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425 lines
14 KiB
C
425 lines
14 KiB
C
/*
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* Copyright (c) 2016, Alliance for Open Media. All rights reserved
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*
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* This source code is subject to the terms of the BSD 2 Clause License and
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* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
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* was not distributed with this source code in the LICENSE file, you can
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* obtain it at www.aomedia.org/license/software. If the Alliance for Open
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* Media Patent License 1.0 was not distributed with this source code in the
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* PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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*/
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#include <math.h>
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#include "av1/common/common.h"
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#include "av1/common/entropymode.h"
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#include "av1/encoder/cost.h"
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#include "av1/encoder/encodemv.h"
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#include "av1/encoder/subexp.h"
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#include "aom_dsp/aom_dsp_common.h"
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static struct av1_token mv_joint_encodings[MV_JOINTS];
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static struct av1_token mv_class_encodings[MV_CLASSES];
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static struct av1_token mv_fp_encodings[MV_FP_SIZE];
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void av1_entropy_mv_init(void) {
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av1_tokens_from_tree(mv_joint_encodings, av1_mv_joint_tree);
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av1_tokens_from_tree(mv_class_encodings, av1_mv_class_tree);
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av1_tokens_from_tree(mv_fp_encodings, av1_mv_fp_tree);
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}
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static void encode_mv_component(aom_writer *w, int comp, nmv_component *mvcomp,
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MvSubpelPrecision precision) {
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int offset;
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const int sign = comp < 0;
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const int mag = sign ? -comp : comp;
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const int mv_class = av1_get_mv_class(mag - 1, &offset);
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const int d = offset >> 3; // int mv data
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const int fr = (offset >> 1) & 3; // fractional mv data
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const int hp = offset & 1; // high precision mv data
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assert(comp != 0);
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// Sign
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#if CONFIG_NEW_MULTISYMBOL
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aom_write_bit(w, sign);
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#else
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aom_write(w, sign, mvcomp->sign);
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#endif
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// Class
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aom_write_symbol(w, mv_class, mvcomp->class_cdf, MV_CLASSES);
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// Integer bits
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if (mv_class == MV_CLASS_0) {
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#if CONFIG_NEW_MULTISYMBOL
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aom_write_symbol(w, d, mvcomp->class0_cdf, CLASS0_SIZE);
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#else
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aom_write(w, d, mvcomp->class0[0]);
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#endif
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} else {
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int i;
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const int n = mv_class + CLASS0_BITS - 1; // number of bits
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#if CONFIG_NEW_MULTISYMBOL
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for (i = 0; i < n; ++i)
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aom_write_symbol(w, (d >> i) & 1, mvcomp->bits_cdf[(i + 1) / 2], 2);
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#else
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for (i = 0; i < n; ++i) aom_write(w, (d >> i) & 1, mvcomp->bits[i]);
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#endif
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}
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// Fractional bits
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#if CONFIG_INTRABC || CONFIG_AMVR
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if (precision > MV_SUBPEL_NONE)
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#endif // CONFIG_INTRABC || CONFIG_AMVR
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{
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aom_write_symbol(
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w, fr,
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mv_class == MV_CLASS_0 ? mvcomp->class0_fp_cdf[d] : mvcomp->fp_cdf,
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MV_FP_SIZE);
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}
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// High precision bit
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if (precision > MV_SUBPEL_LOW_PRECISION)
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#if CONFIG_NEW_MULTISYMBOL
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aom_write_symbol(
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w, hp, mv_class == MV_CLASS_0 ? mvcomp->class0_hp_cdf : mvcomp->hp_cdf,
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2);
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#else
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aom_write(w, hp, mv_class == MV_CLASS_0 ? mvcomp->class0_hp : mvcomp->hp);
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#endif
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}
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static void build_nmv_component_cost_table(int *mvcost,
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const nmv_component *const mvcomp,
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MvSubpelPrecision precision) {
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int i, v;
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int sign_cost[2], class_cost[MV_CLASSES], class0_cost[CLASS0_SIZE];
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int bits_cost[MV_OFFSET_BITS][2];
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int class0_fp_cost[CLASS0_SIZE][MV_FP_SIZE], fp_cost[MV_FP_SIZE];
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int class0_hp_cost[2], hp_cost[2];
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sign_cost[0] = av1_cost_zero(mvcomp->sign);
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sign_cost[1] = av1_cost_one(mvcomp->sign);
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av1_cost_tokens(class_cost, mvcomp->classes, av1_mv_class_tree);
