Coverage Report

Created: 2026-08-31 06:22

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/work/svt-av1/Source/Lib/Codec/entropy_coding.c
Line
Count
Source
1
/*
2
* Copyright(c) 2019 Intel Corporation
3
* Copyright (c) 2016, Alliance for Open Media. All rights reserved
4
*
5
* This source code is subject to the terms of the BSD 2 Clause License and
6
* the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
7
* was not distributed with this source code in the LICENSE file, you can
8
* obtain it at https://www.aomedia.org/license/software-license. If the Alliance for Open
9
* Media Patent License 1.0 was not distributed with this source code in the
10
* PATENTS file, you can obtain it at https://www.aomedia.org/license/patent-license.
11
*/
12
13
#include <stdlib.h>
14
#include <string.h>
15
#include <math.h>
16
17
#include "EbSvtAv1.h"
18
#include "entropy_coding.h"
19
#include "utility.h"
20
#include "transforms.h"
21
#include "ec_process.h"
22
#include "common_utils.h"
23
#include "adaptive_mv_pred.h"
24
#include "rd_cost.h"
25
#include "svt_log.h"
26
#include "full_loop.h"
27
#include "aom_dsp_rtcd.h"
28
#include "inter_prediction.h"
29
#include "mode_decision.h"
30
#include "restoration.h"
31
32
4.67k
static void mem_put_varsize(uint8_t* const dst, const int sz, const int val) {
33
4.67k
    switch (sz) {
34
4.67k
    case 1:
35
4.67k
        dst[0] = (uint8_t)(val & 0xff);
36
4.67k
        break;
37
0
    case 2:
38
0
        mem_put_le16(dst, val);
39
0
        break;
40
0
    case 3:
41
0
        mem_put_le24(dst, val);
42
0
        break;
43
0
    case 4:
44
0
        mem_put_le32(dst, val);
45
0
        break;
46
0
    default:
47
0
        assert(0 && "Invalid size");
48
0
        break;
49
4.67k
    }
50
4.67k
}
51
52
int svt_aom_get_comp_index_context_enc(PictureParentControlSet* pcs, int cur_frame_index, int bck_frame_index,
53
0
                                       int fwd_frame_index, const MacroBlockD* xd) {
54
0
    const int fwd = abs(svt_aom_get_relative_dist_enc(&pcs->scs->seq_header, fwd_frame_index, cur_frame_index));
55
0
    const int bck = abs(svt_aom_get_relative_dist_enc(&pcs->scs->seq_header, cur_frame_index, bck_frame_index));
56
57
0
    const MbModeInfo* const above_mi  = xd->above_mbmi;
58
0
    const MbModeInfo* const left_mi   = xd->left_mbmi;
59
0
    const int               offset    = fwd == bck;
60
0
    int                     above_ctx = 0, left_ctx = 0;
61
62
0
    if (above_mi) {
63
0
        if (has_second_ref(&above_mi->block_mi)) {
64
0
            above_ctx = above_mi->block_mi.compound_idx;
65
0
        } else if (above_mi->block_mi.ref_frame[0] == ALTREF_FRAME) {
66
0
            above_ctx = 1;
67
0
        }
68
0
    }
69
70
0
    if (left_mi) {
71
0
        if (has_second_ref(&left_mi->block_mi)) {
72
0
            left_ctx = left_mi->block_mi.compound_idx;
73
0
        } else if (left_mi->block_mi.ref_frame[0] == ALTREF_FRAME) {
74
0
            left_ctx = 1;
75
0
        }
76
0
    }
77
0
    return above_ctx + left_ctx + 3 * offset;
78
0
}
79
80
0
int svt_aom_get_comp_group_idx_context_enc(const MacroBlockD* xd) {
81
0
    const MbModeInfo* const above_mi  = xd->above_mbmi;
82
0
    const MbModeInfo* const left_mi   = xd->left_mbmi;
83
0
    int                     above_ctx = 0, left_ctx = 0;
84
0
    if (above_mi) {
85
0
        if (has_second_ref(&above_mi->block_mi)) {
86
0
            above_ctx = above_mi->block_mi.comp_group_idx;
87
0
        } else if (above_mi->block_mi.ref_frame[0] == ALTREF_FRAME) {
88
0
            above_ctx = 3;
89
0
        }
90
0
    }
91
0
    if (left_mi) {
92
0
        if (has_second_ref(&left_mi->block_mi)) {
93
0
            left_ctx = left_mi->block_mi.comp_group_idx;
94
0
        } else if (left_mi->block_mi.ref_frame[0] == ALTREF_FRAME) {
95
0
            left_ctx = 3;
96
0
        }
97
0
    }
98
0
    return AOMMIN(5, above_ctx + left_ctx);
99
0
}
100
101
static INLINE int32_t does_level_match(int32_t width, int32_t height, double fps, int32_t lvl_width, int32_t lvl_height,
102
962
                                       double lvl_fps, int32_t lvl_dim_mult) {
103
962
    const int64_t lvl_luma_pels           = (int64_t)lvl_width * lvl_height;
104
962
    const double  lvl_display_sample_rate = lvl_luma_pels * lvl_fps;
105
962
    const int64_t luma_pels               = (int64_t)width * height;
106
962
    const double  display_sample_rate     = luma_pels * fps;
107
962
    return luma_pels <= lvl_luma_pels && display_sample_rate <= lvl_display_sample_rate &&
108
962
        width <= lvl_width * lvl_dim_mult && height <= lvl_height * lvl_dim_mult;
109
962
}
110
111
962
static void set_bitstream_level_tier(SequenceControlSet* scs) {
112
    // This is a placeholder function that only addresses dimensions
113
    // and max display sample rates.
114
    // Need to add checks for max bit rate, max decoded luma sample rate, header
115
    // rate, etc. that are not covered by this function.
116
117
962
    BitstreamLevel bl = {9, 3};
118
962
    if (scs->static_config.level) {
119
0
        bl.major = scs->static_config.level / 10;
120
0
        bl.minor = scs->static_config.level % 10;
121
962
    } else if (does_level_match(scs->seq_header.max_frame_width,
122
962
                                scs->seq_header.max_frame_height,
123
962
                                scs->frame_rate,
124
962
                                512,
125
962
                                288,
126
962
                                30.0,
127
962
                                4)) {
128
962
        bl.major = 2;
129
962
        bl.minor = 0;
130
962
    } else if (does_level_match(scs->seq_header.max_frame_width,
131
0
                                scs->seq_header.max_frame_height,
132
0
                                scs->frame_rate,
133
0
                                704,
134
0
                                396,
135
0
                                30.0,
136
0
                                4)) {
137
0
        bl.major = 2;
138
0
        bl.minor = 1;
139
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
140
0
                                scs->seq_header.max_frame_height,
141
0
                                scs->frame_rate,
142
0
                                1088,
143
0
                                612,
144
0
                                30.0,
145
0
                                4)) {
146
0
        bl.major = 3;
147
0
        bl.minor = 0;
148
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
149
0
                                scs->seq_header.max_frame_height,
150
0
                                scs->frame_rate,
151
0
                                1376,
152
0
                                774,
153
0
                                30.0,
154
0
                                4)) {
155
0
        bl.major = 3;
156
0
        bl.minor = 1;
157
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
158
0
                                scs->seq_header.max_frame_height,
159
0
                                scs->frame_rate,
160
0
                                2048,
161
0
                                1152,
162
0
                                30.0,
163
0
                                3)) {
164
0
        bl.major = 4;
165
0
        bl.minor = 0;
166
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
167
0
                                scs->seq_header.max_frame_height,
168
0
                                scs->frame_rate,
169
0
                                2048,
170
0
                                1152,
171
0
                                60.0,
172
0
                                3)) {
173
0
        bl.major = 4;
174
0
        bl.minor = 1;
175
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
176
0
                                scs->seq_header.max_frame_height,
177
0
                                scs->frame_rate,
178
0
                                4096,
179
0
                                2176,
180
0
                                30.0,
181
0
                                2)) {
182
0
        bl.major = 5;
183
0
        bl.minor = 0;
184
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
185
0
                                scs->seq_header.max_frame_height,
186
0
                                scs->frame_rate,
187
0
                                4096,
188
0
                                2176,
189
0
                                60.0,
190
0
                                2)) {
191
0
        bl.major = 5;
192
0
        bl.minor = 1;
193
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
194
0
                                scs->seq_header.max_frame_height,
195
0
                                scs->frame_rate,
196
0
                                4096,
197
0
                                2176,
198
0
                                120.0,
199
0
                                2)) {
200
0
        bl.major = 5;
201
0
        bl.minor = 2;
202
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
203
0
                                scs->seq_header.max_frame_height,
204
0
                                scs->frame_rate,
205
0
                                8192,
206
0
                                4352,
207
0
                                30.0,
208
0
                                2)) {
209
0
        bl.major = 6;
210
0
        bl.minor = 0;
211
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
212
0
                                scs->seq_header.max_frame_height,
213
0
                                scs->frame_rate,
214
0
                                8192,
215
0
                                4352,
216
0
                                60.0,
217
0
                                2)) {
218
0
        bl.major = 6;
219
0
        bl.minor = 1;
220
0
    } else if (does_level_match(scs->seq_header.max_frame_width,
221
0
                                scs->seq_header.max_frame_height,
222
0
                                scs->frame_rate,
223
0
                                8192,
224
0
                                4352,
225
0
                                120.0,
226
0
                                2)) {
227
0
        bl.major = 6;
228
0
        bl.minor = 2;
229
0
    }
230
31.7k
    for (int32_t i = 0; i < MAX_NUM_OPERATING_POINTS; ++i) {
231
30.7k
        scs->level[i]                               = bl;
232
30.7k
        scs->seq_header.operating_point[i].seq_tier = 0; // setting main tier by default
233
30.7k
    }
234
962
}
235
236
14.7k
static INLINE void write_golomb(AomWriter* w, int32_t level) {
237
14.7k
    const int32_t  x      = level + 1;
238
14.7k
    const uint32_t length = svt_log2f(x) + 1;
239
14.7k
    assert(length > 0);
240
241
14.7k
    aom_write_literal(w, 0, length - 1);
242
14.7k
    aom_write_literal(w, x, length);
243
14.7k
}
244
245
/************************************************************************************************/
246
// blockd.h
247
248
void svt_aom_get_txb_ctx(PictureControlSet* pcs, const int32_t plane,
249
                         NeighborArrayUnit* dc_sign_level_coeff_neighbor_array, uint32_t blk_org_x, uint32_t blk_org_y,
250
                         const BlockSize plane_bsize, const TxSize tx_size, int16_t* const txb_skip_ctx,
251
25.1k
                         int16_t* const dc_sign_ctx) {
252
    /* Hoist NA ring pointers and iterate them directly. Shape-B PU NA. */
253
25.1k
    const uint8_t* const top_ptr  = svt_aom_na_top_ptr_pu(dc_sign_level_coeff_neighbor_array, blk_org_x);
254
25.1k
    const uint8_t* const left_ptr = svt_aom_na_left_ptr_pu(dc_sign_level_coeff_neighbor_array, blk_org_y);
255
256
25.1k
    static const int8_t signs[3]    = {0, -1, 1};
257
25.1k
    const int32_t       plane_shift = !!plane;
258
25.1k
    int32_t             txb_w_unit  = MIN(eb_tx_size_wide_unit[tx_size],
259
25.1k
                             (int32_t)((pcs->ppcs->aligned_width >> plane_shift) - blk_org_x) >> 2);
260
25.1k
    int32_t             txb_h_unit  = MIN(eb_tx_size_high_unit[tx_size],
261
25.1k
                             (int32_t)((pcs->ppcs->aligned_height >> plane_shift) - blk_org_y) >> 2);
262
263
25.1k
    int16_t dc_sign = 0;
264
25.1k
    int32_t top     = 0; /* OR-accumulation across neighbors */
265
25.1k
    int32_t left    = 0;
266
267
    /* Combined top sweep: dc_sign + OR-accumulated top. */
268
25.1k
    if (top_ptr[0] != INVALID_NEIGHBOR_DATA) {
269
16.4k
        for (int32_t k = 0; k < txb_w_unit; ++k) {
270
10.6k
            uint8_t v    = top_ptr[k];
271
10.6k
            uint8_t sign = v >> COEFF_CONTEXT_BITS;
272
10.6k
            assert(sign <= 2);
273
10.6k
            dc_sign += signs[sign];
274
10.6k
            top |= v;
275
10.6k
        }
276
5.80k
    }
277
    /* Combined left sweep: dc_sign + OR-accumulated left. */
278
25.1k
    if (left_ptr[0] != INVALID_NEIGHBOR_DATA) {
279
21.9k
        for (int32_t k = 0; k < txb_h_unit; ++k) {
280
15.7k
            uint8_t v    = left_ptr[k];
281
15.7k
            uint8_t sign = v >> COEFF_CONTEXT_BITS;
282
15.7k
            assert(sign <= 2);
283
15.7k
            dc_sign += signs[sign];
284
15.7k
            left |= v;
285
15.7k
        }
286
6.28k
    }
287
288
25.1k
    if (dc_sign > 0) {
289
0
        *dc_sign_ctx = 2;
290
25.1k
    } else if (dc_sign < 0) {
291
7.27k
        *dc_sign_ctx = 1;
292
17.8k
    } else {
293
17.8k
        *dc_sign_ctx = 0;
294
17.8k
    }
295
296
25.1k
    int32_t tx_bsize = txsize_to_bsize[tx_size];
297
25.1k
    if (plane == 0) {
298
13.1k
        if (plane_bsize == tx_bsize) {
299
3.57k
            *txb_skip_ctx = 0;
300
9.60k
        } else {
301
9.60k
            static const uint8_t skip_contexts[5][5] = {
302
9.60k
                {1, 2, 2, 2, 3}, {1, 4, 4, 4, 5}, {1, 4, 4, 4, 5}, {1, 4, 4, 4, 5}, {1, 4, 4, 4, 6}};
303
9.60k
            top &= COEFF_CONTEXT_MASK;
304
9.60k
            left &= COEFF_CONTEXT_MASK;
305
9.60k
            int32_t max = AOMMIN(top | left, 4);
306
9.60k
            int32_t min = AOMMIN(AOMMIN(top, left), 4);
307
308
9.60k
            *txb_skip_ctx = skip_contexts[min][max];
309
9.60k
        }
310
13.1k
    } else {
311
11.9k
        int32_t ctx_base   = ((left != 0) + (top != 0));
312
11.9k
        int32_t ctx_offset = (eb_num_pels_log2_lookup[plane_bsize] > eb_num_pels_log2_lookup[tx_bsize]) ? 10 : 7;
313
11.9k
        *txb_skip_ctx      = (int16_t)(ctx_base + ctx_offset);
314
11.9k
    }
315
25.1k
}
316
317
static void av1_write_tx_type(PictureParentControlSet* pcs, FRAME_CONTEXT* frame_context, MbModeInfo* mbmi,
318
5.78k
                              AomWriter* ec_writer, uint32_t intraDir, TxType tx_type, TxSize tx_size) {
319
5.78k
    FrameHeader*  frm_hdr  = &pcs->frm_hdr;
320
5.78k
    const int32_t is_inter = mbmi->block_mi.use_intrabc || is_inter_mode(mbmi->block_mi.mode);
321
5.78k
    if (get_ext_tx_types(tx_size, is_inter, frm_hdr->reduced_tx_set) > 1 &&
322
3.03k
        (frm_hdr->quantization_params.base_q_idx > 0)) {
323
633
        const TxSize square_tx_size = txsize_sqr_map[tx_size];
324
633
        assert(square_tx_size <= EXT_TX_SIZES);
325
326
633
        const TxSetType tx_set_type = get_ext_tx_set_type(tx_size, is_inter, frm_hdr->reduced_tx_set);
327
633
        const int32_t   eset        = get_ext_tx_set(tx_size, is_inter, frm_hdr->reduced_tx_set);
328
        // eset == 0 should correspond to a set with only DCT_DCT and there
329
        // is no need to send the tx_type
330
633
        assert(eset > 0);
331
633
        assert(av1_ext_tx_used[tx_set_type][tx_type]);
332
633
        if (is_inter) {
333
0
            aom_write_symbol(ec_writer,
334
0
                             av1_ext_tx_ind[tx_set_type][tx_type],
335
0
                             frame_context->inter_ext_tx_cdf[eset][square_tx_size],
336
0
                             av1_num_ext_tx_set[tx_set_type]);
337
633
        } else {
338
633
            PredictionMode intra_dir;
339
633
            if (mbmi->block_mi.filter_intra_mode != FILTER_INTRA_MODES) {
340
0
                intra_dir = fimode_to_intradir[mbmi->block_mi.filter_intra_mode];
341
633
            } else {
342
633
                intra_dir = intraDir;
343
633
            }
344
345
633
            assert(intra_dir < 13);
346
633
            assert(square_tx_size < 4);
347
633
            aom_write_symbol(ec_writer,
348
633
                             av1_ext_tx_ind[tx_set_type][tx_type],
349
633
                             frame_context->intra_ext_tx_cdf[eset][square_tx_size][intra_dir],
350
633
                             av1_num_ext_tx_set[tx_set_type]);
351
633
        }
352
633
    }
353
5.78k
}
354
355
static int32_t av1_write_coeffs_txb_1d(PictureParentControlSet* ppcs, FRAME_CONTEXT* frame_context, MbModeInfo* mbmi,
356
                                       AomWriter* ec_writer, EcBlkStruct* blk_ptr, TxSize tx_size, uint32_t txb_index,
357
                                       uint32_t intraLumaDir, int32_t* coeff_buffer_ptr, COMPONENT_TYPE component_type,
358
                                       int16_t txb_skip_ctx, int16_t dc_sign_ctx, int16_t eob,
359
25.1k
                                       EntropyCodingContext* ec_ctx) {
360
25.1k
    int32_t      c;
361
25.1k
    const TxSize txs_ctx = get_txsize_entropy_ctx(tx_size);
362
25.1k
    TxType       tx_type = component_type == COMPONENT_LUMA ? blk_ptr->tx_type[txb_index] : blk_ptr->tx_type_uv;
363
364
25.1k
    assert(txs_ctx < TX_SIZES);
365
366
25.1k
    aom_write_symbol(ec_writer, eob == 0, frame_context->txb_skip_cdf[txs_ctx][txb_skip_ctx], 2);
367
368
25.1k
    assert(IMPLIES((component_type == 0 && eob == 0), tx_type == DCT_DCT));
369
25.1k
    assert(IMPLIES((is_inter_mode(mbmi->block_mi.mode) && component_type == 0 && eob == 0 && txb_index == 0),
370
25.1k
                   blk_ptr->tx_type_uv == DCT_DCT));
371
25.1k
    if (eob == 0) {
372
8.25k
        return 0;
373
8.25k
    }
374
16.8k
    if (component_type == COMPONENT_LUMA) {
375
5.78k
        av1_write_tx_type(ppcs, frame_context, mbmi, ec_writer, intraLumaDir, tx_type, tx_size);
376
5.78k
    }
377
16.8k
    int         eob_extra;
378
16.8k
    const int   eob_pt         = get_eob_pos_token(eob, &eob_extra);
379
16.8k
    const int   eob_multi_size = txsize_log2_minus4[tx_size];
380
16.8k
    const int   eob_multi_ctx  = (tx_type_to_class[tx_type] == TX_CLASS_2D) ? 0 : 1;
381
16.8k
    AomCdfProb* eob_flag_cdfs;
382
16.8k
    switch (eob_multi_size) {
383
7.84k
    case 0:
384
7.84k
        eob_flag_cdfs = frame_context->eob_flag_cdf16[component_type][eob_multi_ctx];
385
7.84k
        break;
386
0
    case 1:
387
0
        eob_flag_cdfs = frame_context->eob_flag_cdf32[component_type][eob_multi_ctx];
388
0
        break;
389
873
    case 2:
390
873
        eob_flag_cdfs = frame_context->eob_flag_cdf64[component_type][eob_multi_ctx];
391
873
        break;
392
0
    case 3:
393
0
        eob_flag_cdfs = frame_context->eob_flag_cdf128[component_type][eob_multi_ctx];
394
0
        break;
395
1.16k
    case 4:
396
1.16k
        eob_flag_cdfs = frame_context->eob_flag_cdf256[component_type][eob_multi_ctx];
397
1.16k
        break;
398
0
    case 5:
399
0
        eob_flag_cdfs = frame_context->eob_flag_cdf512[component_type][eob_multi_ctx];
400
0
        break;
401
7.00k
    case 6:
402
7.00k
    default:
403
7.00k
        eob_flag_cdfs = frame_context->eob_flag_cdf1024[component_type][eob_multi_ctx];
404
7.00k
        break;
405
16.8k
    }
406
16.8k
    aom_write_symbol(ec_writer, eob_pt - 1, eob_flag_cdfs, eob_multi_size + 5);
407
16.8k
    if (eob_pt > 2) {
408
0
        int cnt = eob_pt - 3;
409
0
        int bit = (eob_extra >> cnt) & 1;
410
0
        aom_write_symbol(ec_writer, bit, frame_context->eob_extra_cdf[txs_ctx][component_type][cnt], 2);
411
0
        aom_write_literal(ec_writer, eob_extra, cnt);
412
0
    }
413
414
    // Fast path for eob==1: single DC coefficient.
415
    // Contexts are known: coeff_ctx=0 (get_lower_levels_ctx_eob returns 0 for scan_idx=0),
416
    // br_ctx=0 (DC position with all-zero neighbors).
417
    // Skips txb_init_levels and get_nz_map_contexts entirely.
418
16.8k
    if (eob == 1) {
419
16.8k
        const int32_t v         = coeff_buffer_ptr[0];
420
16.8k
        int32_t       level     = ABS(v);
421
16.8k
        AomCdfProb*   dc_br_cdf = frame_context->coeff_br_cdf[AOMMIN(txs_ctx, TX_32X32)][component_type][0];
422
423
16.8k
        aom_write_symbol(
424
16.8k
            ec_writer, AOMMIN(level, 3) - 1, frame_context->coeff_base_eob_cdf[txs_ctx][component_type][0], 3);
425
16.8k
        if (level > NUM_BASE_LEVELS) {
426
15.4k
            int32_t base_range = level - 1 - NUM_BASE_LEVELS;
427
75.6k
            for (int32_t idx = 0; idx < COEFF_BASE_RANGE; idx += BR_CDF_SIZE - 1) {
428
60.9k
                const int32_t k = AOMMIN(base_range - idx, BR_CDF_SIZE - 1);
429
60.9k
                aom_write_symbol(ec_writer, k, dc_br_cdf, BR_CDF_SIZE);
430
60.9k
                if (k < BR_CDF_SIZE - 1) {
431
722
                    break;
432
722
                }
433
60.9k
            }
434
15.4k
        }
435
        // Sign (DC always uses dc_sign_cdf)
436
16.8k
        aom_write_symbol(ec_writer, (v < 0) ? 1 : 0, frame_context->dc_sign_cdf[component_type][dc_sign_ctx], 2);
437
16.8k
        if (level > COEFF_BASE_RANGE + NUM_BASE_LEVELS) {
438
14.7k
            write_golomb(ec_writer, level - COEFF_BASE_RANGE - 1 - NUM_BASE_LEVELS);
439
14.7k
        }
440
441
16.8k
        int32_t cul_level = AOMMIN(level, COEFF_CONTEXT_MASK);
442
16.8k
        set_dc_sign(&cul_level, coeff_buffer_ptr[0]);
443
16.8k
        return cul_level;
444
16.8k
    }
445
446
0
    const int bwl    = get_txb_bwl(tx_size);
447
0
    const int width  = get_txb_wide(tx_size);
448
0
    const int height = get_txb_high(tx_size);
449
450
0
    uint8_t* const levels = set_levels(ec_ctx->levels_buf, width, height);
451
0
    svt_av1_txb_init_levels(coeff_buffer_ptr, width, height, levels);
452
453
0
    const ScanOrder* const scan_order = get_scan_order(tx_size, tx_type);
454
0
    const int16_t* const   scan       = scan_order->scan;
455
456
0
    svt_av1_get_nz_map_contexts(levels, scan, eob, tx_size, tx_type_to_class[tx_type], ec_ctx->coeff_contexts);
457
458
    // Merged approach: backward pass caches level/sign per coefficient,
459
    // accumulates cul_level, then a forward pass emits signs from cache.
460
    // Avoids re-reading coeff_buffer_ptr[scan[c]] in the forward pass.
461
0
    const TxClass tx_class   = tx_type_to_class[tx_type];
462
0
    const int32_t br_txs_ctx = AOMMIN(txs_ctx, TX_32X32);
463
464
    // Pre-compute CDF base pointers (loop-invariant outer dimensions)
465
0
    AomCdfProb(*base_cdf)[CDF_SIZE(4)]         = frame_context->coeff_base_cdf[txs_ctx][component_type];
466
0
    AomCdfProb(*br_cdf)[CDF_SIZE(BR_CDF_SIZE)] = frame_context->coeff_br_cdf[br_txs_ctx][component_type];
467
468
    // Cache: store level and sign for each scan position 0..eob-1.
469
    // Buffers live in ec_ctx (persistent) instead of a stack VLA, so this function
470
    // emits no ___chkstk_darwin probe.
471
0
    int16_t* const cached_level = ec_ctx->cached_level;
472
0
    uint8_t* const cached_sign  = ec_ctx->cached_sign;
473
0
    int32_t        cul_level    = 0;
474
475
    // Backward pass: base levels + base_range + cache
476
0
    {
477
0
        AomCdfProb(*base_eob_cdf)[CDF_SIZE(3)] = frame_context->coeff_base_eob_cdf[txs_ctx][component_type];
478
479
        // Peeled first iteration: c == eob - 1
480
0
        const int16_t pos       = scan[eob - 1];
481
0
        const int32_t v         = coeff_buffer_ptr[pos];
482
0
        const int16_t coeff_ctx = ec_ctx->coeff_contexts[pos];
483
0
        int32_t       level     = ABS(v);
484
485
0
        cached_level[eob - 1] = (int16_t)level;
486
0
        cached_sign[eob - 1]  = (v < 0) ? 1 : 0;
487
0
        cul_level += level;
488
489
0
        aom_write_symbol(ec_writer, AOMMIN(level, 3) - 1, base_eob_cdf[coeff_ctx], 3);
490
0
        if (level > NUM_BASE_LEVELS) {
491
0
            int32_t base_range = level - 1 - NUM_BASE_LEVELS;
492
0
            int16_t br_ctx     = get_br_ctx(levels, pos, bwl, tx_class);
493
0
            for (int32_t idx = 0; idx < COEFF_BASE_RANGE; idx += BR_CDF_SIZE - 1) {
494
0
                const int32_t k = AOMMIN(base_range - idx, BR_CDF_SIZE - 1);
495
0
                aom_write_symbol(ec_writer, k, br_cdf[br_ctx], BR_CDF_SIZE);
496
0
                if (k < BR_CDF_SIZE - 1) {
497
0
                    break;
498
0
                }
499
0
            }
500
0
        }
501
0
    }
502
0
    for (c = eob - 2; c >= 0; --c) {
503
0
        const int16_t pos       = scan[c];
504
0
        const int32_t v         = coeff_buffer_ptr[pos];
505
0
        const int16_t coeff_ctx = ec_ctx->coeff_contexts[pos];
506
0
        int32_t       level     = ABS(v);
507
508
0
        cached_level[c] = (int16_t)level;
509
0
        cached_sign[c]  = (v < 0) ? 1 : 0;
510
0
        cul_level += level;
511
512
0
        aom_write_symbol(ec_writer, AOMMIN(level, 3), base_cdf[coeff_ctx], 4);
513
0
        if (level > NUM_BASE_LEVELS) {
514
0
            int32_t base_range = level - 1 - NUM_BASE_LEVELS;
515
0
            int16_t br_ctx     = get_br_ctx(levels, pos, bwl, tx_class);
516
0
            for (int32_t idx = 0; idx < COEFF_BASE_RANGE; idx += BR_CDF_SIZE - 1) {
517
0
                const int32_t k = AOMMIN(base_range - idx, BR_CDF_SIZE - 1);
518
0
                aom_write_symbol(ec_writer, k, br_cdf[br_ctx], BR_CDF_SIZE);
519
0
                if (k < BR_CDF_SIZE - 1) {
520
0
                    break;
521
0
                }
522
0
            }
523
0
        }
524
0
    }
525
526
    // Forward pass: signs + golomb from cached data (no coeff_buffer_ptr re-read)
527
0
    for (c = 0; c < eob; ++c) {
528
0
        const int32_t level = cached_level[c];
529
0
        if (level) {
530
0
            if (c == 0) {
531
0
                aom_write_symbol(ec_writer, cached_sign[c], frame_context->dc_sign_cdf[component_type][dc_sign_ctx], 2);
532
0
            } else {
533
0
                aom_write_bit(ec_writer, cached_sign[c]);
534
0
            }
535
0
            if (level > COEFF_BASE_RANGE + NUM_BASE_LEVELS) {
536
0
                write_golomb(ec_writer, level - COEFF_BASE_RANGE - 1 - NUM_BASE_LEVELS);
537
0
            }
538
0
        }
539
0
    }
540
541
0
    cul_level = AOMMIN(COEFF_CONTEXT_MASK, cul_level);
542
0
    set_dc_sign(&cul_level, coeff_buffer_ptr[0]);
543
0
    return cul_level;
544
16.8k
}
545
546
static EbErrorType av1_encode_tx_coef_y(PictureControlSet* pcs, EntropyCodingContext* ec_ctx,
547
                                        FRAME_CONTEXT* frame_context, AomWriter* ec_writer, MbModeInfo* mbmi,
548
                                        EcBlkStruct* blk_ptr, uint32_t blk_org_x, uint32_t blk_org_y,
549
                                        uint32_t intraLumaDir, BlockSize plane_bsize, EbPictureBufferDesc* coeff_ptr,
550
2.40k
                                        NeighborArrayUnit* luma_dc_sign_level_coeff_na) {
551
2.40k
    EbErrorType     return_error = EB_ErrorNone;
552
2.40k
    const bool      is_inter     = is_inter_mode(mbmi->block_mi.mode) || mbmi->block_mi.use_intrabc;
553
2.40k
    const BlockSize bsize        = mbmi->bsize;
554
2.40k
    const uint8_t   tx_depth     = mbmi->block_mi.tx_depth;
555
2.40k
    const uint16_t  txb_count    = tx_blocks_per_depth[bsize][tx_depth];
556
2.40k
    const TxSize    tx_size      = tx_depth_to_tx_size[tx_depth][bsize];
557
2.40k
    const int       tx_width     = tx_size_wide[tx_size];
558
2.40k
    const int       tx_height    = tx_size_high[tx_size];
559
560
12.0k
    for (uint16_t txb_itr = 0; txb_itr < txb_count; txb_itr++) {
561
        // Hoist tx_org lookup: same Position is used by both svt_aom_get_txb_ctx and the NA write.
