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | if (mbmi->use_dpcm_y == 0) { | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | if (mbmi->mrl_index) { | 
|  | mbmi->multi_line_mrl = read_multi_line_mrl( | 
|  | ec_ctx, r, xd->neighbors[0], xd->neighbors[1]); | 
|  | } else { | 
|  | mbmi->multi_line_mrl = 0; | 
|  | } | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } else { | 
|  | mbmi->mrl_index = 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | mbmi->multi_line_mrl = 0; | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } | 
|  | } else { | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | if (mbmi->mrl_index) { | 
|  | mbmi->multi_line_mrl = | 
|  | read_multi_line_mrl(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]); | 
|  | } else { | 
|  | mbmi->multi_line_mrl = 0; | 
|  | } | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } | 
|  | #else  // CONFIG_LOSSLESS_DPCM | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | } | 
|  |  | 
|  | if (xd->tree_type != LUMA_PART) { | 
|  | if (!cm->seq_params.monochrome && xd->is_chroma_ref) { | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | mbmi->use_dpcm_uv = read_dpcm_uv_mode(ec_ctx, r); | 
|  | if (mbmi->use_dpcm_uv == 0) { | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | } else { | 
|  | get_uv_intra_mode_set(mbmi); | 
|  | mbmi->dpcm_mode_uv = read_dpcm_uv_vert_horz_mode(ec_ctx, r); | 
|  | mbmi->uv_mode = mbmi->dpcm_mode_uv + 1; | 
|  | if (mbmi->uv_mode == mbmi->mode) | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = mbmi->angle_delta[PLANE_TYPE_Y]; | 
|  | else | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | } | 
|  | } else { | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | mbmi->use_dpcm_uv = 0; | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | } | 
|  | #else   // CONFIG_LOSSLESS_DPCM | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  |  | 
|  | if (mbmi->uv_mode == UV_CFL_PRED) { | 
|  | { | 
|  | mbmi->cfl_idx = read_cfl_index(ec_ctx, r); | 
|  | #if CONFIG_ENABLE_MHCCP | 
|  | if (mbmi->cfl_idx == CFL_MULTI_PARAM_V) { | 
|  | #if MHCCP_3_PARAMETERS | 
|  | const uint8_t mh_size_group = size_group_lookup[bsize]; | 
|  | #else | 
|  | const uint8_t mh_size_group = fsc_bsize_groups[bsize]; | 
|  | #endif  // MHCCP_3_PARAMETERS | 
|  | #if CONFIG_CFL_64x64 | 
|  | assert(mh_size_group < MHCCP_CONTEXT_GROUP_SIZE); | 
|  | #else | 
|  | assert(mh_size_group < FSC_BSIZE_CONTEXTS); | 
|  | #endif  // CONFIG_CFL_64x64 | 
|  | aom_cdf_prob *mh_dir_cdf = ec_ctx->filter_dir_cdf[mh_size_group]; | 
|  | mbmi->mh_dir = read_mh_dir(mh_dir_cdf, r); | 
|  | } | 
|  | #endif  // CONFIG_ENABLE_MHCCP | 
|  | } | 
|  | if (mbmi->cfl_idx == 0) | 
|  | mbmi->cfl_alpha_idx = | 
|  | read_cfl_alphas(ec_ctx, r, &mbmi->cfl_alpha_signs); | 
|  | } | 
|  | } else { | 
|  | // Avoid decoding angle_info if there is is no chroma prediction | 
|  | mbmi->uv_mode = UV_DC_PRED; | 
|  | } | 
|  | xd->cfl.store_y = store_cfl_required(cm, xd); | 
|  | } else { | 
|  | // Avoid decoding angle_info if there is is no chroma prediction | 
|  | mbmi->uv_mode = UV_DC_PRED; | 
|  | } | 
|  |  | 
|  | if (av1_allow_palette(cm->features.allow_screen_content_tools, bsize)) | 
|  | read_palette_mode_info(cm, xd, r); | 
|  |  | 
|  | if (xd->tree_type != CHROMA_PART) read_filter_intra_mode_info(cm, xd, r); | 
|  |  | 
|  | #if CONFIG_DIP | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | mbmi->use_intra_dip = 0; | 
|  | read_intra_dip_mode_info(cm, xd, r); | 
|  | } | 
|  | #endif  // CONFIG_DIP | 
|  | } | 
|  |  | 
|  | #if !CONFIG_VQ_MVD_CODING | 
|  | // Read the MVD for the lower precision | 
|  | // this function is executed when the precision is less than integer pixel | 
|  | // precision | 
|  | static int read_mv_component_low_precision(aom_reader *r, nmv_component *mvcomp, | 
|  | MvSubpelPrecision precision) { | 
|  | int offset, mag; | 
|  |  | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | const int sign = 0; | 
|  | #else | 
|  | const int sign = aom_read_symbol(r, mvcomp->sign_cdf, 2, ACCT_INFO("sign")); | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | const int num_mv_classes = MV_CLASSES - (precision <= MV_PRECISION_FOUR_PEL) - | 
|  | (precision <= MV_PRECISION_8_PEL); | 
|  |  | 
|  | int mv_class = aom_read_symbol( | 
|  | r, mvcomp->classes_cdf[av1_get_mv_class_context(precision)], | 
|  | num_mv_classes, ACCT_INFO("mv_class")); | 
|  |  | 
|  | if (precision <= MV_PRECISION_FOUR_PEL && mv_class >= MV_CLASS_1) | 
|  | mv_class += (precision == MV_PRECISION_FOUR_PEL ? 1 : 2); | 
|  |  | 
|  | int has_offset = (mv_class >= min_class_with_offset[precision]); | 
|  |  | 
|  | assert(MV_PRECISION_ONE_PEL >= precision); | 
|  | const int precision_diff = MV_PRECISION_ONE_PEL - precision; | 
|  | const uint8_t start_lsb = (precision_diff >= 0) ? (uint8_t)precision_diff : 0; | 
|  |  | 
|  | // Integer part | 
|  | if (!has_offset) { | 
|  | mag = mv_class ? (1 << mv_class) : 0;  // int mv data | 
|  | } else { | 
|  | const int n = (mv_class == MV_CLASS_0) ? 1 : mv_class; | 
|  | offset = 0; | 
|  | for (int i = start_lsb; i < n; ++i) | 
|  | offset |= aom_read_symbol(r, mvcomp->bits_cdf[i], 2, ACCT_INFO("offset")) | 
|  | << i; | 
|  | const int base = mv_class ? (1 << mv_class) : 0; | 
|  | mag = (offset + base);  // int mv data | 
|  | } | 
|  |  | 
|  | const int nonZero_offset = (1 << start_lsb); | 
|  | mag = (mag + nonZero_offset) << 3; | 
|  | return sign ? -mag : mag; | 
|  | } | 
|  |  | 
|  | static int read_mv_component(aom_reader *r, nmv_component *mvcomp, | 
|  | int is_adaptive_mvd, MvSubpelPrecision precision) { | 
|  | if (precision < MV_PRECISION_ONE_PEL) { | 
|  | assert(!is_adaptive_mvd); | 
|  | return read_mv_component_low_precision(r, mvcomp, precision); | 
|  | } | 
|  |  | 
|  | int mag, d, fr, hp; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | const int sign = 0; | 
|  | #else | 
|  | const int sign = aom_read_symbol(r, mvcomp->sign_cdf, 2, ACCT_INFO("sign")); | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | const int mv_class = | 
|  | is_adaptive_mvd | 
|  | ? aom_read_symbol(r, mvcomp->amvd_classes_cdf, MV_CLASSES, | 
|  | ACCT_INFO("mv_class", "amvd_classes_cdf")) | 
|  | : aom_read_symbol( | 
|  | r, mvcomp->classes_cdf[av1_get_mv_class_context(precision)], | 
|  | MV_CLASSES, ACCT_INFO("mv_class", "classes_cdf")); | 
|  |  | 
|  | const int class0 = mv_class == MV_CLASS_0; | 
|  |  | 
|  | int use_mv_class_offset = 1; | 
|  | if (mv_class > MV_CLASS_0 && is_adaptive_mvd) use_mv_class_offset = 0; | 
|  | if (use_mv_class_offset) { | 
|  | // Integer part | 
|  | if (class0) { | 
|  | d = aom_read_symbol(r, mvcomp->class0_cdf, CLASS0_SIZE, | 
|  | ACCT_INFO("class0_cdf")); | 
|  | mag = 0; | 
|  | } else { | 
|  | const int n = mv_class + CLASS0_BITS - 1;  // number of bits | 
|  | d = 0; | 
|  | for (int i = 0; i < n; ++i) | 
|  | d |= aom_read_symbol(r, mvcomp->bits_cdf[i], 2, ACCT_INFO("bits_cdf")) | 
|  | << i; | 
|  | mag = CLASS0_SIZE << (mv_class + 2); | 
|  | } | 
|  | } else { | 
|  | const int n = mv_class + CLASS0_BITS - 1;  // number of bits | 
|  | d = 0; | 
|  | for (int i = 0; i < n; ++i) d |= 1 << i; | 
|  | mag = CLASS0_SIZE << (mv_class + 2); | 
|  | } | 
|  |  | 
|  | int use_subpel = 1; | 
|  | if (is_adaptive_mvd) { | 
|  | use_subpel &= class0; | 
|  | use_subpel &= (d == 0); | 
|  | } | 
|  |  | 
|  | if (precision > MV_PRECISION_ONE_PEL && use_subpel) { | 
|  | // Fractional part | 
|  | // 1/2 and 1/4 pel parts | 
|  | fr = aom_read_symbol( | 
|  | r, class0 ? mvcomp->class0_fp_cdf[d][0] : mvcomp->fp_cdf[0], 2, | 
|  | ACCT_INFO("class0_fp_cdf")) | 
|  | << 1; | 
|  | fr += | 
|  | precision > MV_PRECISION_HALF_PEL | 
|  | ? aom_read_symbol(r, | 
|  | class0 ? mvcomp->class0_fp_cdf[d][1 + (fr >> 1)] | 
|  | : mvcomp->fp_cdf[1 + (fr >> 1)], | 
|  | 2, ACCT_INFO(class0 ? "class0_fp_cdf" : "fp_cdf")) | 
|  | : 1; | 
|  | // 1/8 pel part (if hp is not used, the default value of the hp is 1) | 
|  | hp = (precision > MV_PRECISION_QTR_PEL) | 
|  | ? aom_read_symbol( | 
|  | r, class0 ? mvcomp->class0_hp_cdf : mvcomp->hp_cdf, 2, | 
|  | ACCT_INFO(class0 ? "class0_hp_cdf" : "hp_cdf")) | 
|  | : 1; | 
|  | } else { | 
|  | fr = 3; | 
|  | hp = 1; | 
|  | } | 
|  |  | 
|  | // Result | 
|  | mag += ((d << 3) | (fr << 1) | hp) + 1; | 
|  | return sign ? -mag : mag; | 
|  | } | 
|  | static INLINE void read_mv(aom_reader *r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | MV *mv_diff, | 
|  | #else | 
|  | MV *mv, MV ref, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | int is_adaptive_mvd, nmv_context *ctx, | 
|  | MvSubpelPrecision precision) { | 
|  | MV diff = kZeroMv; | 
|  | const MV_JOINT_TYPE joint_type = | 
|  | is_adaptive_mvd ? (MV_JOINT_TYPE)aom_read_symbol( | 
|  | r, ctx->amvd_joints_cdf, MV_JOINTS, | 
|  | ACCT_INFO("joint_type", "amvd_joints_cdf")) | 
|  | : (MV_JOINT_TYPE)aom_read_symbol( | 
|  | r, ctx->joints_cdf, MV_JOINTS, | 
|  | ACCT_INFO("joint_type", "joints_cdf")); | 
|  | if (mv_joint_vertical(joint_type)) | 
|  | diff.row = read_mv_component(r, &ctx->comps[0], is_adaptive_mvd, precision); | 
|  |  | 
|  | if (mv_joint_horizontal(joint_type)) | 
|  | diff.col = read_mv_component(r, &ctx->comps[1], is_adaptive_mvd, precision); | 
|  |  | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | mv_diff->row = diff.row; | 
|  | mv_diff->col = diff.col; | 
|  | #else | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (!is_adaptive_mvd) | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&ref, precision); | 
|  | mv->row = ref.row + diff.row; | 
|  | mv->col = ref.col + diff.col; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | } | 
|  | #else | 
|  | // Coding of col mvd for shell class 2 | 
|  | static void read_truncated_unary_mvd(aom_reader *r, nmv_context *ctx, | 
|  | const int max_coded_value, int num_of_ctx, | 
|  | int *decoded_value) { | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | (void)num_of_ctx; | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  |  | 
|  | int col = 0; | 
|  | int max_idx_bits = max_coded_value; | 
|  | for (int bit_idx = 0; bit_idx < max_idx_bits; ++bit_idx) { | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | aom_cdf_prob *cdf = ctx->shell_offset_class2_cdf; | 
|  | #else | 
|  | int context_index = bit_idx < num_of_ctx ? bit_idx : num_of_ctx - 1; | 
|  | assert(context_index < num_of_ctx); | 
|  | aom_cdf_prob *cdf = ctx->shell_offset_class2_cdf[context_index]; | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  | int this_bit = | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | bit_idx ? aom_read_literal(r, 1, ACCT_INFO("greater_flags")) : | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  |  | 
|  | aom_read_symbol( | 
|  | r, cdf, 2, | 
|  | ACCT_INFO("greater_flags", "col_mv_greater_flags_cdf")); | 
|  |  | 
|  | col = bit_idx + this_bit; | 
|  | if (!this_bit) break; | 
|  | } | 
|  | *decoded_value = col; | 
|  | } | 
|  | // Decoding of truncated unary followed by quasi uniform code | 
|  | static void read_tu_quasi_uniform(aom_reader *r, nmv_context *ctx, | 
|  | const int max_coded_value, int *scaled_mv_col, | 
|  | int max_trunc_unary_value) { | 
|  | int col = 0; | 
|  | int max_idx_bits = AOMMIN(max_coded_value, max_trunc_unary_value); | 
|  | int max_num_of_ctx = NUM_CTX_COL_MV_GTX; | 
|  | for (int bit_idx = 0; bit_idx < max_idx_bits; ++bit_idx) { | 
|  | int context_index = bit_idx < max_num_of_ctx ? bit_idx : max_num_of_ctx - 1; | 
