blob: 1040a2043de09caaeef128b449dbc4c9c4ee6892 [file] [log] [blame]
/*
* Copyright (c) 2017, Alliance for Open Media. All rights reserved
*
* This source code is subject to the terms of the BSD 2 Clause License and
* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
* was not distributed with this source code in the LICENSE file, you can
* obtain it at www.aomedia.org/license/software. 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 www.aomedia.org/license/patent.
*/
#include "aom_ports/mem.h"
#include "av1/common/scan.h"
#include "av1/common/idct.h"
#include "av1/common/txb_common.h"
#include "av1/decoder/decodemv.h"
#include "av1/decoder/decodetxb.h"
#include "av1/decoder/symbolrate.h"
#define ACCT_STR __func__
static int read_golomb(MACROBLOCKD *xd, aom_reader *r, FRAME_COUNTS *counts) {
#if !CONFIG_SYMBOLRATE
(void)counts;
#endif
int x = 1;
int length = 0;
int i = 0;
while (!i) {
i = av1_read_record_bit(counts, r, ACCT_STR);
++length;
if (length >= 32) {
aom_internal_error(xd->error_info, AOM_CODEC_CORRUPT_FRAME,
"Invalid length in read_golomb");
break;
}
}
for (i = 0; i < length - 1; ++i) {
x <<= 1;
x += av1_read_record_bit(counts, r, ACCT_STR);
}
return x - 1;
}
static INLINE int rec_eob_pos(const int eob_token, const int extra) {
int eob = k_eob_group_start[eob_token];
if (eob > 2) {
eob += extra;
}
return eob;
}
uint8_t av1_read_coeffs_txb(const AV1_COMMON *const cm, MACROBLOCKD *const xd,
aom_reader *const r, const int blk_row,
const int blk_col, const int plane,
const TXB_CTX *const txb_ctx, const TX_SIZE tx_size,
int16_t *const max_scan_line, int *const eob) {
FRAME_CONTEXT *const ec_ctx = xd->tile_ctx;
#if TXCOEFF_TIMER
FRAME_COUNTS *const counts = NULL;
#else
FRAME_COUNTS *const counts = xd->counts;
#endif
const TX_SIZE txs_ctx = get_txsize_entropy_ctx(tx_size);
const PLANE_TYPE plane_type = get_plane_type(plane);
MB_MODE_INFO *const mbmi = &xd->mi[0]->mbmi;
const int seg_eob = av1_get_max_eob(tx_size);
int c = 0;
int num_updates = 0;
struct macroblockd_plane *const pd = &xd->plane[plane];
const int16_t *const dequant = pd->seg_dequant_QTX[mbmi->segment_id];
tran_low_t *const tcoeffs = pd->dqcoeff;
#if !CONFIG_DAALA_TX
const int shift = av1_get_tx_scale(tx_size);
#endif
const int bwl = get_txb_bwl(tx_size);
const int width = get_txb_wide(tx_size);
const int height = get_txb_high(tx_size);
int cul_level = 0;
uint8_t levels_buf[TX_PAD_2D];
uint8_t *const levels = set_levels(levels_buf, width);
DECLARE_ALIGNED(16, uint8_t, level_counts[MAX_TX_SQUARE]);
int8_t signs[MAX_TX_SQUARE];
uint16_t update_pos[MAX_TX_SQUARE];
const int all_zero = av1_read_record_bin(
counts, r, ec_ctx->txb_skip_cdf[txs_ctx][txb_ctx->txb_skip_ctx], 2,
ACCT_STR);
// printf("txb_skip: %d %2d\n", txs_ctx, txb_ctx->txb_skip_ctx);
if (xd->counts)
++xd->counts->txb_skip[txs_ctx][txb_ctx->txb_skip_ctx][all_zero];
*eob = 0;
if (all_zero) {
*max_scan_line = 0;
#if CONFIG_TXK_SEL
if (plane == 0)
mbmi->txk_type[(blk_row << MAX_MIB_SIZE_LOG2) + blk_col] = DCT_DCT;