562
9.60k
        const Position org  = tx_org[bsize][is_inter][tx_depth][txb_itr];
563
9.60k
        const uint32_t tx_x = blk_org_x + org.x;
564
9.60k
        const uint32_t tx_y = blk_org_y + org.y;
565
566
9.60k
        int32_t* coeff_buffer = (int32_t*)coeff_ptr->y_buffer + ec_ctx->coded_area_sb;
567
568
9.60k
        int16_t txb_skip_ctx = 0;
569
9.60k
        int16_t dc_sign_ctx  = 0;
570
9.60k
        svt_aom_get_txb_ctx(pcs,
571
9.60k
                            COMPONENT_LUMA,
572
9.60k
                            luma_dc_sign_level_coeff_na,
573
9.60k
                            tx_x,
574
9.60k
                            tx_y,
575
9.60k
                            plane_bsize,
576
9.60k
                            tx_size,
577
9.60k
                            &txb_skip_ctx,
578
9.60k
                            &dc_sign_ctx);
579
580
9.60k
        int32_t cul_level_y = av1_write_coeffs_txb_1d(pcs->ppcs,
581
9.60k
                                                      frame_context,
582
9.60k
                                                      mbmi,
583
9.60k
                                                      ec_writer,
584
9.60k
                                                      blk_ptr,
585
9.60k
                                                      tx_size,
586
9.60k
                                                      txb_itr,
587
9.60k
                                                      intraLumaDir,
588
9.60k
                                                      coeff_buffer,
589
9.60k
                                                      COMPONENT_LUMA,
590
9.60k
                                                      txb_skip_ctx,
591
9.60k
                                                      dc_sign_ctx,
592
9.60k
                                                      blk_ptr->eob.y[txb_itr],
593
9.60k
                                                      ec_ctx);
594
595
        // Update the luma Dc Sign Level Coeff Neighbor Array
596
9.60k
        uint8_t dc_sign_level_coeff = (uint8_t)cul_level_y;
597
9.60k
        svt_aom_neighbor_array_unit_mode_write_pu(luma_dc_sign_level_coeff_na,
598
9.60k
                                                  &dc_sign_level_coeff,
599
9.60k
                                                  tx_x,
600
9.60k
                                                  tx_y,
601
9.60k
                                                  tx_width,
602
9.60k
                                                  tx_height,
603
9.60k
                                                  NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
604
605
9.60k
        ec_ctx->coded_area_sb += tx_width * tx_height;
606
9.60k
    }
607
608
2.40k
    return return_error;
609
2.40k
}
610
611
static void av1_encode_tx_coef_uv(PictureControlSet* pcs, EntropyCodingContext* ec_ctx, FRAME_CONTEXT* frame_context,
612
                                  AomWriter* ec_writer, EcBlkStruct* blk_ptr, uint32_t blk_org_x, uint32_t blk_org_y,
613
                                  uint32_t intraLumaDir, EbPictureBufferDesc* coeff_ptr,
614
                                  NeighborArrayUnit* cr_dc_sign_level_coeff_na,
615
2.40k
                                  NeighborArrayUnit* cb_dc_sign_level_coeff_na) {
616
2.40k
    MbModeInfo* const mbmi   = ec_ctx->mbmi;
617
2.40k
    const BlockSize   bsize  = mbmi->bsize;
618
2.40k
    const bool        has_uv = is_chroma_reference(blk_org_y >> 2, blk_org_x >> 2, bsize, 1, 1);
619
620
2.40k
    if (!has_uv) {
621
0
        return;
622
0
    }
623
2.40k
    const int32_t   is_inter       = is_inter_mode(mbmi->block_mi.mode) || mbmi->block_mi.use_intrabc;
624
2.40k
    const BlockSize bsize_uv       = get_plane_block_size(bsize, 1, 1);
625
2.40k
    const uint8_t   tx_depth       = mbmi->block_mi.tx_depth;
626
2.40k
    const TxSize    chroma_tx_size = av1_get_max_uv_txsize(bsize, 1, 1);
627
2.40k
    const int       tx_width_uv    = tx_size_wide[chroma_tx_size];
628
2.40k
    const int       tx_height_uv   = tx_size_high[chroma_tx_size];
629
2.40k
    const unsigned  txb_count      = 1;
630
631
4.80k
    for (unsigned tx_index = 0; tx_index < txb_count; ++tx_index) {
632
        // Hoist tx_org lookup + ROUND_UV: reused by 4 sites below.
633
2.40k
        const Position org  = tx_org[bsize][is_inter][tx_depth][tx_index];
634
2.40k
        const uint32_t uv_x = ROUND_UV(blk_org_x + org.x) >> 1;
635
2.40k
        const uint32_t uv_y = ROUND_UV(blk_org_y + org.y) >> 1;
636
637
        // cb
638
2.40k
        int32_t* coeff_buffer = (int32_t*)coeff_ptr->u_buffer + ec_ctx->coded_area_sb_uv;
639
2.40k
        int16_t  txb_skip_ctx = 0;
640
2.40k
        int16_t  dc_sign_ctx  = 0;
641
642
2.40k
        svt_aom_get_txb_ctx(pcs,
643
2.40k
                            COMPONENT_CHROMA,
644
2.40k
                            cb_dc_sign_level_coeff_na,
645
2.40k
                            uv_x,
646
2.40k
                            uv_y,
647
2.40k
                            bsize_uv,
648
2.40k
                            chroma_tx_size,
649
2.40k
                            &txb_skip_ctx,
650
2.40k
                            &dc_sign_ctx);
651
652
2.40k
        int32_t cul_level_cb = av1_write_coeffs_txb_1d(pcs->ppcs,
653
2.40k
                                                       frame_context,
654
2.40k
                                                       mbmi,
655
2.40k
                                                       ec_writer,
656
2.40k
                                                       blk_ptr,
657
2.40k
                                                       chroma_tx_size,
658
2.40k
                                                       tx_index,
659
2.40k
                                                       intraLumaDir,
660
2.40k
                                                       coeff_buffer,
661
2.40k
                                                       COMPONENT_CHROMA,
662
2.40k
                                                       txb_skip_ctx,
663
2.40k
                                                       dc_sign_ctx,
664
2.40k
                                                       blk_ptr->eob.u[tx_index],
665
2.40k
                                                       ec_ctx);
666
667
        // cr
668
2.40k
        coeff_buffer = (int32_t*)coeff_ptr->v_buffer + ec_ctx->coded_area_sb_uv;
669
2.40k
        txb_skip_ctx = 0;
670
2.40k
        dc_sign_ctx  = 0;
671
672
2.40k
        svt_aom_get_txb_ctx(pcs,
673
2.40k
                            COMPONENT_CHROMA,
674
2.40k
                            cr_dc_sign_level_coeff_na,
675
2.40k
                            uv_x,
676
2.40k
                            uv_y,
677
2.40k
                            bsize_uv,
678
2.40k
                            chroma_tx_size,
679
2.40k
                            &txb_skip_ctx,
680
2.40k
                            &dc_sign_ctx);
681
682
2.40k
        int32_t cul_level_cr = av1_write_coeffs_txb_1d(pcs->ppcs,
683
2.40k
                                                       frame_context,
684
2.40k
                                                       mbmi,
685
2.40k
                                                       ec_writer,
686
2.40k
                                                       blk_ptr,
687
2.40k
                                                       chroma_tx_size,
688
2.40k
                                                       tx_index,
689
2.40k
                                                       intraLumaDir,
690
2.40k
                                                       coeff_buffer,
691
2.40k
                                                       COMPONENT_CHROMA,
692
2.40k
                                                       txb_skip_ctx,
693
2.40k
                                                       dc_sign_ctx,
694
2.40k
                                                       blk_ptr->eob.v[tx_index],
695
2.40k
                                                       ec_ctx);
696
        // Update the cb Dc Sign Level Coeff Neighbor Array
697
2.40k
        uint8_t dc_sign_level_coeff = (uint8_t)cul_level_cb;
698
2.40k
        svt_aom_neighbor_array_unit_mode_write_pu(cb_dc_sign_level_coeff_na,
699
2.40k
                                                  &dc_sign_level_coeff,
700
2.40k
                                                  uv_x,
701
2.40k
                                                  uv_y,
702
2.40k
                                                  tx_width_uv,
703
2.40k
                                                  tx_height_uv,
704
2.40k
                                                  NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
705
        // Update the cr DC Sign Level Coeff Neighbor Array
706
2.40k
        dc_sign_level_coeff = (uint8_t)cul_level_cr;
707
2.40k
        svt_aom_neighbor_array_unit_mode_write_pu(cr_dc_sign_level_coeff_na,
708
2.40k
                                                  &dc_sign_level_coeff,
709
2.40k
                                                  uv_x,
710
2.40k
                                                  uv_y,
711
2.40k
                                                  tx_width_uv,
712
2.40k
                                                  tx_height_uv,
713
2.40k
                                                  NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
714
715
2.40k
        ec_ctx->coded_area_sb_uv += tx_width_uv * tx_height_uv;
716
2.40k
    }
717
2.40k
}
718
719
/************************************
720
******* Av1EncodeTuCoeff
721
**************************************/
722
static EbErrorType av1_encode_coeff_1d(PictureControlSet* pcs, EntropyCodingContext* ec_ctx,
723
                                       FRAME_CONTEXT* frame_context, AomWriter* ec_writer, EcBlkStruct* blk_ptr,
724
                                       uint32_t blk_org_x, uint32_t blk_org_y, uint32_t intraLumaDir,
725
                                       BlockSize luma_bsize, EbPictureBufferDesc* coeff_ptr,
726
                                       NeighborArrayUnit* luma_dc_sign_level_coeff_na,
727
                                       NeighborArrayUnit* cr_dc_sign_level_coeff_na,
728
5.97k
                                       NeighborArrayUnit* cb_dc_sign_level_coeff_na) {
729
5.97k
    EbErrorType       return_error = EB_ErrorNone;
730
5.97k
    MbModeInfo* const mbmi         = ec_ctx->mbmi;
731
5.97k
    const int32_t     is_inter     = is_inter_mode(mbmi->block_mi.mode) || mbmi->block_mi.use_intrabc;
732
5.97k
    if (mbmi->block_mi.tx_depth) {
733
2.40k
        av1_encode_tx_coef_y(pcs,
734
2.40k
                             ec_ctx,
735
2.40k
                             frame_context,
736
2.40k
                             ec_writer,
737
2.40k
                             mbmi,
738
2.40k
                             blk_ptr,
739
2.40k
                             blk_org_x,
740
2.40k
                             blk_org_y,
741
2.40k
                             intraLumaDir,
742
2.40k
                             luma_bsize,
743
2.40k
                             coeff_ptr,
744
2.40k
                             luma_dc_sign_level_coeff_na);
745
746
2.40k
        av1_encode_tx_coef_uv(pcs,
747
2.40k
                              ec_ctx,
748
2.40k
                              frame_context,
749
2.40k
                              ec_writer,
750
2.40k
                              blk_ptr,
751
2.40k
                              blk_org_x,
752
2.40k
                              blk_org_y,
753
2.40k
                              intraLumaDir,
754
2.40k
                              coeff_ptr,
755
2.40k
                              cr_dc_sign_level_coeff_na,
756
2.40k
                              cb_dc_sign_level_coeff_na);
757
3.57k
    } else {
758
        // Transform partitioning free path (except the 128x128 case).
759
        // tx_depth is 0 in this branch.
760
3.57k
        int32_t cul_level_y, cul_level_cb = 0, cul_level_cr = 0;
761
762
3.57k
        const bool     has_uv       = is_chroma_reference(blk_org_y >> 2, blk_org_x >> 2, luma_bsize, 1, 1);
763
3.57k
        const uint8_t  tx_depth     = 0;
764
3.57k
        const uint16_t txb_count    = tx_blocks_per_depth[luma_bsize][tx_depth];
765
3.57k
        const TxSize   tx_size      = tx_depth_to_tx_size[tx_depth][luma_bsize];
766
3.57k
        const int      tx_width     = tx_size_wide[tx_size];
767
3.57k
        const int      tx_height    = tx_size_high[tx_size];
768
3.57k
        const TxSize   tx_size_uv   = av1_get_max_uv_txsize(luma_bsize, 1, 1);
769
3.57k
        const int      tx_width_uv  = tx_size_wide[tx_size_uv];
770
3.57k
        const int      tx_height_uv = tx_size_high[tx_size_uv];
771
        // bsize_uv is only consumed under `has_uv`, but hoisting unconditionally is cheaper than branching twice.
772
3.57k
        const BlockSize bsize_uv = has_uv ? get_plane_block_size(luma_bsize, 1, 1) : 0;
773
7.15k
        for (uint8_t txb_itr = 0; txb_itr < txb_count; txb_itr++) {
774
            // Hoist tx_org + ROUND_UV: reused by up to 7 sites per iteration.
775
3.57k
            const Position org  = tx_org[luma_bsize][is_inter][tx_depth][txb_itr];
776
3.57k
            const uint32_t tx_x = blk_org_x + org.x;
777
3.57k
            const uint32_t tx_y = blk_org_y + org.y;
778
3.57k
            const uint32_t uv_x = ROUND_UV(tx_x) >> 1;
779
3.57k
            const uint32_t uv_y = ROUND_UV(tx_y) >> 1;
780
781
3.57k
            int32_t* coeff_buffer = (int32_t*)coeff_ptr->y_buffer + ec_ctx->coded_area_sb;
782
783
3.57k
            {
784
3.57k
                int16_t txb_skip_ctx = 0;
785
3.57k
                int16_t dc_sign_ctx  = 0;
786
787
3.57k
                svt_aom_get_txb_ctx(pcs,
788
3.57k
                                    COMPONENT_LUMA,
789
3.57k
                                    luma_dc_sign_level_coeff_na,
790
3.57k
                                    tx_x,
791
3.57k
                                    tx_y,
792
3.57k
                                    luma_bsize,
793
3.57k
                                    tx_size,
794
3.57k
                                    &txb_skip_ctx,
795
3.57k
                                    &dc_sign_ctx);
796
797
3.57k
                cul_level_y = av1_write_coeffs_txb_1d(pcs->ppcs,
798
3.57k
                                                      frame_context,
799
3.57k
                                                      mbmi,
800
3.57k
                                                      ec_writer,
801
3.57k
                                                      blk_ptr,
802
3.57k
                                                      tx_size,
803
3.57k
                                                      txb_itr,
804
3.57k
                                                      intraLumaDir,
805
3.57k
                                                      coeff_buffer,
806
3.57k
                                                      COMPONENT_LUMA,
807
3.57k
                                                      txb_skip_ctx,
808
3.57k
                                                      dc_sign_ctx,
809
3.57k
                                                      blk_ptr->eob.y[txb_itr],
810
3.57k
                                                      ec_ctx);
811
3.57k
            }
812
813
3.57k
            if (has_uv) {
814
                // cb
815
3.57k
                coeff_buffer = (int32_t*)coeff_ptr->u_buffer + ec_ctx->coded_area_sb_uv;
816
3.57k
                {
817
3.57k
                    int16_t txb_skip_ctx = 0;
818
3.57k
                    int16_t dc_sign_ctx  = 0;
819
820
3.57k
                    svt_aom_get_txb_ctx(pcs,
821
3.57k
                                        COMPONENT_CHROMA,
822
3.57k
                                        cb_dc_sign_level_coeff_na,
823
3.57k
                                        uv_x,
824
3.57k
                                        uv_y,
825
3.57k
                                        bsize_uv,
826
3.57k
                                        tx_size_uv,
827
3.57k
                                        &txb_skip_ctx,
828
3.57k
                                        &dc_sign_ctx);
829
830
3.57k
                    cul_level_cb = av1_write_coeffs_txb_1d(pcs->ppcs,
831
3.57k
                                                           frame_context,
832
3.57k
                                                           mbmi,
833
3.57k
                                                           ec_writer,
834
3.57k
                                                           blk_ptr,
835
3.57k
                                                           tx_size_uv,
836
3.57k
                                                           txb_itr,
837
3.57k
                                                           intraLumaDir,
838
3.57k
                                                           coeff_buffer,
839
3.57k
                                                           COMPONENT_CHROMA,
840
3.57k
                                                           txb_skip_ctx,
841
3.57k
                                                           dc_sign_ctx,
842
3.57k
                                                           blk_ptr->eob.u[txb_itr],
843
3.57k
                                                           ec_ctx);
844
3.57k
                }
845
846
                // cr
847
3.57k
                coeff_buffer = (int32_t*)coeff_ptr->v_buffer + ec_ctx->coded_area_sb_uv;
848
3.57k
                {
849
3.57k
                    int16_t txb_skip_ctx = 0;
850
3.57k
                    int16_t dc_sign_ctx  = 0;
851
852
3.57k
                    svt_aom_get_txb_ctx(pcs,
853
3.57k
                                        COMPONENT_CHROMA,
854
3.57k
                                        cr_dc_sign_level_coeff_na,
855
3.57k
                                        uv_x,
856
3.57k
                                        uv_y,
857
3.57k
                                        bsize_uv,
858
3.57k
                                        tx_size_uv,
859
3.57k
                                        &txb_skip_ctx,
860
3.57k
                                        &dc_sign_ctx);
861
862
3.57k
                    cul_level_cr = av1_write_coeffs_txb_1d(pcs->ppcs,
863
3.57k
                                                           frame_context,
864
3.57k
                                                           mbmi,
865
3.57k
                                                           ec_writer,
866
3.57k
                                                           blk_ptr,
867
3.57k
                                                           tx_size_uv,
868
3.57k
                                                           txb_itr,
869
3.57k
                                                           intraLumaDir,
870
3.57k
                                                           coeff_buffer,
871
3.57k
                                                           COMPONENT_CHROMA,
872
3.57k
                                                           txb_skip_ctx,
873
3.57k
                                                           dc_sign_ctx,
874
3.57k
                                                           blk_ptr->eob.v[txb_itr],
875
3.57k
                                                           ec_ctx);
876
3.57k
                }
877
3.57k
            }
878
879
            // Update the luma Dc Sign Level Coeff Neighbor Array
880
3.57k
            uint8_t dc_sign_level_coeff = (uint8_t)cul_level_y;
881
3.57k
            svt_aom_neighbor_array_unit_mode_write_pu(luma_dc_sign_level_coeff_na,
882
3.57k
                                                      &dc_sign_level_coeff,
883
3.57k
                                                      tx_x,
884
3.57k
                                                      tx_y,
885
3.57k
                                                      tx_width,
886
3.57k
                                                      tx_height,
887
3.57k
                                                      NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
888
889
            // Update the cb Dc Sign Level Coeff Neighbor Array
890
3.57k
            if (has_uv) {
891
3.57k
                dc_sign_level_coeff = (uint8_t)cul_level_cb;
892
3.57k
                svt_aom_neighbor_array_unit_mode_write_pu(cb_dc_sign_level_coeff_na,
893
3.57k
                                                          &dc_sign_level_coeff,
894
3.57k
                                                          uv_x,
895
3.57k
                                                          uv_y,
896
3.57k
                                                          tx_width_uv,
897
3.57k
                                                          tx_height_uv,
898
3.57k
                                                          NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
899
                // Update the cr DC Sign Level Coeff Neighbor Array
900
3.57k
                dc_sign_level_coeff = (uint8_t)cul_level_cr;
901
3.57k
                svt_aom_neighbor_array_unit_mode_write_pu(cr_dc_sign_level_coeff_na,
902
3.57k
                                                          &dc_sign_level_coeff,
903
3.57k
                                                          uv_x,
904
3.57k
                                                          uv_y,
905
3.57k
                                                          tx_width_uv,
906
3.57k
                                                          tx_height_uv,
907
3.57k
                                                          NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
908
3.57k
                ec_ctx->coded_area_sb_uv += tx_width_uv * tx_height_uv;
909
3.57k
            }
910
3.57k
            ec_ctx->coded_area_sb += tx_width * tx_height;
911
3.57k
        }
912
3.57k
    }
913
5.97k
    return return_error;
914
5.97k
}
915
916
/*********************************************************************
917
* encode_partition_av1
918
*   Encodes the partition
919
*********************************************************************/
920
// Return the number of elements in the partition CDF when
921
// partitioning the (square) block with luma block size of bsize.
922
205k
int32_t svt_aom_partition_cdf_length(BlockSize bsize) {
923
205k
    if (bsize <= BLOCK_8X8) {
924
153k
        return PARTITION_TYPES;
925
153k
    } else if (bsize == BLOCK_128X128) {
926
0
        return EXT_PARTITION_TYPES - 2;
927
51.7k
    } else {
928
51.7k
        return EXT_PARTITION_TYPES;
929
51.7k
    }
930
205k
}
931
932
static void encode_partition_av1(PictureControlSet* pcs, FRAME_CONTEXT* frame_context, AomWriter* ec_writer,
933
                                 BlockSize bsize, PartitionType p, uint32_t blk_org_x, uint32_t blk_org_y,
934
214k
                                 NeighborArrayUnit* partition_context_na) {
935
214k
    const int32_t is_partition_point = bsize >= BLOCK_8X8;
936
937
214k
    if (!is_partition_point) {
938
0
        return;
939
0
    }
940
941
214k
    const int32_t hbs      = (mi_size_wide[bsize] << 2) >> 1;
942
214k
    const int32_t has_rows = (blk_org_y + hbs) < pcs->ppcs->aligned_height;
943
214k
    const int32_t has_cols = (blk_org_x + hbs) < pcs->ppcs->aligned_width;
944
945
214k
    const uint8_t above_byte = *svt_aom_na_top_ptr_pu(partition_context_na, blk_org_x);
946
214k
    const uint8_t left_byte  = *svt_aom_na_left_ptr_pu(partition_context_na, blk_org_y);
947
948
214k
    uint32_t context_index = 0;
949
950
214k
    PartitionContextType above_ctx = (above_byte == INVALID_NEIGHBOR_DATA) ? 0 : (PartitionContextType)above_byte;
951
214k
    PartitionContextType left_ctx  = (left_byte == INVALID_NEIGHBOR_DATA) ? 0 : (PartitionContextType)left_byte;
952
953
214k
    const int32_t bsl   = mi_size_wide_log2[bsize] - mi_size_wide_log2[BLOCK_8X8];
954
214k
    int32_t       above = (above_ctx >> bsl) & 1, left = (left_ctx >> bsl) & 1;
955
956
214k
    assert(mi_size_wide_log2[bsize] == mi_size_high_log2[bsize]);
957
214k
    assert(bsl >= 0);
958
214k
    assert(p < CDF_SIZE(EXT_PARTITION_TYPES));
959
960
214k
    context_index = (left * 2 + above) + bsl * PARTITION_PLOFFSET;
961
962
214k
    if (!has_rows && !has_cols) {
963
412
        assert(p == PARTITION_SPLIT);
964
412
        return;
965
412
    }
966
967
214k
    if (has_rows && has_cols) {
968
205k
        aom_write_symbol(
969
205k
            ec_writer, p, frame_context->partition_cdf[context_index], svt_aom_partition_cdf_length(bsize));
970
205k
    } else if (!has_rows && has_cols) {
971
4.25k
        AomCdfProb cdf[CDF_SIZE(2)];
972
4.25k
        partition_gather_vert_alike(cdf, frame_context->partition_cdf[context_index], bsize);
973
4.25k
        aom_write_symbol(ec_writer, p == PARTITION_SPLIT, cdf, 2);
974
4.38k
    } else {
975
4.38k
        AomCdfProb cdf[CDF_SIZE(2)];
976
4.38k
        partition_gather_horz_alike(cdf, frame_context->partition_cdf[context_index], bsize);
977
4.38k
        aom_write_symbol(ec_writer, p == PARTITION_SPLIT, cdf, 2);
978
4.38k
    }
979
980
214k
    return;
981
214k
}
982
983
157k
uint8_t av1_get_skip_context(const MacroBlockD* xd) {
984
157k
    const MbModeInfo* const above_mi   = xd->above_mbmi;
985
157k
    const MbModeInfo* const left_mi    = xd->left_mbmi;
986
157k
    const uint8_t           above_skip = above_mi ? above_mi->block_mi.skip : 0;
987
157k
    const uint8_t           left_skip  = left_mi ? left_mi->block_mi.skip : 0;
988
157k
    return above_skip + left_skip;
989
157k
}
990
991
/*********************************************************************
992
 * encode_skip_coeff_av1
993
 *   Encodes the skip coefficient flag
994
 *********************************************************************/
995
static void encode_skip_coeff_av1(EcBlkStruct* blk_ptr, FRAME_CONTEXT* frame_context, AomWriter* ec_writer,
996
157k
                                  bool skip_coeff_flag) {
997
    // TODO: need to code in syntax for segmentation map + skip
998
157k
    uint8_t ctx = av1_get_skip_context(blk_ptr->av1xd);
999
157k
    aom_write_symbol(ec_writer, skip_coeff_flag ? 1 : 0, frame_context->skip_cdfs[ctx], 2);
1000
157k
}
1001
1002
/* Get the contexts (left and top) for writing the intra luma mode for key frames. Intended to
1003
 * be used for key frame only. */
1004
315k
void svt_aom_get_kf_y_mode_ctx(const MacroBlockD* xd, uint8_t* above_ctx, uint8_t* left_ctx) {
1005
315k
    PredictionMode intra_luma_left_mode = DC_PRED;
1006
315k
    PredictionMode intra_luma_top_mode  = DC_PRED;
1007
315k
    if (xd->left_available) {
1008
        // When called for key frame, neighbouring mode should be intra
1009
268k
        assert(!is_inter_block(&xd->mi[-1]->block_mi) || is_intrabc_block(&xd->mi[-1]->block_mi));
1010
268k
        intra_luma_left_mode = xd->mi[-1]->block_mi.mode;
1011
268k
    }
1012
315k
    if (xd->up_available) {
1013
        // When called for key frame, neighbouring mode should be intra
1014
268k
        assert(!is_inter_block(&xd->mi[-xd->mi_stride]->block_mi) ||
1015
268k
               is_intrabc_block(&xd->mi[-xd->mi_stride]->block_mi));
1016
268k
        intra_luma_top_mode = xd->mi[-xd->mi_stride]->block_mi.mode;
1017
268k
    }
1018
1019
315k
    *above_ctx = intra_mode_context[intra_luma_top_mode];
1020
315k
    *left_ctx  = intra_mode_context[intra_luma_left_mode];
1021
315k
}
1022
1023
/*********************************************************************
1024
*   Encodes the Intra Luma Mode for a key frame
1025
*********************************************************************/
1026
static void encode_intra_luma_mode_kf_av1(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, MbModeInfo* mbmi,
1027
157k
                                          EcBlkStruct* blk_ptr, BlockSize bsize, uint32_t luma_mode) {
1028
157k
    uint8_t top_context, left_context;
1029
157k
    svt_aom_get_kf_y_mode_ctx(blk_ptr->av1xd, &top_context, &left_context);
1030
157k
    aom_write_symbol(ec_writer, luma_mode, frame_context->kf_y_cdf[top_context][left_context], INTRA_MODES);
1031
1032
157k
    if (bsize >= BLOCK_8X8 && av1_is_directional_mode(mbmi->block_mi.mode)) {
1033
0
        aom_write_symbol(ec_writer,
1034
0
                         mbmi->block_mi.angle_delta[PLANE_TYPE_Y] + MAX_ANGLE_DELTA,
1035
0
                         frame_context->angle_delta_cdf[luma_mode - V_PRED],
1036
0
                         2 * MAX_ANGLE_DELTA + 1);
1037
0
    }
1038
1039
157k
    return;
1040
157k
}
1041
1042
/*********************************************************************
1043
* encode_intra_luma_mode_nonkey_av1
1044
*   Encodes the Intra Luma Mode for non Key frames
1045
*********************************************************************/
1046
static void encode_intra_luma_mode_nonkey_av1(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, MbModeInfo* mbmi,
1047
0
                                              BlockSize bsize, uint32_t luma_mode) {
1048
0
    aom_write_symbol(ec_writer, luma_mode, frame_context->y_mode_cdf[eb_size_group_lookup[bsize]], INTRA_MODES);
1049
1050
0
    if (bsize >= BLOCK_8X8 && av1_is_directional_mode(mbmi->block_mi.mode)) {
1051
0
        aom_write_symbol(ec_writer,
1052
0
                         mbmi->block_mi.angle_delta[PLANE_TYPE_Y] + MAX_ANGLE_DELTA,
1053
0
                         frame_context->angle_delta_cdf[luma_mode - V_PRED],
1054
0
                         2 * MAX_ANGLE_DELTA + 1);
1055
0
    }
1056
1057
0
    return;
1058
0
}
1059
1060
0
static void write_cfl_alphas(FRAME_CONTEXT* const ec_ctx, int32_t idx, int32_t joint_sign, AomWriter* w) {
1061
0
    aom_write_symbol(w, joint_sign, ec_ctx->cfl_sign_cdf, CFL_JOINT_SIGNS);
1062
    // Magnitudes are only signaled for nonzero codes.