|  | assert(context_index < max_num_of_ctx); | 
|  | int this_bit = | 
|  | aom_read_symbol(r, ctx->col_mv_greater_flags_cdf[context_index], 2, | 
|  | ACCT_INFO("greater_flags", "col_mv_greater_flags_cdf")); | 
|  |  | 
|  | col = bit_idx + this_bit; | 
|  | if (!this_bit) break; | 
|  | } | 
|  | if (max_coded_value > max_trunc_unary_value && col == max_trunc_unary_value) { | 
|  | int remainder_max_value = max_coded_value - max_trunc_unary_value; | 
|  | int remainder = aom_read_primitive_quniform(r, remainder_max_value + 1, | 
|  | ACCT_INFO("remainder")); | 
|  | col = remainder + max_trunc_unary_value; | 
|  | } | 
|  | *scaled_mv_col = col; | 
|  | } | 
|  | // Read MVD for AMVD mode | 
|  | static INLINE void read_vq_amvd(aom_reader *r, MV *mv_diff, nmv_context *ctx | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | MV *mv, MV ref | 
|  | #endif | 
|  | ) { | 
|  | MV diff_index = kZeroMv; | 
|  |  | 
|  | const MV_JOINT_TYPE joint_type = (MV_JOINT_TYPE)aom_read_symbol( | 
|  | r, ctx->amvd_joints_cdf, MV_JOINTS, | 
|  | ACCT_INFO("joint_type", "amvd_joints_cdf")); | 
|  | int code_row = mv_joint_vertical(joint_type); | 
|  | int code_col = mv_joint_horizontal(joint_type); | 
|  |  | 
|  | if (code_row) { | 
|  | diff_index.row = | 
|  | 1 + aom_read_symbol(r, ctx->comps[0].amvd_indices_cdf, MAX_AMVD_INDEX, | 
|  | ACCT_INFO("amvd_index", "amvd_indices_cdf")); | 
|  | } | 
|  |  | 
|  | if (code_col) { | 
|  | diff_index.col = | 
|  | 1 + aom_read_symbol(r, ctx->comps[1].amvd_indices_cdf, MAX_AMVD_INDEX, | 
|  | ACCT_INFO("amvd_index", "amvd_indices_cdf")); | 
|  | } | 
|  |  | 
|  | MV diff = { get_mvd_from_amvd_index(diff_index.row), | 
|  | get_mvd_from_amvd_index(diff_index.col) }; | 
|  |  | 
|  | mv_diff->row = diff.row; | 
|  | mv_diff->col = diff.col; | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | // Decode signs | 
|  | for (int component = 0; component < 2; component++) { | 
|  | int value = component == 0 ? mv_diff->row : mv_diff->col; | 
|  | if (value) { | 
|  | int sign = aom_read_symbol(r, ctx->comps[component].sign_cdf, 2, | 
|  | ACCT_INFO("sign")); | 
|  | if (component == 0) { | 
|  | mv_diff->row = sign ? -value : value; | 
|  | } else { | 
|  | mv_diff->col = sign ? -value : value; | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | mv->row = ref.row + mv_diff->row; | 
|  | mv->col = ref.col + mv_diff->col; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | } | 
|  |  | 
|  | static INLINE void read_mv(aom_reader *r, MV *mv_diff, int skip_sign_coding, | 
|  | nmv_context *ctx, MvSubpelPrecision precision, | 
|  | int is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | MV *mv, MV ref | 
|  | #endif | 
|  | ) { | 
|  |  | 
|  | if (is_adaptive_mvd) { | 
|  | read_vq_amvd(r, mv_diff, ctx | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | mv, ref | 
|  | #endif | 
|  | ); | 
|  | return; | 
|  | } | 
|  |  | 
|  | MV scaled_mv_diff; | 
|  |  | 
|  | // Read shell class | 
|  | int num_mv_class = get_default_num_shell_class(precision); | 
|  | #if CONFIG_REDUCE_SYMBOL_SIZE | 
|  | int shell_class = 0; | 
|  | int shell_set = 0; | 
|  | int num_mv_class_0, num_mv_class_1; | 
|  | split_num_shell_class(num_mv_class, &num_mv_class_0, &num_mv_class_1); | 
|  | shell_set = aom_read_symbol(r, ctx->joint_shell_set_cdf, 2, | 
|  | ACCT_INFO("shell_set", "joint_shell_set_cdf")); | 
|  | if (shell_set) { | 
|  | shell_class = | 
|  | num_mv_class_0 + | 
|  | aom_read_symbol(r, ctx->joint_shell_class_cdf_1[precision], | 
|  | num_mv_class_1, | 
|  | ACCT_INFO("shell_class_1", "joint_shell_class_cdf_1")); | 
|  | } else { | 
|  | shell_class = aom_read_symbol( | 
|  | r, ctx->joint_shell_class_cdf_0[precision], num_mv_class_0, | 
|  | ACCT_INFO("shell_class_0", "joint_shell_class_cdf_0")); | 
|  | } | 
|  | #else | 
|  | const int shell_class = | 
|  | aom_read_symbol(r, ctx->joint_shell_class_cdf[precision], num_mv_class, | 
|  | ACCT_INFO("shell_class", "joint_shell_class_cdf")); | 
|  | #endif  // CONFIG_REDUCE_SYMBOL_SIZE | 
|  | assert(shell_class < num_mv_class); | 
|  |  | 
|  | // Decode shell class offset | 
|  |  | 
|  | int shell_cls_offset = 0; | 
|  |  | 
|  | if (shell_class < 2) { | 
|  | shell_cls_offset = aom_read_symbol( | 
|  | r, ctx->shell_offset_low_class_cdf[shell_class], 2, | 
|  | ACCT_INFO("shell_cls_offset", "shell_offset_low_class_cdf")); | 
|  | assert(shell_cls_offset == 0 || shell_cls_offset == 1); | 
|  | } else if (shell_class == 2) { | 
|  | read_truncated_unary_mvd(r, ctx, 3, 3, &shell_cls_offset); | 
|  |  | 
|  | } else { | 
|  | const int num_of_bits_for_this_offset = | 
|  | (shell_class == 0) ? 1 : shell_class; | 
|  | for (int i = 0; i < num_of_bits_for_this_offset; ++i) { | 
|  | shell_cls_offset |= | 
|  | #if CONFIG_CTX_MV_SHELL_OFFSET_OTHER | 
|  | aom_read_bit(r, ACCT_INFO("offset")) | 
|  | #else | 
|  | aom_read_symbol(r, ctx->shell_offset_other_class_cdf[0][i], 2, | 
|  | ACCT_INFO("offset")) | 
|  | #endif  // CONFIG_CTX_MV_SHELL_OFFSET_OTHER | 
|  | << i; | 
|  | } | 
|  | } | 
|  |  | 
|  | // Reconstruct shell index | 
|  | const int shell_class_base_index = | 
|  | (shell_class == 0) ? 0 : (1 << (shell_class)); | 
|  | const int shell_index = shell_cls_offset + shell_class_base_index; | 
|  |  | 
|  | if (shell_index > 0) { | 
|  | // Coding the col here | 
|  | int scaled_mv_col; | 
|  | int max_trunc_unary_value = MAX_COL_TRUNCATED_UNARY_VAL; | 
|  | int this_pair_index = 0; | 
|  | int maximum_pair_index = shell_index >> 1; | 
|  | if (maximum_pair_index > 0) { | 
|  | read_tu_quasi_uniform(r, ctx, maximum_pair_index, &this_pair_index, | 
|  | max_trunc_unary_value); | 
|  | } | 
|  | assert(this_pair_index <= maximum_pair_index); | 
|  | int skip_coding_col_bit = | 
|  | (this_pair_index == maximum_pair_index) && ((shell_index % 2 == 0)); | 
|  | if (skip_coding_col_bit) { | 
|  | scaled_mv_col = maximum_pair_index; | 
|  | } else { | 
|  | // int bit = aom_read_literal(r, 1, ACCT_INFO()); | 
|  | int context_index = shell_class < NUM_CTX_COL_MV_INDEX | 
|  | ? shell_class | 
|  | : NUM_CTX_COL_MV_INDEX - 1; | 
|  | assert(context_index < NUM_CTX_COL_MV_INDEX); | 
|  |  | 
|  | int this_bit = aom_read_symbol( | 
|  | r, ctx->col_mv_index_cdf[context_index], 2, | 
|  | ACCT_INFO("greater_flags", "col_mv_greater_flags_cdf")); | 
|  | if (!this_bit) | 
|  | scaled_mv_col = this_pair_index; | 
|  | else | 
|  | scaled_mv_col = shell_index - this_pair_index; | 
|  | } | 
|  |  | 
|  | scaled_mv_diff.col = scaled_mv_col; | 
|  | scaled_mv_diff.row = shell_index - scaled_mv_diff.col; | 
|  | assert(scaled_mv_diff.row >= 0 && scaled_mv_diff.col >= 0); | 
|  | } else { | 
|  | scaled_mv_diff.row = 0; | 
|  | scaled_mv_diff.col = 0; | 
|  | } | 
|  |  | 
|  | int start_lsb = (MV_PRECISION_ONE_EIGHTH_PEL - precision); | 
|  | mv_diff->row = scaled_mv_diff.row << start_lsb; | 
|  | mv_diff->col = scaled_mv_diff.col << start_lsb; | 
|  |  | 
|  | // Decode signs | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | for (int component = 0; component < 2; component++) { | 
|  | int value = component == 0 ? mv_diff->row : mv_diff->col; | 
|  | if (value) { | 
|  | int sign = aom_read_symbol(r, ctx->comps[component].sign_cdf, 2, | 
|  | ACCT_INFO("sign")); | 
|  | if (component == 0) { | 
|  | mv_diff->row = sign ? -value : value; | 
|  | } else { | 
|  | mv_diff->col = sign ? -value : value; | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (!is_adaptive_mvd) | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&ref, precision); | 
|  | mv->row = ref.row + mv_diff->row; | 
|  | mv->col = ref.col + mv_diff->col; | 
|  | #endif | 
|  |  | 
|  | #if 0 | 
|  | static int counter = 0; | 
|  | printf(" Decoder: counter = %d shell_index = %d \n", counter, shell_index); | 
|  | counter++; | 
|  | #endif | 
|  |  | 
|  | (void)skip_sign_coding; | 
|  | } | 
|  | #endif  // !CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | static REFERENCE_MODE read_block_reference_mode(AV1_COMMON *cm, | 
|  | const MACROBLOCKD *xd, | 
|  | aom_reader *r) { | 
|  | if (!is_comp_ref_allowed(xd->mi[0]->sb_type[PLANE_TYPE_Y])) | 
|  | return SINGLE_REFERENCE; | 
|  | if (cm->current_frame.reference_mode == REFERENCE_MODE_SELECT) { | 
|  | const int ctx = av1_get_reference_mode_context(cm, xd); | 
|  | const REFERENCE_MODE mode = (REFERENCE_MODE)aom_read_symbol( | 
|  | r, xd->tile_ctx->comp_inter_cdf[ctx], 2, ACCT_INFO()); | 
|  | return mode;  // SINGLE_REFERENCE or COMPOUND_REFERENCE | 
|  | } else { | 
|  | assert(cm->current_frame.reference_mode == SINGLE_REFERENCE); | 
|  | return cm->current_frame.reference_mode; | 
|  | } | 
|  | } | 
|  |  | 
|  | static AOM_INLINE void read_single_ref( | 
|  | MACROBLOCKD *const xd, MV_REFERENCE_FRAME ref_frame[2], | 
|  | const RefFramesInfo *const ref_frames_info, aom_reader *r) { | 
|  | const int n_refs = ref_frames_info->num_total_refs; | 
|  | for (int i = 0; i < n_refs - 1; i++) { | 
|  | const int bit = aom_read_symbol( | 
|  | r, av1_get_pred_cdf_single_ref(xd, i, n_refs), 2, ACCT_INFO()); | 
|  | if (bit) { | 
|  | ref_frame[0] = i; | 
|  | return; | 
|  | } | 
|  | } | 
|  | ref_frame[0] = n_refs - 1; | 
|  | } | 
|  |  | 
|  | static AOM_INLINE void read_compound_ref( | 
|  | const MACROBLOCKD *xd, MV_REFERENCE_FRAME ref_frame[2], | 
|  | const RefFramesInfo *const ref_frames_info, aom_reader *r) { | 
|  | const int n_refs = ref_frames_info->num_total_refs; | 
|  | #if !CONFIG_SAME_REF_COMPOUND | 
|  | assert(n_refs >= 2); | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | int n_bits = 0; | 
|  |  | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | int may_have_same_ref_comp = ref_frames_info->num_same_ref_compound > 0; | 
|  | for (int i = 0; | 
|  | (i < n_refs + n_bits - 2 || may_have_same_ref_comp) && n_bits < 2; i++) { | 
|  | #else | 
|  | for (int i = 0; i < n_refs + n_bits - 2 && n_bits < 2; i++) { | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | // bit_type: -1 for ref0, 0 for opposite sided ref1, 1 for same sided ref1 | 
|  | const int bit_type = n_bits == 0 ? -1 | 
|  | : av1_get_compound_ref_bit_type( | 
|  | ref_frames_info, ref_frame[0], i); | 
|  | // Implicitly signal a 1 in either case: | 
|  | // 1) ref0 = RANKED_REF0_TO_PRUNE - 1 | 
|  | // 2) no reference is signaled yet, the next ref is not allowed for same | 
|  | //    ref compound, and there are only two references left (this case | 
|  | //    should only be met when same ref compound is on, where the | 
|  | //    following bit may be 0 or 1). | 
|  | int implicit_ref0_bit1 = n_bits == 0 && i >= RANKED_REF0_TO_PRUNE - 1; | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | implicit_ref0_bit1 |= n_bits == 0 && i >= n_refs - 2 && | 
|  | i + 1 >= ref_frames_info->num_same_ref_compound; | 
|  | assert(IMPLIES(n_bits == 0 && i >= n_refs - 2, | 
|  | i < ref_frames_info->num_same_ref_compound)); | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | const int bit = implicit_ref0_bit1 | 
|  | ? 1 | 
|  | : aom_read_symbol(r, | 
|  | av1_get_pred_cdf_compound_ref( | 
|  | xd, i, n_bits, bit_type, n_refs), | 
|  | 2, ACCT_INFO()); | 
|  | if (bit) ref_frame[n_bits++] = i; | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | if (i < ref_frames_info->num_same_ref_compound && may_have_same_ref_comp) { | 
|  | may_have_same_ref_comp = | 
|  | !bit && i + 1 < ref_frames_info->num_same_ref_compound; | 
|  | i -= bit; | 
|  | } else { | 
|  | may_have_same_ref_comp = 0; | 
|  | } | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | } | 
|  | if (n_bits < 2) ref_frame[1] = n_refs - 1; | 