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av1_cost_tokens(class0_cost, mvcomp->class0, av1_mv_class0_tree);
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for (i = 0; i < MV_OFFSET_BITS; ++i) {
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bits_cost[i][0] = av1_cost_zero(mvcomp->bits[i]);
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bits_cost[i][1] = av1_cost_one(mvcomp->bits[i]);
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}
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for (i = 0; i < CLASS0_SIZE; ++i)
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av1_cost_tokens(class0_fp_cost[i], mvcomp->class0_fp[i], av1_mv_fp_tree);
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av1_cost_tokens(fp_cost, mvcomp->fp, av1_mv_fp_tree);
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if (precision > MV_SUBPEL_LOW_PRECISION) {
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class0_hp_cost[0] = av1_cost_zero(mvcomp->class0_hp);
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class0_hp_cost[1] = av1_cost_one(mvcomp->class0_hp);
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hp_cost[0] = av1_cost_zero(mvcomp->hp);
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hp_cost[1] = av1_cost_one(mvcomp->hp);
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}
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mvcost[0] = 0;
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for (v = 1; v <= MV_MAX; ++v) {
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int z, c, o, d, e, f, cost = 0;
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z = v - 1;
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c = av1_get_mv_class(z, &o);
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cost += class_cost[c];
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d = (o >> 3); /* int mv data */
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f = (o >> 1) & 3; /* fractional pel mv data */
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e = (o & 1); /* high precision mv data */
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if (c == MV_CLASS_0) {
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cost += class0_cost[d];
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} else {
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const int b = c + CLASS0_BITS - 1; /* number of bits */
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for (i = 0; i < b; ++i) cost += bits_cost[i][((d >> i) & 1)];
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}
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#if CONFIG_INTRABC || CONFIG_AMVR
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if (precision > MV_SUBPEL_NONE)
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#endif // CONFIG_INTRABC || CONFIG_AMVR
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{
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if (c == MV_CLASS_0) {
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cost += class0_fp_cost[d][f];
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} else {
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cost += fp_cost[f];
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}
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if (precision > MV_SUBPEL_LOW_PRECISION) {
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if (c == MV_CLASS_0) {
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cost += class0_hp_cost[e];
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} else {
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cost += hp_cost[e];
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}
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}
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}
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mvcost[v] = cost + sign_cost[0];
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mvcost[-v] = cost + sign_cost[1];
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}
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}
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#if !CONFIG_NEW_MULTISYMBOL
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static void update_mv(aom_writer *w, const unsigned int ct[2], aom_prob *cur_p,
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aom_prob upd_p) {
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(void)upd_p;
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// Just use the default maximum number of tile groups to avoid passing in the
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// actual
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// number
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av1_cond_prob_diff_update(w, cur_p, ct, DEFAULT_MAX_NUM_TG);
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}
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void av1_write_nmv_probs(AV1_COMMON *cm, int usehp, aom_writer *w,
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nmv_context_counts *const nmv_counts) {
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int i;
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int nmv_ctx = 0;
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#if CONFIG_AMVR
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if (cm->cur_frame_mv_precision_level) {
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return;
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}
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#endif
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for (nmv_ctx = 0; nmv_ctx < NMV_CONTEXTS; ++nmv_ctx) {
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nmv_context *const mvc = &cm->fc->nmvc[nmv_ctx];
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nmv_context_counts *const counts = &nmv_counts[nmv_ctx];
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if (usehp) {
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for (i = 0; i < 2; ++i) {
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update_mv(w, counts->comps[i].class0_hp, &mvc->comps[i].class0_hp,
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MV_UPDATE_PROB);
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update_mv(w, counts->comps[i].hp, &mvc->comps[i].hp, MV_UPDATE_PROB);
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}
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}
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}
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}
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#endif
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void av1_encode_mv(AV1_COMP *cpi, aom_writer *w, const MV *mv, const MV *ref,
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nmv_context *mvctx, int usehp) {
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const MV diff = { mv->row - ref->row, mv->col - ref->col };
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const MV_JOINT_TYPE j = av1_get_mv_joint(&diff);
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#if CONFIG_AMVR
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if (cpi->common.cur_frame_mv_precision_level) {
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usehp = MV_SUBPEL_NONE;
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}
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#endif
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aom_write_symbol(w, j, mvctx->joint_cdf, MV_JOINTS);
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if (mv_joint_vertical(j))
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encode_mv_component(w, diff.row, &mvctx->comps[0], usehp);
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if (mv_joint_horizontal(j))
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encode_mv_component(w, diff.col, &mvctx->comps[1], usehp);
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// If auto_mv_step_size is enabled then keep track of the largest
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// motion vector component used.