1063
0
    if (CFL_SIGN_U(joint_sign) != CFL_SIGN_ZERO) {
1064
0
        AomCdfProb* cdf_u = ec_ctx->cfl_alpha_cdf[CFL_CONTEXT_U(joint_sign)];
1065
0
        aom_write_symbol(w, CFL_IDX_U(idx), cdf_u, CFL_ALPHABET_SIZE);
1066
0
    }
1067
0
    if (CFL_SIGN_V(joint_sign) != CFL_SIGN_ZERO) {
1068
0
        AomCdfProb* cdf_v = ec_ctx->cfl_alpha_cdf[CFL_CONTEXT_V(joint_sign)];
1069
0
        aom_write_symbol(w, CFL_IDX_V(idx), cdf_v, CFL_ALPHABET_SIZE);
1070
0
    }
1071
0
}
1072
1073
/*********************************************************************
1074
* encode_intra_chroma_mode_av1
1075
*   Encodes the Intra Chroma Mode
1076
*********************************************************************/
1077
static void encode_intra_chroma_mode_av1(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, MbModeInfo* mbmi,
1078
                                         BlockSize bsize, uint32_t luma_mode, uint32_t chroma_mode,
1079
157k
                                         uint8_t cflAllowed) {
1080
157k
    aom_write_symbol(
1081
157k
        ec_writer, chroma_mode, frame_context->uv_mode_cdf[cflAllowed][luma_mode], UV_INTRA_MODES - !cflAllowed);
1082
1083
157k
    if (chroma_mode == UV_CFL_PRED) {
1084
0
        write_cfl_alphas(frame_context, mbmi->block_mi.cfl_alpha_idx, mbmi->block_mi.cfl_alpha_signs, ec_writer);
1085
0
    }
1086
1087
157k
    if (bsize >= BLOCK_8X8 && av1_is_directional_mode(get_uv_mode(mbmi->block_mi.uv_mode))) {
1088
0
        aom_write_symbol(ec_writer,
1089
0
                         mbmi->block_mi.angle_delta[PLANE_TYPE_UV] + MAX_ANGLE_DELTA,
1090
0
                         frame_context->angle_delta_cdf[chroma_mode - V_PRED],
1091
0
                         2 * MAX_ANGLE_DELTA + 1);
1092
0
    }
1093
1094
157k
    return;
1095
157k
}
1096
1097
157k
uint8_t av1_get_skip_mode_context(const MacroBlockD* xd) {
1098
157k
    const MbModeInfo* const above_mi        = xd->above_mbmi;
1099
157k
    const MbModeInfo* const left_mi         = xd->left_mbmi;
1100
157k
    const int               above_skip_mode = above_mi ? above_mi->block_mi.skip_mode : 0;
1101
157k
    const int               left_skip_mode  = left_mi ? left_mi->block_mi.skip_mode : 0;
1102
157k
    return above_skip_mode + left_skip_mode;
1103
157k
}
1104
1105
/*********************************************************************
1106
 * encode_skip_mode_av1
1107
 *   Encodes the skip Mode flag
1108
 *********************************************************************/
1109
static void encode_skip_mode_av1(const EcBlkStruct* blk_ptr, FRAME_CONTEXT* frame_context, AomWriter* ec_writer,
1110
0
                                 bool skip_mode_flag) {
1111
    // TODO: not coded in syntax for skip mode/ref-frame/global-mv in segmentation map
1112
0
    const uint8_t context_index = av1_get_skip_mode_context(blk_ptr->av1xd);
1113
1114
0
    aom_write_symbol(ec_writer, skip_mode_flag ? 1 : 0, frame_context->skip_mode_cdfs[context_index], 2);
1115
0
}
1116
1117
/*******************************************************************************
1118
* The mode info data structure has a one element border above and to the
1119
* left of the entries corresponding to real macroblocks.
1120
* The prediction flags in these dummy entries are initialized to 0.
1121
* 0 - inter/inter, inter/--, --/inter, --/--
1122
* 1 - intra/inter, inter/intra
1123
* 2 - intra/--, --/intra
1124
* 3 - intra/intra
1125
 ******************************************************************************/
1126
157k
uint8_t svt_av1_get_intra_inter_context(const MacroBlockD* xd) {
1127
157k
    const MbModeInfo* const above_mbmi = xd->above_mbmi;
1128
157k
    const MbModeInfo* const left_mbmi  = xd->left_mbmi;
1129
157k
    const int               has_above  = xd->up_available;
1130
157k
    const int               has_left   = xd->left_available;
1131
1132
157k
    if (has_above && has_left) { // both edges available
1133
115k
        const int above_intra = !is_inter_block(&above_mbmi->block_mi);
1134
115k
        const int left_intra  = !is_inter_block(&left_mbmi->block_mi);
1135
18.4E
        return left_intra && above_intra ? 3 : left_intra || above_intra;
1136
115k
    } else if (has_above || has_left) { // one edge available
1137
36.7k
        return 2 * !is_inter_block(has_above ? &above_mbmi->block_mi : &left_mbmi->block_mi);
1138
36.7k
    } else {
1139
5.07k
        return 0;
1140
5.07k
    }
1141
157k
}
1142
1143
/*********************************************************************
1144
 * encode_pred_mode_av1
1145
 *   Encodes the Prediction Mode
1146
 *********************************************************************/
1147
static void write_is_inter(const EcBlkStruct* blk_ptr, FRAME_CONTEXT* frame_context, AomWriter* ec_writer,
1148
0
                           int32_t is_inter) {
1149
0
    const uint8_t ctx = svt_av1_get_intra_inter_context(blk_ptr->av1xd);
1150
0
    aom_write_symbol(ec_writer, is_inter, frame_context->intra_inter_cdf[ctx], 2);
1151
0
}
1152
1153
//****************************************************************************************************//
1154
1155
/*********************************************************************
1156
* svt_aom_motion_mode_allowed
1157
*   checks the motion modes that are allowed for the current block
1158
*********************************************************************/
1159
MotionMode svt_aom_motion_mode_allowed(const PictureControlSet* pcs, uint16_t num_proj_ref,
1160
                                       uint32_t overlappable_neighbors, const BlockSize bsize, MvReferenceFrame rf0,
1161
0
                                       MvReferenceFrame rf1, PredictionMode mode) {
1162
0
    if (!CONFIG_ENABLE_OBMC && !CONFIG_ENABLE_WARP) {
1163
0
        return SIMPLE_TRANSLATION; // OBMC/warp off -> const-folds, cascades DCE
1164
0
    }
1165
0
    FrameHeader* frm_hdr = &pcs->ppcs->frm_hdr;
1166
0
    if (!frm_hdr->is_motion_mode_switchable) {
1167
0
        return SIMPLE_TRANSLATION;
1168
0
    }
1169
1170
0
    if (frm_hdr->force_integer_mv == 0) {
1171
0
        const TransformationType gm_type = pcs->ppcs->global_motion[rf0].wmtype;
1172
0
        if (is_global_mv_block(mode, bsize, gm_type)) {
1173
0
            return SIMPLE_TRANSLATION;
1174
0
        }
1175
0
    }
1176
0
    if (is_motion_variation_allowed_bsize(bsize) && is_inter_singleref_mode(mode) && rf1 != INTRA_FRAME &&
1177
0
        !(rf1 > INTRA_FRAME)) // is_motion_variation_allowed_compound
1178
0
    {
1179
0
        if (overlappable_neighbors == 0) {
1180
0
            return SIMPLE_TRANSLATION;
1181
0
        }
1182
1183
0
        if (frm_hdr->allow_warped_motion &&
1184
            /* TODO(JS): when scale is added, put: !av1_is_scaled(&(xd->block_refs[0]->sf)) && */
1185
0
            num_proj_ref >= 1) {
1186
0
            if (frm_hdr->force_integer_mv) {
1187
0
                return OBMC_CAUSAL;
1188
0
            }
1189
0
            return WARPED_CAUSAL;
1190
0
        }
1191
0
        return OBMC_CAUSAL;
1192
0
    } else {
1193
0
        return SIMPLE_TRANSLATION;
1194
0
    }
1195
0
}
1196
1197
/*********************************************************************
1198
* write_motion_mode
1199
*   Encodes the Motion Mode (obmc or warped)
1200
*********************************************************************/
1201
static void write_motion_mode(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, BlockSize bsize, MbModeInfo* mbmi,
1202
                              MotionMode motion_mode, MvReferenceFrame rf0, MvReferenceFrame rf1, EcBlkStruct* blk_ptr,
1203
0
                              PictureControlSet* pcs) {
1204
0
    MotionMode last_motion_mode_allowed = svt_aom_motion_mode_allowed(
1205
0
        pcs, mbmi->block_mi.num_proj_ref, blk_ptr->overlappable_neighbors, bsize, rf0, rf1, mbmi->block_mi.mode);
1206
0
    switch (last_motion_mode_allowed) {
1207
0
    case SIMPLE_TRANSLATION:
1208
0
        break;
1209
0
    case OBMC_CAUSAL:
1210
0
        aom_write_symbol(ec_writer, motion_mode == OBMC_CAUSAL, frame_context->obmc_cdf[bsize], 2);
1211
0
        break;
1212
0
    default:
1213
0
        aom_write_symbol(ec_writer, motion_mode, frame_context->motion_mode_cdf[bsize], MOTION_MODES);
1214
0
    }
1215
1216
0
    return;
1217
0
}
1218
1219
//****************************************************************************************************//
1220
1221
5.15k
EbErrorType svt_aom_encode_slice_finish(EntropyCoder* ec) {
1222
5.15k
    EbErrorType return_error = EB_ErrorNone;
1223
1224
5.15k
    aom_stop_encode(&ec->ec_writer);
1225
1226
5.15k
    return return_error;
1227
5.15k
}
1228
1229
5.15k
EbErrorType svt_aom_reset_entropy_coder(EncodeContext* enc_ctx, EntropyCoder* ec, uint32_t qp, SliceType slice_type) {
1230
5.15k
    EbErrorType return_error = EB_ErrorNone;
1231
1232
5.15k
    (void)enc_ctx;
1233
5.15k
    (void)slice_type;
1234
5.15k
    svt_av1_default_coef_probs(ec->fc, qp);
1235
5.15k
    svt_aom_init_mode_probs(ec->fc);
1236
1237
5.15k
    return return_error;
1238
5.15k
}
1239
1240
5.15k
static void entropy_tile_info_dctor(EbPtr p) {
1241
5.15k
    EntropyTileInfo* obj = (EntropyTileInfo*)p;
1242
5.15k
    EB_DELETE(obj->ec);
1243
5.15k
}
1244
1245
5.15k
EbErrorType svt_aom_entropy_tile_info_ctor(EntropyTileInfo* eti, uint32_t buf_size) {
1246
5.15k
    EbErrorType return_error = EB_ErrorNone;
1247
5.15k
    eti->dctor               = entropy_tile_info_dctor;
1248
5.15k
    EB_NEW(eti->ec, svt_aom_entropy_coder_ctor, buf_size);
1249
5.15k
    eti->entropy_coding_tile_done = false;
1250
5.15k
    return return_error;
1251
5.15k
}
1252
1253
2.40k
static void bitstream_dctor(EbPtr p) {
1254
2.40k
    Bitstream* obj = (Bitstream*)p;
1255
2.40k
    EB_DELETE(obj->output_bitstream_ptr);
1256
2.40k
}
1257
1258
2.40k
EbErrorType svt_aom_bitstream_ctor(Bitstream* bitstream_ptr, uint32_t buffer_size) {
1259
2.40k
    bitstream_ptr->dctor = bitstream_dctor;
1260
2.40k
    EB_NEW(bitstream_ptr->output_bitstream_ptr, svt_aom_output_bitstream_unit_ctor, buffer_size);
1261
2.40k
    return EB_ErrorNone;
1262
2.40k
}
1263
1264
481
void svt_aom_bitstream_reset(Bitstream* bitstream_ptr) {
1265
481
    svt_aom_output_bitstream_reset(bitstream_ptr->output_bitstream_ptr);
1266
481
}
1267
1268
962
int svt_aom_bitstream_get_bytes_count(const Bitstream* bitstream_ptr) {
1269
962
    const OutputBitstreamUnit* unit = bitstream_ptr->output_bitstream_ptr;
1270
962
    return (int)(unit->buffer_av1 - unit->buffer_begin_av1);
1271
962
}
1272
1273
481
void svt_aom_bitstream_copy(const Bitstream* bitstream_ptr, void* dest, int size) {
1274
481
    const OutputBitstreamUnit* unit = bitstream_ptr->output_bitstream_ptr;
1275
481
    svt_memcpy(dest, unit->buffer_begin_av1, size);
1276
481
}
1277
1278
5.15k
static void entropy_coder_dctor(EbPtr p) {
1279
5.15k
    EntropyCoder*        obj                  = (EntropyCoder*)p;
1280
5.15k
    OutputBitstreamUnit* output_bitstream_ptr = (OutputBitstreamUnit*)obj->ec_output_bitstream_ptr;
1281
5.15k
    EB_DELETE(output_bitstream_ptr);
1282
    // EC buffer is owned by OutputBitstreamUnit and freed above; just NULL out.
1283
5.15k
    obj->ec_writer.ec.buf = NULL;
1284
5.15k
    obj->ec_writer.ec.ptr = NULL;
1285
5.15k
    EB_FREE(obj->fc);
1286
5.15k
}
1287
1288
5.15k
EbErrorType svt_aom_entropy_coder_ctor(EntropyCoder* ec, uint32_t buffer_size) {
1289
5.15k
    OutputBitstreamUnit* output_bitstream_ptr;
1290
1291
5.15k
    ec->dctor = entropy_coder_dctor;
1292
1293
5.15k
    EB_MALLOC_OBJECT(ec->fc);
1294
1295
5.15k
    EB_NEW(output_bitstream_ptr, svt_aom_output_bitstream_unit_ctor, buffer_size);
1296
5.15k
    ec->ec_output_bitstream_ptr = output_bitstream_ptr;
1297
1298
    // EC does not allocate its own buffer; it borrows from OutputBitstreamUnit
1299
    // via aom_start_encode() each frame.
1300
5.15k
    svt_od_ec_enc_init(&ec->ec_writer.ec);
1301
1302
5.15k
    return EB_ErrorNone;
1303
5.15k
}
1304
1305
//*******************************************************************************************//
1306
//*******************************************************************************************//
1307
//*******************************************************************************************//
1308
//*******************************************************************************************//
1309
// aom_integer.c
1310
static const size_t   k_maximum_leb_128_size  = 8;
1311
static const uint64_t k_maximum_leb_128_value = 0xFFFFFFFFFFFFFF; // 2 ^ 56 - 1
1312
1313
2.40k
size_t svt_aom_uleb_size_in_bytes(uint64_t value) {
1314
2.40k
    size_t size = 0;
1315
3.17k
    do {
1316
3.17k
        ++size;
1317
3.17k
    } while ((value >>= 7) != 0);
1318
2.40k
    return size;
1319
2.40k
}
1320
1321
1.44k
int32_t svt_aom_uleb_encode(uint64_t value, size_t available, uint8_t* coded_value, size_t* coded_size) {
1322
1.44k
    const size_t leb_size = svt_aom_uleb_size_in_bytes(value);
1323
1.44k
    if (value > k_maximum_leb_128_value || leb_size > k_maximum_leb_128_size || leb_size > available || !coded_value ||
1324
1.44k
        !coded_size) {
1325
0
        return -1;
1326
0
    }
1327
1328
3.27k
    for (size_t i = 0; i < leb_size; ++i) {
1329
1.82k
        uint8_t byte = value & 0x7f;
1330
1.82k
        value >>= 7;
1331
1332
1.82k
        if (value != 0) {
1333
384
            byte |= 0x80; // Signal that more bytes follow.
1334
384
        }
1335
1336
1.82k
        *(coded_value + i) = byte;
1337
1.82k
    }
1338
1339
1.44k
    *coded_size = leb_size;
1340
1.44k
    return 0;
1341
1.44k
}
1342
1343
962
int32_t svt_aom_wb_is_byte_aligned(const AomWriteBitBuffer* wb) {
1344
962
    return (wb->bit_offset % CHAR_BIT == 0);
1345
962
}
1346
1347
4.31k
uint32_t svt_aom_wb_bytes_written(const AomWriteBitBuffer* wb) {
1348
4.31k
    return wb->bit_offset / CHAR_BIT + (wb->bit_offset % CHAR_BIT > 0);
1349
4.31k
}
1350
1351
112k
INLINE static void svt_aom_wb_write_bit_inlined(AomWriteBitBuffer* wb, int32_t bit) {
1352
112k
    const int32_t off = (int32_t)wb->bit_offset;
1353
112k
    const int32_t p   = off / CHAR_BIT;
1354
112k
    const int32_t q   = CHAR_BIT - 1 - off % CHAR_BIT;
1355
112k
    if (q == CHAR_BIT - 1) {
1356
        // zero next char and write bit
1357
15.6k
        wb->bit_buffer[p] = (uint8_t)(bit << q);
1358
96.9k
    } else {
1359
96.9k
        wb->bit_buffer[p] &= ~(1 << q);
1360
96.9k
        wb->bit_buffer[p] |= bit << q;
1361
96.9k
    }
1362
112k
    wb->bit_offset = off + 1;
1363
112k
}
1364
1365
21.8k
INLINE static void svt_aom_wb_write_literal_inlined(AomWriteBitBuffer* wb, int32_t data, int32_t bits) {
1366
21.8k
    int32_t bit;
1367
104k
    for (bit = bits - 1; bit >= 0; bit--) {
1368
82.7k
        svt_aom_wb_write_bit(wb, (data >> bit) & 1);
1369
82.7k
    }
1370
21.8k
}
1371
1372
112k
void NOINLINE svt_aom_wb_write_bit(AomWriteBitBuffer* wb, int32_t bit) {
1373
112k
    svt_aom_wb_write_bit_inlined(wb, bit);
1374
112k
}
1375
1376
21.8k
void NOINLINE svt_aom_wb_write_literal(AomWriteBitBuffer* wb, int32_t data, int32_t bits) {
1377
21.8k
    svt_aom_wb_write_literal_inlined(wb, data, bits);
1378
21.8k
}
1379
1380
0
void NOINLINE svt_aom_wb_write_inv_signed_literal(AomWriteBitBuffer* wb, int32_t data, int32_t bits) {
1381
0
    svt_aom_wb_write_literal_inlined(wb, data, bits + 1);
1382
0
}
1383
1384
//*******************************************************************************************//
1385
1386
static void write_inter_mode(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, PredictionMode mode,
1387
0
                             const int16_t mode_ctx, uint32_t blk_org_x, uint32_t blk_org_y) {
1388
0
    (void)blk_org_x;
1389
0
    (void)blk_org_y;
1390
0
    int16_t newmv_ctx = mode_ctx & NEWMV_CTX_MASK;
1391
0
    assert(newmv_ctx < NEWMV_MODE_CONTEXTS);
1392
0
    aom_write_symbol(ec_writer, mode != NEWMV, frame_context->newmv_cdf[newmv_ctx], 2);
1393
1394
0
    if (mode != NEWMV) {
1395
0
        const int16_t zeromv_ctx = (mode_ctx >> GLOBALMV_OFFSET) & GLOBALMV_CTX_MASK;
1396
0
        aom_write_symbol(ec_writer, mode != GLOBALMV, frame_context->zeromv_cdf[zeromv_ctx], 2);
1397
1398
0
        if (mode != GLOBALMV) {
1399
0
            int16_t refmv_ctx = (mode_ctx >> REFMV_OFFSET) & REFMV_CTX_MASK;
1400
0
            assert(refmv_ctx < REFMV_MODE_CONTEXTS);
1401
0
            aom_write_symbol(ec_writer, mode != NEARESTMV, frame_context->refmv_cdf[refmv_ctx], 2);
1402
0
        }
1403
0
    }
1404
0
}
1405
1406
//extern INLINE int8_t av1_ref_frame_type(const MvReferenceFrame *const rf);
1407
static void write_drl_idx(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, MbModeInfo* mbmi,
1408
1409
0
                          EcBlkStruct* blk_ptr) {
1410
0
    const int32_t new_mv = mbmi->block_mi.mode == NEWMV || mbmi->block_mi.mode == NEW_NEWMV;
1411
0
    if (new_mv) {
1412
0
        int32_t idx;
1413
0
        for (idx = 0; idx < 2; ++idx) {
1414
0
            if (blk_ptr->drl_ctx[idx] != -1) {
1415
0
                uint8_t drl_ctx = (uint8_t)blk_ptr->drl_ctx[idx];
1416
1417
0
                aom_write_symbol(ec_writer, blk_ptr->drl_index != idx, frame_context->drl_cdf[drl_ctx], 2);
1418
1419
0
                if (blk_ptr->drl_index == idx) {
1420
0
                    return;
1421
0
                }
1422
0
            }
1423
0
        }
1424
0
        return;
1425
0
    }
1426
1427
0
    if (have_nearmv_in_inter_mode(mbmi->block_mi.mode)) {
1428
0
        int32_t idx;
1429
        // TODO(jingning): Temporary solution to compensate the NEARESTMV offset.
1430
0
        for (idx = 1; idx < 3; ++idx) {
1431
0
            if (blk_ptr->drl_ctx_near[idx - 1] != -1) {
1432
0
                uint8_t drl_ctx = (uint8_t)blk_ptr->drl_ctx_near[idx - 1];
1433
1434
0
                aom_write_symbol(ec_writer, blk_ptr->drl_index != (idx - 1), frame_context->drl_cdf[drl_ctx], 2);
1435
1436
0
                if (blk_ptr->drl_index == (idx - 1)) {
1437
0
                    return;
1438
0
                }
1439
0
            }
1440
0
        }
1441
0
        return;
1442
0
    }
1443
0
}
1444
1445
0
static void encode_mv_component(AomWriter* w, int32_t comp, NmvComponent* mvcomp, MvSubpelPrecision precision) {
1446
0
    int32_t       offset;
1447
0
    const int32_t sign     = comp < 0;
1448
0
    const int32_t mag      = sign ? -comp : comp;
1449
0
    const int32_t mv_class = svt_av1_get_mv_class(mag - 1, &offset);
1450
0
    const int32_t d        = offset >> 3; // int32_t mv data
1451
0
    const int32_t fr       = (offset >> 1) & 3; // fractional mv data
1452
0
    const int32_t hp       = offset & 1; // high precision mv data
1453
1454
0
    assert(comp != 0);
1455
1456
    // Sign
1457
0
    aom_write_symbol(w, sign, mvcomp->sign_cdf, 2);
1458
1459
    // Class
1460
0
    aom_write_symbol(w, mv_class, mvcomp->classes_cdf, MV_CLASSES);
1461
1462
    // Integer bits
1463
0
    if (mv_class == MV_CLASS_0) {
1464
0
        aom_write_symbol(w, d, mvcomp->class0_cdf, CLASS0_SIZE);
1465
0
    } else {
1466
0
        int32_t       i;
1467
0
        const int32_t n = mv_class + CLASS0_BITS - 1; // number of bits
1468
0
        for (i = 0; i < n; ++i) {
1469
0
            aom_write_symbol(w, (d >> i) & 1, mvcomp->bits_cdf[i], 2);
1470
0
        }
1471
0
    }
1472
    // Fractional bits
1473
0
    if (precision > MV_SUBPEL_NONE) {
1474
0
        aom_write_symbol(w, fr, mv_class == MV_CLASS_0 ? mvcomp->class0_fp_cdf[d] : mvcomp->fp_cdf, MV_FP_SIZE);
1475
0
    }
1476
1477
    // High precision bit
1478
0
    if (precision > MV_SUBPEL_LOW_PRECISION) {
1479
0
        aom_write_symbol(w, hp, mv_class == MV_CLASS_0 ? mvcomp->class0_hp_cdf : mvcomp->hp_cdf, 2);
1480
0
    }
1481
0
}
1482
1483
// can't mark the parameter as const due to MSVC not supporting c99 fully.
1484
#ifdef _MSC_VER
1485
static MvJointType av1_get_mv_joint_diff(const int32_t diff[2]) {
1486
#else
1487
0
static MvJointType av1_get_mv_joint_diff(const int32_t diff[const 2]) {
1488
0
#endif
1489
0
    if (diff[0] == 0) {
1490
0
        return diff[1] == 0 ? MV_JOINT_ZERO : MV_JOINT_HNZVZ;
1491
0
    }
1492
0
    return diff[1] == 0 ? MV_JOINT_HZVNZ : MV_JOINT_HNZVNZ;
1493
0
}
1494
1495
void svt_av1_encode_mv(PictureParentControlSet* pcs, AomWriter* ec_writer, const Mv mv, const Mv ref, NmvContext* mvctx,
1496
0
                       int32_t usehp) {
1497
    // The y-component (row component) of the MV is coded first
1498
0
    int32_t           diff[2] = {mv.y - ref.y, mv.x - ref.x};
1499
0
    const MvJointType j       = av1_get_mv_joint_diff(diff);
1500
1501
0
    if (pcs->frm_hdr.force_integer_mv) {
1502
0
        usehp = MV_SUBPEL_NONE;
1503
0
    }
1504
0
    aom_write_symbol(ec_writer, j, mvctx->joints_cdf, MV_JOINTS);
1505
0
    if (mv_joint_vertical(j)) {
1506
0
        encode_mv_component(ec_writer, diff[0], &mvctx->comps[0], (MvSubpelPrecision)usehp);
1507
0
    }
1508
1509
0
    if (mv_joint_horizontal(j)) {
1510
0
        encode_mv_component(ec_writer, diff[1], &mvctx->comps[1], (MvSubpelPrecision)usehp);
1511
0
    }
1512
1513
    // If auto_mv_step_size is enabled then keep track of the largest
1514
    // motion vector component used.
1515
    //if (cpi->sf.mv.auto_mv_step_size) {
1516
    //    uint32_t maxv = AOMMAX(abs(mv->row), abs(mv->col)) >> 3;
1517
    //    cpi->max_mv_magnitude = AOMMAX(maxv, cpi->max_mv_magnitude);
1518
    //}
1519
0
}
1520
1521
//Returns a context number for the given MB prediction signal
1522
0
static InterpFilter svt_aom_get_ref_filter_type(const BlockModeInfo* ref_mbmi, int dir, MvReferenceFrame ref_frame) {
1523
0
    return ((ref_mbmi->ref_frame[0] == ref_frame || ref_mbmi->ref_frame[1] == ref_frame)
1524
0
                ? av1_extract_interp_filter(ref_mbmi->interp_filters, dir & 0x01)
1525
0
                : SWITCHABLE_FILTERS);
1526
0
}
1527
1528
/* Get the context for the interpolation filter when SWITCHABLE filter is specified
1529
at the frame level.  Used for computing rate and for entropy coding. */
1530
int svt_aom_get_pred_context_switchable_interp(MvReferenceFrame rf0, MvReferenceFrame rf1, const MacroBlockD* xd,
1531
0
                                               int dir) {
1532
    /* When calling the function from MD, the current MBMI may not be updated yet, so pass
1533
       the ref frames instead of getting them from the current mbmi (as you could below):
1534
1535
            const MbModeInfo* const mbmi = &xd->mi[0]->mbmi;
1536
            const int ctx_offset = (mbmi->block_mi.ref_frame[1] > INTRA_FRAME) * INTER_FILTER_COMP_OFFSET;
1537
            assert(dir == 0 || dir == 1);
1538
            const MvReferenceFrame ref_frame = mbmi->block_mi.ref_frame[0];
1539
    */
1540
1541
0
    const int32_t ctx_offset = (rf1 > INTRA_FRAME) * INTER_FILTER_COMP_OFFSET;
1542
0
    assert(dir == 0 || dir == 1);
1543
0
    MvReferenceFrame ref_frame = rf0;
1544
1545
    // Note:
1546
    // The mode info data structure has a one element border above and to the
1547
    // left of the entries corresponding to real macroblocks.