|  | #if CONFIG_SAME_REF_COMPOUND | 
|  | if (n_bits < 1) | 
|  | ref_frame[0] = (ref_frames_info->num_same_ref_compound > 0 && | 
|  | n_refs - 1 < ref_frames_info->num_same_ref_compound) | 
|  | ? n_refs - 1 | 
|  | : n_refs - 2; | 
|  | // TODO(kslu) This is a workaround for the corner case where | 
|  | // num_same_ref_compound = 0 and n_refs = 1. Change the frame header syntax | 
|  | // to disallow the use of REFERENCE_MODE_SELECT for this case. | 
|  | if (ref_frame[0] == NONE_FRAME) ref_frame[0] = 0; | 
|  | #else | 
|  | if (n_bits < 1) ref_frame[0] = n_refs - 2; | 
|  | #endif  // CONFIG_SAME_REF_COMPOUND | 
|  | } | 
|  |  | 
|  | static void set_ref_frames_for_skip_mode(AV1_COMMON *const cm, | 
|  | MV_REFERENCE_FRAME ref_frame[2]) { | 
|  | ref_frame[0] = cm->current_frame.skip_mode_info.ref_frame_idx_0; | 
|  | ref_frame[1] = cm->current_frame.skip_mode_info.ref_frame_idx_1; | 
|  | } | 
|  |  | 
|  | // Read the reference frame | 
|  | static void read_ref_frames(AV1_COMMON *const cm, MACROBLOCKD *const xd, | 
|  | aom_reader *r, int segment_id, | 
|  | MV_REFERENCE_FRAME ref_frame[2]) { | 
|  | if (xd->mi[0]->skip_mode) { | 
|  | set_ref_frames_for_skip_mode(cm, ref_frame); | 
|  | return; | 
|  | } | 
|  |  | 
|  | ref_frame[0] = NONE_FRAME; | 
|  | ref_frame[1] = NONE_FRAME; | 
|  | if (is_tip_allowed(cm, xd)) { | 
|  | const int tip_ctx = get_tip_ctx(xd); | 
|  | if (aom_read_symbol(r, xd->tile_ctx->tip_cdf[tip_ctx], 2, | 
|  | ACCT_INFO("tip_cdf"))) { | 
|  | ref_frame[0] = TIP_FRAME; | 
|  | } | 
|  | } | 
|  |  | 
|  | if (is_tip_ref_frame(ref_frame[0])) return; | 
|  |  | 
|  | if (segfeature_active(&cm->seg, segment_id, SEG_LVL_SKIP) || | 
|  | segfeature_active(&cm->seg, segment_id, SEG_LVL_GLOBALMV)) { | 
|  | ref_frame[0] = get_closest_pastcur_ref_or_ref0(cm); | 
|  | ref_frame[1] = NONE_FRAME; | 
|  | } else { | 
|  | const REFERENCE_MODE mode = read_block_reference_mode(cm, xd, r); | 
|  |  | 
|  | if (mode == COMPOUND_REFERENCE) { | 
|  | read_compound_ref(xd, ref_frame, &cm->ref_frames_info, r); | 
|  | } else if (mode == SINGLE_REFERENCE) { | 
|  | read_single_ref(xd, ref_frame, &cm->ref_frames_info, r); | 
|  | ref_frame[1] = NONE_FRAME; | 
|  | } else { | 
|  | assert(0 && "Invalid prediction mode."); | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | static INLINE void read_mb_interp_filter(const MACROBLOCKD *const xd, | 
|  | InterpFilter interp_filter, | 
|  | const AV1_COMMON *cm, | 
|  | MB_MODE_INFO *const mbmi, | 
|  | aom_reader *r) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  |  | 
|  | if (!av1_is_interp_needed(cm, xd)) { | 
|  | set_default_interp_filters(mbmi, cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | xd, | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | interp_filter); | 
|  | return; | 
|  | } | 
|  |  | 
|  | if (interp_filter != SWITCHABLE) { | 
|  | mbmi->interp_fltr = interp_filter; | 
|  | } else { | 
|  | const int ctx = av1_get_pred_context_switchable_interp(xd, 0); | 
|  | const InterpFilter filter = (InterpFilter)aom_read_symbol( | 
|  | r, ec_ctx->switchable_interp_cdf[ctx], SWITCHABLE_FILTERS, | 
|  | ACCT_INFO("switchable_interp_cdf")); | 
|  | mbmi->interp_fltr = filter; | 
|  | } | 
|  | } | 
|  |  | 
|  | static void read_intra_block_mode_info(AV1_COMMON *const cm, | 
|  | MACROBLOCKD *const xd, | 
|  | MB_MODE_INFO *const mbmi, | 
|  | aom_reader *r) { | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[PLANE_TYPE_Y]; | 
|  |  | 
|  | mbmi->ref_frame[0] = INTRA_FRAME; | 
|  | mbmi->ref_frame[1] = NONE_FRAME; | 
|  |  | 
|  | set_default_max_mv_precision(mbmi, xd->sbi->sb_mv_precision); | 
|  | set_mv_precision(mbmi, mbmi->max_mv_precision); | 
|  | set_default_precision_set(cm, mbmi, bsize); | 
|  | set_most_probable_mv_precision(cm, mbmi, bsize); | 
|  |  | 
|  | mbmi->bawp_flag[0] = 0; | 
|  | mbmi->bawp_flag[1] = 0; | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | mbmi->refinemv_flag = 0; | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | // Reset to avoid potential bug for warp mode context modeling | 
|  | mbmi->motion_mode = SIMPLE_TRANSLATION; | 
|  |  | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  |  | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | mbmi->use_dpcm_y = read_dpcm_mode(ec_ctx, r); | 
|  | if (mbmi->use_dpcm_y == 0) { | 
|  | read_intra_luma_mode(xd, r); | 
|  | } else { | 
|  | mbmi->dpcm_mode_y = read_dpcm_vert_horz_mode(ec_ctx, r); | 
|  | if (mbmi->dpcm_mode_y == 0) { | 
|  | mbmi->joint_y_mode_delta_angle = 22; | 
|  | mbmi->mode = V_PRED; | 
|  | mbmi->angle_delta[0] = 0; | 
|  | } else { | 
|  | mbmi->joint_y_mode_delta_angle = 50; | 
|  | mbmi->mode = H_PRED; | 
|  | mbmi->angle_delta[0] = 0; | 
|  | } | 
|  | } | 
|  | } else { | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | read_intra_luma_mode(xd, r); | 
|  | } | 
|  | #else   // CONFIG_LOSSLESS_DPCM | 
|  | read_intra_luma_mode(xd, r); | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | if (allow_fsc_intra(cm, | 
|  | #if !CONFIG_LOSSLESS_DPCM | 
|  | xd, | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | bsize, mbmi) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | aom_cdf_prob *fsc_cdf = get_fsc_mode_cdf(xd, bsize, 0); | 
|  | mbmi->fsc_mode[xd->tree_type == CHROMA_PART] = read_fsc_mode(r, fsc_cdf); | 
|  | } else { | 
|  | mbmi->fsc_mode[xd->tree_type == CHROMA_PART] = 0; | 
|  | } | 
|  |  | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->tree_type != CHROMA_PART) | 
|  | // Parsing reference line index | 
|  | { | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | if (mbmi->use_dpcm_y == 0) { | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | if (mbmi->mrl_index) { | 
|  | mbmi->multi_line_mrl = read_multi_line_mrl( | 
|  | ec_ctx, r, xd->neighbors[0], xd->neighbors[1]); | 
|  | } else { | 
|  | mbmi->multi_line_mrl = 0; | 
|  | } | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } else { | 
|  | mbmi->mrl_index = 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | mbmi->multi_line_mrl = 0; | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } | 
|  | } else { | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | #if CONFIG_MRLS_IMPROVE | 
|  | if (mbmi->mrl_index) { | 
|  | mbmi->multi_line_mrl = | 
|  | read_multi_line_mrl(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]); | 
|  | } else { | 
|  | mbmi->multi_line_mrl = 0; | 
|  | } | 
|  | #endif  // CONFIG_MRLS_IMPROVE | 
|  | } | 
|  | } | 
|  | #else  // CONFIG_LOSSLESS_DPCM | 
|  | // Parsing reference line index | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | mbmi->mrl_index = | 
|  | (cm->seq_params.enable_mrls && av1_is_directional_mode(mbmi->mode)) | 
|  | #if CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | ? read_mrl_index(ec_ctx, r, xd->neighbors[0], xd->neighbors[1]) | 
|  | #else | 
|  | ? read_mrl_index(ec_ctx, r) | 
|  | #endif  // CONFIG_IMPROVED_INTRA_DIR_PRED | 
|  | : 0; | 
|  | } | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | if (!cm->seq_params.monochrome && xd->is_chroma_ref) { | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | if (xd->lossless[mbmi->segment_id]) { | 
|  | mbmi->use_dpcm_uv = read_dpcm_uv_mode(ec_ctx, r); | 
|  | if (mbmi->use_dpcm_uv == 0) { | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | } else { | 
|  | get_uv_intra_mode_set(mbmi); | 
|  | mbmi->dpcm_mode_uv = read_dpcm_uv_vert_horz_mode(ec_ctx, r); | 
|  | mbmi->uv_mode = mbmi->dpcm_mode_uv + 1; | 
|  | if (mbmi->uv_mode == mbmi->mode) | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = mbmi->angle_delta[PLANE_TYPE_Y]; | 
|  | else | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | } | 
|  | } else { | 
|  | mbmi->use_dpcm_uv = 0; | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | } | 
|  | #else   // CONFIG_LOSSLESS_DPCM | 
|  | read_intra_uv_mode(xd, is_cfl_allowed(xd), r); | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  |  | 
|  | if (mbmi->uv_mode == UV_CFL_PRED) { | 
|  | { | 
|  | mbmi->cfl_idx = read_cfl_index(ec_ctx, r); | 
|  | #if CONFIG_ENABLE_MHCCP | 
|  | if (mbmi->cfl_idx == CFL_MULTI_PARAM_V) { | 
|  | #if MHCCP_3_PARAMETERS | 
|  | const uint8_t mh_size_group = size_group_lookup[bsize]; | 
|  | #else | 
|  | const uint8_t mh_size_group = fsc_bsize_groups[bsize]; | 
|  | #endif  // MHCCP_3_PARAMETERS | 
|  | aom_cdf_prob *mh_dir_cdf = ec_ctx->filter_dir_cdf[mh_size_group]; | 
|  | mbmi->mh_dir = read_mh_dir(mh_dir_cdf, r); | 
|  | } | 
|  | #endif  // CONFIG_ENABLE_MHCCP | 
|  | } | 
|  | if (mbmi->cfl_idx == 0) { | 
|  | mbmi->cfl_alpha_idx = | 
|  | read_cfl_alphas(xd->tile_ctx, r, &mbmi->cfl_alpha_signs); | 
|  | } | 
|  | } | 
|  | } else { | 
|  | // Avoid decoding angle_info if there is is no chroma prediction | 
|  | mbmi->uv_mode = UV_DC_PRED; | 
|  | } | 
|  | if (xd->tree_type != LUMA_PART) xd->cfl.store_y = store_cfl_required(cm, xd); | 
|  | if (xd->tree_type != CHROMA_PART) mbmi->palette_mode_info.palette_size[0] = 0; | 
|  | mbmi->palette_mode_info.palette_size[1] = 0; | 
|  | if (av1_allow_palette(cm->features.allow_screen_content_tools, bsize)) | 
|  | read_palette_mode_info(cm, xd, r); | 
|  |  | 
|  | if (xd->tree_type != CHROMA_PART) read_filter_intra_mode_info(cm, xd, r); | 
|  |  | 
|  | #if CONFIG_DIP | 
|  | if (xd->tree_type != CHROMA_PART) { | 
|  | mbmi->use_intra_dip = 0; | 
|  | read_intra_dip_mode_info(cm, xd, r); | 
|  | } | 
|  | #endif  // CONFIG_DIP | 
|  | } | 
|  |  | 
|  | static INLINE int is_mv_valid(const MV *mv) { | 
|  | return mv->row > MV_LOW && mv->row < MV_UPP && mv->col > MV_LOW && | 
|  | mv->col < MV_UPP; | 
|  | } | 
|  |  | 
|  | static INLINE int assign_mv(AV1_COMMON *cm, MACROBLOCKD *xd, | 
|  | PREDICTION_MODE mode, | 
|  | MV_REFERENCE_FRAME ref_frame[2], int_mv mv[2], | 
|  | int_mv ref_mv[2], int is_compound, | 
|  | MvSubpelPrecision precision, aom_reader *r) { | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | MB_MODE_INFO *mbmi = xd->mi[0]; | 
|  | BLOCK_SIZE bsize = mbmi->sb_type[PLANE_TYPE_Y]; | 
|  | FeatureFlags *const features = &cm->features; | 
|  | assert(IMPLIES(features->cur_frame_force_integer_mv, | 
|  | precision == MV_PRECISION_ONE_PEL)); | 
|  | int first_ref_dist = 0; | 
|  | int sec_ref_dist = 0; | 
|  | const int same_side = is_ref_frame_same_side(cm, mbmi); | 
|  | const int jmvd_base_ref_list = get_joint_mvd_base_ref_list(cm, mbmi); | 
|  | // check whether joint mvd is applied or not | 
|  | if (is_joint_mvd_coding_mode(mbmi->mode)) { | 
|  | first_ref_dist = | 
|  | cm->ref_frame_relative_dist[mbmi->ref_frame[jmvd_base_ref_list]]; | 
|  | sec_ref_dist = | 
|  | cm->ref_frame_relative_dist[mbmi->ref_frame[1 - jmvd_base_ref_list]]; | 
|  | assert(first_ref_dist >= sec_ref_dist); | 
|  | } | 
|  | const int is_adaptive_mvd = enable_adaptive_mvd_resolution(cm, mbmi); | 
|  | assert(!(is_adaptive_mvd && is_pb_mv_precision_active(cm, mbmi, bsize))); | 
|  | #if CONFIG_DERIVED_MVD_SIGN || CONFIG_VQ_MVD_CODING | 
|  | MV mv_diff[2] = { kZeroMv, kZeroMv }; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | int num_signaled_mvd = 0; | 
|  | int start_signaled_mvd_idx = 0; | 
|  | int is_joint_mv_mode = 0; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN || CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | switch (mode) { | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | case WARP_NEWMV: | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | #if !CONFIG_INTER_MODE_CONSOLIDATION | 
|  | case AMVDNEWMV: | 
|  | #endif  //! CONFIG_INTER_MODE_CONSOLIDATION | 