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if (cpi->sf.mv.auto_mv_step_size) {
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unsigned int maxv = AOMMAX(abs(mv->row), abs(mv->col)) >> 3;
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cpi->max_mv_magnitude = AOMMAX(maxv, cpi->max_mv_magnitude);
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}
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}
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#if CONFIG_INTRABC
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void av1_encode_dv(aom_writer *w, const MV *mv, const MV *ref,
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nmv_context *mvctx) {
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const MV diff = { mv->row - ref->row, mv->col - ref->col };
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const MV_JOINT_TYPE j = av1_get_mv_joint(&diff);
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aom_write_symbol(w, j, mvctx->joint_cdf, MV_JOINTS);
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if (mv_joint_vertical(j))
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encode_mv_component(w, diff.row, &mvctx->comps[0], MV_SUBPEL_NONE);
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if (mv_joint_horizontal(j))
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encode_mv_component(w, diff.col, &mvctx->comps[1], MV_SUBPEL_NONE);
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}
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#endif // CONFIG_INTRABC
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void av1_build_nmv_cost_table(int *mvjoint, int *mvcost[2],
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const nmv_context *ctx,
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MvSubpelPrecision precision) {
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av1_cost_tokens(mvjoint, ctx->joints, av1_mv_joint_tree);
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build_nmv_component_cost_table(mvcost[0], &ctx->comps[0], precision);
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build_nmv_component_cost_table(mvcost[1], &ctx->comps[1], precision);
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}
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static void inc_mvs(const MB_MODE_INFO *mbmi, const MB_MODE_INFO_EXT *mbmi_ext,
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const int_mv mvs[2], const int_mv pred_mvs[2],
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nmv_context_counts *nmv_counts
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#if CONFIG_AMVR
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,
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MvSubpelPrecision precision
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#endif
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) {
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int i;
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PREDICTION_MODE mode = mbmi->mode;
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if (mode == NEWMV || mode == NEW_NEWMV) {
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for (i = 0; i < 1 + has_second_ref(mbmi); ++i) {
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const MV *ref = &mbmi_ext->ref_mvs[mbmi->ref_frame[i]][0].as_mv;
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const MV diff = { mvs[i].as_mv.row - ref->row,
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mvs[i].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], i, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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(void)pred_mvs;
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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}
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} else if (mode == NEAREST_NEWMV || mode == NEAR_NEWMV) {
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const MV *ref = &mbmi_ext->ref_mvs[mbmi->ref_frame[1]][0].as_mv;
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const MV diff = { mvs[1].as_mv.row - ref->row,
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mvs[1].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], 1, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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} else if (mode == NEW_NEARESTMV || mode == NEW_NEARMV) {
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const MV *ref = &mbmi_ext->ref_mvs[mbmi->ref_frame[0]][0].as_mv;
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const MV diff = { mvs[0].as_mv.row - ref->row,
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mvs[0].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], 0, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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#if CONFIG_COMPOUND_SINGLEREF
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} else {
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assert( // mode == SR_NEAREST_NEWMV ||
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mode == SR_NEAR_NEWMV || mode == SR_ZERO_NEWMV || mode == SR_NEW_NEWMV);
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const MV *ref = &mbmi_ext->ref_mvs[mbmi->ref_frame[0]][0].as_mv;
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], 0, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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(void)pred_mvs;
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MV diff;
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if (mode == SR_NEW_NEWMV) {
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diff.row = mvs[0].as_mv.row - ref->row;
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diff.col = mvs[0].as_mv.col - ref->col;
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av1_inc_mv(&diff, counts, 1);
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}
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diff.row = mvs[1].as_mv.row - ref->row;
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diff.col = mvs[1].as_mv.col - ref->col;