1548
    // The prediction flags in these dummy entries are initialized to 0.
1549
0
    int filter_type_ctx = ctx_offset + (dir & 0x01) * INTER_FILTER_DIR_OFFSET;
1550
0
    int left_type       = SWITCHABLE_FILTERS;
1551
0
    int above_type      = SWITCHABLE_FILTERS;
1552
1553
0
    if (xd->left_available) {
1554
0
        left_type = svt_aom_get_ref_filter_type(&xd->mi[-1]->block_mi, dir, ref_frame);
1555
0
    }
1556
1557
0
    if (xd->up_available) {
1558
0
        above_type = svt_aom_get_ref_filter_type(&xd->mi[-xd->mi_stride]->block_mi, dir, ref_frame);
1559
0
    }
1560
1561
0
    if (left_type == above_type) {
1562
0
        filter_type_ctx += left_type;
1563
0
    } else if (left_type == SWITCHABLE_FILTERS) {
1564
0
        assert(above_type != SWITCHABLE_FILTERS);
1565
0
        filter_type_ctx += above_type;
1566
0
    } else if (above_type == SWITCHABLE_FILTERS) {
1567
0
        assert(left_type != SWITCHABLE_FILTERS);
1568
0
        filter_type_ctx += left_type;
1569
0
    } else {
1570
0
        filter_type_ctx += SWITCHABLE_FILTERS;
1571
0
    }
1572
0
    return filter_type_ctx;
1573
0
}
1574
1575
int svt_aom_is_nontrans_global_motion(const BlockModeInfo* block_mi, const BlockSize bsize,
1576
0
                                      PictureParentControlSet* pcs) {
1577
0
    if (!CONFIG_ENABLE_GLOBAL_MOTION) {
1578
0
        return 0; // global motion off -> all wmtype TRANSLATION
1579
0
    }
1580
    // First check if all modes are GLOBALMV
1581
0
    if (block_mi->mode != GLOBALMV && block_mi->mode != GLOBAL_GLOBALMV) {
1582
0
        return 0;
1583
0
    }
1584
1585
0
    if (MIN(mi_size_wide[bsize], mi_size_high[bsize]) < 2) {
1586
0
        return 0;
1587
0
    }
1588
0
    const uint8_t is_compound = is_inter_compound_mode(block_mi->mode);
1589
    // Now check if all global motion is non translational
1590
0
    for (int ref = 0; ref < 1 + is_compound; ++ref) {
1591
0
        if (pcs->global_motion[block_mi->ref_frame[ref]].wmtype == TRANSLATION) {
1592
0
            return 0;
1593
0
        }
1594
0
    }
1595
0
    return 1;
1596
0
}
1597
1598
0
static int av1_is_interp_needed(const BlockModeInfo* block_mi, const BlockSize bsize, PictureParentControlSet* pcs) {
1599
0
    if (block_mi->skip_mode) {
1600
0
        return 0;
1601
0
    }
1602
1603
0
    if (block_mi->motion_mode == WARPED_CAUSAL) {
1604
0
        return 0;
1605
0
    }
1606
1607
0
    if (svt_aom_is_nontrans_global_motion(block_mi, bsize, pcs)) {
1608
0
        return 0;
1609
0
    }
1610
1611
0
    return 1;
1612
0
}
1613
1614
static void write_mb_interp_filter(BlockSize bsize, MvReferenceFrame rf0, MvReferenceFrame rf1,
1615
                                   PictureParentControlSet* pcs, AomWriter* ec_writer, MbModeInfo* mbmi,
1616
0
                                   EcBlkStruct* blk_ptr, EntropyCoder* ec) {
1617
0
    FrameHeader* const frm_hdr = &pcs->frm_hdr;
1618
1619
0
    if (frm_hdr->interpolation_filter != SWITCHABLE || !av1_is_interp_needed(&mbmi->block_mi, bsize, pcs)) {
1620
0
        return;
1621
0
    }
1622
1623
0
    const int max_dir = pcs->scs->seq_header.enable_dual_filter ? 2 : 1;
1624
0
    for (int dir = 0; dir < max_dir; ++dir) {
1625
0
        const int    ctx    = svt_aom_get_pred_context_switchable_interp(rf0, rf1, blk_ptr->av1xd, dir);
1626
0
        InterpFilter filter = av1_extract_interp_filter(mbmi->block_mi.interp_filters, dir);
1627
0
        assert(ctx < SWITCHABLE_FILTER_CONTEXTS);
1628
0
        assert(filter < CDF_SIZE(SWITCHABLE_FILTERS));
1629
0
        aom_write_symbol(ec_writer, filter, ec->fc->switchable_interp_cdf[ctx], SWITCHABLE_FILTERS);
1630
0
    }
1631
0
}
1632
1633
static void write_inter_compound_mode(FRAME_CONTEXT* frame_context, AomWriter* ec_writer, PredictionMode mode,
1634
0
                                      const int16_t mode_ctx) {
1635
0
    assert(is_inter_compound_mode(mode));
1636
0
    aom_write_symbol(
1637
0
        ec_writer, INTER_COMPOUND_OFFSET(mode), frame_context->inter_compound_mode_cdf[mode_ctx], INTER_COMPOUND_MODES);
1638
0
}
1639
1640
int svt_aom_get_reference_mode_context_new(const MacroBlockD* xd);
1641
1642
0
AomCdfProb* svt_aom_get_reference_mode_cdf(const MacroBlockD* xd) {
1643
0
    return xd->tile_ctx->comp_inter_cdf[svt_aom_get_reference_mode_context_new(xd)];
1644
0
}
1645
1646
int svt_aom_get_comp_reference_type_context_new(const MacroBlockD* xd);
1647
1648
// == Uni-directional contexts ==
1649
1650
int svt_av1_get_pred_context_uni_comp_ref_p(const MacroBlockD* xd);
1651
1652
int svt_av1_get_pred_context_uni_comp_ref_p1(const MacroBlockD* xd);
1653
1654
int svt_av1_get_pred_context_uni_comp_ref_p2(const MacroBlockD* xd);
1655
1656
0
AomCdfProb* svt_aom_get_comp_reference_type_cdf(const MacroBlockD* xd) {
1657
0
    const int pred_context = svt_aom_get_comp_reference_type_context_new(xd);
1658
0
    return xd->tile_ctx->comp_ref_type_cdf[pred_context];
1659
0
}
1660
1661
0
AomCdfProb* svt_aom_get_pred_cdf_uni_comp_ref_p(const MacroBlockD* xd) {
1662
0
    const int pred_context = svt_av1_get_pred_context_uni_comp_ref_p(xd);
1663
0
    return xd->tile_ctx->uni_comp_ref_cdf[pred_context][0];
1664
0
}
1665
1666
0
AomCdfProb* svt_aom_get_pred_cdf_uni_comp_ref_p1(const MacroBlockD* xd) {
1667
0
    const int pred_context = svt_av1_get_pred_context_uni_comp_ref_p1(xd);
1668
0
    return xd->tile_ctx->uni_comp_ref_cdf[pred_context][1];
1669
0
}
1670
1671
0
AomCdfProb* svt_aom_get_pred_cdf_uni_comp_ref_p2(const MacroBlockD* xd) {
1672
0
    const int pred_context = svt_av1_get_pred_context_uni_comp_ref_p2(xd);
1673
0
    return xd->tile_ctx->uni_comp_ref_cdf[pred_context][2];
1674
0
}
1675
1676
0
AomCdfProb* svt_aom_get_pred_cdf_comp_ref_p(const MacroBlockD* xd) {
1677
0
    const int pred_context = svt_av1_get_pred_context_comp_ref_p(xd);
1678
0
    return xd->tile_ctx->comp_ref_cdf[pred_context][0];
1679
0
}
1680
1681
0
AomCdfProb* svt_aom_get_pred_cdf_comp_ref_p1(const MacroBlockD* xd) {
1682
0
    const int pred_context = svt_av1_get_pred_context_comp_ref_p1(xd);
1683
0
    return xd->tile_ctx->comp_ref_cdf[pred_context][1];
1684
0
}
1685
1686
0
AomCdfProb* svt_aom_get_pred_cdf_comp_ref_p2(const MacroBlockD* xd) {
1687
0
    const int pred_context = svt_av1_get_pred_context_comp_ref_p2(xd);
1688
0
    return xd->tile_ctx->comp_ref_cdf[pred_context][2];
1689
0
}
1690
1691
0
AomCdfProb* svt_aom_get_pred_cdf_comp_bwdref_p(const MacroBlockD* xd) {
1692
0
    const int pred_context = svt_av1_get_pred_context_comp_bwdref_p(xd);
1693
0
    return xd->tile_ctx->comp_bwdref_cdf[pred_context][0];
1694
0
}
1695
1696
0
AomCdfProb* svt_aom_get_pred_cdf_comp_bwdref_p1(const MacroBlockD* xd) {
1697
0
    const int pred_context = svt_av1_get_pred_context_comp_bwdref_p1(xd);
1698
0
    return xd->tile_ctx->comp_bwdref_cdf[pred_context][1];
1699
0
}
1700
1701
0
int svt_aom_get_comp_reference_type_context_new(const MacroBlockD* xd) {
1702
0
    int                     pred_context;
1703
0
    const MbModeInfo* const above_mbmi     = xd->above_mbmi;
1704
0
    const MbModeInfo* const left_mbmi      = xd->left_mbmi;
1705
0
    const int               above_in_image = xd->up_available;
1706
0
    const int               left_in_image  = xd->left_available;
1707
1708
0
    if (above_in_image && left_in_image) { // both edges available
1709
0
        const int above_intra = !is_inter_block(&above_mbmi->block_mi);
1710
0
        const int left_intra  = !is_inter_block(&left_mbmi->block_mi);
1711
1712
0
        if (above_intra && left_intra) { // intra/intra
1713
0
            pred_context = 2;
1714
0
        } else if (above_intra || left_intra) { // intra/inter
1715
0
            const MbModeInfo* inter_mbmi = above_intra ? left_mbmi : above_mbmi;
1716
1717
0
            if (!has_second_ref(&inter_mbmi->block_mi)) { // single pred
1718
0
                pred_context = 2;
1719
0
            } else { // comp pred
1720
0
                pred_context = 1 + 2 * has_uni_comp_refs(&inter_mbmi->block_mi);
1721
0
            }
1722
0
        } else { // inter/inter
1723
0
            const int              a_sg = !has_second_ref(&above_mbmi->block_mi);
1724
0
            const int              l_sg = !has_second_ref(&left_mbmi->block_mi);
1725
0
            const MvReferenceFrame frfa = above_mbmi->block_mi.ref_frame[0];
1726
0
            const MvReferenceFrame frfl = left_mbmi->block_mi.ref_frame[0];
1727
1728
0
            if (a_sg && l_sg) { // single/single
1729
0
                pred_context = 1 + 2 * (!(IS_BACKWARD_REF_FRAME(frfa) ^ IS_BACKWARD_REF_FRAME(frfl)));
1730
0
            } else if (l_sg || a_sg) { // single/comp
1731
0
                const int uni_rfc = a_sg ? has_uni_comp_refs(&left_mbmi->block_mi)
1732
0
                                         : has_uni_comp_refs(&above_mbmi->block_mi);
1733
1734
0
                if (!uni_rfc) { // comp bidir
1735
0
                    pred_context = 1;
1736
0
                } else { // comp unidir
1737
0
                    pred_context = 3 + (!(IS_BACKWARD_REF_FRAME(frfa) ^ IS_BACKWARD_REF_FRAME(frfl)));
1738
0
                }
1739
0
            } else { // comp/comp
1740
0
                const int a_uni_rfc = has_uni_comp_refs(&above_mbmi->block_mi);
1741
0
                const int l_uni_rfc = has_uni_comp_refs(&left_mbmi->block_mi);
1742
1743
0
                if (!a_uni_rfc && !l_uni_rfc) { // bidir/bidir
1744
0
                    pred_context = 0;
1745
0
                } else if (!a_uni_rfc || !l_uni_rfc) { // unidir/bidir
1746
0
                    pred_context = 2;
1747
0
                } else { // unidir/unidir
1748
0
                    pred_context = 3 + (!((frfa == BWDREF_FRAME) ^ (frfl == BWDREF_FRAME)));
1749
0
                }
1750
0
            }
1751
0
        }
1752
0
    } else if (above_in_image || left_in_image) { // one edge available
1753
0
        const MbModeInfo* edge_mbmi = above_in_image ? above_mbmi : left_mbmi;
1754
1755
0
        if (!is_inter_block(&edge_mbmi->block_mi)) { // intra
1756
0
            pred_context = 2;
1757
0
        } else { // inter
1758
0
            if (!has_second_ref(&edge_mbmi->block_mi)) { // single pred
1759
0
                pred_context = 2;
1760
0
            } else { // comp pred
1761
0
                pred_context = 4 * has_uni_comp_refs(&edge_mbmi->block_mi);
1762
0
            }
1763
0
        }
1764
0
    } else { // no edges available
1765
0
        pred_context = 2;
1766
0
    }
1767
1768
0
    assert(pred_context >= 0 && pred_context < COMP_REF_TYPE_CONTEXTS);
1769
0
    return pred_context;
1770
0
}
1771
1772
// Returns a context number for the given MB prediction signal
1773
//
1774
// Signal the uni-directional compound reference frame pair as either
1775
// (BWDREF, ALTREF), or (LAST, LAST2) / (LAST, LAST3) / (LAST, GOLDEN),
1776
// conditioning on the pair is known as uni-directional.
1777
//
1778
// 3 contexts: Voting is used to compare the count of forward references with
1779
//             that of backward references from the spatial neighbors.
1780
0
int svt_av1_get_pred_context_uni_comp_ref_p(const MacroBlockD* xd) {
1781
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1782
1783
    // Count of forward references (L, L2, L3, or G)
1784
0
    const int frf_count = ref_counts[LAST_FRAME] + ref_counts[LAST2_FRAME] + ref_counts[LAST3_FRAME] +
1785
0
        ref_counts[GOLDEN_FRAME];
1786
    // Count of backward references (b or A)
1787
0
    const int brf_count = ref_counts[BWDREF_FRAME] + ref_counts[ALTREF2_FRAME] + ref_counts[ALTREF_FRAME];
1788
1789
0
    const int pred_context = (frf_count == brf_count) ? 1 : ((frf_count < brf_count) ? 0 : 2);
1790
1791
0
    assert(pred_context >= 0 && pred_context < UNI_COMP_REF_CONTEXTS);
1792
0
    return pred_context;
1793
0
}
1794
1795
// Returns a context number for the given MB prediction signal
1796
//
1797
// Signal the uni-directional compound reference frame pair as
1798
// either (LAST, LAST2), or (LAST, LAST3) / (LAST, GOLDEN),
1799
// conditioning on the pair is known as one of the above three.
1800
//
1801
// 3 contexts: Voting is used to compare the count of LAST2_FRAME with the
1802
//             total count of LAST3/GOLDEN from the spatial neighbors.
1803
0
int svt_av1_get_pred_context_uni_comp_ref_p1(const MacroBlockD* xd) {
1804
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1805
1806
    // Count of LAST2
1807
0
    const int last2_count = ref_counts[LAST2_FRAME];
1808
    // Count of LAST3 or GOLDEN
1809
0
    const int last3_or_gld_count = ref_counts[LAST3_FRAME] + ref_counts[GOLDEN_FRAME];
1810
1811
0
    const int pred_context = (last2_count == last3_or_gld_count) ? 1 : ((last2_count < last3_or_gld_count) ? 0 : 2);
1812
1813
0
    assert(pred_context >= 0 && pred_context < UNI_COMP_REF_CONTEXTS);
1814
0
    return pred_context;
1815
0
}
1816
1817
// Returns a context number for the given MB prediction signal
1818
//
1819
// Signal the uni-directional compound reference frame pair as
1820
// either (LAST, LAST3) or (LAST, GOLDEN),
1821
// conditioning on the pair is known as one of the above two.
1822
//
1823
// 3 contexts: Voting is used to compare the count of LAST3_FRAME with the
1824
//             total count of GOLDEN_FRAME from the spatial neighbors.
1825
0
int svt_av1_get_pred_context_uni_comp_ref_p2(const MacroBlockD* xd) {
1826
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1827
1828
    // Count of LAST3
1829
0
    const int last3_count = ref_counts[LAST3_FRAME];
1830
    // Count of GOLDEN
1831
0
    const int gld_count = ref_counts[GOLDEN_FRAME];
1832
1833
0
    const int pred_context = (last3_count == gld_count) ? 1 : ((last3_count < gld_count) ? 0 : 2);
1834
1835
0
    assert(pred_context >= 0 && pred_context < UNI_COMP_REF_CONTEXTS);
1836
0
    return pred_context;
1837
0
}
1838
1839
0
int svt_aom_get_reference_mode_context_new(const MacroBlockD* xd) {
1840
0
    int                     ctx;
1841
0
    const MbModeInfo* const above_mbmi = xd->above_mbmi;
1842
0
    const MbModeInfo* const left_mbmi  = xd->left_mbmi;
1843
0
    const int               has_above  = xd->up_available;
1844
0
    const int               has_left   = xd->left_available;
1845
1846
    // Note:
1847
    // The mode info data structure has a one element border above and to the
1848
    // left of the entries corresponding to real macroblocks.
1849
    // The prediction flags in these dummy entries are initialized to 0.
1850
0
    if (has_above && has_left) { // both edges available
1851
0
        if (!has_second_ref(&above_mbmi->block_mi) && !has_second_ref(&left_mbmi->block_mi)) {
1852
            // neither edge uses comp pred (0/1)
1853
0
            ctx = IS_BACKWARD_REF_FRAME(above_mbmi->block_mi.ref_frame[0]) ^
1854
0
                IS_BACKWARD_REF_FRAME(left_mbmi->block_mi.ref_frame[0]);
1855
0
        } else if (!has_second_ref(&above_mbmi->block_mi)) {
1856
            // one of two edges uses comp pred (2/3)
1857
0
            ctx = 2 +
1858
0
                (IS_BACKWARD_REF_FRAME(above_mbmi->block_mi.ref_frame[0]) || !is_inter_block(&above_mbmi->block_mi));
1859
0
        } else if (!has_second_ref(&left_mbmi->block_mi)) {
1860
            // one of two edges uses comp pred (2/3)
1861
0
            ctx = 2 +
1862
0
                (IS_BACKWARD_REF_FRAME(left_mbmi->block_mi.ref_frame[0]) || !is_inter_block(&left_mbmi->block_mi));
1863
0
        } else { // both edges use comp pred (4)
1864
0
            ctx = 4;
1865
0
        }
1866
0
    } else if (has_above || has_left) { // one edge available
1867
0
        const MbModeInfo* edge_mbmi = has_above ? above_mbmi : left_mbmi;
1868
1869
0
        if (!has_second_ref(&edge_mbmi->block_mi)) {
1870
            // edge does not use comp pred (0/1)
1871
0
            ctx = IS_BACKWARD_REF_FRAME(edge_mbmi->block_mi.ref_frame[0]);
1872
0
        } else {
1873
            // edge uses comp pred (3)
1874
0
            ctx = 3;
1875
0
        }
1876
0
    } else { // no edges available (1)
1877
0
        ctx = 1;
1878
0
    }
1879
0
    assert(ctx >= 0 && ctx < COMP_INTER_CONTEXTS);
1880
0
    return ctx;
1881
0
}
1882
1883
0
void svt_aom_collect_neighbors_ref_counts_new(MacroBlockD* const xd) {
1884
0
    av1_zero(xd->neighbors_ref_counts);
1885
1886
0
    uint8_t* const ref_counts = xd->neighbors_ref_counts;
1887
1888
0
    const MbModeInfo* const above_mbmi     = xd->above_mbmi;
1889
0
    const MbModeInfo* const left_mbmi      = xd->left_mbmi;
1890
0
    const int               above_in_image = xd->up_available;
1891
0
    const int               left_in_image  = xd->left_available;
1892
1893
    // Above neighbor
1894
0
    if (above_in_image && is_inter_block(&above_mbmi->block_mi)) {
1895
0
        ref_counts[above_mbmi->block_mi.ref_frame[0]]++;
1896
0
        if (has_second_ref(&above_mbmi->block_mi)) {
1897
0
            ref_counts[above_mbmi->block_mi.ref_frame[1]]++;
1898
0
        }
1899
0
    }
1900
1901
    // Left neighbor
1902
0
    if (left_in_image && is_inter_block(&left_mbmi->block_mi)) {
1903
0
        ref_counts[left_mbmi->block_mi.ref_frame[0]]++;
1904
0
        if (has_second_ref(&left_mbmi->block_mi)) {
1905
0
            ref_counts[left_mbmi->block_mi.ref_frame[1]]++;
1906
0
        }
1907
0
    }
1908
0
}
1909
1910
0
#define WRITE_REF_BIT(bname, pname) aom_write_symbol(w, bname, svt_aom_get_pred_cdf_##pname(xd), 2)
1911
1912
/***************************************************************************************/
1913
1914
// == Common context functions for both comp and single ref ==
1915
//
1916
// Obtain contexts to signal a reference frame to be either LAST/LAST2 or
1917
// LAST3/GOLDEN.
1918
0
static int32_t get_pred_context_ll2_or_l3gld(const MacroBlockD* xd) {
1919
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1920
1921
    // Count of LAST + LAST2
1922
0
    const int32_t last_last2_count = ref_counts[LAST_FRAME] + ref_counts[LAST2_FRAME];
1923
    // Count of LAST3 + GOLDEN
1924
0
    const int32_t last3_gld_count = ref_counts[LAST3_FRAME] + ref_counts[GOLDEN_FRAME];
1925
1926
0
    const int32_t pred_context = (last_last2_count == last3_gld_count) ? 1
1927
0
                                                                       : ((last_last2_count < last3_gld_count) ? 0 : 2);
1928
1929
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
1930
0
    return pred_context;
1931
0
}
1932
1933
// Obtain contexts to signal a reference frame to be either LAST or LAST2.
1934
0
static int32_t get_pred_context_last_or_last2(const MacroBlockD* xd) {
1935
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1936
1937
    // Count of LAST
1938
0
    const int32_t last_count = ref_counts[LAST_FRAME];
1939
    // Count of LAST2
1940
0
    const int32_t last2_count = ref_counts[LAST2_FRAME];
1941
1942
0
    const int32_t pred_context = (last_count == last2_count) ? 1 : ((last_count < last2_count) ? 0 : 2);
1943
1944
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
1945
0
    return pred_context;
1946
0
}
1947
1948
// Obtain contexts to signal a reference frame to be either LAST3 or GOLDEN.
1949
0
static int32_t get_pred_context_last3_or_gld(const MacroBlockD* xd) {
1950
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1951
1952
    // Count of LAST3
1953
0
    const int32_t last3_count = ref_counts[LAST3_FRAME];
1954
    // Count of GOLDEN
1955
0
    const int32_t gld_count = ref_counts[GOLDEN_FRAME];
1956
1957
0
    const int32_t pred_context = (last3_count == gld_count) ? 1 : ((last3_count < gld_count) ? 0 : 2);
1958
1959
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
1960
0
    return pred_context;
1961
0
}
1962
1963
// Obtain contexts to signal a reference frame be either BWDREF/ALTREF2, or
1964
// ALTREF.
1965
0
static int32_t get_pred_context_brfarf2_or_arf(const MacroBlockD* xd) {
1966
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1967
1968
    // Counts of BWDREF, ALTREF2, or ALTREF frames (b, A2, or A)
1969
0
    const int32_t brfarf2_count = ref_counts[BWDREF_FRAME] + ref_counts[ALTREF2_FRAME];
1970
0
    const int32_t arf_count     = ref_counts[ALTREF_FRAME];
1971
1972
0
    const int32_t pred_context = (brfarf2_count == arf_count) ? 1 : ((brfarf2_count < arf_count) ? 0 : 2);
1973
1974
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
1975
0
    return pred_context;
1976
0
}
1977
1978
// Obtain contexts to signal a reference frame be either BWDREF or ALTREF2.
1979
0
static int32_t get_pred_context_brf_or_arf2(const MacroBlockD* xd) {
1980
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
1981
1982
    // Count of BWDREF frames (b)
1983
0
    const int32_t brf_count = ref_counts[BWDREF_FRAME];
1984
    // Count of ALTREF2 frames (A2)
1985
0
    const int32_t arf2_count = ref_counts[ALTREF2_FRAME];
1986
1987
0
    const int32_t pred_context = (brf_count == arf2_count) ? 1 : ((brf_count < arf2_count) ? 0 : 2);
1988
1989
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
1990
0
    return pred_context;
1991
0
}
1992
1993
// == Context functions for comp ref ==
1994
//
1995
// Returns a context number for the given MB prediction signal
1996
// Signal the first reference frame for a compound mode be either
1997
// GOLDEN/LAST3, or LAST/LAST2.
1998
0
int32_t svt_av1_get_pred_context_comp_ref_p(const MacroBlockD* xd) {
1999
0
    return get_pred_context_ll2_or_l3gld(xd);
2000
0
}
2001
2002
// Returns a context number for the given MB prediction signal
2003
// Signal the first reference frame for a compound mode be LAST,
2004
// conditioning on that it is known either LAST/LAST2.
2005
0
int32_t svt_av1_get_pred_context_comp_ref_p1(const MacroBlockD* xd) {
2006
0
    return get_pred_context_last_or_last2(xd);
2007
0
}
2008
2009
// Returns a context number for the given MB prediction signal
2010
// Signal the first reference frame for a compound mode be GOLDEN,
2011
// conditioning on that it is known either GOLDEN or LAST3.
2012
0
int32_t svt_av1_get_pred_context_comp_ref_p2(const MacroBlockD* xd) {
2013
0
    return get_pred_context_last3_or_gld(xd);
2014
0
}
2015
2016
// Signal the 2nd reference frame for a compound mode be either
2017
// ALTREF, or ALTREF2/BWDREF.
2018
0
int32_t svt_av1_get_pred_context_comp_bwdref_p(const MacroBlockD* xd) {
2019
0
    return get_pred_context_brfarf2_or_arf(xd);
2020
0
}
2021
2022
// Signal the 2nd reference frame for a compound mode be either
2023
// ALTREF2 or BWDREF.
2024
0
int32_t svt_av1_get_pred_context_comp_bwdref_p1(const MacroBlockD* xd) {
2025
0
    return get_pred_context_brf_or_arf2(xd);
2026
0
}
2027
2028
// == Context functions for single ref ==
2029
//
2030
// For the bit to signal whether the single reference is a forward reference
2031
// frame or a backward reference frame.
2032
0
int32_t svt_av1_get_pred_context_single_ref_p1(const MacroBlockD* xd) {
2033
0
    const uint8_t* const ref_counts = &xd->neighbors_ref_counts[0];
2034
2035
    // Count of forward reference frames
2036
0
    const int32_t fwd_count = ref_counts[LAST_FRAME] + ref_counts[LAST2_FRAME] + ref_counts[LAST3_FRAME] +
2037
0
        ref_counts[GOLDEN_FRAME];
2038
    // Count of backward reference frames
2039
0
    const int32_t bwd_count = ref_counts[BWDREF_FRAME] + ref_counts[ALTREF2_FRAME] + ref_counts[ALTREF_FRAME];
2040
2041
0
    const int32_t pred_context = (fwd_count == bwd_count) ? 1 : ((fwd_count < bwd_count) ? 0 : 2);
2042
2043
0
    assert(pred_context >= 0 && pred_context < REF_CONTEXTS);
2044
0
    return pred_context;
2045
0
}
2046
2047
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p1(const MacroBlockD* xd) {
2048
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p1(xd)][0];
2049
0
}
2050
2051
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p2(const MacroBlockD* xd) {
2052
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p2(xd)][1];
2053
0
}
2054
2055
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p3(const MacroBlockD* xd) {
2056
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p3(xd)][2];
2057
0
}
2058
2059
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p4(const MacroBlockD* xd) {
2060
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p4(xd)][3];
2061
0
}
2062
2063
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p5(const MacroBlockD* xd) {
2064
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p5(xd)][4];
2065
0
}
2066
2067
0
AomCdfProb* svt_aom_get_pred_cdf_single_ref_p6(const MacroBlockD* xd) {
2068
0
    return xd->tile_ctx->single_ref_cdf[svt_av1_get_pred_context_single_ref_p6(xd)][5];
2069
0
}
2070
2071
// For the bit to signal whether the single reference is ALTREF_FRAME or
2072
// non-ALTREF backward reference frame, knowing that it shall be either of
2073
// these 2 choices.