|  | case NEWMV: { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | num_signaled_mvd = 1; | 
|  | start_signaled_mvd_idx = 0; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[0], 1, nmvc, precision, is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[0].as_mv, ref_mv[0].as_mv | 
|  | #endif | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[0], | 
|  | #else | 
|  | &mv[0].as_mv, ref_mv[0].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | break; | 
|  | } | 
|  | case NEARMV: { | 
|  | mv[0].as_int = ref_mv[0].as_int; | 
|  | break; | 
|  | } | 
|  |  | 
|  | case WARPMV: { | 
|  | mbmi->mv[0] = ref_mv[0]; | 
|  | if (mbmi->warpmv_with_mvd_flag) { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | num_signaled_mvd = 1; | 
|  | start_signaled_mvd_idx = 0; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[0], 1, nmvc, precision, is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[0].as_mv, ref_mv[0].as_mv | 
|  | #endif | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[0], | 
|  | #else | 
|  | &mv[0].as_mv, ref_mv[0].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  | } | 
|  |  | 
|  | break; | 
|  | } | 
|  |  | 
|  | case GLOBALMV: { | 
|  | // Global motion is never used for the TIP ref frame | 
|  | if (is_tip_ref_frame(ref_frame[0])) { | 
|  | mv[0].as_int = 0; | 
|  | } else { | 
|  | mv[0].as_int = | 
|  | get_warp_motion_vector(xd, &cm->global_motion[ref_frame[0]], | 
|  | features->fr_mv_precision, bsize, xd->mi_col, | 
|  | xd->mi_row) | 
|  | .as_int; | 
|  | } | 
|  | break; | 
|  | } | 
|  | case NEW_NEWMV: | 
|  | case NEW_NEWMV_OPTFLOW: { | 
|  | assert(is_compound); | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | num_signaled_mvd = 2; | 
|  | start_signaled_mvd_idx = 0; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | for (int i = 0; i < 2; ++i) { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[i], 1, nmvc, precision, is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[i].as_mv, ref_mv[i].as_mv | 
|  | #endif  //! CONFIG_DERIVED_MVD_SIGN | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[i], | 
|  | #else | 
|  | &mv[i].as_mv, ref_mv[i].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  | } | 
|  | break; | 
|  | } | 
|  | case NEAR_NEARMV: | 
|  | case NEAR_NEARMV_OPTFLOW: { | 
|  | assert(is_compound); | 
|  | mv[0].as_int = ref_mv[0].as_int; | 
|  | mv[1].as_int = ref_mv[1].as_int; | 
|  | break; | 
|  | } | 
|  | case NEAR_NEWMV: | 
|  | case NEAR_NEWMV_OPTFLOW: { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | mv[0].as_int = ref_mv[0].as_int; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | num_signaled_mvd = 1; | 
|  | start_signaled_mvd_idx = 1; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[1], 1, nmvc, precision, is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[1].as_mv, ref_mv[1].as_mv | 
|  | #endif  //! CONFIG_DERIVED_MVD_SIGN | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[1], | 
|  | #else | 
|  | &mv[1].as_mv, ref_mv[1].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  | assert(is_compound); | 
|  | break; | 
|  | } | 
|  | case NEW_NEARMV: | 
|  | case NEW_NEARMV_OPTFLOW: { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | assert(is_compound); | 
|  | mv[1].as_int = ref_mv[1].as_int; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | num_signaled_mvd = 1; | 
|  | start_signaled_mvd_idx = 0; | 
|  | #endif | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[0], 1, nmvc, precision, is_adaptive_mvd | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[0].as_mv, ref_mv[0].as_mv | 
|  | #endif | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[0], | 
|  | #else | 
|  | &mv[0].as_mv, ref_mv[0].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  | break; | 
|  | } | 
|  | case GLOBAL_GLOBALMV: { | 
|  | assert(is_compound); | 
|  | assert(!is_tip_ref_frame(ref_frame[0])); | 
|  | mv[0].as_int = | 
|  | get_warp_motion_vector(xd, &cm->global_motion[ref_frame[0]], | 
|  | features->fr_mv_precision, bsize, xd->mi_col, | 
|  | xd->mi_row) | 
|  | .as_int; | 
|  | mv[1].as_int = | 
|  | get_warp_motion_vector(xd, &cm->global_motion[ref_frame[1]], | 
|  | features->fr_mv_precision, bsize, xd->mi_col, | 
|  | xd->mi_row) | 
|  | .as_int; | 
|  | break; | 
|  | } | 
|  | case JOINT_NEWMV_OPTFLOW: | 
|  | #if !CONFIG_INTER_MODE_CONSOLIDATION | 
|  | case JOINT_AMVDNEWMV_OPTFLOW: | 
|  | case JOINT_AMVDNEWMV: | 
|  | #endif  //! CONFIG_INTER_MODE_CONSOLIDATION | 
|  | case JOINT_NEWMV: { | 
|  | nmv_context *const nmvc = &ec_ctx->nmvc; | 
|  | assert(is_compound); | 
|  | mv[1 - jmvd_base_ref_list].as_int = ref_mv[1 - jmvd_base_ref_list].as_int; | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | is_joint_mv_mode = 1; | 
|  | num_signaled_mvd = 1; | 
|  | start_signaled_mvd_idx = jmvd_base_ref_list; | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | #if CONFIG_VQ_MVD_CODING | 
|  | read_mv(r, &mv_diff[jmvd_base_ref_list], 1, nmvc, precision, | 
|  | is_adaptive_mvd | 
|  |  | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | , | 
|  | &mv[jmvd_base_ref_list].as_mv, ref_mv[jmvd_base_ref_list].as_mv | 
|  | #endif | 
|  | ); | 
|  | #else | 
|  | read_mv(r, | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | &mv_diff[jmvd_base_ref_list], | 
|  | #else | 
|  | &mv[jmvd_base_ref_list].as_mv, ref_mv[jmvd_base_ref_list].as_mv, | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  | is_adaptive_mvd, nmvc, precision); | 
|  | #endif  // CONFIG_VQ_MVD_CODING | 
|  |  | 
|  | #if !CONFIG_DERIVED_MVD_SIGN | 
|  | sec_ref_dist = same_side ? sec_ref_dist : -sec_ref_dist; | 
|  | MV other_mvd = { 0, 0 }; | 
|  | MV diff = { 0, 0 }; | 
|  |  | 
|  | MV low_prec_refmv = ref_mv[jmvd_base_ref_list].as_mv; | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (!is_adaptive_mvd) | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&low_prec_refmv, precision); | 
|  | diff.row = mv[jmvd_base_ref_list].as_mv.row - low_prec_refmv.row; | 
|  | diff.col = mv[jmvd_base_ref_list].as_mv.col - low_prec_refmv.col; | 
|  |  | 
|  | get_mv_projection(&other_mvd, diff, sec_ref_dist, first_ref_dist); | 
|  | scale_other_mvd(&other_mvd, mbmi->jmvd_scale_mode, mbmi->mode); | 
|  | #if !CONFIG_C071_SUBBLK_WARPMV | 
|  | // TODO(Mohammed): Do we need to apply block level lower mv precision? | 
|  | lower_mv_precision(&other_mvd, features->fr_mv_precision); | 
|  | #endif  // !CONFIG_C071_SUBBLK_WARPMV | 
|  | mv[1 - jmvd_base_ref_list].as_mv.row = | 
|  | (int)(ref_mv[1 - jmvd_base_ref_list].as_mv.row + other_mvd.row); | 
|  | mv[1 - jmvd_base_ref_list].as_mv.col = | 
|  | (int)(ref_mv[1 - jmvd_base_ref_list].as_mv.col + other_mvd.col); | 
|  | #endif  //! CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | break; | 
|  | } | 
|  | default: { | 
|  | return 0; | 
|  | } | 
|  | } | 
|  |  | 
|  | #if CONFIG_DERIVED_MVD_SIGN | 
|  | if (num_signaled_mvd > 0) { | 
|  | int last_ref = -1; | 
|  | int last_comp = -1; | 
|  | uint16_t sum_mvd = 0; | 
|  | int precision_shift = MV_PRECISION_ONE_EIGHTH_PEL - precision; | 
|  | int th_for_num_nonzero = get_derive_sign_nzero_th(mbmi); | 
|  | uint8_t num_nonzero_mvd_comp = 0; | 
|  | uint8_t enable_sign_derive = 0; | 
|  | if (is_mvd_sign_derive_allowed(cm, xd, mbmi)) { | 
|  | for (int ref_idx = start_signaled_mvd_idx; | 
|  | ref_idx < start_signaled_mvd_idx + num_signaled_mvd; ++ref_idx) { | 
|  | assert(ref_idx == 0 || ref_idx == 1); | 
|  | for (int comp = 0; comp < 2; comp++) { | 
|  | int this_mvd_comp = | 
|  | comp == 0 ? mv_diff[ref_idx].row : mv_diff[ref_idx].col; | 
|  | assert(this_mvd_comp >= 0); | 
|  | if (this_mvd_comp) { | 
|  | last_ref = ref_idx; | 
|  | last_comp = comp; | 
|  | sum_mvd += (this_mvd_comp >> precision_shift); | 
|  | num_nonzero_mvd_comp++; | 
|  | } | 
|  | } | 
|  | } | 
|  | if (num_nonzero_mvd_comp >= th_for_num_nonzero) enable_sign_derive = 1; | 
|  | } | 
|  |  | 
|  | // Decode sign | 
|  | for (int ref_idx = start_signaled_mvd_idx; | 
|  | ref_idx < start_signaled_mvd_idx + num_signaled_mvd; ++ref_idx) { | 
|  | assert(ref_idx == 0 || ref_idx == 1); | 
|  |  | 
|  | for (int comp = 0; comp < 2; comp++) { | 
|  | int this_mvd_comp = | 
|  | comp == 0 ? mv_diff[ref_idx].row : mv_diff[ref_idx].col; | 
|  | assert(this_mvd_comp >= 0); | 
|  |  | 
|  | if (this_mvd_comp != 0) { | 
|  | assert(this_mvd_comp > 0); | 
|  | int sign = 0; | 
|  | if (enable_sign_derive && | 
|  | (ref_idx == last_ref && comp == last_comp)) { | 
|  | sign = (sum_mvd & 0x1); | 
|  | } else { | 
|  | #if CONFIG_MVD_CDF_REDUCTION | 
|  | sign = aom_read_literal(r, 1, ACCT_INFO("sign")); | 
|  | #else | 
|  | sign = aom_read_symbol(r, ec_ctx->nmvc.comps[comp].sign_cdf, 2, | 
|  | ACCT_INFO("sign")); | 
|  | #endif  // CONFIG_MVD_CDF_REDUCTION | 
|  | } | 
|  | if (sign) { | 
|  | if (comp == 0) | 
|  | mv_diff[ref_idx].row = -1 * this_mvd_comp; | 
|  | else | 
|  | mv_diff[ref_idx].col = -1 * this_mvd_comp; | 
|  | } | 
|  | } | 
|  | } | 
|  | } | 
|  |  | 
|  | for (int ref_idx = start_signaled_mvd_idx; | 
|  | ref_idx < (num_signaled_mvd + start_signaled_mvd_idx); ref_idx++) { | 
|  | MV low_prec_refmv = ref_mv[ref_idx].as_mv; | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (!is_adaptive_mvd) | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&low_prec_refmv, precision); | 
|  | mv[ref_idx].as_mv.row = low_prec_refmv.row + mv_diff[ref_idx].row; | 
|  | mv[ref_idx].as_mv.col = low_prec_refmv.col + mv_diff[ref_idx].col; | 
|  | } | 
|  |  | 
|  | if (is_joint_mv_mode) { | 
|  | sec_ref_dist = same_side ? sec_ref_dist : -sec_ref_dist; | 
|  | MV other_mvd = { 0, 0 }; | 
|  | MV diff = { 0, 0 }; | 
|  | MV low_prec_refmv = ref_mv[jmvd_base_ref_list].as_mv; | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (!is_adaptive_mvd) | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (precision < MV_PRECISION_HALF_PEL) | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | lower_mv_precision(&low_prec_refmv, precision); | 
|  | diff.row = mv[jmvd_base_ref_list].as_mv.row - low_prec_refmv.row; | 
|  | diff.col = mv[jmvd_base_ref_list].as_mv.col - low_prec_refmv.col; | 
|  | get_mv_projection(&other_mvd, diff, sec_ref_dist, first_ref_dist); | 
|  | scale_other_mvd(&other_mvd, mbmi->jmvd_scale_mode, mbmi->mode | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | , | 
|  | mbmi->use_amvd | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | ); | 
|  | #if !CONFIG_C071_SUBBLK_WARPMV | 
|  | // TODO(Mohammed): Do we need to apply block level lower mv precision? | 
|  | lower_mv_precision(&other_mvd, features->fr_mv_precision); | 
|  | #endif  // !CONFIG_C071_SUBBLK_WARPMV | 
|  | mv[1 - jmvd_base_ref_list].as_mv.row = | 
|  | (int)(ref_mv[1 - jmvd_base_ref_list].as_mv.row + other_mvd.row); | 
|  | mv[1 - jmvd_base_ref_list].as_mv.col = | 
|  | (int)(ref_mv[1 - jmvd_base_ref_list].as_mv.col + other_mvd.col); | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_DERIVED_MVD_SIGN | 
|  |  | 
|  | int ret = is_mv_valid(&mv[0].as_mv); | 
|  | if (is_compound) { | 
|  | ret = ret && is_mv_valid(&mv[1].as_mv); | 
|  | } | 
|  | return ret; | 
|  | } | 
|  |  | 
|  | static int read_is_inter_block(AV1_COMMON *const cm, MACROBLOCKD *const xd, | 
|  | int segment_id, aom_reader *r | 
|  | #if CONFIG_CONTEXT_DERIVATION && !CONFIG_SKIP_TXFM_OPT | 
|  | , | 
|  | const int skip_txfm | 
|  | #endif  // CONFIG_CONTEXT_DERIVATION && !CONFIG_SKIP_TXFM_OPT | 
|  | ) { | 
|  | #if CONFIG_DISABLE_4X4_INTER | 
|  | if (xd->mi[0]->sb_type[PLANE_TYPE_Y] == BLOCK_4X4) { | 
|  | return 0; | 
|  | } | 