#endif
return 0;
}
memset(levels_buf, 0,
sizeof(*levels_buf) *
((width + TX_PAD_HOR) * (height + TX_PAD_VER) + TX_PAD_END));
(void)blk_row;
(void)blk_col;
#if CONFIG_TXK_SEL
av1_read_tx_type(cm, xd, blk_row, blk_col, plane, get_min_tx_size(tx_size),
r);
#endif
const TX_TYPE tx_type =
av1_get_tx_type(plane_type, xd, blk_row, blk_col, tx_size);
const SCAN_ORDER *const scan_order = get_scan(cm, tx_size, tx_type, mbmi);
const int16_t *const scan = scan_order->scan;
int dummy;
const int max_eob_pt = get_eob_pos_token(seg_eob, &dummy);
int eob_extra = 0;
int eob_pt = 1;
for (eob_pt = 1; eob_pt < max_eob_pt; eob_pt++) {
const int eob_pos_ctx = av1_get_eob_pos_ctx(tx_type, eob_pt);
const int is_equal = av1_read_record_bin(
counts, r, ec_ctx->eob_flag_cdf[txs_ctx][plane_type][eob_pos_ctx], 2,
ACCT_STR);
// printf("eob_flag_cdf: %d %d %2d\n", txs_ctx, plane_type, eob_pos_ctx);
// aom_read_symbol(r,
// ec_ctx->eob_flag_cdf[AOMMIN(txs_ctx,3)][plane_type][eob_pos_ctx], 2,
// ACCT_STR);
if (counts) ++counts->eob_flag[txs_ctx][plane_type][eob_pos_ctx][is_equal];
if (is_equal) {
break;
}
}
// printf("Dec: ");
if (k_eob_offset_bits[eob_pt] > 0) {
int bit = av1_read_record_bin(
counts, r, ec_ctx->eob_extra_cdf[txs_ctx][plane_type][eob_pt], 2,
ACCT_STR);
// printf("eob_extra_cdf: %d %d %2d\n", txs_ctx, plane_type, eob_pt);
if (counts) ++counts->eob_extra[txs_ctx][plane_type][eob_pt][bit];
if (bit) {
eob_extra += (1 << (k_eob_offset_bits[eob_pt] - 1));
}
for (int i = 1; i < k_eob_offset_bits[eob_pt]; i++) {
bit = av1_read_record_bit(counts, r, ACCT_STR);
// printf("eob_bit:\n");
if (bit) {
eob_extra += (1 << (k_eob_offset_bits[eob_pt] - 1 - i));
}
// printf("%d ", bit);
}
}
*eob = rec_eob_pos(eob_pt, eob_extra);
// printf("=>[%d, %d], (%d, %d)\n", seg_eob, *eob, eob_pt, eob_extra);
for (int i = 0; i < *eob; ++i) {
c = *eob - 1 - i;
const int pos = scan[c];
#if CONFIG_LV_MAP_MULTI
const int coeff_ctx = get_nz_map_ctx(levels, pos, bwl, height, c,
c == *eob - 1, tx_size, tx_type);
#if USE_BASE_EOB_ALPHABET
aom_cdf_prob *cdf;
int nsymbs;
if (c == *eob - 1) {
cdf = ec_ctx->coeff_base_eob_cdf[txs_ctx][plane_type]
[coeff_ctx - SIG_COEF_CONTEXTS +
SIG_COEF_CONTEXTS_EOB];
nsymbs = 3;
} else {
cdf = ec_ctx->coeff_base_cdf[txs_ctx][plane_type][coeff_ctx];
nsymbs = 4;
}
const int level = av1_read_record_symbol(counts, r, cdf, nsymbs, ACCT_STR) +
(c == *eob - 1);
if (counts) {
if (c < *eob - 1) {
++counts->nz_map[txs_ctx][plane_type][coeff_ctx][level != 0];
}
if (level != 0) {
for (int k = 0; k < NUM_BASE_LEVELS; ++k) {
++counts
->coeff_base[txs_ctx][plane_type][k][coeff_ctx][level > k + 1];
if (level == k + 1) break;
}
}
}
#else
const int level = av1_read_record_symbol(
counts, r, ec_ctx->coeff_base_cdf[txs_ctx][plane_type][coeff_ctx], 4,
ACCT_STR);
#endif
// printf("base_cdf: %d %d %2d\n", txs_ctx, plane_type, coeff_ctx);
// printf("base_cdf: %d %d %2d : %3d %3d %3d\n", txs_ctx, plane_type,
// coeff_ctx,
// ec_ctx->coeff_base_cdf[txs_ctx][plane_type][coeff_ctx][0]>>7,