2074
0
int32_t svt_av1_get_pred_context_single_ref_p2(const MacroBlockD* xd) {
2075
0
    return get_pred_context_brfarf2_or_arf(xd);
2076
0
}
2077
2078
// For the bit to signal whether the single reference is LAST3/GOLDEN or
2079
// LAST2/LAST, knowing that it shall be either of these 2 choices.
2080
0
int32_t svt_av1_get_pred_context_single_ref_p3(const MacroBlockD* xd) {
2081
0
    return get_pred_context_ll2_or_l3gld(xd);
2082
0
}
2083
2084
// For the bit to signal whether the single reference is LAST2_FRAME or
2085
// LAST_FRAME, knowing that it shall be either of these 2 choices.
2086
0
int32_t svt_av1_get_pred_context_single_ref_p4(const MacroBlockD* xd) {
2087
0
    return get_pred_context_last_or_last2(xd);
2088
0
}
2089
2090
// For the bit to signal whether the single reference is GOLDEN_FRAME or
2091
// LAST3_FRAME, knowing that it shall be either of these 2 choices.
2092
0
int32_t svt_av1_get_pred_context_single_ref_p5(const MacroBlockD* xd) {
2093
0
    return get_pred_context_last3_or_gld(xd);
2094
0
}
2095
2096
// For the bit to signal whether the single reference is ALTREF2_FRAME or
2097
// BWDREF_FRAME, knowing that it shall be either of these 2 choices.
2098
0
int32_t svt_av1_get_pred_context_single_ref_p6(const MacroBlockD* xd) {
2099
0
    return get_pred_context_brf_or_arf2(xd);
2100
0
}
2101
2102
/***************************************************************************************/
2103
2104
0
static void write_ref_frames(PictureParentControlSet* pcs, const MacroBlockD* xd, AomWriter* w) {
2105
0
    FrameHeader*            frm_hdr     = &pcs->frm_hdr;
2106
0
    const MbModeInfo* const mbmi        = xd->mi[0];
2107
0
    const int               is_compound = has_second_ref(&mbmi->block_mi);
2108
0
    {
2109
        // does the feature use compound prediction or not
2110
        // (if not specified at the frame/segment level)
2111
0
        if (frm_hdr->reference_mode == REFERENCE_MODE_SELECT) {
2112
0
            if (is_comp_ref_allowed(mbmi->bsize)) {
2113
0
                aom_write_symbol(w, is_compound, svt_aom_get_reference_mode_cdf(xd), 2);
2114
0
            }
2115
0
        } else {
2116
0
            assert((!is_compound) == (frm_hdr->reference_mode == SINGLE_REFERENCE));
2117
0
        }
2118
2119
0
        if (is_compound) {
2120
0
            const CompReferenceType comp_ref_type = has_uni_comp_refs(&mbmi->block_mi) ? UNIDIR_COMP_REFERENCE
2121
0
                                                                                       : BIDIR_COMP_REFERENCE;
2122
0
            aom_write_symbol(w, comp_ref_type, svt_aom_get_comp_reference_type_cdf(xd), 2);
2123
2124
0
            if (comp_ref_type == UNIDIR_COMP_REFERENCE) {
2125
0
                const int bit = mbmi->block_mi.ref_frame[0] == BWDREF_FRAME;
2126
0
                WRITE_REF_BIT(bit, uni_comp_ref_p);
2127
2128
0
                if (!bit) {
2129
0
                    assert(mbmi->block_mi.ref_frame[0] == LAST_FRAME);
2130
0
                    const int bit1 = mbmi->block_mi.ref_frame[1] == LAST3_FRAME ||
2131
0
                        mbmi->block_mi.ref_frame[1] == GOLDEN_FRAME;
2132
0
                    WRITE_REF_BIT(bit1, uni_comp_ref_p1);
2133
0
                    if (bit1) {
2134
0
                        const int bit2 = mbmi->block_mi.ref_frame[1] == GOLDEN_FRAME;
2135
0
                        WRITE_REF_BIT(bit2, uni_comp_ref_p2);
2136
0
                    }
2137
0
                } else {
2138
0
                    assert(mbmi->block_mi.ref_frame[1] == ALTREF_FRAME);
2139
0
                }
2140
0
                return;
2141
0
            }
2142
2143
0
            assert(comp_ref_type == BIDIR_COMP_REFERENCE);
2144
2145
0
            const int bit = (mbmi->block_mi.ref_frame[0] == GOLDEN_FRAME || mbmi->block_mi.ref_frame[0] == LAST3_FRAME);
2146
0
            WRITE_REF_BIT(bit, comp_ref_p);
2147
2148
0
            if (!bit) {
2149
0
                const int bit1 = mbmi->block_mi.ref_frame[0] == LAST2_FRAME;
2150
0
                WRITE_REF_BIT(bit1, comp_ref_p1);
2151
0
            } else {
2152
0
                const int bit2 = mbmi->block_mi.ref_frame[0] == GOLDEN_FRAME;
2153
0
                WRITE_REF_BIT(bit2, comp_ref_p2);
2154
0
            }
2155
2156
0
            const int bit_bwd = mbmi->block_mi.ref_frame[1] == ALTREF_FRAME;
2157
0
            WRITE_REF_BIT(bit_bwd, comp_bwdref_p);
2158
2159
0
            if (!bit_bwd) {
2160
0
                WRITE_REF_BIT(mbmi->block_mi.ref_frame[1] == ALTREF2_FRAME, comp_bwdref_p1);
2161
0
            }
2162
0
        } else {
2163
0
            const int bit0 = (mbmi->block_mi.ref_frame[0] <= ALTREF_FRAME &&
2164
0
                              mbmi->block_mi.ref_frame[0] >= BWDREF_FRAME);
2165
0
            WRITE_REF_BIT(bit0, single_ref_p1);
2166
2167
0
            if (bit0) {
2168
0
                const int bit1 = mbmi->block_mi.ref_frame[0] == ALTREF_FRAME;
2169
0
                WRITE_REF_BIT(bit1, single_ref_p2);
2170
0
                if (!bit1) {
2171
0
                    WRITE_REF_BIT(mbmi->block_mi.ref_frame[0] == ALTREF2_FRAME, single_ref_p6);
2172
0
                }
2173
0
            } else {
2174
0
                const int bit2 = (mbmi->block_mi.ref_frame[0] == LAST3_FRAME ||
2175
0
                                  mbmi->block_mi.ref_frame[0] == GOLDEN_FRAME);
2176
0
                WRITE_REF_BIT(bit2, single_ref_p3);
2177
0
                if (!bit2) {
2178
0
                    const int bit3 = mbmi->block_mi.ref_frame[0] != LAST_FRAME;
2179
0
                    WRITE_REF_BIT(bit3, single_ref_p4);
2180
0
                } else {
2181
0
                    const int bit4 = mbmi->block_mi.ref_frame[0] != LAST3_FRAME;
2182
0
                    WRITE_REF_BIT(bit4, single_ref_p5);
2183
0
                }
2184
0
            }
2185
0
        }
2186
0
    }
2187
0
}
2188
2189
0
static void encode_restoration_mode(PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
2190
0
    FrameHeader* frm_hdr = &pcs->frm_hdr;
2191
    //SVT_ERROR("encode_restoration_mode might not work. Double check the reference code\n");
2192
0
    assert(!frm_hdr->all_lossless);
2193
    // move out side of the function
2194
    //if (!cm->seq_params.enable_restoration) return;
2195
2196
0
    if (frm_hdr->allow_intrabc) {
2197
0
        return;
2198
0
    }
2199
2200
0
    const int32_t num_planes = 3; // av1_num_planes(cm);
2201
0
    int32_t       all_none = 1, chroma_none = 1;
2202
0
    for (int32_t p = 0; p < num_planes; ++p) {
2203
0
        RestorationInfo* rsi = &pcs->child_pcs->rst_info[p];
2204
2205
0
        if (rsi->frame_restoration_type != RESTORE_NONE) {
2206
0
            all_none = 0;
2207
0
            chroma_none &= (int32_t)(p == 0);
2208
0
        }
2209
0
        switch (rsi->frame_restoration_type) {
2210
0
        case RESTORE_NONE:
2211
0
            svt_aom_wb_write_bit(wb, 0);
2212
0
            svt_aom_wb_write_bit(wb, 0);
2213
0
            break;
2214
0
        case RESTORE_WIENER:
2215
0
            svt_aom_wb_write_bit(wb, 1);
2216
0
            svt_aom_wb_write_bit(wb, 0);
2217
0
            break;
2218
0
        case RESTORE_SGRPROJ:
2219
0
            svt_aom_wb_write_bit(wb, 1);
2220
0
            svt_aom_wb_write_bit(wb, 1);
2221
0
            break;
2222
0
        case RESTORE_SWITCHABLE:
2223
0
            svt_aom_wb_write_bit(wb, 0);
2224
0
            svt_aom_wb_write_bit(wb, 1);
2225
0
            break;
2226
0
        default:
2227
0
            assert(0);
2228
0
        }
2229
0
    }
2230
0
    if (!all_none) {
2231
0
        const int32_t    sb_size = pcs->scs->seq_header.sb_size == BLOCK_128X128 ? 128 : 64;
2232
0
        RestorationInfo* rsi     = &pcs->child_pcs->rst_info[0];
2233
0
        assert(rsi->restoration_unit_size >= sb_size);
2234
0
        assert(RESTORATION_UNITSIZE_MAX == 256);
2235
2236
0
        if (sb_size == 64) {
2237
0
            svt_aom_wb_write_bit(wb, rsi->restoration_unit_size > 64);
2238
0
        }
2239
0
        if (rsi->restoration_unit_size > 64) {
2240
0
            svt_aom_wb_write_bit(wb, rsi->restoration_unit_size > 128);
2241
0
        }
2242
0
    }
2243
0
    if (!chroma_none) {
2244
0
        svt_aom_wb_write_bit(
2245
0
            wb, pcs->child_pcs->rst_info[1].restoration_unit_size != pcs->child_pcs->rst_info[0].restoration_unit_size);
2246
0
        assert(pcs->child_pcs->rst_info[1].restoration_unit_size == pcs->child_pcs->rst_info[0].restoration_unit_size ||
2247
0
               pcs->child_pcs->rst_info[1].restoration_unit_size ==
2248
0
                   (pcs->child_pcs->rst_info[0].restoration_unit_size >> 1));
2249
0
        assert(pcs->child_pcs->rst_info[2].restoration_unit_size == pcs->child_pcs->rst_info[1].restoration_unit_size);
2250
0
    }
2251
0
}
2252
2253
962
static void encode_segmentation(PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
2254
962
    SegmentationParams* segmentation_params = &pcs->frm_hdr.segmentation_params;
2255
962
    svt_aom_wb_write_bit(wb, segmentation_params->segmentation_enabled);
2256
962
    if (segmentation_params->segmentation_enabled) {
2257
0
        if (!(pcs->frm_hdr.primary_ref_frame == PRIMARY_REF_NONE)) {
2258
0
            svt_aom_wb_write_bit(wb, segmentation_params->segmentation_update_map);
2259
0
            if (segmentation_params->segmentation_update_map) {
2260
0
                svt_aom_wb_write_bit(wb, segmentation_params->segmentation_temporal_update);
2261
0
            }
2262
0
            svt_aom_wb_write_bit(wb, segmentation_params->segmentation_update_data);
2263
0
        }
2264
0
        if (segmentation_params->segmentation_update_data) {
2265
0
            for (int i = 0; i < MAX_SEGMENTS; i++) {
2266
0
                for (int j = 0; j < SEG_LVL_MAX; j++) {
2267
0
                    svt_aom_wb_write_bit(wb, segmentation_params->feature_enabled[i][j]);
2268
0
                    if (segmentation_params->feature_enabled[i][j]) {
2269
                        //TODO: add clamping
2270
0
                        if (svt_aom_segmentation_feature_signed[j]) {
2271
0
                            svt_aom_wb_write_inv_signed_literal(
2272
0
                                wb, segmentation_params->feature_data[i][j], svt_aom_segmentation_feature_bits[j]);
2273
0
                        } else {
2274
0
                            svt_aom_wb_write_literal(
2275
0
                                wb, segmentation_params->feature_data[i][j], svt_aom_segmentation_feature_bits[j]);
2276
0
                        }
2277
0
                    }
2278
0
                }
2279
0
            }
2280
0
        }
2281
0
    }
2282
962
}
2283
2284
514
static void encode_loopfilter(PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
2285
514
    FrameHeader* frm_hdr = &pcs->frm_hdr;
2286
514
    assert(!frm_hdr->coded_lossless);
2287
514
    if (frm_hdr->allow_intrabc) {
2288
0
        return;
2289
0
    }
2290
2291
514
    LoopFilter* lf = &frm_hdr->loop_filter_params;
2292
2293
    // Encode the loop filter level and type
2294
514
    svt_aom_wb_write_literal(wb, lf->filter_level[0], 6);
2295
514
    svt_aom_wb_write_literal(wb, lf->filter_level[1], 6);
2296
514
    if (lf->filter_level[0] || lf->filter_level[1]) {
2297
484
        svt_aom_wb_write_literal(wb, lf->filter_level_u, 6);
2298
484
        svt_aom_wb_write_literal(wb, lf->filter_level_v, 6);
2299
484
    }
2300
514
    svt_aom_wb_write_literal(wb, lf->sharpness_level, 3);
2301
2302
    // Write out loop filter deltas applied at the MB level based on mode or
2303
    // ref frame (if they are enabled).
2304
514
    svt_aom_wb_write_bit(wb, lf->mode_ref_delta_enabled);
2305
514
    if (lf->mode_ref_delta_enabled) {
2306
0
        SVT_ERROR("Loop Filter is not supported yet \n");
2307
        /* svt_aom_wb_write_bit(wb, lf->mode_ref_delta_update);
2308
        if (lf->mode_ref_delta_update) {
2309
        const int32_t prime_idx = pcs->primary_ref_frame;
2310
        const int32_t buf_idx =
2311
        prime_idx == PRIMARY_REF_NONE ? -1 : cm->frame_refs[prime_idx].idx;
2312
        int8_t last_ref_deltas[TOTAL_REFS_PER_FRAME];
2313
        if (prime_idx == PRIMARY_REF_NONE || buf_idx < 0) {
2314
        av1_set_default_ref_deltas(last_ref_deltas);
2315
        } else {
2316
        svt_memcpy(last_ref_deltas, cm->buffer_pool->frame_bufs[buf_idx].ref_deltas,
2317
        TOTAL_REFS_PER_FRAME);
2318
        }
2319
        for (i = 0; i < TOTAL_REFS_PER_FRAME; i++) {
2320
        const int32_t delta = lf->ref_deltas[i];
2321
        const int32_t changed = delta != last_ref_deltas[i];
2322
        svt_aom_wb_write_bit(wb, changed);
2323
        if (changed) svt_aom_wb_write_inv_signed_literal(wb, delta, 6);
2324
        }
2325
        int8_t last_mode_deltas[MAX_MODE_LF_DELTAS];
2326
        if (prime_idx == PRIMARY_REF_NONE || buf_idx < 0) {
2327
        av1_set_default_mode_deltas(last_mode_deltas);
2328
        } else {
2329
        svt_memcpy(last_mode_deltas,
2330
        cm->buffer_pool->frame_bufs[buf_idx].mode_deltas,
2331
        MAX_MODE_LF_DELTAS);
2332
        }
2333
2334
        for (i = 0; i < MAX_MODE_LF_DELTAS; i++) {
2335
        const int32_t delta = lf->mode_deltas[i];
2336
        const int32_t changed = delta != last_mode_deltas[i];
2337
        svt_aom_wb_write_bit(wb, changed);
2338
        if (changed) svt_aom_wb_write_inv_signed_literal(wb, delta, 6);
2339
        }
2340
        }*/
2341
0
    }
2342
514
}
2343
2344
514
static void encode_cdef(const PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
2345
    //assert(!cm->coded_lossless);
2346
    // moved out side
2347
    //if (!cm->seq_params.cdef_level) return;
2348
2349
514
    const FrameHeader* frm_hdr = &pcs->frm_hdr;
2350
2351
514
    if (frm_hdr->allow_intrabc) {
2352
0
        return;
2353
0
    }
2354
2355
514
    svt_aom_wb_write_literal(wb, frm_hdr->cdef_params.cdef_damping - 3, 2);
2356
    //cdef_pri_damping & cdef_sec_damping consolidated to cdef_damping
2357
    //assert(pcs->cdef_pri_damping == pcs->cdef_sec_damping);
2358
514
    svt_aom_wb_write_literal(wb, frm_hdr->cdef_params.cdef_bits, 2);
2359
1.02k
    for (int32_t i = 0; i < pcs->nb_cdef_strengths; i++) {
2360
514
        svt_aom_wb_write_literal(wb, frm_hdr->cdef_params.cdef_y_strength[i], CDEF_STRENGTH_BITS);
2361
514
        svt_aom_wb_write_literal(wb, frm_hdr->cdef_params.cdef_uv_strength[i], CDEF_STRENGTH_BITS);
2362
514
    }
2363
514
}
2364
2365
2.88k
static void write_delta_q(AomWriteBitBuffer* wb, int32_t delta_q) {
2366
2.88k
    if (delta_q != 0) {
2367
0
        svt_aom_wb_write_bit(wb, 1);
2368
0
        svt_aom_wb_write_inv_signed_literal(wb, delta_q, 6);
2369
2.88k
    } else {
2370
2.88k
        svt_aom_wb_write_bit(wb, 0);
2371
2.88k
    }
2372
2.88k
}
2373
2374
962
static void encode_quantization(const PictureParentControlSet* const pcs, AomWriteBitBuffer* wb) {
2375
962
    const FrameHeader* frm_hdr = &pcs->frm_hdr;
2376
962
    svt_aom_wb_write_literal(wb, frm_hdr->quantization_params.base_q_idx, QINDEX_BITS);
2377
962
    write_delta_q(wb, frm_hdr->quantization_params.delta_q_dc[PLANE_Y]);
2378
962
    int32_t diff_uv_delta = (frm_hdr->quantization_params.delta_q_dc[PLANE_U] !=
2379
962
                             frm_hdr->quantization_params.delta_q_dc[PLANE_V]) ||
2380
962
        (frm_hdr->quantization_params.delta_q_ac[PLANE_U] != frm_hdr->quantization_params.delta_q_ac[PLANE_V]);
2381
2382
962
    if (diff_uv_delta) {
2383
0
        svt_aom_wb_write_bit(wb, diff_uv_delta);
2384
0
    }
2385
962
    write_delta_q(wb, frm_hdr->quantization_params.delta_q_dc[PLANE_U]);
2386
962
    write_delta_q(wb, frm_hdr->quantization_params.delta_q_ac[PLANE_U]);
2387
962
    if (diff_uv_delta) {
2388
0
        write_delta_q(wb, frm_hdr->quantization_params.delta_q_dc[PLANE_V]);
2389
0
        write_delta_q(wb, frm_hdr->quantization_params.delta_q_ac[PLANE_V]);
2390
0
    }
2391
962
    svt_aom_wb_write_bit(wb, frm_hdr->quantization_params.using_qmatrix);
2392
962
    if (frm_hdr->quantization_params.using_qmatrix) {
2393
0
        svt_aom_wb_write_literal(wb, frm_hdr->quantization_params.qm[PLANE_Y], QM_LEVEL_BITS);
2394
0
        svt_aom_wb_write_literal(wb, frm_hdr->quantization_params.qm[PLANE_U], QM_LEVEL_BITS);
2395
0
        if (!diff_uv_delta) {
2396
0
            assert(frm_hdr->quantization_params.qm[PLANE_U] == frm_hdr->quantization_params.qm[PLANE_V]);
2397
0
        } else {
2398
0
            svt_aom_wb_write_literal(wb, frm_hdr->quantization_params.qm[PLANE_V], QM_LEVEL_BITS);
2399
0
        }
2400
0
    }
2401
962
}
2402
2403
962
static void write_tile_info_max_tile(const PictureParentControlSet* const pcs, AomWriteBitBuffer* wb) {
2404
962
    Av1Common* cm = pcs->av1_cm;
2405
962
    svt_aom_wb_write_bit(wb, cm->tiles_info.uniform_tile_spacing_flag);
2406
2407
962
    if (cm->tiles_info.uniform_tile_spacing_flag) {
2408
        // Uniform spaced tiles with power-of-two number of rows and columns
2409
        // tile columns
2410
962
        int32_t ones = cm->log2_tile_cols - cm->tiles_info.min_log2_tile_cols;
2411
2.66k
        while (ones--) {
2412
1.70k
            svt_aom_wb_write_bit(wb, 1);
2413
1.70k
        }
2414
962
        if (cm->log2_tile_cols < cm->tiles_info.max_log2_tile_cols) {
2415
224
            svt_aom_wb_write_bit(wb, 0);
2416
224
        }
2417
        // rows
2418
962
        cm->tiles_info.min_log2_tile_rows = AOMMAX(cm->tiles_info.min_log2_tiles - cm->log2_tile_cols, 0);
2419
962
        ones                              = cm->log2_tile_rows - cm->tiles_info.min_log2_tile_rows;
2420
2.63k
        while (ones--) {
2421
1.66k
            svt_aom_wb_write_bit(wb, 1);
2422
1.66k
        }
2423
962
        if (cm->log2_tile_rows < cm->tiles_info.max_log2_tile_rows) {
2424
148
            svt_aom_wb_write_bit(wb, 0);
2425
148
        }
2426
962
    } else {
2427
        // Explicit tiles with configurable tile widths and heights
2428
0
        SVT_ERROR("NON uniform_tile_spacing_flag not supported yet\n");
2429
        //// columns
2430
        // int sb_size_log2 = pcs->scs->seq_header.sb_size_log2;
2431
        //for (i = 0; i < cm->tile_cols; i++) {
2432
        //    size_sb = (cm->tile_col_start_mi[i + 1] - cm->tile_col_start_mi[i]) >> sb_size_log2;
2433
        //    wb_write_uniform(wb, AOMMIN(width_sb, cm->max_tile_width_sb),
2434
        //        size_sb - 1);
2435
        //    width_sb -= size_sb;
2436
        //}
2437
        //assert(width_sb == 0);
2438
2439
        //// rows
2440
        //for (i = 0; i < cm->tile_rows; i++) {
2441
        //    size_sb = (cm->tile_row_start_mi[i + 1] - cm->tile_row_start_mi[i]) >> sb_size_log2;
2442
        //    wb_write_uniform(wb, AOMMIN(height_sb, cm->max_tile_height_sb),
2443
        //        size_sb - 1);
2444
        //    height_sb -= size_sb;
2445
        //}
2446
        //assert(height_sb == 0);
2447
0
    }
2448
962
}
2449
2450
3.36k
void svt_av1_get_tile_limits(PictureParentControlSet* pcs) {
2451
3.36k
    Av1Common* cm = pcs->av1_cm;
2452
2453
3.36k
    int32_t mi_cols                  = ALIGN_POWER_OF_TWO(cm->mi_cols, pcs->log2_sb_size);
2454
3.36k
    int32_t mi_rows                  = ALIGN_POWER_OF_TWO(cm->mi_rows, pcs->log2_sb_size);
2455
3.36k
    int32_t sb_cols                  = mi_cols >> pcs->log2_sb_size;
2456
3.36k
    int32_t sb_rows                  = mi_rows >> pcs->log2_sb_size;
2457
3.36k
    int32_t sb_size_log2             = pcs->log2_sb_size + MI_SIZE_LOG2;
2458
3.36k
    cm->tiles_info.max_tile_width_sb = MAX_TILE_WIDTH >> sb_size_log2;
2459
3.36k
    int32_t max_tile_area_sb         = MAX_TILE_AREA >> (2 * sb_size_log2);
2460
2461
3.36k
    cm->tiles_info.min_log2_tile_cols = tile_log2(cm->tiles_info.max_tile_width_sb, sb_cols);
2462
3.36k
    cm->tiles_info.max_log2_tile_cols = tile_log2(1, AOMMIN(sb_cols, MAX_TILE_COLS));
2463
3.36k
    cm->tiles_info.max_log2_tile_rows = tile_log2(1, AOMMIN(sb_rows, MAX_TILE_ROWS));
2464
3.36k
    cm->tiles_info.min_log2_tile_rows = 0; // CHKN Tiles
2465
3.36k
    cm->tiles_info.min_log2_tiles     = tile_log2(max_tile_area_sb, sb_cols * sb_rows);
2466
3.36k
    cm->tiles_info.min_log2_tiles     = AOMMAX(cm->tiles_info.min_log2_tiles, cm->tiles_info.min_log2_tile_cols);
2467
3.36k
}
2468
2469
2.40k
void svt_av1_calculate_tile_cols(PictureParentControlSet* pcs) {
2470
2.40k
    Av1Common* const cm = pcs->av1_cm;
2471
2472
2.40k
    const int mi_cols      = ALIGN_POWER_OF_TWO(cm->mi_cols, pcs->log2_sb_size);
2473
2.40k
    const int mi_rows      = ALIGN_POWER_OF_TWO(cm->mi_rows, pcs->log2_sb_size);
2474
2.40k
    const int sb_cols      = mi_cols >> pcs->log2_sb_size;
2475
2.40k
    const int sb_rows      = mi_rows >> pcs->log2_sb_size;
2476
2.40k
    const int sb_size_log2 = pcs->log2_sb_size;
2477
2478
2.40k
    if (cm->tiles_info.uniform_tile_spacing_flag) {
2479
2.40k
        int size_sb = ALIGN_POWER_OF_TWO(sb_cols, cm->log2_tile_cols);
2480
2.40k
        size_sb >>= cm->log2_tile_cols;
2481
2.40k
        assert(size_sb > 0);
2482
2.40k
        int i = 0;
2483
10.2k
        for (int start_sb = 0; start_sb < sb_cols; i++) {
2484
7.84k
            cm->tiles_info.tile_col_start_mi[i] = start_sb << sb_size_log2;
2485
7.84k
            start_sb += size_sb;
2486
7.84k
        }
2487
2.40k
        cm->tiles_info.tile_cols            = i;
2488
2.40k
        cm->tiles_info.tile_col_start_mi[i] = sb_cols << sb_size_log2;
2489
2.40k
        cm->tiles_info.min_log2_tile_rows   = AOMMAX(cm->tiles_info.min_log2_tiles - cm->log2_tile_cols, 0);
2490
2.40k
        cm->tiles_info.max_tile_height_sb   = sb_rows >> cm->tiles_info.min_log2_tile_rows;
2491
2492
2.40k
        cm->tile_width = size_sb << pcs->log2_sb_size;
2493
2.40k
        cm->tile_width = AOMMIN(cm->tile_width, cm->mi_cols);
2494
2.40k
    } else {
2495
0
        int max_tile_area_sb = (sb_rows * sb_cols);
2496
0
        int widest_tile_sb   = 1;
2497
0
        cm->log2_tile_cols   = tile_log2(1, cm->tiles_info.tile_cols);
2498
0
        for (int i = 0; i < cm->tiles_info.tile_cols; i++) {
2499
0
            int size_sb = (cm->tiles_info.tile_col_start_mi[i + 1] - cm->tiles_info.tile_col_start_mi[i]) >>
2500
0
                sb_size_log2;
2501
0
            widest_tile_sb = AOMMAX(widest_tile_sb, size_sb);
2502
0
        }
2503
0
        if (cm->tiles_info.min_log2_tiles) {
2504
0
            max_tile_area_sb >>= (cm->tiles_info.min_log2_tiles + 1);
2505
0
        }
2506
2507
0
        cm->tiles_info.max_tile_height_sb = AOMMAX(max_tile_area_sb / widest_tile_sb, 1);
2508
0
    }
2509
2.40k
}
2510
2511
2.40k
void svt_av1_calculate_tile_rows(PictureParentControlSet* pcs) {
2512
2.40k
    Av1Common* const cm = pcs->av1_cm;
2513
2514
2.40k
    int mi_rows      = ALIGN_POWER_OF_TWO(cm->mi_rows, pcs->log2_sb_size);
2515
2.40k
    int sb_rows      = mi_rows >> pcs->log2_sb_size;
2516
2.40k
    int sb_size_log2 = pcs->log2_sb_size;
2517
2518
2.40k
    if (cm->tiles_info.uniform_tile_spacing_flag) {
2519
2.40k
        int size_sb = ALIGN_POWER_OF_TWO(sb_rows, cm->log2_tile_rows);
2520
2.40k
        size_sb >>= cm->log2_tile_rows;
2521
2.40k
        assert(size_sb > 0);
2522
2.40k
        int i = 0;
2523
10.0k
        for (int start_sb = 0; start_sb < sb_rows; i++) {
2524
7.66k
            cm->tiles_info.tile_row_start_mi[i] = start_sb << sb_size_log2;
2525
7.66k
            start_sb += size_sb;
2526
7.66k
        }
2527
2.40k
        cm->tiles_info.tile_rows            = i;
2528
2.40k
        cm->tiles_info.tile_row_start_mi[i] = sb_rows << sb_size_log2;
2529
2530
2.40k
        cm->tile_height = size_sb << pcs->log2_sb_size;
2531
2.40k
        cm->tile_height = AOMMIN(cm->tile_height, cm->mi_rows);
2532
2.40k
    } else {
2533
0
        cm->log2_tile_rows = tile_log2(1, cm->tiles_info.tile_rows);
2534
0
    }
2535
2.40k
}
2536
2537
2.40k
void svt_aom_set_tile_info(PictureParentControlSet* pcs) {
2538
    /*  Tiling algorithm:
2539
        input : log2_tile_count ==> tile_count = 1<<log2_tile_count
2540
2541
        step1) compute pic_size_in_sb
2542
        step2) then round up to the closed n.tile_count.