|  | #endif | 
|  | if (segfeature_active(&cm->seg, segment_id, SEG_LVL_GLOBALMV)) { | 
|  | return 1; | 
|  | } | 
|  | const int ctx = av1_get_intra_inter_context(xd); | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  | const int is_inter = | 
|  | #if CONFIG_CONTEXT_DERIVATION && !CONFIG_SKIP_TXFM_OPT | 
|  | aom_read_symbol(r, ec_ctx->intra_inter_cdf[skip_txfm][ctx], 2, | 
|  | ACCT_INFO()); | 
|  | #else | 
|  | aom_read_symbol(r, ec_ctx->intra_inter_cdf[ctx], 2, ACCT_INFO()); | 
|  | #endif  // CONFIG_CONTEXT_DERIVATION && !CONFIG_SKIP_TXFM_OPT | 
|  | return is_inter; | 
|  | } | 
|  |  | 
|  | #if DEC_MISMATCH_DEBUG | 
|  | static void dec_dump_logs(AV1_COMMON *cm, MB_MODE_INFO *const mbmi, int mi_row, | 
|  | int mi_col, int16_t mode_ctx) { | 
|  | int_mv mv[2] = { { 0 } }; | 
|  | for (int ref = 0; ref < 1 + has_second_ref(mbmi); ++ref) | 
|  | mv[ref].as_mv = mbmi->mv[ref].as_mv; | 
|  |  | 
|  | const int16_t newmv_ctx = mode_ctx & NEWMV_CTX_MASK; | 
|  | int16_t zeromv_ctx = -1; | 
|  | int16_t refmv_ctx = -1; | 
|  | if (mbmi->mode != NEWMV) { | 
|  | zeromv_ctx = (mode_ctx >> GLOBALMV_OFFSET) & GLOBALMV_CTX_MASK; | 
|  | if (mbmi->mode != GLOBALMV) | 
|  | refmv_ctx = (mode_ctx >> REFMV_OFFSET) & REFMV_CTX_MASK; | 
|  | } | 
|  |  | 
|  | #define FRAME_TO_CHECK 11 | 
|  | if (cm->current_frame.frame_number == FRAME_TO_CHECK && cm->show_frame == 1) { | 
|  | printf( | 
|  | "=== DECODER ===: " | 
|  | "Frame=%d, (mi_row,mi_col)=(%d,%d), skip_mode=%d, mode=%d, bsize=%d, " | 
|  | "show_frame=%d, mv[0]=(%d,%d), mv[1]=(%d,%d), ref[0]=%d, " | 
|  | "ref[1]=%d, motion_mode=%d, mode_ctx=%d, " | 
|  | "newmv_ctx=%d, zeromv_ctx=%d, refmv_ctx=%d, tx_size=%d\n", | 
|  | cm->current_frame.frame_number, mi_row, mi_col, mbmi->skip_mode, | 
|  | mbmi->mode, mbmi->sb_type, cm->show_frame, mv[0].as_mv.row, | 
|  | mv[0].as_mv.col, mv[1].as_mv.row, mv[1].as_mv.col, mbmi->ref_frame[0], | 
|  | mbmi->ref_frame[1], mbmi->motion_mode, mode_ctx, newmv_ctx, zeromv_ctx, | 
|  | refmv_ctx, mbmi->tx_size); | 
|  | } | 
|  | } | 
|  | #endif  // DEC_MISMATCH_DEBUG | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | // This function read the refinemv_flag ( if require) from the bitstream | 
|  | static void read_refinemv_flag(AV1_COMMON *const cm, MACROBLOCKD *xd, | 
|  | aom_reader *r, BLOCK_SIZE bsize) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | mbmi->refinemv_flag = get_default_refinemv_flag(cm, mbmi); | 
|  | int signal_refinemv = switchable_refinemv_flag(cm, mbmi); | 
|  | if (signal_refinemv) { | 
|  | const int refinemv_ctx = av1_get_refinemv_context(cm, xd, bsize); | 
|  | mbmi->refinemv_flag = | 
|  | aom_read_symbol(r, xd->tile_ctx->refinemv_flag_cdf[refinemv_ctx], | 
|  | REFINEMV_NUM_MODES, ACCT_INFO("refinemv_flag")); | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | MvSubpelPrecision av1_read_pb_mv_precision(AV1_COMMON *const cm, | 
|  | MACROBLOCKD *const xd, | 
|  | aom_reader *r) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | assert(mbmi->max_mv_precision == | 
|  | av1_get_mbmi_max_mv_precision(cm, xd->sbi, mbmi)); | 
|  | assert(mbmi->max_mv_precision >= MV_PRECISION_HALF_PEL); | 
|  | const MvSubpelPrecision max_precision = mbmi->max_mv_precision; | 
|  | const int down_ctx = av1_get_pb_mv_precision_down_context(cm, xd); | 
|  |  | 
|  | assert(mbmi->most_probable_pb_mv_precision <= mbmi->max_mv_precision); | 
|  | assert(mbmi->most_probable_pb_mv_precision == | 
|  | cm->features.most_probable_fr_mv_precision); | 
|  |  | 
|  | const int mpp_flag_context = av1_get_mpp_flag_context(cm, xd); | 
|  | const int mpp_flag = | 
|  | aom_read_symbol(r, xd->tile_ctx->pb_mv_mpp_flag_cdf[mpp_flag_context], 2, | 
|  | ACCT_INFO("mpp_flag")); | 
|  | if (mpp_flag) return mbmi->most_probable_pb_mv_precision; | 
|  | const PRECISION_SET *precision_def = | 
|  | &av1_mv_precision_sets[mbmi->mb_precision_set]; | 
|  | int nsymbs = precision_def->num_precisions - 1; | 
|  | int down = aom_read_symbol( | 
|  | r, | 
|  | xd->tile_ctx->pb_mv_precision_cdf[down_ctx] | 
|  | [max_precision - MV_PRECISION_HALF_PEL], | 
|  | nsymbs, ACCT_INFO("down")); | 
|  | return av1_get_precision_from_index(mbmi, down); | 
|  | } | 
|  |  | 
|  | static void read_inter_block_mode_info(AV1Decoder *const pbi, | 
|  | DecoderCodingBlock *dcb, | 
|  | MB_MODE_INFO *const mbmi, | 
|  | aom_reader *r) { | 
|  | AV1_COMMON *const cm = &pbi->common; | 
|  | FeatureFlags *const features = &cm->features; | 
|  | const BLOCK_SIZE bsize = mbmi->sb_type[PLANE_TYPE_Y]; | 
|  | int_mv ref_mv[2]; | 
|  | int_mv ref_mvs[MODE_CTX_REF_FRAMES][MAX_MV_REF_CANDIDATES] = { { { 0 } } }; | 
|  | int16_t inter_mode_ctx[MODE_CTX_REF_FRAMES]; | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | int pts0[SAMPLES_ARRAY_SIZE], pts0_inref[SAMPLES_ARRAY_SIZE]; | 
|  | int pts1[SAMPLES_ARRAY_SIZE], pts1_inref[SAMPLES_ARRAY_SIZE]; | 
|  | #else | 
|  | int pts[SAMPLES_ARRAY_SIZE], pts_inref[SAMPLES_ARRAY_SIZE]; | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | MACROBLOCKD *const xd = &dcb->xd; | 
|  |  | 
|  | SB_INFO *sbi = xd->sbi; | 
|  | FRAME_CONTEXT *ec_ctx = xd->tile_ctx; | 
|  |  | 
|  | mbmi->uv_mode = UV_DC_PRED; | 
|  | mbmi->palette_mode_info.palette_size[0] = 0; | 
|  | mbmi->palette_mode_info.palette_size[1] = 0; | 
|  | mbmi->fsc_mode[PLANE_TYPE_Y] = 0; | 
|  | mbmi->fsc_mode[PLANE_TYPE_UV] = 0; | 
|  | #if CONFIG_NEW_CONTEXT_MODELING | 
|  | mbmi->use_intrabc[0] = 0; | 
|  | mbmi->use_intrabc[1] = 0; | 
|  | #endif  // CONFIG_NEW_CONTEXT_MODELING | 
|  | #if CONFIG_MORPH_PRED | 
|  | mbmi->morph_pred = 0; | 
|  | #endif  // CONFIG_MORPH_PRED | 
|  |  | 
|  | set_default_max_mv_precision(mbmi, sbi->sb_mv_precision); | 
|  | set_mv_precision(mbmi, mbmi->max_mv_precision);  // initialize to max | 
|  | set_default_precision_set(cm, mbmi, bsize); | 
|  | set_most_probable_mv_precision(cm, mbmi, bsize); | 
|  |  | 
|  | mbmi->bawp_flag[0] = 0; | 
|  | mbmi->bawp_flag[1] = 0; | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | mbmi->refinemv_flag = 0; | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | mbmi->num_proj_ref[0] = 0;  // assume num_proj_ref >=1 | 
|  | mbmi->num_proj_ref[1] = 0;  // assume num_proj_ref >=1 | 
|  | mbmi->wm_params[0].invalid = 1; | 
|  | mbmi->wm_params[1].invalid = 1; | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  |  | 
|  | av1_collect_neighbors_ref_counts(xd); | 
|  |  | 
|  | read_ref_frames(cm, xd, r, mbmi->segment_id, mbmi->ref_frame); | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | int is_compound = has_second_ref(mbmi); | 
|  | #else | 
|  | const int is_compound = has_second_ref(mbmi); | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  |  | 
|  | const MV_REFERENCE_FRAME ref_frame = av1_ref_frame_type(mbmi->ref_frame); | 
|  |  | 
|  | av1_initialize_warp_wrl_list(xd->warp_param_stack, | 
|  | xd->valid_num_warp_candidates); | 
|  |  | 
|  | #if !CONFIG_SEP_COMP_DRL | 
|  | av1_find_mv_refs( | 
|  | cm, xd, mbmi, ref_frame, dcb->ref_mv_count, xd->ref_mv_stack, xd->weight, | 
|  | ref_mvs, /*global_mvs=*/NULL | 
|  | #if !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | inter_mode_ctx | 
|  | #endif  // !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | xd->warp_param_stack, | 
|  | ref_frame < INTER_REFS_PER_FRAME ? MAX_WARP_REF_CANDIDATES : 0, | 
|  | xd->valid_num_warp_candidates); | 
|  | #endif  // !CONFIG_SEP_COMP_DRL | 
|  |  | 
|  | #if CONFIG_C076_INTER_MOD_CTX | 
|  | av1_find_mode_ctx(cm, xd, inter_mode_ctx, ref_frame); | 
|  | #endif  // CONFIG_C076_INTER_MOD_CTX | 
|  |  | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | mbmi->ref_mv_idx[0] = 0; | 
|  | mbmi->ref_mv_idx[1] = 0; | 
|  | #else | 
|  | mbmi->ref_mv_idx = 0; | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  |  | 
|  | mbmi->cwp_idx = CWP_EQUAL; | 
|  | mbmi->jmvd_scale_mode = 0; | 
|  |  | 
|  | mbmi->warp_ref_idx = 0; | 
|  | mbmi->max_num_warp_candidates = 0; | 
|  | #if CONFIG_AFFINE_REFINEMENT | 
|  | mbmi->comp_refine_type = COMP_REFINE_NONE; | 
|  | #endif  // CONFIG_AFFINE_REFINEMENT | 
|  |  | 
|  | mbmi->warpmv_with_mvd_flag = 0; | 
|  | mbmi->motion_mode = SIMPLE_TRANSLATION; | 
|  | WARP_CANDIDATE warp_param_stack[MAX_WARP_REF_CANDIDATES]; | 
|  | WarpedMotionParams ref_warp_model = default_warp_params; | 
|  |  | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag = 0; | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  |  | 
|  | #if CONFIG_WARP_PRECISION | 
|  | mbmi->warp_precision_idx = 0; | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  | #if CONFIG_WARP_INTER_INTRA | 
|  | mbmi->warp_inter_intra = 0; | 
|  | #endif  // CONFIG_WARP_INTER_INTRA | 
|  | if (mbmi->skip_mode) { | 
|  | #if !CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | assert(is_compound); | 
|  | #endif  // !CONFIG_D072_SKIP_MODE_IMPROVE | 
|  |  | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | mbmi->mode = NEAR_NEARMV; | 
|  | #else | 
|  | mbmi->mode = (cm->features.opfl_refine_type && !cm->features.enable_cwp | 
|  | ? NEAR_NEARMV_OPTFLOW | 
|  | : NEAR_NEARMV); | 
|  | #endif  // CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | #else | 
|  | mbmi->mode = NEAR_NEARMV; | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  |  | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | read_drl_idx(cm->features.max_drl_bits, | 
|  | av1_mode_context_pristine(inter_mode_ctx, mbmi->ref_frame), | 
|  | ec_ctx, mbmi, r); | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  |  | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | av1_find_mv_refs( | 
|  | cm, xd, mbmi, ref_frame, dcb->ref_mv_count, xd->ref_mv_stack, | 
|  | xd->weight, ref_mvs, /*global_mvs=*/NULL | 
|  | #if !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | inter_mode_ctx | 
|  | #endif  // !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | xd->warp_param_stack, | 
|  | ref_frame < SINGLE_REF_FRAMES ? MAX_WARP_REF_CANDIDATES : 0, | 
|  | xd->valid_num_warp_candidates); | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  |  | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | mbmi->ref_frame[0] = | 
|  | xd->skip_mvp_candidate_list.ref_frame0[get_ref_mv_idx(mbmi, 0)]; | 
|  | mbmi->ref_frame[1] = | 
|  | xd->skip_mvp_candidate_list.ref_frame1[get_ref_mv_idx(mbmi, 1)]; | 
|  | #else | 
|  | mbmi->ref_frame[0] = | 
|  | xd->skip_mvp_candidate_list.ref_frame0[mbmi->ref_mv_idx]; | 
|  | mbmi->ref_frame[1] = | 
|  | xd->skip_mvp_candidate_list.ref_frame1[mbmi->ref_mv_idx]; | 
|  | #endif | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  |  | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | is_compound = has_second_ref(mbmi); | 
|  | if (!is_compound) { | 
|  | mbmi->mode = NEARMV; | 
|  | } else { | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | mbmi->mode = | 
|  | #if CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | NEAR_NEARMV; | 
|  | #else | 
|  | (cm->features.opfl_refine_type == REFINE_SWITCHABLE && | 
|  | opfl_allowed_for_cur_refs(cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | xd, | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | mbmi) && | 
|  | !cm->features.enable_cwp | 
|  | ? NEAR_NEARMV_OPTFLOW | 
|  | : NEAR_NEARMV); | 
|  | #endif  // CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | } | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | #else | 
|  | mbmi->mode = NEAR_NEARMV; | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_AFFINE_REFINEMENT | 
|  | mbmi->comp_refine_type = mbmi->mode == NEAR_NEARMV_OPTFLOW | 
|  | ? COMP_REFINE_TYPE_FOR_SKIP | 