// ec_ctx->coeff_base_cdf[txs_ctx][plane_type][coeff_ctx][1]>>7,
// ec_ctx->coeff_base_cdf[txs_ctx][plane_type][coeff_ctx][2]>>7);
if (level) {
levels[get_padded_idx(pos, bwl)] = level;
*max_scan_line = AOMMAX(*max_scan_line, pos);
if (level < 3) {
cul_level += level;
#if CONFIG_DAALA_TX
tcoeffs[pos] = level * dequant[!!c];
#else
tcoeffs[pos] = (level * dequant[!!c]) >> shift;
#endif
} else {
update_pos[num_updates++] = pos;
}
}
#else
int is_nz;
const int coeff_ctx = get_nz_map_ctx(levels, pos, bwl, tx_size, tx_type);
if (c < *eob - 1) {
is_nz = av1_read_record_bin(
counts, r, ec_ctx->nz_map_cdf[txs_ctx][plane_type][coeff_ctx], 2,
ACCT_STR);
} else {
is_nz = 1;
}
if (is_nz) {
int k;
for (k = 0; k < NUM_BASE_LEVELS; ++k) {
const int ctx = coeff_ctx;
const int is_k = av1_read_record_bin(
counts, r, ec_ctx->coeff_base_cdf[txs_ctx][plane_type][k][ctx], 2,
ACCT_STR);
if (counts) ++counts->coeff_base[txs_ctx][plane_type][k][ctx][is_k];
// semantic: is_k = 1 if level > (k+1)
if (is_k == 0) {
cul_level += k + 1;
#if CONFIG_DAALA_TX
tcoeffs[pos] = (k + 1) * dequant[!!c];
#else
tcoeffs[pos] = ((k + 1) * dequant[!!c]) >> shift;
#endif
break;
}
}
levels[get_padded_idx(pos, bwl)] = k + 1;
*max_scan_line = AOMMAX(*max_scan_line, pos);
if (k == NUM_BASE_LEVELS) {
update_pos[num_updates++] = pos;
}
}
#endif
}
// Loop to decode all signs in the transform block,
// starting with the sign of the DC (if applicable)
for (c = 0; c < *eob; ++c) {
const int pos = scan[c];
int8_t *const sign = &signs[pos];
if (levels[get_padded_idx(pos, bwl)] == 0) continue;
if (c == 0) {
const int dc_sign_ctx = txb_ctx->dc_sign_ctx;
#if LV_MAP_PROB
*sign = av1_read_record_bin(
counts, r, ec_ctx->dc_sign_cdf[plane_type][dc_sign_ctx], 2, ACCT_STR);
// printf("dc_sign: %d %d\n", plane_type, dc_sign_ctx);
#else
*sign = aom_read(r, ec_ctx->dc_sign[plane_type][dc_sign_ctx], ACCT_STR);
#endif
if (counts) ++counts->dc_sign[plane_type][dc_sign_ctx][*sign];
} else {
*sign = av1_read_record_bit(counts, r, ACCT_STR);
}
if (*sign) tcoeffs[pos] = -tcoeffs[pos];
}
if (num_updates) {
#if !CONFIG_LV_MAP_MULTI
av1_get_br_level_counts(levels, width, height, level_counts);
#endif
for (c = 0; c < num_updates; ++c) {
const int pos = update_pos[c];
uint8_t *const level = &levels[get_padded_idx(pos, bwl)];
int idx;
int ctx;
assert(*level > NUM_BASE_LEVELS);
#if !CONFIG_LV_MAP_MULTI
ctx = get_br_ctx(levels, pos, bwl, level_counts[pos]);
#endif
#if CONFIG_LV_MAP_MULTI
#if USE_CAUSAL_BR_CTX
ctx = get_br_ctx(levels, pos, bwl, level_counts[pos], tx_type);
#else
ctx = get_br_ctx(levels, pos, bwl, level_counts[pos]);
#endif
for (idx = 0; idx < COEFF_BASE_RANGE / (BR_CDF_SIZE - 1); ++idx) {
int k = av1_read_record_symbol(
counts, r,
ec_ctx->coeff_br_cdf[AOMMIN(txs_ctx, TX_16X16)][plane_type][ctx],
BR_CDF_SIZE, ACCT_STR);
*level += k;
if (counts) {
for (int lps = 0; lps < BR_CDF_SIZE - 1; lps++) {
++counts->coeff_lps[AOMMIN(txs_ctx, TX_16X16)][plane_type][lps][ctx]
[lps == k];
if (lps == k) break;