2543
        step3) tile_size = rounded_pic_size_in_sb / tile_count.
2544
        step4) we fill tiles of size tile_size until we reach the end of the pic
2545
2546
        Note that: the last tile could have smaller size, and the final number
2547
        of tiles could be less than tile_count
2548
     */
2549
2550
2.40k
    Av1Common* cm = pcs->av1_cm;
2551
    //to connect later if non uniform tile spacing is needed.
2552
2553
2.40k
    svt_av1_get_tile_limits(pcs);
2554
2555
    // configure tile columns
2556
2.40k
    cm->tiles_info.uniform_tile_spacing_flag = 1;
2557
2.40k
    cm->log2_tile_cols                       = AOMMAX(pcs->log2_tile_cols, cm->tiles_info.min_log2_tile_cols);
2558
2.40k
    cm->log2_tile_cols                       = AOMMIN(cm->log2_tile_cols, cm->tiles_info.max_log2_tile_cols);
2559
2560
2.40k
    svt_av1_calculate_tile_cols(pcs);
2561
2562
    // configure tile rows
2563
2.40k
    if (cm->tiles_info.uniform_tile_spacing_flag) {
2564
2.40k
        cm->log2_tile_rows = AOMMAX(pcs->log2_tile_rows, cm->tiles_info.min_log2_tile_rows);
2565
2.40k
        cm->log2_tile_rows = AOMMIN(cm->log2_tile_rows, cm->tiles_info.max_log2_tile_rows);
2566
2.40k
    } else {
2567
0
        int       i            = 0;
2568
0
        const int mi_rows      = ALIGN_POWER_OF_TWO(cm->mi_rows, pcs->log2_sb_size);
2569
0
        const int sb_rows      = mi_rows >> pcs->log2_sb_size;
2570
0
        const int sb_size_log2 = pcs->scs->seq_header.sb_size_log2;
2571
0
        for (int start_sb = 0; start_sb < sb_rows && i < MAX_TILE_ROWS; i++) {
2572
0
            cm->tiles_info.tile_row_start_mi[i] = start_sb << sb_size_log2;
2573
0
            start_sb += cm->tiles_info.max_tile_height_sb;
2574
0
        }
2575
0
        cm->tiles_info.tile_rows            = i;
2576
0
        cm->tiles_info.tile_row_start_mi[i] = sb_rows << sb_size_log2;
2577
0
    }
2578
2.40k
    svt_av1_calculate_tile_rows(pcs);
2579
2.40k
}
2580
2581
962
static void write_tile_info(const PictureParentControlSet* const pcs, AomWriteBitBuffer* wb) {
2582
962
    Av1Common* const cm                     = pcs->av1_cm;
2583
962
    uint16_t         tile_cnt               = cm->tiles_info.tile_rows * cm->tiles_info.tile_cols;
2584
962
    pcs->child_pcs->tile_size_bytes_minus_1 = 0;
2585
962
    svt_av1_get_tile_limits((PictureParentControlSet*)pcs);
2586
962
    write_tile_info_max_tile(pcs, wb);
2587
2588
962
    if (pcs->av1_cm->tiles_info.tile_rows * pcs->av1_cm->tiles_info.tile_cols > 1) {
2589
        // tile id used for cdf update
2590
        // Force each frame to update their data so future frames can use it,
2591
        // even if the current frame did not use it.  This enables REF frames to
2592
        // have the feature off, while NREF frames can have it on.  Used for multi-threading.
2593
950
        svt_aom_wb_write_literal(wb,
2594
950
                                 pcs->av1_cm->tiles_info.tile_rows * pcs->av1_cm->tiles_info.tile_cols - 1,
2595
950
                                 pcs->av1_cm->log2_tile_cols + pcs->av1_cm->log2_tile_rows);
2596
2597
        // Number of bytes in tile size - 1
2598
950
        uint32_t max_tile_size = 0;
2599
10.2k
        for (int tile_idx = 0; tile_idx < tile_cnt - 1; tile_idx++) {
2600
9.34k
            max_tile_size = AOMMAX(max_tile_size, pcs->child_pcs->ec_info[tile_idx]->ec->ec_writer.pos);
2601
9.34k
        }
2602
950
        if (max_tile_size >> 24 != 0) {
2603
0
            pcs->child_pcs->tile_size_bytes_minus_1 = 3;
2604
950
        } else if (max_tile_size >> 16 != 0) {
2605
0
            pcs->child_pcs->tile_size_bytes_minus_1 = 2;
2606
950
        } else if (max_tile_size >> 8 != 0) {
2607
0
            pcs->child_pcs->tile_size_bytes_minus_1 = 1;
2608
950
        } else {
2609
950
            pcs->child_pcs->tile_size_bytes_minus_1 = 0;
2610
950
        }
2611
2612
950
        svt_aom_wb_write_literal(wb, pcs->child_pcs->tile_size_bytes_minus_1, 2); //Jing: Change 3 to smaller size
2613
950
    }
2614
962
}
2615
2616
962
static AOM_INLINE void write_render_size(AomWriteBitBuffer* wb, PictureParentControlSet* ppcs) {
2617
962
    int render_and_frame_size_different = 0;
2618
962
    if (ppcs->frame_resize_enabled) {
2619
0
        render_and_frame_size_different = 1;
2620
0
    }
2621
962
    svt_aom_wb_write_bit(wb, render_and_frame_size_different);
2622
962
    if (!render_and_frame_size_different) {
2623
962
        return;
2624
962
    }
2625
0
    uint32_t render_width_minus_1  = ppcs->render_width - 1;
2626
0
    uint32_t render_height_minus_1 = ppcs->render_height - 1;
2627
0
    svt_aom_wb_write_literal(wb, render_width_minus_1, 16);
2628
0
    svt_aom_wb_write_literal(wb, render_height_minus_1, 16);
2629
0
}
2630
2631
962
static AOM_INLINE void write_superres_scale(AomWriteBitBuffer* wb, PictureParentControlSet* pcs) {
2632
962
    SequenceControlSet* scs            = pcs->scs;
2633
962
    Av1Common*          cm             = pcs->av1_cm;
2634
962
    uint8_t             superres_denom = cm->frm_size.superres_denominator;
2635
2636
962
    if (!scs->seq_header.enable_superres) {
2637
962
        assert(cm->frm_size.superres_denominator == SCALE_NUMERATOR);
2638
962
        return;
2639
962
    }
2640
2641
    // First bit is whether to to scale or not
2642
0
    if (superres_denom == SCALE_NUMERATOR) {
2643
0
        svt_aom_wb_write_bit(wb, 0); // no scaling
2644
0
    } else {
2645
0
        svt_aom_wb_write_bit(wb, 1); // scaling, write scale factor
2646
0
        assert(superres_denom >= SUPERRES_SCALE_DENOMINATOR_MIN);
2647
0
        assert(superres_denom < SUPERRES_SCALE_DENOMINATOR_MIN + (1 << SUPERRES_SCALE_BITS));
2648
0
        svt_aom_wb_write_literal(wb, superres_denom - SUPERRES_SCALE_DENOMINATOR_MIN, SUPERRES_SCALE_BITS);
2649
0
    }
2650
0
}
2651
2652
962
static void write_frame_size(PictureParentControlSet* pcs, int32_t frame_size_override, AomWriteBitBuffer* wb) {
2653
962
    SequenceControlSet* scs = pcs->scs;
2654
962
    (void)(*pcs);
2655
962
    (void)frame_size_override;
2656
962
    Av1Common*    cm           = pcs->av1_cm;
2657
962
    const int32_t coded_width  = cm->frm_size.superres_upscaled_width - 1;
2658
962
    const int32_t coded_height = cm->frm_size.superres_upscaled_height - 1;
2659
2660
962
    if (frame_size_override) {
2661
0
        int32_t num_bits_width  = scs->seq_header.frame_width_bits;
2662
0
        int32_t num_bits_height = scs->seq_header.frame_height_bits;
2663
0
        svt_aom_wb_write_literal(wb, coded_width, num_bits_width);
2664
0
        svt_aom_wb_write_literal(wb, coded_height, num_bits_height);
2665
0
    }
2666
2667
962
    write_superres_scale(wb, pcs);
2668
962
    write_render_size(wb, pcs);
2669
962
}
2670
2671
962
static void write_profile(BitstreamProfile profile, AomWriteBitBuffer* wb) {
2672
962
    assert(profile >= PROFILE_0 && profile < MAX_PROFILES);
2673
962
    svt_aom_wb_write_literal(wb, profile, PROFILE_BITS);
2674
962
}
2675
2676
962
static AOM_INLINE void write_bitdepth(const SequenceControlSet* const scs, AomWriteBitBuffer* wb) {
2677
    // Profile 0/1: [0] for 8 bit, [1]  10-bit
2678
    // Profile   2: [0] for 8 bit, [10] 10-bit, [11] - 12-bit
2679
962
    svt_aom_wb_write_bit(wb, SVT_EFFECTIVE_BIT_DEPTH(scs->static_config.encoder_bit_depth) == EB_EIGHT_BIT ? 0 : 1);
2680
962
    if (scs->static_config.profile == PROFESSIONAL_PROFILE &&
2681
0
        SVT_EFFECTIVE_BIT_DEPTH(scs->static_config.encoder_bit_depth) != EB_EIGHT_BIT) {
2682
0
        SVT_ERROR("Profile 2 Not supported\n");
2683
0
        svt_aom_wb_write_bit(wb, SVT_EFFECTIVE_BIT_DEPTH(scs->static_config.encoder_bit_depth) == EB_TEN_BIT ? 0 : 1);
2684
0
    }
2685
962
}
2686
2687
962
static AOM_INLINE void write_color_config(const SequenceControlSet* const scs, AomWriteBitBuffer* wb) {
2688
962
    write_bitdepth(scs, wb);
2689
962
    const int is_monochrome = 0; // monochrome is not supported yet
2690
    // monochrome bit
2691
962
    if (scs->static_config.profile != HIGH_PROFILE) {
2692
962
        svt_aom_wb_write_bit(wb, is_monochrome);
2693
962
    } else {
2694
0
        assert(!is_monochrome);
2695
0
    }
2696
962
    if (scs->static_config.color_primaries == EB_CICP_CP_UNSPECIFIED &&
2697
962
        scs->static_config.transfer_characteristics == EB_CICP_TC_UNSPECIFIED &&
2698
962
        scs->static_config.matrix_coefficients == EB_CICP_MC_UNSPECIFIED) {
2699
962
        svt_aom_wb_write_bit(wb, 0); // No color description present
2700
962
    } else {
2701
0
        svt_aom_wb_write_bit(wb, 1); // Color description present
2702
0
        svt_aom_wb_write_literal(wb, scs->static_config.color_primaries, 8);
2703
0
        svt_aom_wb_write_literal(wb, scs->static_config.transfer_characteristics, 8);
2704
0
        svt_aom_wb_write_literal(wb, scs->static_config.matrix_coefficients, 8);
2705
0
    }
2706
    /* if (is_monochrome) {
2707
        // 0: [16, 235] (i.e. xvYCC), 1: [0, 255]
2708
        svt_aom_wb_write_bit(wb, scs->static_config.color_range);
2709
        return;
2710
    } */
2711
962
    if (scs->static_config.color_primaries == EB_CICP_CP_BT_709 &&
2712
0
        scs->static_config.transfer_characteristics == EB_CICP_TC_SRGB &&
2713
0
        scs->static_config.matrix_coefficients == EB_CICP_MC_IDENTITY) {
2714
        /* assert(scs->subsampling_x == 0 && scs->subsampling_y == 0);
2715
        assert(scs->static_config.profile == HIGH_PROFILE ||
2716
               (scs->static_config.profile == PROFESSIONAL_PROFILE && SVT_EFFECTIVE_BIT_DEPTH(scs->encoder_bit_depth) == EB_TWELVE_BIT)); */
2717
962
    } else {
2718
        // 0: [16, 235] (i.e. xvYCC), 1: [0, 255]
2719
962
        svt_aom_wb_write_bit(wb, scs->static_config.color_range);
2720
962
        if (scs->static_config.profile == MAIN_PROFILE) {
2721
            // 420 only
2722
962
            assert(scs->subsampling_x == 1 && scs->subsampling_y == 1);
2723
962
        } else if (scs->static_config.profile == HIGH_PROFILE) {
2724
            // 444 only
2725
0
            assert(scs->subsampling_x == 0 && scs->subsampling_y == 0);
2726
0
        } else if (scs->static_config.profile == PROFESSIONAL_PROFILE) {
2727
0
            if (SVT_EFFECTIVE_BIT_DEPTH(scs->encoder_bit_depth) == EB_TWELVE_BIT) {
2728
                // 420, 444 or 422
2729
0
                svt_aom_wb_write_bit(wb, scs->subsampling_x);
2730
0
                if (scs->subsampling_x == 0) {
2731
0
                    assert(scs->subsampling_y == 0 && "4:4:0 subsampling not allowed in AV1");
2732
0
                } else {
2733
0
                    svt_aom_wb_write_bit(wb, scs->subsampling_y);
2734
0
                }
2735
0
            } else {
2736
                // 422 only
2737
0
                assert(scs->subsampling_x == 1 && scs->subsampling_y == 0);
2738
0
            }
2739
0
        }
2740
962
        if (scs->static_config.matrix_coefficients == EB_CICP_MC_IDENTITY) {
2741
0
            assert(scs->subsampling_x == 0 && scs->subsampling_y == 0);
2742
0
        }
2743
962
        if (scs->subsampling_x == 1 && scs->subsampling_y == 1) {
2744
962
            svt_aom_wb_write_literal(wb, scs->static_config.chroma_sample_position, 2);
2745
962
        }
2746
962
    }
2747
962
    bool separate_uv_delta_q = (scs->static_config.chroma_u_ac_qindex_offset !=
2748
962
                                    scs->static_config.chroma_v_ac_qindex_offset ||
2749
962
                                scs->static_config.chroma_u_dc_qindex_offset !=
2750
962
                                    scs->static_config.chroma_v_dc_qindex_offset);
2751
962
    svt_aom_wb_write_bit(wb, separate_uv_delta_q);
2752
962
}
2753
2754
962
static void write_sequence_header(SequenceControlSet* scs, AomWriteBitBuffer* wb) {
2755
962
    const int32_t max_frame_width   = scs->seq_header.max_frame_width;
2756
962
    const int32_t max_frame_height  = scs->seq_header.max_frame_height;
2757
962
    unsigned      frame_width_bits  = svt_log2f(max_frame_width);
2758
962
    unsigned      frame_height_bits = svt_log2f(max_frame_height);
2759
962
    if (max_frame_width > (1 << frame_width_bits)) {
2760
872
        ++frame_width_bits;
2761
872
    }
2762
962
    if (max_frame_height > (1 << frame_height_bits)) {
2763
900
        ++frame_height_bits;
2764
900
    }
2765
    // AV1 spec requires at least 1 bit for frame dimensions
2766
962
    if (frame_width_bits < 1) {
2767
0
        frame_width_bits = 1;
2768
0
    }
2769
962
    if (frame_height_bits < 1) {
2770
0
        frame_height_bits = 1;
2771
0
    }
2772
962
    scs->seq_header.frame_width_bits  = frame_width_bits;
2773
962
    scs->seq_header.frame_height_bits = frame_height_bits;
2774
2775
962
    svt_aom_wb_write_literal(wb, frame_width_bits - 1, 4);
2776
962
    svt_aom_wb_write_literal(wb, frame_height_bits - 1, 4);
2777
962
    svt_aom_wb_write_literal(wb, max_frame_width - 1, frame_width_bits);
2778
962
    svt_aom_wb_write_literal(wb, max_frame_height - 1, frame_height_bits);
2779
2780
962
    if (!scs->seq_header.reduced_still_picture_header) {
2781
        //scs->frame_id_numbers_present_flag = 0;
2782
        //    cm->large_scale_tile ? 0 : cm->error_resilient_mode;
2783
2784
0
        svt_aom_wb_write_bit(wb, scs->seq_header.frame_id_numbers_present_flag);
2785
0
        if (scs->seq_header.frame_id_numbers_present_flag) {
2786
            // We must always have delta_frame_id_length < frame_id_length,
2787
            // in order for a frame to be referenced with a unique delta.
2788
            // Avoid wasting bits by using a coding that enforces this restriction.
2789
0
            svt_aom_wb_write_literal(wb, scs->seq_header.delta_frame_id_length - 2, 4);
2790
0
            svt_aom_wb_write_literal(
2791
0
                wb, ((scs->seq_header.frame_id_length) - (scs->seq_header.delta_frame_id_length) - 1), 3);
2792
0
        }
2793
0
    }
2794
2795
962
    svt_aom_wb_write_bit(wb, scs->seq_header.sb_size == BLOCK_128X128 ? 1 : 0);
2796
    //    svt_aom_write_sb_size(seq_params, wb);
2797
962
    svt_aom_wb_write_bit(wb, scs->seq_header.filter_intra_level);
2798
962
    svt_aom_wb_write_bit(wb, scs->seq_header.enable_intra_edge_filter);
2799
2800
962
    if (!scs->seq_header.reduced_still_picture_header) {
2801
0
        svt_aom_wb_write_bit(wb, scs->seq_header.enable_interintra_compound);
2802
0
        svt_aom_wb_write_bit(wb, scs->seq_header.enable_masked_compound);
2803
        //        svt_aom_wb_write_bit(wb, scs->static_config.enable_warped_motion);
2804
0
        svt_aom_wb_write_bit(wb, scs->seq_header.enable_warped_motion);
2805
0
        svt_aom_wb_write_bit(wb, scs->seq_header.enable_dual_filter);
2806
2807
0
        svt_aom_wb_write_bit(wb, scs->seq_header.order_hint_info.enable_order_hint);
2808
2809
0
        if (scs->seq_header.order_hint_info.enable_order_hint) {
2810
0
            svt_aom_wb_write_bit(wb, scs->seq_header.order_hint_info.enable_jnt_comp);
2811
0
            svt_aom_wb_write_bit(wb, scs->seq_header.order_hint_info.enable_ref_frame_mvs);
2812
0
        }
2813
2814
0
        if (scs->seq_header.seq_force_screen_content_tools == 2) {
2815
0
            svt_aom_wb_write_bit(wb, 1);
2816
0
        } else {
2817
0
            svt_aom_wb_write_bit(wb, 0);
2818
0
            svt_aom_wb_write_bit(wb, scs->seq_header.seq_force_screen_content_tools);
2819
0
        }
2820
        //
2821
0
        if (scs->seq_header.seq_force_screen_content_tools > 0) {
2822
0
            if (scs->seq_header.seq_force_integer_mv == 2) {
2823
0
                svt_aom_wb_write_bit(wb, 1);
2824
0
            } else {
2825
0
                svt_aom_wb_write_bit(wb, 0);
2826
0
                svt_aom_wb_write_bit(wb, scs->seq_header.seq_force_integer_mv);
2827
0
            }
2828
0
        } else {
2829
0
            assert(scs->seq_header.seq_force_integer_mv == 2);
2830
0
        }
2831
0
        if (scs->seq_header.order_hint_info.enable_order_hint) {
2832
0
            svt_aom_wb_write_literal(wb, scs->seq_header.order_hint_info.order_hint_bits - 1, 3);
2833
0
        }
2834
0
    }
2835
2836
962
    svt_aom_wb_write_bit(wb, scs->seq_header.enable_superres);
2837
962
    svt_aom_wb_write_bit(wb, scs->seq_header.cdef_level);
2838
962
    svt_aom_wb_write_bit(wb, scs->seq_header.enable_restoration);
2839
962
}
2840
2841
// Recenters a non-negative literal v around a reference r
2842
0
static uint16_t recenter_nonneg(uint16_t r, uint16_t v) {
2843
0
    if (v > (r << 1)) {
2844
0
        return v;
2845
0
    } else if (v >= r) {
2846
0
        return ((v - r) << 1);
2847
0
    } else {
2848
0
        return ((r - v) << 1) - 1;
2849
0
    }
2850
0
}
2851
2852
// Recenters a non-negative literal v in [0, n-1] around a
2853
// reference r also in [0, n-1]
2854
0
static uint16_t recenter_finite_nonneg(uint16_t n, uint16_t r, uint16_t v) {
2855
0
    if ((r << 1) <= n) {
2856
0
        return recenter_nonneg(r, v);
2857
0
    } else {
2858
0
        return recenter_nonneg(n - 1 - r, n - 1 - v);
2859
0
    }
2860
0
}
2861
2862
// Encodes a value v in [0, n-1] quasi-uniformly
2863
0
void svt_aom_write_primitive_quniform(AomWriter* w, uint16_t n, uint16_t v) {
2864
0
    if (n <= 1) {
2865
0
        return;
2866
0
    }
2867
0
    const int32_t l = get_msb(n - 1) + 1;
2868
0
    const int32_t m = (1 << l) - n;
2869
0
    if (v < m) {
2870
0
        aom_write_literal(w, v, l - 1);
2871
0
    } else {
2872
0
        aom_write_literal(w, m + ((v - m) >> 1), l - 1);
2873
0
        aom_write_bit(w, (v - m) & 1);
2874
0
    }
2875
0
}
2876
2877
0
static void aom_wb_write_primitive_quniform(AomWriteBitBuffer* wb, uint16_t n, uint16_t v) {
2878
0
    if (n <= 1) {
2879
0
        return;
2880
0
    }
2881
0
    const int32_t l = get_msb(n - 1) + 1;
2882
0
    const int32_t m = (1 << l) - n;
2883
0
    if (v < m) {
2884
0
        svt_aom_wb_write_literal(wb, v, l - 1);
2885
0
    } else {
2886
0
        svt_aom_wb_write_literal(wb, m + ((v - m) >> 1), l - 1);
2887
0
        svt_aom_wb_write_bit(wb, (v - m) & 1);
2888
0
    }
2889
0
}
2890
2891
0
int32_t svt_aom_count_primitive_quniform(uint16_t n, uint16_t v) {
2892
0
    if (n <= 1) {
2893
0
        return 0;
2894
0
    }
2895
0
    const int32_t l = get_msb(n - 1) + 1;
2896
0
    const int32_t m = (1 << l) - n;
2897
0
    return v < m ? l - 1 : l;
2898
0
}
2899
2900
// Finite subexponential code that codes a symbol v in [0, n-1] with parameter k
2901
0
void svt_aom_write_primitive_subexpfin(AomWriter* w, uint16_t n, uint16_t k, uint16_t v) {
2902
0
    int32_t i  = 0;
2903
0
    int32_t mk = 0;
2904
0
    while (1) {
2905
0
        int32_t b = (i ? k + i - 1 : k);
2906
0
        int32_t a = (1 << b);
2907
0
        if (n <= mk + 3 * a) {
2908
0
            svt_aom_write_primitive_quniform(w, (uint16_t)(n - mk), (uint16_t)(v - mk));
2909
0
            break;
2910
0
        } else {
2911
0
            int32_t t = (v >= mk + a);
2912
0
            aom_write_bit(w, t);
2913
0
            if (t) {
2914
0
                i = i + 1;
2915
0
                mk += a;
2916
0
            } else {
2917
0
                aom_write_literal(w, v - mk, b);
2918
0
                break;
2919
0
            }
2920
0
        }
2921
0
    }
2922
0
}
2923
2924
0
static void aom_wb_write_primitive_subexpfin(AomWriteBitBuffer* wb, uint16_t n, uint16_t k, uint16_t v) {
2925
0
    int32_t i  = 0;
2926
0
    int32_t mk = 0;
2927
0
    while (1) {
2928
0
        int32_t b = (i ? k + i - 1 : k);
2929
0
        int32_t a = (1 << b);
2930
0
        if (n <= mk + 3 * a) {
2931
0
            aom_wb_write_primitive_quniform(wb, (uint16_t)(n - mk), (uint16_t)(v - mk));
2932
0
            break;
2933
0
        } else {
2934
0
            int32_t t = (v >= mk + a);
2935
0
            svt_aom_wb_write_bit(wb, t);
2936
0
            if (t) {
2937
0
                i = i + 1;
2938
0
                mk += a;
2939
0
            } else {
2940
0
                svt_aom_wb_write_literal(wb, v - mk, b);
2941
0
                break;
2942
0
            }
2943
0
        }
2944
0
    }
2945
0
}
2946
2947
0
int32_t svt_aom_count_primitive_subexpfin(uint16_t n, uint16_t k, uint16_t v) {
2948
0
    int32_t count = 0;
2949
0
    int32_t i     = 0;
2950
0
    int32_t mk    = 0;
2951
0
    while (1) {
2952
0
        int32_t b = (i ? k + i - 1 : k);
2953
0
        int32_t a = (1 << b);
2954
0
        if (n <= mk + 3 * a) {
2955
0
            count += svt_aom_count_primitive_quniform((uint16_t)(n - mk), (uint16_t)(v - mk));
2956
0
            break;
2957
0
        } else {
2958
0
            int32_t t = (v >= mk + a);
2959
0
            count++;
2960
0
            if (t) {
2961
0
                i = i + 1;
2962
0
                mk += a;
2963
0
            } else {
2964
0
                count += b;
2965
0
                break;
2966
0
            }
2967
0
        }
2968
0
    }
2969
0
    return count;
2970
0
}
2971
2972
// Finite subexponential code that codes a symbol v in[0, n - 1] with parameter k
2973
// based on a reference ref also in [0, n-1].
2974
// Recenters symbol around r first and then uses a finite subexponential code.