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av1_inc_mv(&diff, counts, 1);
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#endif // CONFIG_COMPOUND_SINGLEREF
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}
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}
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static void inc_mvs_sub8x8(const MODE_INFO *mi, int block, const int_mv mvs[2],
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const MB_MODE_INFO_EXT *mbmi_ext,
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nmv_context_counts *nmv_counts
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#if CONFIG_AMVR
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,
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MvSubpelPrecision precision
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#endif
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) {
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int i;
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PREDICTION_MODE mode = mi->bmi[block].as_mode;
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const MB_MODE_INFO *mbmi = &mi->mbmi;
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if (mode == NEWMV || mode == NEW_NEWMV) {
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for (i = 0; i < 1 + has_second_ref(&mi->mbmi); ++i) {
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const MV *ref = &mi->bmi[block].ref_mv[i].as_mv;
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const MV diff = { mvs[i].as_mv.row - ref->row,
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mvs[i].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], i, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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}
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} else if (mode == NEAREST_NEWMV || mode == NEAR_NEWMV) {
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const MV *ref = &mi->bmi[block].ref_mv[1].as_mv;
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const MV diff = { mvs[1].as_mv.row - ref->row,
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mvs[1].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], 1, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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} else if (mode == NEW_NEARESTMV || mode == NEW_NEARMV) {
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const MV *ref = &mi->bmi[block].ref_mv[0].as_mv;
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const MV diff = { mvs[0].as_mv.row - ref->row,
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mvs[0].as_mv.col - ref->col };
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int8_t rf_type = av1_ref_frame_type(mbmi->ref_frame);
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int nmv_ctx =
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av1_nmv_ctx(mbmi_ext->ref_mv_count[rf_type],
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mbmi_ext->ref_mv_stack[rf_type], 0, mbmi->ref_mv_idx);
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nmv_context_counts *counts = &nmv_counts[nmv_ctx];
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#if CONFIG_AMVR
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av1_inc_mv(&diff, counts, precision);
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#else
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av1_inc_mv(&diff, counts, 1);
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#endif
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}
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}
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void av1_update_mv_count(ThreadData *td) {
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const MACROBLOCKD *xd = &td->mb.e_mbd;
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const MODE_INFO *mi = xd->mi[0];
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const MB_MODE_INFO *const mbmi = &mi->mbmi;
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const MB_MODE_INFO_EXT *mbmi_ext = td->mb.mbmi_ext;
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#if CONFIG_CB4X4
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const int unify_bsize = 1;
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#else
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const int unify_bsize = 0;
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#endif
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#if CONFIG_AMVR
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MvSubpelPrecision precision = 1;
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if (xd->cur_frame_mv_precision_level) {
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precision = MV_SUBPEL_NONE;
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}
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#endif
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if (mbmi->sb_type < BLOCK_8X8 && !unify_bsize) {
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const int num_4x4_w = num_4x4_blocks_wide_lookup[mbmi->sb_type];
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const int num_4x4_h = num_4x4_blocks_high_lookup[mbmi->sb_type];
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int idx, idy;
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|
|
|
for (idy = 0; idy < 2; idy += num_4x4_h) {
|
|
for (idx = 0; idx < 2; idx += num_4x4_w) {
|
|
const int i = idy * 2 + idx;
|
|
|
|
if (have_newmv_in_inter_mode(mi->bmi[i].as_mode))
|
|
|
|
#if CONFIG_AMVR
|
|
inc_mvs_sub8x8(mi, i, mi->bmi[i].as_mv, mbmi_ext, td->counts->mv,
|
|
precision);
|
|
#else
|
|
inc_mvs_sub8x8(mi, i, mi->bmi[i].as_mv, mbmi_ext, td->counts->mv);
|
|
#endif
|
|
}
|
|
}
|
|
} else {
|
|
if (have_newmv_in_inter_mode(mbmi->mode))
|
|
|
|
#if CONFIG_AMVR
|
|
inc_mvs(mbmi, mbmi_ext, mbmi->mv, mbmi->pred_mv, td->counts->mv,
|
|
precision);
|
|
#else
|
|
inc_mvs(mbmi, mbmi_ext, mbmi->mv, mbmi->pred_mv, td->counts->mv);
|
|
#endif
|
|
}
|
|
}
|