|  | : COMP_REFINE_SUBBLK2P; | 
|  | #endif  // CONFIG_AFFINE_REFINEMENT | 
|  | } else { | 
|  | if (segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP) || | 
|  | segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_GLOBALMV)) { | 
|  | mbmi->mode = GLOBALMV; | 
|  | } else { | 
|  | const int16_t mode_ctx = | 
|  | av1_mode_context_analyzer(inter_mode_ctx, mbmi->ref_frame); | 
|  | if (is_compound) | 
|  | mbmi->mode = read_inter_compound_mode(xd, r, cm, mbmi, mode_ctx); | 
|  | else | 
|  | mbmi->mode = read_inter_mode(ec_ctx, r, mode_ctx, cm, xd, mbmi, bsize); | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | mbmi->use_amvd = 0; | 
|  | if (cm->seq_params.enable_adaptive_mvd && allow_amvd_mode(mbmi->mode)) { | 
|  | int amvd_index = amvd_mode_to_index(mbmi->mode); | 
|  | assert(amvd_index >= 0); | 
|  | int amvd_ctx = get_amvd_context(xd); | 
|  | mbmi->use_amvd = | 
|  | aom_read_symbol(r, ec_ctx->amvd_mode_cdf[amvd_index][amvd_ctx], 2, | 
|  | ACCT_INFO("use_amvd")); | 
|  | } | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | av1_find_mv_refs( | 
|  | cm, xd, mbmi, ref_frame, dcb->ref_mv_count, xd->ref_mv_stack, | 
|  | xd->weight, ref_mvs, /*global_mvs=*/NULL | 
|  | #if !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | inter_mode_ctx | 
|  | #endif  // !CONFIG_C076_INTER_MOD_CTX | 
|  | , | 
|  | xd->warp_param_stack, | 
|  | ref_frame < SINGLE_REF_FRAMES ? MAX_WARP_REF_CANDIDATES : 0, | 
|  | xd->valid_num_warp_candidates); | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  |  | 
|  | if (cm->features.enable_bawp && | 
|  | av1_allow_bawp(cm, mbmi, xd->mi_row, xd->mi_col)) { | 
|  | mbmi->bawp_flag[0] = aom_read_symbol(r, xd->tile_ctx->bawp_cdf[0], 2, | 
|  | ACCT_INFO("bawp_flag_luma")); | 
|  | if (mbmi->bawp_flag[0] && av1_allow_explicit_bawp(mbmi)) { | 
|  | const int ctx_index = | 
|  | (mbmi->mode == NEARMV) | 
|  | ? 0 | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | : ((mbmi->mode == NEWMV && mbmi->use_amvd) ? 1 : 2); | 
|  | #else | 
|  | : (mbmi->mode == AMVDNEWMV ? 1 : 2); | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | mbmi->bawp_flag[0] += | 
|  | aom_read_symbol(r, xd->tile_ctx->explicit_bawp_cdf[ctx_index], 2, | 
|  | ACCT_INFO("explicit_bawp_flag")); | 
|  | } | 
|  | if (mbmi->bawp_flag[0] > 1) { | 
|  | mbmi->bawp_flag[0] += aom_read_symbol( | 
|  | r, xd->tile_ctx->explicit_bawp_scale_cdf, EXPLICIT_BAWP_SCALE_CNT, | 
|  | ACCT_INFO("explicit_bawp_scales")); | 
|  | } | 
|  | } | 
|  |  | 
|  | if (!cm->seq_params.monochrome && xd->is_chroma_ref && | 
|  | mbmi->bawp_flag[0]) { | 
|  | mbmi->bawp_flag[1] = aom_read_symbol(r, xd->tile_ctx->bawp_cdf[1], 2, | 
|  | ACCT_INFO("bawp_flag_chroma")); | 
|  | } else { | 
|  | mbmi->bawp_flag[1] = 0; | 
|  | } | 
|  |  | 
|  | for (int ref = 0; ref < 1 + has_second_ref(mbmi); ++ref) { | 
|  | const MV_REFERENCE_FRAME frame = mbmi->ref_frame[ref]; | 
|  | xd->block_ref_scale_factors[ref] = | 
|  | get_ref_scale_factors_const(cm, frame); | 
|  | } | 
|  | if (is_motion_variation_allowed_bsize(mbmi->sb_type[PLANE_TYPE_Y], | 
|  | xd->mi_row, xd->mi_col) && | 
|  | !is_tip_ref_frame(mbmi->ref_frame[0]) && | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | !mbmi->skip_mode && | 
|  | (!has_second_ref(mbmi) || is_compound_warp_causal_allowed(cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | xd, | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | mbmi))) { | 
|  | mbmi->num_proj_ref[0] = av1_findSamples(cm, xd, pts0, pts0_inref, 0); | 
|  | if (has_second_ref(mbmi)) | 
|  | mbmi->num_proj_ref[1] = av1_findSamples(cm, xd, pts1, pts1_inref, 1); | 
|  | #else | 
|  | !mbmi->skip_mode && !has_second_ref(mbmi)) { | 
|  | mbmi->num_proj_ref = av1_findSamples(cm, xd, pts, pts_inref); | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | } | 
|  | mbmi->motion_mode = read_motion_mode(cm, xd, mbmi, r); | 
|  | int is_warpmv_warp_causal = | 
|  | ((mbmi->motion_mode == WARP_CAUSAL) && mbmi->mode == WARPMV); | 
|  | if (mbmi->motion_mode == WARP_DELTA || is_warpmv_warp_causal) { | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | mbmi->max_num_warp_candidates = MAX_WARP_REF_CANDIDATES; | 
|  | #else | 
|  | mbmi->max_num_warp_candidates = | 
|  | (mbmi->mode == GLOBALMV || mbmi->mode == NEARMV | 
|  | #if !CONFIG_INTER_MODE_CONSOLIDATION | 
|  | || mbmi->mode == AMVDNEWMV | 
|  | #endif  //! CONFIG_INTER_MODE_CONSOLIDATION | 
|  | ) | 
|  | ? 1 | 
|  | : MAX_WARP_REF_CANDIDATES; | 
|  | if (is_warpmv_warp_causal) { | 
|  | mbmi->max_num_warp_candidates = MAX_WARP_REF_CANDIDATES; | 
|  | } | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | av1_find_warp_delta_base_candidates( | 
|  | xd, mbmi, warp_param_stack, | 
|  | xd->warp_param_stack[av1_ref_frame_type(mbmi->ref_frame)], | 
|  | xd->valid_num_warp_candidates[av1_ref_frame_type(mbmi->ref_frame)], | 
|  | NULL); | 
|  |  | 
|  | read_warp_ref_idx(xd->tile_ctx, mbmi, r); | 
|  | ref_warp_model = warp_param_stack[mbmi->warp_ref_idx].wm_params; | 
|  | } | 
|  |  | 
|  | if (allow_warpmv_with_mvd_coding(cm, mbmi)) { | 
|  | read_warpmv_with_mvd_flag(xd->tile_ctx, mbmi, r); | 
|  | } else { | 
|  | mbmi->warpmv_with_mvd_flag = 0; | 
|  | } | 
|  | mbmi->jmvd_scale_mode = read_jmvd_scale_mode(xd, r, mbmi); | 
|  | int max_drl_bits = cm->features.max_drl_bits; | 
|  |  | 
|  | #if !CONFIG_INTER_MODE_CONSOLIDATION | 
|  | if (mbmi->mode == AMVDNEWMV) max_drl_bits = AOMMIN(max_drl_bits, 1); | 
|  | #endif  //! CONFIG_INTER_MODE_CONSOLIDATION | 
|  |  | 
|  | if (have_drl_index(mbmi->mode)) | 
|  | read_drl_idx(max_drl_bits, | 
|  | av1_mode_context_pristine(inter_mode_ctx, mbmi->ref_frame), | 
|  | ec_ctx, mbmi, r); | 
|  | set_mv_precision(mbmi, mbmi->max_mv_precision); | 
|  | if (is_pb_mv_precision_active(cm, mbmi, bsize)) { | 
|  | set_precision_set(cm, xd, mbmi, bsize, mbmi->ref_mv_idx); | 
|  | set_most_probable_mv_precision(cm, mbmi, bsize); | 
|  | mbmi->pb_mv_precision = av1_read_pb_mv_precision(cm, xd, r); | 
|  | } | 
|  | #if BUGFIX_AMVD_AMVR | 
|  | if (enable_adaptive_mvd_resolution(cm, mbmi)) | 
|  | set_amvd_mv_precision(mbmi, mbmi->max_mv_precision); | 
|  | #endif  // BUGFIX_AMVD_AMVR | 
|  | } | 
|  | } | 
|  |  | 
|  | if (is_compound != is_inter_compound_mode(mbmi->mode)) { | 
|  | aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME, | 
|  | "Prediction mode %d invalid with ref frame %d %d", | 
|  | mbmi->mode, mbmi->ref_frame[0], mbmi->ref_frame[1]); | 
|  | } | 
|  |  | 
|  | if (mbmi->mode == WARPMV) { | 
|  | ref_mv[0] = get_mv_from_wrl(xd, &ref_warp_model, | 
|  | !mbmi->warpmv_with_mvd_flag | 
|  | ? MV_PRECISION_ONE_EIGHTH_PEL | 
|  | : mbmi->pb_mv_precision, | 
|  | bsize, xd->mi_col, xd->mi_row); | 
|  |  | 
|  | } else { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | if (has_second_drl(mbmi)) | 
|  | ref_mv[0] = | 
|  | xd->ref_mv_stack[mbmi->ref_frame[0]][get_ref_mv_idx(mbmi, 0)].this_mv; | 
|  | else | 
|  | ref_mv[0] = xd->ref_mv_stack[ref_frame][get_ref_mv_idx(mbmi, 0)].this_mv; | 
|  | #else | 
|  | ref_mv[0] = xd->ref_mv_stack[ref_frame][mbmi->ref_mv_idx].this_mv; | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  | } | 
|  |  | 
|  | if (is_compound && mbmi->mode != GLOBAL_GLOBALMV) { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | if (has_second_drl(mbmi)) | 
|  | ref_mv[1] = | 
|  | xd->ref_mv_stack[mbmi->ref_frame[1]][get_ref_mv_idx(mbmi, 1)].this_mv; | 
|  | else | 
|  | ref_mv[1] = xd->ref_mv_stack[ref_frame][get_ref_mv_idx(mbmi, 1)].comp_mv; | 
|  | #else | 
|  | ref_mv[1] = xd->ref_mv_stack[ref_frame][mbmi->ref_mv_idx].comp_mv; | 
|  | #endif | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | if (mbmi->skip_mode) { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | ref_mv[0] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[get_ref_mv_idx(mbmi, 0)] | 
|  | .this_mv; | 
|  | ref_mv[1] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[get_ref_mv_idx(mbmi, 1)] | 
|  | .comp_mv; | 
|  | #else | 
|  | ref_mv[0] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx].this_mv; | 
|  | ref_mv[1] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx].comp_mv; | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  | } | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | } | 
|  |  | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | if (!is_compound && mbmi->skip_mode) { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | ref_mv[0] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[get_ref_mv_idx(mbmi, 0)] | 
|  | .this_mv; | 
|  | ref_mv[1] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[get_ref_mv_idx(mbmi, 1)] | 
|  | .comp_mv; | 
|  | #else | 
|  | ref_mv[0] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx].this_mv; | 
|  | ref_mv[1] = | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx].comp_mv; | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  | } | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  |  | 
|  | if (mbmi->skip_mode) { | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | #if CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | assert(mbmi->mode == (!is_compound ? NEARMV : NEAR_NEARMV)); | 
|  | #else | 
|  | assert(mbmi->mode == | 
|  | (!is_compound | 
|  | ? NEARMV | 
|  | : (cm->features.opfl_refine_type == REFINE_SWITCHABLE && | 
|  | opfl_allowed_for_cur_refs(cm, | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | xd, | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | mbmi) && | 
|  | !cm->features.enable_cwp | 
|  | ? NEAR_NEARMV_OPTFLOW | 
|  | : NEAR_NEARMV))); | 
|  | #endif  // CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | #else | 
|  | #if CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | assert(mbmi->mode == NEAR_NEARMV); | 
|  | #else | 
|  | assert(mbmi->mode == ((cm->features.opfl_refine_type == REFINE_SWITCHABLE && | 
|  | opfl_allowed_for_cur_refs(cm, mbmi) | 
|  | ? NEAR_NEARMV_OPTFLOW | 
|  | : NEAR_NEARMV))); | 
|  | #endif  // CONFIG_SKIP_MODE_NO_REFINEMENTS | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | #else | 
|  | assert(mbmi->mode == NEAR_NEARMV); | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  |  | 
|  | #if !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | assert(mbmi->ref_mv_idx == 0); | 
|  | #endif  // !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | } | 
|  |  | 
|  | const int mv_corrupted_flag = | 
|  | !assign_mv(cm, xd, mbmi->mode, mbmi->ref_frame, mbmi->mv, ref_mv, | 
|  | is_compound, mbmi->pb_mv_precision, r); | 
|  |  | 
|  | aom_merge_corrupted_flag(&dcb->corrupted, mv_corrupted_flag); | 
|  |  | 
|  | #if !CONFIG_COMPOUND_WARP_CAUSAL | 
|  | assert(IMPLIES(mbmi->motion_mode != SIMPLE_TRANSLATION, | 
|  | mbmi->mode >= SINGLE_INTER_MODE_START && | 
|  | mbmi->mode < SINGLE_INTER_MODE_END)); | 
|  | #endif  // !CONFIG_COMPOUND_WARP_CAUSAL | 
|  | if (mbmi->motion_mode == WARP_DELTA) { | 
|  | read_warp_delta(cm, xd, mbmi, r, warp_param_stack); | 
|  | } | 
|  |  | 
|  | #if CONFIG_WARP_INTER_INTRA | 
|  | mbmi->warp_inter_intra = 0; | 
|  | if (allow_warp_inter_intra(cm, mbmi, mbmi->motion_mode)) { | 
|  | const int bsize_group = size_group_lookup[bsize]; | 
|  | mbmi->warp_inter_intra = | 
|  | aom_read_symbol(r, xd->tile_ctx->warp_interintra_cdf[bsize_group], 2, | 
|  | ACCT_INFO("warp_inter_intra")); | 
|  |  | 
|  | if (mbmi->warp_inter_intra) { | 
|  | const INTERINTRA_MODE interintra_mode = | 
|  | read_interintra_mode(xd, r, bsize_group); | 
|  | #if !CONFIG_INTERINTRA_IMPROVEMENT | 
|  | mbmi->ref_frame[1] = INTRA_FRAME; | 
|  | #endif  // !CONFIG_INTERINTRA_IMPROVEMENT | 