2975
0
void svt_aom_write_primitive_refsubexpfin(AomWriter* w, uint16_t n, uint16_t k, uint16_t ref, uint16_t v) {
2976
0
    svt_aom_write_primitive_subexpfin(w, n, k, recenter_finite_nonneg(n, ref, v));
2977
0
}
2978
2979
static void aom_wb_write_primitive_refsubexpfin(AomWriteBitBuffer* wb, uint16_t n, uint16_t k, uint16_t ref,
2980
0
                                                uint16_t v) {
2981
0
    aom_wb_write_primitive_subexpfin(wb, n, k, recenter_finite_nonneg(n, ref, v));
2982
0
}
2983
2984
void svt_aom_wb_write_signed_primitive_refsubexpfin(AomWriteBitBuffer* wb, uint16_t n, uint16_t k, int16_t ref,
2985
0
                                                    int16_t v) {
2986
0
    ref += n - 1;
2987
0
    v += n - 1;
2988
0
    const uint16_t scaled_n = (n << 1) - 1;
2989
0
    aom_wb_write_primitive_refsubexpfin(wb, scaled_n, k, ref, v);
2990
0
}
2991
2992
0
int32_t svt_aom_count_primitive_refsubexpfin(uint16_t n, uint16_t k, uint16_t ref, uint16_t v) {
2993
0
    return svt_aom_count_primitive_subexpfin(n, k, recenter_finite_nonneg(n, ref, v));
2994
0
}
2995
2996
static void write_global_motion_params(const WarpedMotionParams* params, const WarpedMotionParams* ref_params,
2997
0
                                       AomWriteBitBuffer* wb, int32_t allow_hp) {
2998
0
    const TransformationType type = params->wmtype;
2999
0
    svt_aom_wb_write_bit(wb, type != IDENTITY);
3000
0
    if (type != IDENTITY) {
3001
0
        svt_aom_wb_write_bit(wb, type == ROTZOOM);
3002
0
        if (type != ROTZOOM) {
3003
0
            svt_aom_wb_write_bit(wb, type == TRANSLATION);
3004
0
        }
3005
0
    }
3006
3007
0
    if (type >= ROTZOOM) {
3008
0
        int16_t ref2 = (int16_t)((ref_params->wmmat[2] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS));
3009
0
        int16_t v2   = (int16_t)((params->wmmat[2] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS));
3010
3011
0
        int16_t ref3 = (int16_t)(ref_params->wmmat[3] >> GM_ALPHA_PREC_DIFF);
3012
0
        int16_t v3   = (int16_t)(params->wmmat[3] >> GM_ALPHA_PREC_DIFF);
3013
3014
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(
3015
0
            wb,
3016
0
            GM_ALPHA_MAX + 1,
3017
0
            SUBEXPFIN_K,
3018
0
            ref2 /*(ref_params->wmmat[2] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS)*/,
3019
0
            v2 /*(int16_t)((params->wmmat[2] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS))*/);
3020
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(wb,
3021
0
                                                       GM_ALPHA_MAX + 1,
3022
0
                                                       SUBEXPFIN_K,
3023
0
                                                       ref3 /*(ref_params->wmmat[3] >> GM_ALPHA_PREC_DIFF)*/,
3024
0
                                                       v3 /*(int16_t)(params->wmmat[3] >> GM_ALPHA_PREC_DIFF)*/);
3025
0
    }
3026
3027
0
    if (type >= AFFINE) {
3028
0
        int16_t ref4 = (int16_t)(ref_params->wmmat[4] >> GM_ALPHA_PREC_DIFF);
3029
0
        int16_t v4   = (int16_t)(params->wmmat[4] >> GM_ALPHA_PREC_DIFF);
3030
3031
0
        int16_t ref5 = (int16_t)((ref_params->wmmat[5] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS));
3032
0
        int16_t v5   = (int16_t)((params->wmmat[5] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS));
3033
3034
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(wb,
3035
0
                                                       GM_ALPHA_MAX + 1,
3036
0
                                                       SUBEXPFIN_K,
3037
0
                                                       ref4 /*(ref_params->wmmat[4] >> GM_ALPHA_PREC_DIFF)*/,
3038
0
                                                       v4 /*(int16_t)(params->wmmat[4] >> GM_ALPHA_PREC_DIFF)*/);
3039
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(
3040
0
            wb,
3041
0
            GM_ALPHA_MAX + 1,
3042
0
            SUBEXPFIN_K,
3043
0
            ref5 /*(ref_params->wmmat[5] >> GM_ALPHA_PREC_DIFF) -    (1 << GM_ALPHA_PREC_BITS)*/,
3044
0
            v5 /*(int16_t)(params->wmmat[5] >> GM_ALPHA_PREC_DIFF) - (1 << GM_ALPHA_PREC_BITS)*/);
3045
0
    }
3046
3047
0
    if (type >= TRANSLATION) {
3048
0
        const int32_t trans_bits      = (type == TRANSLATION) ? GM_ABS_TRANS_ONLY_BITS - !allow_hp : GM_ABS_TRANS_BITS;
3049
0
        const int32_t trans_prec_diff = (type == TRANSLATION) ? GM_TRANS_ONLY_PREC_DIFF + !allow_hp
3050
0
                                                              : GM_TRANS_PREC_DIFF;
3051
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(wb,
3052
0
                                                       (1 << trans_bits) + 1,
3053
0
                                                       SUBEXPFIN_K,
3054
0
                                                       (int16_t)(ref_params->wmmat[0] >> trans_prec_diff),
3055
0
                                                       (int16_t)(params->wmmat[0] >> trans_prec_diff));
3056
0
        svt_aom_wb_write_signed_primitive_refsubexpfin(wb,
3057
0
                                                       (1 << trans_bits) + 1,
3058
0
                                                       SUBEXPFIN_K,
3059
0
                                                       (int16_t)(ref_params->wmmat[1] >> trans_prec_diff),
3060
0
                                                       (int16_t)(params->wmmat[1] >> trans_prec_diff));
3061
0
    }
3062
0
}
3063
3064
static void write_global_motion(PictureParentControlSet* pcs, AomWriteBitBuffer* wb)
3065
3066
0
{
3067
0
    int32_t      frame;
3068
0
    FrameHeader* frm_hdr = &pcs->frm_hdr;
3069
0
    for (frame = LAST_FRAME; frame <= ALTREF_FRAME; ++frame) {
3070
0
        const WarpedMotionParams* ref_params = (frm_hdr->primary_ref_frame != PRIMARY_REF_NONE)
3071
0
            ? &pcs->child_pcs->ref_global_motion[frame]
3072
0
            : &default_warp_params;
3073
0
        write_global_motion_params(&pcs->global_motion[frame], ref_params, wb, frm_hdr->allow_high_precision_mv);
3074
        // The logic in the commented out code below
3075
        // does not work currently and causes mismatches when resize is on.
3076
        // Fix it before turning the optimization back on.
3077
        /*
3078
        Yv12BufferConfig *ref_buf = get_ref_frame_buffer(cpi, frame);
3079
        if (cpi->source->y_crop_width == ref_buf->y_crop_width &&
3080
        cpi->source->y_crop_height == ref_buf->y_crop_height) {
3081
        write_global_motion_params(&cm->global_motion[frame],
3082
        &cm->prev_frame->global_motion[frame], wb,
3083
        cm->allow_high_precision_mv);
3084
        } else {
3085
        assert(cm->global_motion[frame].wmtype == IDENTITY &&
3086
        "Invalid warp type for frames of different resolutions");
3087
        }
3088
        */
3089
        /*
3090
        SVT_LOG("Frame %d/%d: Enc Ref %d: %d %d %d %d\n",
3091
        cm->current_video_frame, cm->show_frame, frame,
3092
        cm->global_motion[frame].wmmat[0],
3093
        cm->global_motion[frame].wmmat[1], cm->global_motion[frame].wmmat[2],
3094
        cm->global_motion[frame].wmmat[3]);
3095
        */
3096
0
    }
3097
0
}
3098
3099
#if CONFIG_ENABLE_FILM_GRAIN
3100
0
static void write_film_grain_params(PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
3101
0
    FrameHeader*  frm_hdr = &pcs->frm_hdr;
3102
0
    AomFilmGrain* pars    = &frm_hdr->film_grain_params;
3103
3104
0
    svt_aom_wb_write_bit(wb, pars->apply_grain);
3105
0
    if (!pars->apply_grain) {
3106
0
        return;
3107
0
    }
3108
3109
0
    svt_aom_wb_write_literal(wb, pars->random_seed, 16);
3110
3111
0
    if (frm_hdr->frame_type == INTER_FRAME) {
3112
0
        EbReferenceObject* ref_obj_0 = (EbReferenceObject*)pcs->child_pcs->ref_pic_ptr_array[REF_LIST_0][0]->object_ptr;
3113
0
        int32_t            ref_idx   = 0;
3114
0
        pars->update_parameters      = 1;
3115
3116
0
        if (!pars->ignore_ref) {
3117
0
            if (svt_aom_film_grain_params_equal(&ref_obj_0->film_grain_params, pars)) {
3118
0
                pars->update_parameters = 0;
3119
0
                ref_idx                 = get_ref_frame_map_idx(pcs, LAST_FRAME);
3120
0
            } else if (pcs->child_pcs->slice_type == B_SLICE) {
3121
0
                EbReferenceObject* ref_obj_1 =
3122
0
                    (EbReferenceObject*)pcs->child_pcs->ref_pic_ptr_array[REF_LIST_1][0]->object_ptr;
3123
0
                if (svt_aom_film_grain_params_equal(&ref_obj_1->film_grain_params, pars)) {
3124
0
                    pars->update_parameters = 0;
3125
0
                    ref_idx = get_ref_frame_map_idx(pcs, ALTREF_FRAME); //todo: will it always be ALF_REF in L1?
3126
0
                }
3127
0
            }
3128
0
        }
3129
3130
0
        svt_aom_wb_write_bit(wb, pars->update_parameters);
3131
0
        if (!pars->update_parameters) {
3132
0
            svt_aom_wb_write_literal(wb, ref_idx, 3);
3133
0
            return;
3134
0
        }
3135
0
    } else {
3136
0
        pars->update_parameters = 1;
3137
0
    }
3138
3139
    // Scaling functions parameters
3140
0
    svt_aom_wb_write_literal(wb, pars->num_y_points, 4); // max 14
3141
0
    for (int32_t i = 0; i < pars->num_y_points; i++) {
3142
0
        svt_aom_wb_write_literal(wb, pars->scaling_points_y[i][0], 8);
3143
0
        svt_aom_wb_write_literal(wb, pars->scaling_points_y[i][1], 8);
3144
0
    }
3145
3146
0
    if (!pcs->scs->seq_header.color_config.mono_chrome) {
3147
0
        svt_aom_wb_write_bit(wb, pars->chroma_scaling_from_luma);
3148
0
    } else {
3149
0
        pars->chroma_scaling_from_luma = 0; // for monochrome override to 0
3150
0
    }
3151
3152
0
    if (pcs->scs->seq_header.color_config.mono_chrome || pars->chroma_scaling_from_luma ||
3153
        // todo: add corresponding check when subsampling variables are present
3154
0
        ((pcs->scs->subsampling_x == 1) && (pcs->scs->subsampling_y == 1) && (pars->num_y_points == 0))) {
3155
0
        pars->num_cb_points = 0;
3156
0
        pars->num_cr_points = 0;
3157
0
    } else {
3158
0
        svt_aom_wb_write_literal(wb, pars->num_cb_points, 4); // max 10
3159
0
        for (int32_t i = 0; i < pars->num_cb_points; i++) {
3160
0
            svt_aom_wb_write_literal(wb, pars->scaling_points_cb[i][0], 8);
3161
0
            svt_aom_wb_write_literal(wb, pars->scaling_points_cb[i][1], 8);
3162
0
        }
3163
3164
0
        svt_aom_wb_write_literal(wb, pars->num_cr_points, 4); // max 10
3165
0
        for (int32_t i = 0; i < pars->num_cr_points; i++) {
3166
0
            svt_aom_wb_write_literal(wb, pars->scaling_points_cr[i][0], 8);
3167
0
            svt_aom_wb_write_literal(wb, pars->scaling_points_cr[i][1], 8);
3168
0
        }
3169
0
    }
3170
3171
0
    svt_aom_wb_write_literal(wb, pars->scaling_shift - 8, 2); // 8 + value
3172
3173
    // AR coefficients
3174
    // Only sent if the corresponsing scaling function has
3175
    // more than 0 points
3176
3177
0
    svt_aom_wb_write_literal(wb, pars->ar_coeff_lag, 2);
3178
3179
0
    int32_t num_pos_luma   = 2 * pars->ar_coeff_lag * (pars->ar_coeff_lag + 1);
3180
0
    int32_t num_pos_chroma = num_pos_luma;
3181
0
    if (pars->num_y_points > 0) {
3182
0
        ++num_pos_chroma;
3183
0
    }
3184
3185
0
    if (pars->num_y_points) {
3186
0
        for (int32_t i = 0; i < num_pos_luma; i++) {
3187
0
            svt_aom_wb_write_literal(wb, pars->ar_coeffs_y[i] + 128, 8);
3188
0
        }
3189
0
    }
3190
3191
0
    if (pars->num_cb_points || pars->chroma_scaling_from_luma) {
3192
0
        for (int32_t i = 0; i < num_pos_chroma; i++) {
3193
0
            svt_aom_wb_write_literal(wb, pars->ar_coeffs_cb[i] + 128, 8);
3194
0
        }
3195
0
    }
3196
3197
0
    if (pars->num_cr_points || pars->chroma_scaling_from_luma) {
3198
0
        for (int32_t i = 0; i < num_pos_chroma; i++) {
3199
0
            svt_aom_wb_write_literal(wb, pars->ar_coeffs_cr[i] + 128, 8);
3200
0
        }
3201
0
    }
3202
3203
0
    svt_aom_wb_write_literal(wb, pars->ar_coeff_shift - 6, 2); // 8 + value
3204
3205
0
    svt_aom_wb_write_literal(wb, pars->grain_scale_shift, 2);
3206
3207
0
    if (pars->num_cb_points) {
3208
0
        svt_aom_wb_write_literal(wb, pars->cb_mult, 8);
3209
0
        svt_aom_wb_write_literal(wb, pars->cb_luma_mult, 8);
3210
0
        svt_aom_wb_write_literal(wb, pars->cb_offset, 9);
3211
0
    }
3212
3213
0
    if (pars->num_cr_points) {
3214
0
        svt_aom_wb_write_literal(wb, pars->cr_mult, 8);
3215
0
        svt_aom_wb_write_literal(wb, pars->cr_luma_mult, 8);
3216
0
        svt_aom_wb_write_literal(wb, pars->cr_offset, 9);
3217
0
    }
3218
3219
0
    svt_aom_wb_write_bit(wb, pars->overlap_flag);
3220
3221
0
    svt_aom_wb_write_bit(wb, pars->clip_to_restricted_range);
3222
0
}
3223
#endif
3224
3225
0
static uint32_t get_ref_order_hint(PictureParentControlSet* pcs, MvReferenceFrame ref_frame) {
3226
0
    int32_t ref_idx = get_ref_frame_map_idx(pcs, ref_frame);
3227
0
    if (ref_idx == INVALID_IDX) {
3228
0
        return INVALID_IDX;
3229
0
    }
3230
0
    return pcs->dpb_order_hint[ref_idx];
3231
0
}
3232
3233
0
static void write_frame_size_with_refs(PictureParentControlSet* pcs, AomWriteBitBuffer* wb) {
3234
#if DEBUG_SFRAME
3235
    fprintf(stderr,
3236
            "\nFrame %d, dpb buf order hint %u,%u,%u,%u,%u,%u,%u\n",
3237
            (int)pcs->picture_number,
3238
            get_ref_order_hint(pcs, LAST_FRAME),
3239
            get_ref_order_hint(pcs, LAST2_FRAME),
3240
            get_ref_order_hint(pcs, LAST3_FRAME),
3241
            get_ref_order_hint(pcs, GOLDEN_FRAME),
3242
            get_ref_order_hint(pcs, BWDREF_FRAME),
3243
            get_ref_order_hint(pcs, ALTREF2_FRAME),
3244
            get_ref_order_hint(pcs, ALTREF_FRAME));
3245
#endif
3246
0
    for (uint32_t ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
3247
0
        int32_t  found          = 0;
3248
0
        uint32_t ref_order_hint = get_ref_order_hint(pcs, ref_frame);
3249
0
        if ((int32_t)ref_order_hint != INVALID_IDX) {
3250
0
            for (uint8_t i = 0; i < pcs->ref_list0_count; ++i) {
3251
0
                EbReferenceObject* ref =
3252
0
                    (EbReferenceObject*)pcs->child_pcs->ref_pic_ptr_array[REF_LIST_0][i]->object_ptr;
3253
0
                if (ref->order_hint != ref_order_hint) {
3254
0
                    continue;
3255
0
                }
3256
                // Both super-res upscaled size and render size should be checked as per spec 5.9.7,
3257
                // but in current implementation, render_and_frame_size_different is fixed to 0, see
3258
                // function write_render_size()
3259
0
                found = pcs->enhanced_pic->width == ref->reference_picture->width &&
3260
0
                    pcs->enhanced_pic->height == ref->reference_picture->height;
3261
0
                if (found) {
3262
0
                    break;
3263
0
                }
3264
0
            }
3265
0
            if (!found) {
3266
0
                for (uint8_t i = 0; i < pcs->ref_list1_count; ++i) {
3267
0
                    EbReferenceObject* ref =
3268
0
                        (EbReferenceObject*)pcs->child_pcs->ref_pic_ptr_array[REF_LIST_1][i]->object_ptr;
3269
0
                    if (ref->order_hint != ref_order_hint) {
3270
0
                        continue;
3271
0
                    }
3272
0
                    found = pcs->enhanced_pic->width == ref->reference_picture->width &&
3273
0
                        pcs->enhanced_pic->height == ref->reference_picture->height;
3274
0
                    if (found) {
3275
0
                        break;
3276
0
                    }
3277
0
                }
3278
0
            }
3279
0
        }
3280
3281
0
        svt_aom_wb_write_bit(wb, found);
3282
0
        if (found) {
3283
0
            write_superres_scale(wb, pcs);
3284
0
            return;
3285
0
        }
3286
0
    }
3287
3288
    // not found
3289
0
    const int frame_size_override = 1; // Always equal to 1 in this function
3290
0
    write_frame_size(pcs, frame_size_override, wb);
3291
0
}
3292
3293
// New function based on HLS R18
3294
static void write_uncompressed_header_obu(SequenceControlSet* scs /*Av1Comp *cpi*/, PictureParentControlSet* pcs,
3295
962
                                          AomWriteBitBuffer* wb, uint8_t show_existing) {
3296
    // Av1Common *const cm = &cpi->common;
3297
    // MacroBlockD *const xd = &cpi->td.mb.e_mbd;
3298
962
    Av1Common* const cm       = pcs->av1_cm;
3299
962
    uint16_t         tile_cnt = cm->tiles_info.tile_rows * cm->tiles_info.tile_cols;
3300
3301
962
    FrameHeader* frm_hdr = &pcs->frm_hdr;
3302
962
    if (!scs->seq_header.reduced_still_picture_header) {
3303
0
        if (show_existing) {
3304
            //SVT_ERROR("show_existing_frame not supported yet\n");
3305
            //RefCntBuffer *const frame_bufs = cm->buffer_pool->frame_bufs;
3306
            //const int32_t frame_to_show = cm->ref_frame_map[cpi->show_existing_frame];
3307
3308
            //if (frame_to_show < 0 || frame_bufs[frame_to_show].ref_count < 1) {
3309
            //    aom_internal_error(&cm->error, SVT_AOM_CODEC_UNSUP_BITSTREAM,
3310
            //        "Buffer %d does not contain a reconstructed frame",
3311
            //        frame_to_show);
3312
            //}
3313
            //ref_cnt_fb(frame_bufs, &cm->new_fb_idx, frame_to_show);
3314
3315
0
            svt_aom_wb_write_bit(wb, 1); // show_existing_frame
3316
0
            svt_aom_wb_write_literal(wb, frm_hdr->show_existing_frame, 3);
3317
0
            if (scs->seq_header.frame_id_numbers_present_flag) {
3318
0
                SVT_ERROR("frame_id_numbers_present_flag not supported yet\n");
3319
                /*int32_t frame_id_len = cm->seq_params.frame_id_length;
3320
                int32_t display_frame_id = cm->ref_frame_id[cpi->show_existing_frame];
3321
                svt_aom_wb_write_literal(wb, display_frame_id, frame_id_len);*/
3322
0
            }
3323
3324
            //        if (cm->reset_decoder_state &&
3325
            //            frame_bufs[frame_to_show].frame_type != KEY_FRAME) {
3326
            //            aom_internal_error(
3327
            //                &cm->error, SVT_AOM_CODEC_UNSUP_BITSTREAM,
3328
            //                "show_existing_frame to reset state on KEY_FRAME only");
3329
            //        }
3330
3331
0
            return;
3332
0
        } else {
3333
0
            svt_aom_wb_write_bit(wb, 0); // show_existing_frame
3334
0
        }
3335
3336
0
        svt_aom_wb_write_literal(wb, frm_hdr->frame_type, 2);
3337
3338
0
        svt_aom_wb_write_bit(wb, frm_hdr->show_frame);
3339
3340
0
        if (!frm_hdr->show_frame) {
3341
0
            svt_aom_wb_write_bit(wb, frm_hdr->showable_frame);
3342
0
        }
3343
0
        if (frm_hdr->frame_type == S_FRAME) {
3344
0
            assert(frm_hdr->error_resilient_mode);
3345
0
        } else if (!(frm_hdr->frame_type == KEY_FRAME && frm_hdr->show_frame)) {
3346
0
            svt_aom_wb_write_bit(wb, frm_hdr->error_resilient_mode);
3347
0
        }
3348
0
    }
3349
3350
962
    svt_aom_wb_write_bit(wb, frm_hdr->disable_cdf_update);
3351
3352
962
    if (scs->seq_header.seq_force_screen_content_tools == 2) {
3353
962
        svt_aom_wb_write_bit(wb, frm_hdr->allow_screen_content_tools);
3354
962
    } else {
3355
0
        assert(frm_hdr->allow_screen_content_tools == scs->seq_header.seq_force_screen_content_tools);
3356
0
    }
3357
3358
962
    if (frm_hdr->allow_screen_content_tools) {
3359
0
        if (scs->seq_header.seq_force_integer_mv == 2) {
3360
0
            svt_aom_wb_write_bit(wb, frm_hdr->force_integer_mv);
3361
0
        } else {
3362
0
            assert(frm_hdr->force_integer_mv == scs->seq_header.seq_force_integer_mv);
3363
0
        }
3364
962
    } else {
3365
962
        assert(frm_hdr->force_integer_mv == 0);
3366
962
    }
3367
3368
962
    const int32_t frame_size_override_flag = frame_is_sframe(pcs) || pcs->frame_resize_enabled
3369
962
        ? 1
3370
962
        : ((pcs->av1_cm->frm_size.superres_upscaled_width != scs->seq_header.max_frame_width) ||
3371
962
           (pcs->av1_cm->frm_size.superres_upscaled_height != scs->seq_header.max_frame_height));
3372
3373
962
    if (!scs->seq_header.reduced_still_picture_header) {
3374
0
        if (scs->seq_header.frame_id_numbers_present_flag) {
3375
0
            int32_t frame_id_len = scs->seq_header.frame_id_length;
3376
0
            svt_aom_wb_write_literal(wb, frm_hdr->current_frame_id, frame_id_len);
3377
0
        }
3378
3379
        //if (cm->width > cm->seq_params.max_frame_width ||
3380
        //    cm->height > cm->seq_params.max_frame_height) {
3381
        //    aom_internal_error(&cm->error, SVT_AOM_CODEC_UNSUP_BITSTREAM,
3382
        //        "Frame dimensions are larger than the maximum values");
3383
        //}
3384
3385
0
        if (!frame_is_sframe(pcs)) {
3386
0
            svt_aom_wb_write_bit(wb, frame_size_override_flag);
3387
0
        }
3388
3389
0
        if (scs->seq_header.order_hint_info.enable_order_hint) {
3390
0
            svt_aom_wb_write_literal(wb, (int32_t)pcs->frame_offset, scs->seq_header.order_hint_info.order_hint_bits);
3391
0
        }
3392
3393
0
        if (!frm_hdr->error_resilient_mode && !frame_is_intra_only(pcs)) {
3394
0
            svt_aom_wb_write_literal(wb, frm_hdr->primary_ref_frame, PRIMARY_REF_BITS);
3395
0
        }
3396
962
    } else { // reduced_still_picture_header
3397
962
        assert(frame_size_override_flag == 0);
3398
962
    }
3399
962
    if (frm_hdr->frame_type == KEY_FRAME) {
3400
962
        if (!frm_hdr->show_frame) {
3401
0
            svt_aom_wb_write_literal(wb, pcs->av1_ref_signal.refresh_frame_mask, REF_FRAMES);
3402
0
        }
3403
962
    } else {
3404
0
        if (frm_hdr->frame_type == INTRA_ONLY_FRAME) {
3405
            // pcs->refresh_frame_mask = get_refresh_mask(cpi);
3406
0
            int32_t updated_fb = -1;
3407
0
            for (int32_t i = 0; i < REF_FRAMES; i++) {
3408
                // If more than one frame is refreshed, it doesn't matter which one
3409
                // we pick, so pick the first.
3410
0
                if (pcs->av1_ref_signal.refresh_frame_mask & (1 << i)) {
3411
0
                    updated_fb = i;
3412
0
                    break;
3413
0
                }
3414
0
            }
3415
0
            assert(updated_fb >= 0);
3416
0
            pcs->fb_of_context_type[pcs->frame_context_idx] = updated_fb;
3417
3418
0
            svt_aom_wb_write_literal(wb, pcs->av1_ref_signal.refresh_frame_mask, REF_FRAMES);
3419
0
        } else if (frm_hdr->frame_type == INTER_FRAME || frame_is_sframe(pcs)) {
3420
            //pcs->refresh_frame_mask = get_refresh_mask(cpi);
3421
0
            if (frm_hdr->frame_type == INTER_FRAME) {
3422
0
                svt_aom_wb_write_literal(wb, pcs->av1_ref_signal.refresh_frame_mask, REF_FRAMES);
3423
0
            } else {
3424
0
                assert(frame_is_sframe(pcs) && pcs->av1_ref_signal.refresh_frame_mask == 0xFF);
3425
0
            }
3426
3427
            // write ref order hint map into bitstream
3428
0
            if (pcs->frm_hdr.error_resilient_mode && scs->seq_header.order_hint_info.enable_order_hint) {
3429
0
                for (int32_t ref_idx = 0; ref_idx < REF_FRAMES; ref_idx++) {
3430
0
                    svt_aom_wb_write_literal(
3431
0
                        wb, pcs->dpb_order_hint[ref_idx], scs->seq_header.order_hint_info.order_hint_bits);
3432
0
                }
3433
0
            }
3434
3435
0
            int32_t updated_fb = -1;
3436
0
            for (int32_t i = 0; i < REF_FRAMES; i++) {
3437
                // If more than one frame is refreshed, it doesn't matter which one
3438
                // we pick, so pick the first.
3439
0
                if (pcs->av1_ref_signal.refresh_frame_mask & (1 << i)) {
3440
0
                    updated_fb = i;
3441
0
                    break;
3442
0
                }
3443
0
            }
3444
            // large scale tile sometimes won't refresh any fbs
3445
0
            if (updated_fb >= 0) {
3446
0
                pcs->fb_of_context_type[pcs->frame_context_idx] = updated_fb;
3447
0
            }
3448
0
        }
3449
0
    }
3450
3451
#if DEBUG_SFRAME
3452
    {
3453
        uint32_t* _ref_frame_map = pcs->dpb_order_hint;
3454
        fprintf(stderr,
3455
                "\nFrame %d, use_ref_frame_mvs %u, ref_order_hint_map %d,%d,%d,%d,%d,%d,%d,%d\n",
3456
                (int)pcs->picture_number,
3457
                frm_hdr->use_ref_frame_mvs,
3458
                _ref_frame_map[0],
3459
                _ref_frame_map[1],
3460
                _ref_frame_map[2],
3461
                _ref_frame_map[3],
3462
                _ref_frame_map[4],
3463
                _ref_frame_map[5],
3464
                _ref_frame_map[6],
3465
                _ref_frame_map[7]);
3466
    }
3467
#endif
3468
3469
962
    if (frm_hdr->frame_type == KEY_FRAME) {
3470
962
        write_frame_size(pcs, frame_size_override_flag, wb);
3471
962
        assert(av1_superres_unscaled(&(pcs->av1_cm->frm_size)) || !(frm_hdr->allow_intrabc));
3472
962
        if (frm_hdr->allow_screen_content_tools && av1_superres_unscaled(&(pcs->av1_cm->frm_size))) {
3473
0
            svt_aom_wb_write_bit(wb, frm_hdr->allow_intrabc);
3474
0
        }
3475
        // all eight fbs are refreshed, pick one that will live long enough
3476
962
        pcs->fb_of_context_type[REGULAR_FRAME] = 0;
3477
962
    } else {
3478
0
        if (frm_hdr->frame_type == INTRA_ONLY_FRAME) {
3479
0
            write_frame_size(pcs, frame_size_override_flag, wb);
3480
0
            assert(av1_superres_unscaled(&(pcs->av1_cm->frm_size)) || !(frm_hdr->allow_intrabc));
3481
0
            if (frm_hdr->allow_screen_content_tools && av1_superres_unscaled(&(pcs->av1_cm->frm_size))) {
3482
0
                svt_aom_wb_write_bit(wb, frm_hdr->allow_intrabc);
3483
0
            }
3484
0
        } else if (frm_hdr->frame_type == INTER_FRAME || frame_is_sframe(pcs)) {
3485
0
            MvReferenceFrame ref_frame;
3486
3487
0
            assert(frm_hdr->frame_refs_short_signaling == 0);
3488
            // NOTE: Error resilient mode turns off frame_refs_short_signaling
3489
            //       automatically.