}
}
if (k < BR_CDF_SIZE - 1) break;
}
if (*level <= NUM_BASE_LEVELS + COEFF_BASE_RANGE) {
cul_level += *level;
#if CONFIG_DAALA_TX
tran_low_t t = *level * dequant[!!pos];
#else
tran_low_t t = (*level * dequant[!!pos]) >> shift;
#endif
if (signs[pos]) t = -t;
tcoeffs[pos] = t;
continue;
}
#else
for (idx = 0; idx < BASE_RANGE_SETS; ++idx) {
// printf("br: %d %d %d %d\n", txs_ctx, plane_type, idx, ctx);
if (av1_read_record_bin(
counts, r, ec_ctx->coeff_br_cdf[txs_ctx][plane_type][idx][ctx],
2, ACCT_STR)) {
const int extra_bits = (1 << br_extra_bits[idx]) - 1;
// int br_offset = aom_read_literal(r, extra_bits, ACCT_STR);
int br_offset = 0;
int tok;
if (counts) ++counts->coeff_br[txs_ctx][plane_type][idx][ctx][1];
for (tok = 0; tok < extra_bits; ++tok) {
if (av1_read_record_bin(
counts, r, ec_ctx->coeff_lps_cdf[txs_ctx][plane_type][ctx],
2, ACCT_STR)) {
br_offset = tok;
if (counts) ++counts->coeff_lps[txs_ctx][plane_type][ctx][1];
break;
}
if (counts) ++counts->coeff_lps[txs_ctx][plane_type][ctx][0];
}
if (tok == extra_bits) br_offset = extra_bits;
const int br_base = br_index_to_coeff[idx];
*level = NUM_BASE_LEVELS + 1 + br_base + br_offset;
cul_level += *level;
#if CONFIG_DAALA_TX
tran_low_t t = *level * dequant[!!pos];
#else
tran_low_t t = (*level * dequant[!!pos]) >> shift;
#endif
if (signs[pos]) t = -t;
tcoeffs[pos] = t;
break;
}
if (counts) ++counts->coeff_br[txs_ctx][plane_type][idx][ctx][0];
}
if (idx < BASE_RANGE_SETS) continue;
#endif
// decode 0-th order Golomb code
*level = COEFF_BASE_RANGE + 1 + NUM_BASE_LEVELS;
// Save golomb in tcoeffs because adding it to level may incur overflow
tran_low_t t = *level + read_golomb(xd, r, counts);
cul_level += t;
#if CONFIG_DAALA_TX
t = t * dequant[!!pos];
#else
t = (t * dequant[!!pos]) >> shift;
#endif
if (signs[pos]) t = -t;
tcoeffs[pos] = t;
}
}
cul_level = AOMMIN(63, cul_level);
// DC value
set_dc_sign(&cul_level, tcoeffs[0]);
return cul_level;
}
uint8_t av1_read_coeffs_txb_facade(const AV1_COMMON *const cm,
MACROBLOCKD *const xd, aom_reader *const r,
const int row, const int col,
const int plane, const TX_SIZE tx_size,
int16_t *const max_scan_line,
int *const eob) {
MB_MODE_INFO *const mbmi = &xd->mi[0]->mbmi;
struct macroblockd_plane *const pd = &xd->plane[plane];
const BLOCK_SIZE bsize = mbmi->sb_type;
const BLOCK_SIZE plane_bsize = get_plane_block_size(bsize, pd);
TXB_CTX txb_ctx;
get_txb_ctx(plane_bsize, tx_size, plane, pd->above_context + col,
pd->left_context + row, &txb_ctx);
uint8_t cul_level = av1_read_coeffs_txb(cm, xd, r, row, col, plane, &txb_ctx,
tx_size, max_scan_line, eob);
#if CONFIG_ADAPT_SCAN
PLANE_TYPE plane_type = get_plane_type(plane);
TX_TYPE tx_type = av1_get_tx_type(plane_type, xd, row, col, tx_size);
const int mi_row = -xd->mb_to_top_edge >> (3 + MI_SIZE_LOG2);
if (xd->counts && *eob > 0)
av1_update_scan_count_facade(cm, xd, mi_row, tx_size, tx_type, pd->dqcoeff,
*eob);
#endif
av1_set_contexts(xd, pd, plane, tx_size, cul_level, col, row);
return cul_level;
}