|  |  | 
|  | mbmi->interintra_mode = interintra_mode; | 
|  | mbmi->angle_delta[PLANE_TYPE_Y] = 0; | 
|  | mbmi->angle_delta[PLANE_TYPE_UV] = 0; | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | mbmi->use_dpcm_uv = 0; | 
|  | mbmi->dpcm_mode_uv = 0; | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | mbmi->filter_intra_mode_info.use_filter_intra = 0; | 
|  | #if CONFIG_DIP | 
|  | mbmi->use_intra_dip = 0; | 
|  | #endif  // CONFIG_DIP | 
|  | if (av1_is_wedge_used(bsize)) { | 
|  | mbmi->use_wedge_interintra = | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, xd->tile_ctx->wedge_interintra_cdf, 2, | 
|  | ACCT_INFO("use_wedge_interintra")); | 
|  | #else | 
|  | aom_read_symbol(r, xd->tile_ctx->wedge_interintra_cdf[bsize], 2, | 
|  | ACCT_INFO("use_wedge_interintra")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  |  | 
|  | if (mbmi->use_wedge_interintra) { | 
|  | #if CONFIG_WEDGE_MOD_EXT | 
|  | mbmi->interintra_wedge_index = | 
|  | read_wedge_mode(r, xd->tile_ctx, bsize); | 
|  | assert(mbmi->interintra_wedge_index != -1); | 
|  | #else | 
|  | mbmi->interintra_wedge_index = (int8_t)aom_read_symbol( | 
|  | r, xd->tile_ctx->wedge_idx_cdf[bsize], MAX_WEDGE_TYPES, | 
|  | ACCT_INFO("interintra_wedge_index")); | 
|  | #endif | 
|  | } | 
|  | } | 
|  | }  // if (mbmi->warp_inter_intra) | 
|  | } | 
|  | #endif  // CONFIG_WARP_INTER_INTRA | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | if (!mbmi->skip_mode) { | 
|  | read_refinemv_flag(cm, xd, r, bsize); | 
|  | } | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | // init | 
|  | mbmi->comp_group_idx = 0; | 
|  | mbmi->interinter_comp.type = COMPOUND_AVERAGE; | 
|  |  | 
|  | if (has_second_ref(mbmi) && mbmi->mode < NEAR_NEARMV_OPTFLOW && | 
|  | #if CONFIG_REFINEMV | 
|  | (!mbmi->refinemv_flag || !switchable_refinemv_flag(cm, mbmi)) && | 
|  | #endif  // CONFIG_REFINEMV | 
|  | !is_joint_amvd_coding_mode(mbmi->mode | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | , | 
|  | mbmi->use_amvd | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | ) && | 
|  | !mbmi->skip_mode) { | 
|  | // Read idx to indicate current compound inter prediction mode group | 
|  | const int masked_compound_used = is_any_masked_compound_used(bsize) && | 
|  | cm->seq_params.enable_masked_compound; | 
|  |  | 
|  | if (masked_compound_used) { | 
|  | const int ctx_comp_group_idx = get_comp_group_idx_context(cm, xd); | 
|  | mbmi->comp_group_idx = (uint8_t)aom_read_symbol( | 
|  | r, ec_ctx->comp_group_idx_cdf[ctx_comp_group_idx], 2, | 
|  | ACCT_INFO("comp_group_idx")); | 
|  | } | 
|  |  | 
|  | if (mbmi->comp_group_idx == 0) { | 
|  | mbmi->interinter_comp.type = COMPOUND_AVERAGE; | 
|  | } else { | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | #if CONFIG_COMPOUND_4XN | 
|  | assert(cm->current_frame.reference_mode != SINGLE_REFERENCE && | 
|  | is_inter_compound_mode(mbmi->mode) && | 
|  | (mbmi->motion_mode == SIMPLE_TRANSLATION || | 
|  | is_compound_warp_causal_allowed(cm, xd, mbmi))); | 
|  | #else | 
|  | assert(cm->current_frame.reference_mode != SINGLE_REFERENCE && | 
|  | is_inter_compound_mode(mbmi->mode) && | 
|  | (mbmi->motion_mode == SIMPLE_TRANSLATION || | 
|  | is_compound_warp_causal_allowed(cm, mbmi))); | 
|  | #endif  // CONFIG_COMPOUND_4XN | 
|  | #else | 
|  | assert(cm->current_frame.reference_mode != SINGLE_REFERENCE && | 
|  | is_inter_compound_mode(mbmi->mode) && | 
|  | mbmi->motion_mode == SIMPLE_TRANSLATION); | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | assert(masked_compound_used); | 
|  |  | 
|  | // compound_diffwtd, wedge | 
|  | if (is_interinter_compound_used(COMPOUND_WEDGE, bsize)) { | 
|  | mbmi->interinter_comp.type = | 
|  | COMPOUND_WEDGE + | 
|  | #if CONFIG_D149_CTX_MODELING_OPT | 
|  | aom_read_symbol(r, ec_ctx->compound_type_cdf, MASKED_COMPOUND_TYPES, | 
|  | ACCT_INFO("comp_type")); | 
|  | #else | 
|  | aom_read_symbol(r, ec_ctx->compound_type_cdf[bsize], | 
|  | MASKED_COMPOUND_TYPES, ACCT_INFO("comp_type")); | 
|  | #endif  // CONFIG_D149_CTX_MODELING_OPT | 
|  | } else { | 
|  | mbmi->interinter_comp.type = COMPOUND_DIFFWTD; | 
|  | } | 
|  |  | 
|  | if (mbmi->interinter_comp.type == COMPOUND_WEDGE) { | 
|  | assert(is_interinter_compound_used(COMPOUND_WEDGE, bsize)); | 
|  | #if CONFIG_WEDGE_MOD_EXT | 
|  | mbmi->interinter_comp.wedge_index = read_wedge_mode(r, ec_ctx, bsize); | 
|  | assert(mbmi->interinter_comp.wedge_index != -1); | 
|  | #else | 
|  | mbmi->interinter_comp.wedge_index = | 
|  | (int8_t)aom_read_symbol(r, ec_ctx->wedge_idx_cdf[bsize], | 
|  | MAX_WEDGE_TYPES, ACCT_INFO("wedge_index")); | 
|  | #endif  // CONFIG_WEDGE_MOD_EXT | 
|  | mbmi->interinter_comp.wedge_sign = | 
|  | (int8_t)aom_read_bit(r, ACCT_INFO("wedge_sign")); | 
|  | } else { | 
|  | assert(mbmi->interinter_comp.type == COMPOUND_DIFFWTD); | 
|  | mbmi->interinter_comp.mask_type = | 
|  | aom_read_literal(r, MAX_DIFFWTD_MASK_BITS, ACCT_INFO("mask_type")); | 
|  | } | 
|  | } | 
|  | } | 
|  | #if CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | mbmi->cwp_idx = CWP_EQUAL; | 
|  | if (cm->features.enable_cwp) { | 
|  | if (is_cwp_allowed(mbmi) && !mbmi->skip_mode) | 
|  | mbmi->cwp_idx = read_cwp_idx(xd, r, cm, mbmi); | 
|  | if (is_cwp_allowed(mbmi) && mbmi->skip_mode) | 
|  | mbmi->cwp_idx = | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx[0]].cwp_idx; | 
|  | #else | 
|  | xd->skip_mvp_candidate_list.ref_mv_stack[mbmi->ref_mv_idx].cwp_idx; | 
|  | #endif  // CONFIG_SEP_COMP_DRL | 
|  | } | 
|  | #if CONFIG_REFINEMV | 
|  | if (mbmi->skip_mode) { | 
|  | mbmi->refinemv_flag = ( | 
|  | #if CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | is_compound && | 
|  | #endif  // CONFIG_D072_SKIP_MODE_IMPROVE | 
|  | mbmi->cwp_idx == CWP_EQUAL && | 
|  | is_refinemv_allowed_skip_mode(cm, mbmi)) | 
|  | ? 1 | 
|  | : 0; | 
|  | } | 
|  | #endif  // CONFIG_REFINEMV | 
|  | #endif  // CONFIG_SKIP_MODE_ENHANCEMENT | 
|  |  | 
|  | read_mb_interp_filter(xd, features->interp_filter, cm, mbmi, r); | 
|  |  | 
|  | const int mi_row = xd->mi_row; | 
|  | const int mi_col = xd->mi_col; | 
|  |  | 
|  | if (mbmi->motion_mode == WARP_CAUSAL) { | 
|  | mbmi->wm_params[0].wmtype = DEFAULT_WMTYPE; | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | mbmi->wm_params[1].wmtype = DEFAULT_WMTYPE; | 
|  | mbmi->wm_params[0].invalid = 1; | 
|  | mbmi->wm_params[1].invalid = 1; | 
|  | MV mv0 = mbmi->mv[0].as_mv; | 
|  | MV mv1 = mbmi->mv[1].as_mv; | 
|  |  | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | const struct scale_factors *sf[2]; | 
|  | sf[0] = get_ref_scale_factors(cm, mbmi->ref_frame[0]); | 
|  | sf[1] = get_ref_scale_factors(cm, mbmi->ref_frame[1]); | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  |  | 
|  | if (mbmi->num_proj_ref[0] > 1) { | 
|  | mbmi->num_proj_ref[0] = av1_selectSamples( | 
|  | &mbmi->mv[0].as_mv, pts0, pts0_inref, mbmi->num_proj_ref[0], bsize); | 
|  | } | 
|  |  | 
|  | if (mbmi->num_proj_ref[0] > 0) { | 
|  | if (!av1_find_projection(mbmi->num_proj_ref[0], pts0, pts0_inref, bsize, | 
|  | mv0, &mbmi->wm_params[0], mi_row, mi_col | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | , | 
|  | sf[0] | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | )) | 
|  | mbmi->wm_params[0].invalid = 0; | 
|  | } | 
|  | if (has_second_ref(mbmi)) { | 
|  | if (mbmi->num_proj_ref[1] > 1) { | 
|  | mbmi->num_proj_ref[1] = av1_selectSamples( | 
|  | &mbmi->mv[1].as_mv, pts1, pts1_inref, mbmi->num_proj_ref[1], bsize); | 
|  | } | 
|  | if (mbmi->num_proj_ref[1] > 0) { | 
|  | if (!av1_find_projection(mbmi->num_proj_ref[1], pts1, pts1_inref, bsize, | 
|  | mv1, &mbmi->wm_params[1], mi_row, mi_col | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | , | 
|  | sf[1] | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | )) | 
|  | mbmi->wm_params[1].invalid = 0; | 
|  | } | 
|  | } | 
|  | #if WARPED_MOTION_DEBUG | 
|  | if (mbmi->wm_params[0].invalid && mbmi->wm_params[1].invalid) | 
|  | printf("Warning: unexpected warped model from aomenc\n"); | 
|  | #endif | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (!mbmi->wm_params[0].invalid) | 
|  | assign_warpmv(cm, xd->submi, bsize, &mbmi->wm_params[0], mi_row, mi_col, | 
|  | 0); | 
|  | if (!mbmi->wm_params[1].invalid) | 
|  | assign_warpmv(cm, xd->submi, bsize, &mbmi->wm_params[1], mi_row, mi_col, | 
|  | 1); | 
|  | #endif | 
|  | #else | 
|  | mbmi->wm_params[0].invalid = 1; | 
|  | MV mv = mbmi->mv[0].as_mv; | 
|  |  | 
|  | if (mbmi->num_proj_ref > 1) { | 
|  | mbmi->num_proj_ref = av1_selectSamples(&mbmi->mv[0].as_mv, pts, pts_inref, | 
|  | mbmi->num_proj_ref, bsize); | 
|  | } | 
|  |  | 
|  | if (mbmi->num_proj_ref > 0 && | 
|  | !av1_find_projection(mbmi->num_proj_ref, pts, pts_inref, bsize, mv, | 
|  | &mbmi->wm_params[0], mi_row, mi_col | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | , | 
|  | get_ref_scale_factors(cm, mbmi->ref_frame[0]) | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | )) { | 
|  | mbmi->wm_params[0].invalid = 0; | 
|  | } | 
|  |  | 
|  | #if WARPED_MOTION_DEBUG | 
|  | if (mbmi->wm_params[0].invalid) | 
|  | printf("Warning: unexpected warped model from aomenc\n"); | 
|  | #endif  // WARPED_MOTION_DEBUG | 
|  |  | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | if (!mbmi->wm_params[0].invalid) | 
|  | assign_warpmv(cm, xd->submi, bsize, &mbmi->wm_params[0], mi_row, mi_col); | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | } | 
|  |  | 
|  | if (mbmi->motion_mode == WARP_EXTEND) { | 
|  | #if CONFIG_SEP_COMP_DRL | 
|  | CANDIDATE_MV *neighbor = | 
|  | &xd->ref_mv_stack[ref_frame][get_ref_mv_idx(mbmi, 0)]; | 
|  | #else | 
|  | CANDIDATE_MV *neighbor = &xd->ref_mv_stack[ref_frame][mbmi->ref_mv_idx]; | 
|  | #endif | 
|  | POSITION base_pos = { 0, 0 }; | 
|  | if (!get_extend_base_pos(cm, xd, mbmi, neighbor->row_offset, | 
|  | neighbor->col_offset, &base_pos)) { | 
|  | printf("Warp extend position error\n"); | 
|  | } | 
|  | assert(!(base_pos.row == 0 && base_pos.col == 0)); | 
|  | const MB_MODE_INFO *neighbor_mi = | 
|  | xd->mi[base_pos.row * xd->mi_stride + base_pos.col]; | 
|  |  | 
|  | if (mbmi->mode == NEARMV) { | 
|  | assert(is_warp_mode(neighbor_mi->motion_mode)); | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | if (mbmi->ref_frame[0] == neighbor_mi->ref_frame[1] && | 
|  | !neighbor_mi->wm_params[1].invalid) | 
|  | mbmi->wm_params[0] = neighbor_mi->wm_params[1]; | 
|  | else if (!neighbor_mi->wm_params[0].invalid) | 
|  | mbmi->wm_params[0] = neighbor_mi->wm_params[0]; | 
|  | else | 
|  | mbmi->wm_params[0] = neighbor_mi->wm_params[1]; | 
|  | #else | 
|  | mbmi->wm_params[0] = neighbor_mi->wm_params[0]; | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | } else { | 
|  | #if CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  | assert(mbmi->mode == WARP_NEWMV); | 
|  | #else | 
|  | assert(mbmi->mode == NEWMV); | 
|  | #endif  // CONFIG_REDESIGN_WARP_MODES_SIGNALING_FLOW | 
|  |  | 
|  | bool neighbor_is_above = | 
|  | xd->up_available && (base_pos.row == -1 && base_pos.col >= 0); | 
|  |  | 
|  | WarpedMotionParams neighbor_params; | 
|  | av1_get_neighbor_warp_model(cm, xd, neighbor_mi, &neighbor_params); | 
|  | if (av1_extend_warp_model( | 
|  | neighbor_is_above, bsize, &mbmi->mv[0].as_mv, mi_row, mi_col, | 
|  | &neighbor_params, &mbmi->wm_params[0] | 
|  | #if CONFIG_ACROSS_SCALE_WARP | 
|  | , | 
|  | get_ref_scale_factors_const(cm, mbmi->ref_frame[0]) | 
|  | #endif  // CONFIG_ACROSS_SCALE_WARP | 
|  | )) { | 
|  | #if WARPED_MOTION_DEBUG | 
|  | printf("Warning: unexpected warped model from aomenc\n"); | 
|  | #endif | 
|  | mbmi->wm_params[0].invalid = 1; | 
|  | } | 
|  | } | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | assign_warpmv(cm, xd->submi, bsize, &mbmi->wm_params[0], mi_row, mi_col | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | , | 
|  | 0 | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | ); | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | } | 
|  |  | 
|  | if (xd->tree_type != LUMA_PART) xd->cfl.store_y = store_cfl_required(cm, xd); | 
|  |  | 
|  | #if !CONFIG_IBC_BV_IMPROVEMENT | 
|  | #if CONFIG_IBC_SR_EXT | 
|  | if (cm->seq_params.enable_refmvbank && | 
|  | !is_intrabc_block(mbmi, xd->tree_type)) { | 
|  | #else | 
|  | if (cm->seq_params.enable_refmvbank) { | 
|  | #endif  // CONFIG_IBC_SR_EXT | 
|  | av1_update_ref_mv_bank(cm, xd, | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | 1, | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | mbmi); | 
|  | } | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | else { | 
|  | decide_rmb_unit_update_count(cm, xd, mbmi); | 
|  | } | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | #endif  // !CONFIG_IBC_BV_IMPROVEMENT | 
|  |  | 
|  | #if DEC_MISMATCH_DEBUG | 
|  | dec_dump_logs(cm, mi, mi_row, mi_col, mode_ctx); | 
|  | #endif  // DEC_MISMATCH_DEBUG | 
|  | } | 
|  |  | 
|  | static void read_inter_frame_mode_info(AV1Decoder *const pbi, | 
|  | DecoderCodingBlock *dcb, aom_reader *r) { | 
|  | AV1_COMMON *const cm = &pbi->common; | 
|  | MACROBLOCKD *const xd = &dcb->xd; | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | int inter_block = 1; | 
|  |  | 
|  | mbmi->mv[0].as_int = 0; | 
|  | mbmi->mv[1].as_int = 0; | 
|  | #if CONFIG_C071_SUBBLK_WARPMV | 
|  | xd->submi[0]->mv[0].as_int = xd->submi[0]->mv[1].as_int = 0; | 
|  | #if CONFIG_COMPOUND_WARP_CAUSAL | 
|  | span_submv(cm, xd->submi, xd->mi_row, xd->mi_col, mbmi->sb_type[PLANE_TYPE_Y], | 
|  | 0); | 
|  | span_submv(cm, xd->submi, xd->mi_row, xd->mi_col, mbmi->sb_type[PLANE_TYPE_Y], | 
|  | 1); | 
|  | #else | 
|  | span_submv(cm, xd->submi, xd->mi_row, xd->mi_col, | 
|  | mbmi->sb_type[PLANE_TYPE_Y]); | 
|  | #endif  // CONFIG_COMPOUND_WARP_CAUSAL | 
|  | #endif  // CONFIG_C071_SUBBLK_WARPMV | 
|  | set_default_max_mv_precision(mbmi, xd->sbi->sb_mv_precision); | 
|  | set_mv_precision(mbmi, mbmi->max_mv_precision);  // initialize to max | 
|  | set_default_precision_set(cm, mbmi, mbmi->sb_type[PLANE_TYPE_Y]); | 
|  | set_most_probable_mv_precision(cm, mbmi, mbmi->sb_type[PLANE_TYPE_Y]); | 
|  |  | 
|  | mbmi->bawp_flag[0] = 0; | 
|  | mbmi->bawp_flag[1] = 0; | 
|  |  | 
|  | #if CONFIG_REFINEMV | 
|  | mbmi->refinemv_flag = 0; | 
|  | #endif  // CONFIG_REFINEMV | 
|  |  | 
|  | mbmi->segment_id = read_inter_segment_id(cm, xd, 1, r); | 
|  |  | 
|  | mbmi->skip_mode = read_skip_mode(cm, xd, r); | 
|  |  | 
|  | mbmi->fsc_mode[PLANE_TYPE_Y] = 0; | 
|  | mbmi->fsc_mode[PLANE_TYPE_UV] = 0; | 
|  |  | 
|  | mbmi->cwp_idx = CWP_EQUAL; | 
|  |  | 
|  | mbmi->warp_ref_idx = 0; | 
|  | mbmi->max_num_warp_candidates = 0; | 
|  | mbmi->warpmv_with_mvd_flag = 0; | 
|  | #if CONFIG_NEW_CONTEXT_MODELING | 
|  | mbmi->use_intrabc[0] = 0; | 
|  | mbmi->use_intrabc[1] = 0; | 
|  | #endif  // CONFIG_NEW_CONTEXT_MODELING | 
|  | #if CONFIG_DIP | 
|  | mbmi->use_intra_dip = 0; | 
|  | #endif  // CONFIG_DIP | 
|  | #if CONFIG_MORPH_PRED | 
|  | mbmi->morph_pred = 0; | 
|  | #endif  // CONFIG_MORPH_PRED | 
|  | #if CONFIG_SKIP_TXFM_OPT | 
|  | if (!mbmi->skip_mode) { | 
|  | inter_block = read_is_inter_block(cm, xd, mbmi->segment_id, r); | 
|  | } | 
|  |  | 
|  | #if CONFIG_IBC_SR_EXT | 
|  | if (!inter_block && | 
|  | av1_allow_intrabc(cm, xd | 
|  | #if CONFIG_ENABLE_IBC_NAT | 
|  | , | 
|  | mbmi->sb_type[xd->tree_type == CHROMA_PART] | 
|  | #endif  // CONFIG_ENABLE_IBC_NAT | 
|  |  | 
|  | ) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | #if CONFIG_NEW_CONTEXT_MODELING | 
|  | mbmi->use_intrabc[0] = 0; | 
|  | mbmi->use_intrabc[1] = 0; | 
|  | #if CONFIG_MORPH_PRED | 
|  | mbmi->morph_pred = 0; | 
|  | #endif  // CONFIG_MORPH_PRED | 
|  | const int intrabc_ctx = get_intrabc_ctx(xd); | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = | 
|  | aom_read_symbol(r, xd->tile_ctx->intrabc_cdf[intrabc_ctx], 2, | 
|  | ACCT_INFO("use_intrabc", "chroma")); | 
|  | #else | 
|  | mbmi->use_intrabc[xd->tree_type == CHROMA_PART] = aom_read_symbol( | 
|  | r, ec_ctx->intrabc_cdf, 2, ACCT_INFO("use_intrabc", "chroma")); | 
|  | #endif  // CONFIG_NEW_CONTEXT_MODELING | 
|  | } | 
|  | #endif  // CONFIG_IBC_SR_EXT | 
|  |  | 
|  | if (inter_block | 
|  | #if CONFIG_IBC_SR_EXT | 
|  | || (!inter_block && is_intrabc_block(mbmi, xd->tree_type)) | 
|  | #endif  // CONFIG_IBC_SR_EXT | 
|  | ) { | 
|  | #if !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | if (mbmi->skip_mode) | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = 1; | 
|  | else | 
|  | #endif  // !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = | 
|  | read_skip_txfm(cm, xd, mbmi->segment_id, r); | 
|  | } else { | 
|  | // Segment SEG_LVL_SKIP should be disabled for intra prediction | 
|  | if (segfeature_active(&cm->seg, mbmi->segment_id, SEG_LVL_SKIP)) { | 
|  | aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME, | 
|  | "Corrupted segment features"); | 
|  | } | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = 0; | 
|  | } | 
|  | #else | 
|  | #if !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | if (mbmi->skip_mode) | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = 1; | 
|  | else | 
|  | #endif  // !CONFIG_SKIP_MODE_ENHANCEMENT | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] = | 
|  | read_skip_txfm(cm, xd, mbmi->segment_id, r); | 
|  | #endif  // CONFIG_SKIP_TXFM_OPT | 
|  |  | 
|  | #if CONFIG_SIX_PARAM_WARP_DELTA | 
|  | mbmi->six_param_warp_model_flag = 0; | 
|  | #endif  // CONFIG_SIX_PARAM_WARP_DELTA | 
|  |  | 
|  | #if CONFIG_WARP_PRECISION | 
|  | mbmi->warp_precision_idx = 0; | 
|  | #endif  // CONFIG_WARP_PRECISION | 
|  | #if CONFIG_WARP_INTER_INTRA | 
|  | mbmi->warp_inter_intra = 0; | 
|  | #endif  // CONFIG_WARP_INTER_INTRA | 
|  |  | 
|  | if (!cm->seg.segid_preskip) | 
|  | mbmi->segment_id = read_inter_segment_id(cm, xd, 0, r); | 
|  |  | 
|  | #if CONFIG_GDF | 
|  | read_gdf(cm, r, xd); | 
|  | #endif  // CONFIG_GDF | 
|  |  | 
|  | read_cdef(cm, r, xd); | 
|  |  | 
|  | if (cm->seq_params.enable_ccso) read_ccso(cm, r, xd); | 
|  |  | 
|  | read_delta_q_params(cm, xd, r); | 
|  |  | 
|  | #if !CONFIG_SKIP_TXFM_OPT | 
|  | if (!mbmi->skip_mode) | 
|  | inter_block = | 
|  | read_is_inter_block(cm, xd, mbmi->segment_id, r | 
|  | #if CONFIG_CONTEXT_DERIVATION | 
|  | , | 
|  | mbmi->skip_txfm[xd->tree_type == CHROMA_PART] | 
|  | #endif  // CONFIG_CONTEXT_DERIVATION | 
|  | ); | 
|  | #endif  // !CONFIG_SKIP_TXFM_OPT | 
|  |  | 
|  | mbmi->current_qindex = xd->current_base_qindex; | 
|  |  | 
|  | #if !CONFIG_TX_PARTITION_CTX | 
|  | xd->above_txfm_context = | 
|  | cm->above_contexts.txfm[xd->tile.tile_row] + xd->mi_col; | 
|  | xd->left_txfm_context = | 
|  | xd->left_txfm_context_buffer + (xd->mi_row & MAX_MIB_MASK); | 
|  | #endif  // !CONFIG_TX_PARTITION_CTX | 
|  |  | 
|  | #if CONFIG_IBC_SR_EXT | 
|  | if (!inter_block && | 
|  | av1_allow_intrabc(cm, xd | 
|  | #if CONFIG_ENABLE_IBC_NAT | 
|  | , | 
|  | mbmi->sb_type[xd->tree_type == CHROMA_PART] | 
|  | #endif  // CONFIG_ENABLE_IBC_NAT | 
|  | ) && | 
|  | xd->tree_type != CHROMA_PART) { | 
|  | mbmi->ref_frame[0] = INTRA_FRAME; | 
|  | mbmi->ref_frame[1] = NONE_FRAME; | 
|  | mbmi->palette_mode_info.palette_size[0] = 0; | 
|  | mbmi->palette_mode_info.palette_size[1] = 0; | 
|  | read_intrabc_info(cm, dcb, r); | 
|  | if (is_intrabc_block(mbmi, xd->tree_type)) { | 
|  | #if CONFIG_LOSSLESS_DPCM | 
|  | mbmi->use_dpcm_y = 0; | 
|  | mbmi->dpcm_mode_y = 0; | 
|  | #if CONFIG_INTER_MODE_CONSOLIDATION | 
|  | mbmi->use_amvd = 0; | 
|  | #endif  // CONFIG_INTER_MODE_CONSOLIDATION | 
|  | #endif  // CONFIG_LOSSLESS_DPCM | 
|  | return; | 
|  | } | 
|  | } | 
|  | #endif  // CONFIG_IBC_SR_EXT | 
|  | if (inter_block) | 
|  | read_inter_block_mode_info(pbi, dcb, mbmi, r); | 
|  | else | 
|  | read_intra_block_mode_info(cm, xd, mbmi, r); | 
|  | } | 
|  |  | 
|  | static void intra_copy_frame_mvs(AV1_COMMON *const cm, int mi_row, int mi_col, | 
|  | int x_inside_boundary, int y_inside_boundary) { | 
|  | const int mi_cols = | 
|  | ROUND_POWER_OF_TWO(cm->mi_params.mi_cols, TMVP_SHIFT_BITS); | 
|  |  | 
|  | MV_REF *frame_mvs = cm->cur_frame->mvs + | 
|  | (mi_row >> TMVP_SHIFT_BITS) * mi_cols + | 
|  | (mi_col >> TMVP_SHIFT_BITS); | 
|  | x_inside_boundary = ROUND_POWER_OF_TWO(x_inside_boundary, TMVP_SHIFT_BITS); | 
|  | y_inside_boundary = ROUND_POWER_OF_TWO(y_inside_boundary, TMVP_SHIFT_BITS); | 
|  |  | 
|  | for (int h = 0; h < y_inside_boundary; h++) { | 
|  | MV_REF *mv = frame_mvs; | 
|  | for (int w = 0; w < x_inside_boundary; w++) { | 
|  | for (int idx = 0; idx < 2; ++idx) { | 
|  | mv->ref_frame[idx] = NONE_FRAME; | 
|  | } | 
|  | mv++; | 
|  | } | 
|  | frame_mvs += mi_cols; | 
|  | } | 
|  | } | 
|  |  | 
|  | void av1_read_mode_info(AV1Decoder *const pbi, DecoderCodingBlock *dcb, | 
|  | aom_reader *r, int x_inside_boundary, | 
|  | int y_inside_boundary) { | 
|  | AV1_COMMON *const cm = &pbi->common; | 
|  | MACROBLOCKD *const xd = &dcb->xd; | 
|  | MB_MODE_INFO *const mi = xd->mi[0]; | 
|  | mi->use_intrabc[xd->tree_type == CHROMA_PART] = 0; | 
|  | mi->warpmv_with_mvd_flag = 0; | 
|  | if (xd->tree_type == SHARED_PART) | 
|  | mi->sb_type[PLANE_TYPE_UV] = mi->sb_type[PLANE_TYPE_Y]; | 
|  |  | 
|  | if (frame_is_intra_only(cm) || mi->region_type == INTRA_REGION) { | 
|  | read_intra_frame_mode_info(cm, dcb, r); | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | if (cm->seq_params.enable_refmvbank) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | if (is_intrabc_block(mbmi, xd->tree_type)) { | 
|  | av1_update_ref_mv_bank(cm, xd, | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | 1, | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | mbmi); | 
|  | } | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | else { | 
|  | decide_rmb_unit_update_count(cm, xd, mbmi); | 
|  | } | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | } | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  | if (cm->seq_params.order_hint_info.enable_ref_frame_mvs) | 
|  | intra_copy_frame_mvs(cm, xd->mi_row, xd->mi_col, x_inside_boundary, | 
|  | y_inside_boundary); | 
|  | } else { | 
|  | read_inter_frame_mode_info(pbi, dcb, r); | 
|  | #if CONFIG_IBC_BV_IMPROVEMENT | 
|  | if (cm->seq_params.enable_refmvbank) { | 
|  | MB_MODE_INFO *const mbmi = xd->mi[0]; | 
|  | if (is_inter_block(mbmi, xd->tree_type)) { | 
|  | av1_update_ref_mv_bank(cm, xd, | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | 1, | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | mbmi); | 
|  | } | 
|  | #if CONFIG_BANK_IMPROVE | 
|  | else { | 
|  | decide_rmb_unit_update_count(cm, xd, mbmi); | 
|  | } | 
|  | #endif  // CONFIG_BANK_IMPROVE | 
|  | } | 
|  | #endif  // CONFIG_IBC_BV_IMPROVEMENT | 
|  |  | 
|  | MB_MODE_INFO *const mbmi_tmp = xd->mi[0]; | 
|  | if (is_inter_block(mbmi_tmp, xd->tree_type)) | 
|  | av1_update_warp_param_bank(cm, xd, mbmi_tmp); | 
|  |  | 
|  | if (cm->seq_params.order_hint_info.enable_ref_frame_mvs) | 
|  | av1_copy_frame_mvs(cm, xd, mi, xd->mi_row, xd->mi_col, x_inside_boundary, | 
|  | y_inside_boundary); | 
|  | } | 
|  | } |