3490
0
            if (scs->seq_header.order_hint_info.enable_order_hint) {
3491
0
                svt_aom_wb_write_bit(wb, frm_hdr->frame_refs_short_signaling);
3492
0
            }
3493
3494
0
            if (frm_hdr->frame_refs_short_signaling) {
3495
0
                svt_aom_wb_write_literal(wb, get_ref_frame_map_idx(pcs, LAST_FRAME), REF_FRAMES_LOG2);
3496
0
                svt_aom_wb_write_literal(wb, get_ref_frame_map_idx(pcs, GOLDEN_FRAME), REF_FRAMES_LOG2);
3497
0
            }
3498
0
            for (ref_frame = LAST_FRAME; ref_frame <= ALTREF_FRAME; ++ref_frame) {
3499
0
                assert(get_ref_frame_map_idx(pcs, ref_frame) != INVALID_IDX);
3500
0
                if (!frm_hdr->frame_refs_short_signaling) {
3501
0
                    svt_aom_wb_write_literal(wb, get_ref_frame_map_idx(pcs, ref_frame), REF_FRAMES_LOG2);
3502
0
                }
3503
3504
0
                if (scs->seq_header.frame_id_numbers_present_flag) {
3505
0
                    SVT_ERROR("frame_id_numbers_present_flag not supported yet\n");
3506
                    //int32_t i = get_ref_frame_map_idx(cpi, ref_frame);
3507
                    //int32_t frame_id_len = cm->seq_params.frame_id_length;
3508
                    //int32_t diff_len = cm->seq_params.delta_frame_id_length;
3509
                    //int32_t delta_frame_id_minus1 =
3510
                    //    ((cm->current_frame_id - cm->ref_frame_id[i] +
3511
                    //    (1 << frame_id_len)) %
3512
                    //    (1 << frame_id_len)) -
3513
                    //    1;
3514
                    //if (delta_frame_id_minus1 < 0 ||
3515
                    //    delta_frame_id_minus1 >= (1 << diff_len))
3516
                    //    cm->invalid_delta_frame_id_minus1 = 1;
3517
                    //svt_aom_wb_write_literal(wb, delta_frame_id_minus1, diff_len);
3518
0
                }
3519
0
            }
3520
3521
0
            if (!pcs->frm_hdr.error_resilient_mode && frame_size_override_flag) {
3522
0
                write_frame_size_with_refs(pcs, wb);
3523
0
            } else {
3524
0
                write_frame_size(pcs, frame_size_override_flag, wb);
3525
0
            }
3526
3527
0
            if (frm_hdr->force_integer_mv) {
3528
0
                frm_hdr->allow_high_precision_mv = 0;
3529
0
            } else {
3530
0
                svt_aom_wb_write_bit(wb, frm_hdr->allow_high_precision_mv);
3531
0
            }
3532
0
#define LOG_SWITCHABLE_FILTERS 2
3533
3534
0
            svt_aom_wb_write_bit(wb, pcs->frm_hdr.interpolation_filter == SWITCHABLE);
3535
0
            if (pcs->frm_hdr.interpolation_filter != SWITCHABLE) {
3536
0
                svt_aom_wb_write_literal(wb, pcs->frm_hdr.interpolation_filter, LOG_SWITCHABLE_FILTERS);
3537
0
            }
3538
3539
0
            svt_aom_wb_write_bit(wb, frm_hdr->is_motion_mode_switchable);
3540
0
            if (frame_might_allow_ref_frame_mvs(pcs, scs)) {
3541
0
                svt_aom_wb_write_bit(wb, frm_hdr->use_ref_frame_mvs);
3542
0
            }
3543
0
        }
3544
0
    }
3545
3546
    //if (scs->frame_id_numbers_present_flag)
3547
    //    pcs->refresh_mask = get_refresh_mask(pcs);
3548
962
    const int32_t might_bwd_adapt = !(scs->seq_header.reduced_still_picture_header) && !(frm_hdr->disable_cdf_update);
3549
962
    if (pcs->large_scale_tile) {
3550
0
        pcs->refresh_frame_context = REFRESH_FRAME_CONTEXT_DISABLED;
3551
0
    }
3552
962
    if (might_bwd_adapt) {
3553
0
        svt_aom_wb_write_bit(wb, pcs->refresh_frame_context == REFRESH_FRAME_CONTEXT_DISABLED);
3554
0
    }
3555
3556
962
    write_tile_info(pcs, /*saved_wb,*/ wb);
3557
3558
962
    encode_quantization(pcs, wb);
3559
962
    encode_segmentation(pcs, wb);
3560
    //svt_aom_wb_write_bit(wb, 0);
3561
    //encode_segmentation(cm, xd, wb);
3562
    //if (pcs->delta_q_present_flag)
3563
    // assert(delta_q_allowed == 1 && frm_hdr->quantisation_params.base_q_idx > 0);
3564
3565
962
    if (frm_hdr->quantization_params.base_q_idx > 0) {
3566
514
        svt_aom_wb_write_bit(wb, frm_hdr->delta_q_params.delta_q_present);
3567
514
        if (frm_hdr->delta_q_params.delta_q_present) {
3568
0
            svt_aom_wb_write_literal(wb, svt_log2f_safe(frm_hdr->delta_q_params.delta_q_res), 2);
3569
0
            for (uint16_t tile_idx = 0; tile_idx < tile_cnt; tile_idx++) {
3570
0
                pcs->prev_qindex[tile_idx] = frm_hdr->quantization_params.base_q_idx;
3571
0
            }
3572
0
            if (frm_hdr->allow_intrabc) {
3573
0
                assert(frm_hdr->delta_lf_params.delta_lf_present == 0);
3574
0
            } else {
3575
0
                svt_aom_wb_write_bit(wb, frm_hdr->delta_lf_params.delta_lf_present);
3576
0
            }
3577
0
            if (frm_hdr->delta_lf_params.delta_lf_present) {
3578
0
                svt_aom_wb_write_literal(wb, svt_log2f_safe(frm_hdr->delta_lf_params.delta_lf_res), 2);
3579
0
                pcs->prev_delta_lf_from_base = 0;
3580
0
                svt_aom_wb_write_bit(wb, frm_hdr->delta_lf_params.delta_lf_multi);
3581
0
                const int32_t frame_lf_count = pcs->monochrome == 0 ? FRAME_LF_COUNT : FRAME_LF_COUNT - 2;
3582
0
                for (int32_t lf_id = 0; lf_id < frame_lf_count; ++lf_id) {
3583
0
                    pcs->prev_delta_lf[lf_id] = 0;
3584
0
                }
3585
0
            }
3586
0
        }
3587
514
    }
3588
3589
962
    if (frm_hdr->all_lossless) {
3590
448
        assert(av1_superres_unscaled(&(pcs->av1_cm->frm_size)));
3591
514
    } else {
3592
514
        if (!frm_hdr->coded_lossless) {
3593
514
            encode_loopfilter(pcs, wb);
3594
514
            if (scs->seq_header.cdef_level) {
3595
514
                encode_cdef(pcs, wb);
3596
514
            }
3597
514
        }
3598
3599
514
        if (scs->seq_header.enable_restoration) {
3600
0
            encode_restoration_mode(pcs, wb);
3601
0
        }
3602
514
    }
3603
962
    if (frm_hdr->coded_lossless) {
3604
448
        assert(1); // assert(frm_hdr->tx_mode == ONLY_4X4);
3605
514
    } else {
3606
514
        svt_aom_wb_write_bit(wb, frm_hdr->tx_mode == TX_MODE_SELECT);
3607
514
    }
3608
    //write_tx_mode(cm, &pcs->tx_mode, wb);
3609
3610
962
    if (pcs->allow_comp_inter_inter) {
3611
0
        const int32_t use_hybrid_pred = frm_hdr->reference_mode == REFERENCE_MODE_SELECT;
3612
3613
0
        svt_aom_wb_write_bit(wb, use_hybrid_pred);
3614
0
    }
3615
3616
962
    if (frm_hdr->skip_mode_params.skip_mode_allowed) {
3617
0
        svt_aom_wb_write_bit(wb, frm_hdr->skip_mode_params.skip_mode_flag);
3618
0
    }
3619
3620
962
    if (frame_might_allow_warped_motion(pcs, scs)) {
3621
0
        svt_aom_wb_write_bit(wb, frm_hdr->allow_warped_motion);
3622
962
    } else {
3623
962
        assert(!frm_hdr->allow_warped_motion);
3624
962
    }
3625
3626
962
    svt_aom_wb_write_bit(wb, frm_hdr->reduced_tx_set);
3627
3628
962
    if (!frame_is_intra_only(pcs)) {
3629
        //  SVT_ERROR("Global motion not supported yet\n");
3630
0
        write_global_motion(pcs, wb);
3631
0
    }
3632
962
#if CONFIG_ENABLE_FILM_GRAIN
3633
962
    if (scs->seq_header.film_grain_params_present && (frm_hdr->show_frame || frm_hdr->showable_frame)) {
3634
0
        write_film_grain_params(pcs, wb);
3635
0
    }
3636
962
#endif
3637
962
}
3638
3639
1.44k
static uint32_t write_obu_header(ObuType obu_type, int32_t obuExtension, uint8_t* const dst) {
3640
1.44k
    AomWriteBitBuffer wb   = {dst, 0};
3641
1.44k
    uint32_t          size = 0;
3642
3643
1.44k
    svt_aom_wb_write_literal(&wb, 0, 1); // forbidden bit.
3644
1.44k
    svt_aom_wb_write_literal(&wb, (int32_t)obu_type, 4);
3645
1.44k
    svt_aom_wb_write_literal(&wb, obuExtension ? 1 : 0, 1);
3646
1.44k
    svt_aom_wb_write_literal(&wb, 1, 1); // obu_has_payload_length_field
3647
1.44k
    svt_aom_wb_write_literal(&wb, 0, 1); // reserved
3648
3649
1.44k
    if (obuExtension) {
3650
0
        svt_aom_wb_write_literal(&wb, obuExtension & 0xFF, 8);
3651
0
    }
3652
1.44k
    size = svt_aom_wb_bytes_written(&wb);
3653
1.44k
    return size;
3654
1.44k
}
3655
3656
481
static int32_t write_uleb_obu_size(uint32_t obu_header_size, uint32_t obu_payload_size, uint8_t* dest) {
3657
481
    const uint32_t obu_size       = obu_payload_size;
3658
481
    const uint32_t offset         = obu_header_size;
3659
481
    size_t         coded_obu_size = 0;
3660
3661
481
    if (svt_aom_uleb_encode(obu_size, sizeof(obu_size), dest + offset, &coded_obu_size) != 0) {
3662
0
        return SVT_AOM_CODEC_ERROR;
3663
0
    }
3664
3665
481
    return SVT_AOM_CODEC_OK;
3666
481
}
3667
3668
962
static void add_trailing_bits(AomWriteBitBuffer* wb) {
3669
962
    if (svt_aom_wb_is_byte_aligned(wb)) {
3670
486
        svt_aom_wb_write_literal(wb, 0x80, 8);
3671
486
    } else {
3672
        // assumes that the other bits are already 0s
3673
476
        svt_aom_wb_write_bit(wb, 1);
3674
476
    }
3675
962
}
3676
3677
// writes the type and payload of the provided metadata to the address dst as a metadata OBU
3678
0
static uint32_t write_obu_metadata(SvtMetadataT* metadata, uint8_t* const dst) {
3679
0
    if (!metadata || !metadata->payload) {
3680
0
        return 0;
3681
0
    }
3682
0
    AomWriteBitBuffer wb   = {dst, 0};
3683
0
    uint32_t          size = 0;
3684
0
    svt_aom_wb_write_literal(&wb, metadata->type, 8);
3685
0
    for (size_t i = 0; i < metadata->sz; ++i) {
3686
0
        svt_aom_wb_write_literal(&wb, metadata->payload[i], 8);
3687
0
    }
3688
0
    add_trailing_bits(&wb);
3689
0
    size = svt_aom_wb_bytes_written(&wb);
3690
0
    return size;
3691
0
}
3692
3693
962
static void write_bitstream_level(BitstreamLevel bl, AomWriteBitBuffer* wb) {
3694
962
    uint8_t seq_level_idx = major_minor_to_seq_level_idx(bl);
3695
962
    assert(is_valid_seq_level_idx(seq_level_idx));
3696
962
    svt_aom_wb_write_literal(wb, seq_level_idx, LEVEL_BITS);
3697
962
}
3698
3699
962
static uint32_t write_sequence_header_obu(SequenceControlSet* scs, uint8_t* const dst, uint8_t numberSpatialLayers) {
3700
962
    AomWriteBitBuffer wb   = {dst, 0};
3701
962
    uint32_t          size = 0;
3702
3703
962
    set_bitstream_level_tier(scs);
3704
3705
962
    write_profile((BitstreamProfile)scs->static_config.profile, &wb);
3706
3707
    // Still picture or not
3708
962
    svt_aom_wb_write_bit(&wb, scs->seq_header.still_picture);
3709
962
    assert(IMPLIES(!scs->seq_header.still_picture, !scs->seq_header.reduced_still_picture_header));
3710
3711
    // whether to use reduced still picture header
3712
962
    svt_aom_wb_write_bit(&wb, scs->seq_header.reduced_still_picture_header);
3713
3714
962
    if (scs->seq_header.reduced_still_picture_header) {
3715
962
        write_bitstream_level(scs->level[0], &wb);
3716
962
    } else {
3717
0
        svt_aom_wb_write_bit(&wb, scs->seq_header.timing_info.timing_info_present); // timing info present flag
3718
3719
0
        if (scs->seq_header.timing_info.timing_info_present) {
3720
            // timing_info
3721
0
            SVT_ERROR("timing_info_present not supported\n");
3722
            /*write_timing_info_header(cm, &wb);
3723
            svt_aom_wb_write_bit(&wb, cm->decoder_model_info_present_flag);
3724
            if (cm->decoder_model_info_present_flag) write_decoder_model_info(cm, &wb);*/
3725
0
        }
3726
0
        svt_aom_wb_write_bit(&wb, scs->seq_header.initial_display_delay_present_flag);
3727
3728
0
        uint8_t operating_points_cnt_minus_1 = numberSpatialLayers > 1 ? numberSpatialLayers - 1 : 0;
3729
0
        svt_aom_wb_write_literal(&wb, operating_points_cnt_minus_1, OP_POINTS_CNT_MINUS_1_BITS);
3730
0
        int32_t i;
3731
0
        for (i = 0; i < operating_points_cnt_minus_1 + 1; i++) {
3732
0
            svt_aom_wb_write_literal(&wb, scs->seq_header.operating_point[i].op_idc, OP_POINTS_IDC_BITS);
3733
0
            write_bitstream_level(scs->level[i], &wb);
3734
0
            if (scs->level[i].major > 3) {
3735
0
                svt_aom_wb_write_bit(&wb, scs->seq_header.operating_point[i].seq_tier);
3736
0
            }
3737
0
            if (scs->seq_header.decoder_model_info_present_flag) {
3738
0
                SVT_ERROR("decoder_model_info_present_flag not supported\n");
3739
                //svt_aom_wb_write_bit(&wb,
3740
                //    cm->op_params[i].decoder_model_param_present_flag);
3741
                //if (cm->op_params[i].decoder_model_param_present_flag)
3742
                //    write_dec_model_op_parameters(cm, &wb, i);
3743
0
            }
3744
0
            if (scs->seq_header.initial_display_delay_present_flag) {
3745
0
                svt_aom_wb_write_bit(&wb, scs->seq_header.operating_point[i].initial_display_delay_present_for_this_op);
3746
0
                if (scs->seq_header.operating_point[i].initial_display_delay_present_for_this_op) {
3747
0
                    assert(scs->seq_header.operating_point[i].initial_display_delay <= 10);
3748
0
                    svt_aom_wb_write_literal(&wb, scs->seq_header.operating_point[i].initial_display_delay - 1, 4);
3749
0
                }
3750
0
            }
3751
0
        }
3752
0
    }
3753
962
    write_sequence_header(scs, &wb);
3754
3755
962
    write_color_config(scs, &wb);
3756
3757
962
    svt_aom_wb_write_bit(&wb, scs->seq_header.film_grain_params_present);
3758
3759
962
    add_trailing_bits(&wb);
3760
3761
962
    size = svt_aom_wb_bytes_written(&wb);
3762
962
    return size;
3763
962
}
3764
3765
static uint32_t write_tile_group_header(uint8_t* const dst, int startTile, int endTile, int tiles_log2,
3766
962
                                        int tile_start_and_end_present_flag) {
3767
962
    AomWriteBitBuffer wb   = {dst, 0};
3768
962
    uint32_t          size = 0;
3769
3770
962
    if (!tiles_log2) {
3771
12
        return size;
3772
12
    }
3773
950
    svt_aom_wb_write_bit(&wb, tile_start_and_end_present_flag);
3774
3775
950
    if (tile_start_and_end_present_flag) {
3776
0
        svt_aom_wb_write_literal(&wb, startTile, tiles_log2);
3777
0
        svt_aom_wb_write_literal(&wb, endTile, tiles_log2);
3778
0
    }
3779
3780
950
    size = svt_aom_wb_bytes_written(&wb);
3781
950
    return size;
3782
962
}
3783
3784
static uint32_t write_frame_header_obu(SequenceControlSet* scs, PictureParentControlSet* pcs, uint8_t* const dst,
3785
962
                                       uint8_t show_existing, int32_t appendTrailingBits) {
3786
962
    AomWriteBitBuffer wb         = {dst, 0};
3787
962
    uint32_t          total_size = 0;
3788
3789
962
    write_uncompressed_header_obu(scs, pcs, /* saved_wb,*/ &wb, show_existing);
3790
3791
962
    if (appendTrailingBits) {
3792
0
        add_trailing_bits(&wb);
3793
0
    }
3794
3795
962
    if (show_existing) {
3796
0
        total_size = svt_aom_wb_bytes_written(&wb);
3797
0
        return total_size;
3798
0
    }
3799
3800
962
    total_size = svt_aom_wb_bytes_written(&wb);
3801
962
    return total_size;
3802
962
}
3803
3804
EbErrorType svt_aom_write_metadata_av1(Bitstream* bitstream_ptr, SvtMetadataArrayT* metadata,
3805
1.44k
                                       const EbAv1MetadataType type) {
3806
1.44k
    EbErrorType return_error = EB_ErrorNone;
3807
1.44k
    if (!metadata || !metadata->metadata_array) {
3808
1.44k
        return EB_ErrorBadParameter;
3809
1.44k
    }
3810
3811
0
    OutputBitstreamUnit* output_bitstream_ptr = (OutputBitstreamUnit*)bitstream_ptr->output_bitstream_ptr;
3812
0
    uint8_t*             data                 = output_bitstream_ptr->buffer_av1;
3813
3814
0
    for (size_t i = 0; i < metadata->sz; i++) {
3815
0
        SvtMetadataT* current_metadata = metadata->metadata_array[i];
3816
0
        if (current_metadata && current_metadata->payload && current_metadata->type == type) {
3817
            // Phase 1: measure header + payload sizes
3818
0
            uint32_t obu_header_size   = write_obu_header(OBU_METADATA, 0, data);
3819
0
            uint32_t obu_payload_size  = write_obu_metadata(current_metadata, data + obu_header_size);
3820
0
            size_t   length_field_size = svt_aom_uleb_size_in_bytes(obu_payload_size);
3821
3822
            // Phase 2: write at correct offsets (re-write payload after LEB128)
3823
            // OBU header already at data[0]
3824
0
            size_t  coded_size;
3825
0
            int32_t ret = svt_aom_uleb_encode(
3826
0
                obu_payload_size, sizeof(obu_payload_size), data + obu_header_size, &coded_size);
3827
0
            assert(ret == 0 && coded_size == length_field_size);
3828
0
            if (ret != 0 || coded_size != length_field_size) {
3829
0
                return EB_ErrorBadParameter;
3830
0
            }
3831
0
            write_obu_metadata(current_metadata, data + obu_header_size + length_field_size);
3832
3833
0
            data += obu_header_size + length_field_size + obu_payload_size;
3834
0
        }
3835
0
    }
3836
0
    output_bitstream_ptr->buffer_av1 = data;
3837
0
    return return_error;
3838
0
}
3839
3840
/**************************************************
3841
* EncodeFrameHeaderHeader
3842
**************************************************/
3843
EbErrorType svt_aom_write_frame_header_av1(Bitstream* bitstream_ptr, SequenceControlSet* scs, PictureControlSet* pcs,
3844
481
                                           uint8_t show_existing) {
3845
481
    EbErrorType              return_error         = EB_ErrorNone;
3846
481
    OutputBitstreamUnit*     output_bitstream_ptr = (OutputBitstreamUnit*)bitstream_ptr->output_bitstream_ptr;
3847
481
    PictureParentControlSet* ppcs                 = pcs->ppcs;
3848
481
    Av1Common* const         cm                   = ppcs->av1_cm;
3849
481
    uint16_t                 tile_cnt             = cm->tiles_info.tile_rows * cm->tiles_info.tile_cols;
3850
481
    uint8_t*                 data                 = output_bitstream_ptr->buffer_av1;
3851
3852
481
    ObuType obu_type                        = show_existing ? OBU_FRAME_HEADER : OBU_FRAME;
3853
481
    int     n_log2_tiles                    = ppcs->av1_cm->log2_tile_rows + ppcs->av1_cm->log2_tile_cols;
3854
481
    int     tile_start_and_end_present_flag = 0;
3855
3856
    // Phase 1: Measure header sizes by writing to data (will be overwritten in phase 2).
3857
481
    uint32_t obu_header_size = write_obu_header(obu_type, 0, data);
3858
481
    uint32_t frame_hdr_size  = write_frame_header_obu(scs, ppcs, data + obu_header_size, show_existing, show_existing);
3859
481
    uint32_t tg_hdr_size     = write_tile_group_header(
3860
481
        data + obu_header_size + frame_hdr_size, 0, 0, n_log2_tiles, tile_start_and_end_present_flag);
3861
481
    uint32_t hdr_payload_size = frame_hdr_size + tg_hdr_size;
3862
3863
    // Compute tile data size (tile size prefixes + tile data).
3864
481
    uint32_t tile_data_size = 0;
3865
481
    if (!show_existing) {
3866
5.63k
        for (int tile_idx = 0; tile_idx < tile_cnt; tile_idx++) {
3867
5.15k
            tile_data_size += pcs->ec_info[tile_idx]->ec->ec_writer.pos;
3868
5.15k
            if (tile_idx != tile_cnt - 1 && tile_cnt > 1) {
3869
4.67k
                tile_data_size += pcs->tile_size_bytes_minus_1 + 1;
3870
4.67k
            }
3871
5.15k
        }
3872
481
    }
3873
3874
    // Compute exact OBU payload size and LEB128 field size.
3875
481
    uint32_t obu_payload_size  = hdr_payload_size + tile_data_size;
3876
481
    size_t   length_field_size = svt_aom_uleb_size_in_bytes(obu_payload_size);
3877
3878
    // Ensure buffer is large enough for the complete OBU.
3879
481
    uint32_t total_obu_size = obu_header_size + (uint32_t)length_field_size + obu_payload_size;
3880
481
    uint32_t buf_needed     = total_obu_size +
3881
481
        (uint32_t)(output_bitstream_ptr->buffer_av1 - output_bitstream_ptr->buffer_begin_av1);
3882
481
    if (output_bitstream_ptr->size < buf_needed) {
3883
0
        svt_realloc_output_bitstream_unit(output_bitstream_ptr, buf_needed + 1);
3884
0
        data = output_bitstream_ptr->buffer_av1;
3885
0
    }
3886
3887
    // Phase 2: Write everything at the correct offsets — no memmove needed.
3888
    // OBU header is already at data[0] from phase 1 (same content, same position).
3889
3890
    // LEB128 size field right after OBU header.
3891
481
    size_t coded_size;
3892
481
    svt_aom_uleb_encode(obu_payload_size, sizeof(obu_payload_size), data + obu_header_size, &coded_size);
3893
3894
    // Re-write frame header + tile group header at the correct offset (after LEB128).
3895
481
    uint32_t write_offset = obu_header_size + (uint32_t)length_field_size;
3896
481
    write_frame_header_obu(scs, ppcs, data + write_offset, show_existing, show_existing);
3897
481
    write_offset += frame_hdr_size;
3898
481
    write_tile_group_header(data + write_offset, 0, 0, n_log2_tiles, tile_start_and_end_present_flag);
3899
481
    write_offset += tg_hdr_size;
3900
3901
    // Copy tile data.
3902
481
    if (!show_existing) {
3903
5.63k
        for (int tile_idx = 0; tile_idx < tile_cnt; tile_idx++) {
3904
5.15k
            int32_t tile_size       = pcs->ec_info[tile_idx]->ec->ec_writer.pos;
3905
5.15k
            uint8_t tile_size_bytes = 0;
3906
5.15k
            if (tile_idx != tile_cnt - 1 && tile_cnt > 1) {
3907
4.67k
                tile_size_bytes = pcs->tile_size_bytes_minus_1 + 1;
3908
4.67k
                mem_put_varsize(data + write_offset, tile_size_bytes, tile_size - 1);
3909
4.67k
            }
3910
5.15k
            OutputBitstreamUnit* ec_output_bitstream_ptr =
3911
5.15k
                (OutputBitstreamUnit*)pcs->ec_info[tile_idx]->ec->ec_output_bitstream_ptr;
3912
5.15k
            svt_memcpy(data + write_offset + tile_size_bytes, ec_output_bitstream_ptr->buffer_begin_av1, tile_size);
3913
5.15k
            write_offset += (tile_size + tile_size_bytes);
3914
5.15k
        }
3915
481
    }
3916
3917
481
    data += total_obu_size;
3918
481
    output_bitstream_ptr->buffer_av1 = data;
3919
481
    return return_error;
3920
481
}
3921
3922
/**************************************************
3923
* svt_aom_encode_sps_av1
3924
**************************************************/
3925
481
EbErrorType svt_aom_encode_sps_av1(Bitstream* bitstream_ptr, SequenceControlSet* scs) {
3926
481
    EbErrorType          return_error             = EB_ErrorNone;
3927
481
    OutputBitstreamUnit* output_bitstream_ptr     = (OutputBitstreamUnit*)bitstream_ptr->output_bitstream_ptr;
3928
481
    uint8_t*             data                     = output_bitstream_ptr->buffer_av1;
3929
481
    const uint8_t        enhancement_layers_count = 0; // cm->enhancement_layers_count;
3930
3931
    // Phase 1: measure
3932
481
    uint32_t obu_header_size   = write_obu_header(OBU_SEQUENCE_HEADER, 0, data);
3933
481
    uint32_t obu_payload_size  = write_sequence_header_obu(scs, data + obu_header_size, enhancement_layers_count);
3934
481
    size_t   length_field_size = svt_aom_uleb_size_in_bytes(obu_payload_size);
3935
3936
    // Phase 2: write at correct offsets (re-write payload after LEB128)
3937
481
    size_t  coded_size;
3938
481
    int32_t ret = svt_aom_uleb_encode(obu_payload_size, sizeof(obu_payload_size), data + obu_header_size, &coded_size);
3939
481
    assert(ret == 0 && coded_size == length_field_size);
3940
481
    if (ret != 0 || coded_size != length_field_size) {
3941
0
        return EB_ErrorBadParameter;
3942
0
    }
3943
481
    write_sequence_header_obu(scs, data + obu_header_size + length_field_size, enhancement_layers_count);
3944
3945
481
    data += obu_header_size + length_field_size + obu_payload_size;
3946
481
    output_bitstream_ptr->buffer_av1 = data;
3947
481
    return return_error;
3948
481
}
3949
3950
/**************************************************
3951
* svt_aom_encode_td_av1
3952
**************************************************/
3953
481
EbErrorType svt_aom_encode_td_av1(uint8_t* output_bitstream_ptr) {
3954
481
    assert(output_bitstream_ptr != NULL);
3955
3956
    // move data and insert OBU_TD preceded by optional 4 byte size
3957
    // OBUs are preceded/succeeded by an unsigned leb128 coded integer.
3958
481
    write_uleb_obu_size(write_obu_header(OBU_TEMPORAL_DELIMITER, 0, output_bitstream_ptr), 0, output_bitstream_ptr);
3959
481
    return EB_ErrorNone;
3960
481
}
3961
3962
0
static void av1_write_delta_q_index(FRAME_CONTEXT* frame_context, int32_t delta_qindex, AomWriter* w) {
3963
0
    int32_t sign     = delta_qindex < 0;
3964
0
    int32_t abs      = sign ? -delta_qindex : delta_qindex;
3965
0
    int32_t smallval = abs < DELTA_Q_SMALL ? 1 : 0;
3966
    //FRAME_CONTEXT *ec_ctx = xd->tile_ctx;
3967
3968
0
    aom_write_symbol(w, AOMMIN(abs, DELTA_Q_SMALL), frame_context->delta_q_cdf, DELTA_Q_PROBS + 1);
3969
3970
0
    if (!smallval) {
3971
0
        int32_t rem_bits = svt_log2f(abs - 1);
3972
0
        int32_t thr      = (1 << rem_bits) + 1;
3973
0
        aom_write_literal(w, rem_bits - 1, 3);
3974
0
        aom_write_literal(w, abs - thr, rem_bits);
3975
0
    }
3976
0
    if (abs > 0) {
3977
0
        aom_write_bit(w, sign);
3978
0
    }
3979
0
}
3980
3981
static void write_cdef(SequenceControlSet* scs, PictureControlSet* pcs, EntropyCodingContext* ctx, AomWriter* w,
3982
157k
                       int32_t skip, int32_t mi_col, int32_t mi_row) {
3983
157k
    Av1Common*   cm      = pcs->ppcs->av1_cm;
3984
157k
    FrameHeader* frm_hdr = &pcs->ppcs->frm_hdr;
3985
3986
157k
    if (frm_hdr->coded_lossless || frm_hdr->allow_intrabc) {
3987
        // Initialize to indicate no CDEF for safety.
3988
151k
        frm_hdr->cdef_params.cdef_bits           = 0;
3989
151k
        frm_hdr->cdef_params.cdef_y_strength[0]  = 0;
3990
151k
        pcs->ppcs->nb_cdef_strengths             = 1;
3991
151k
        frm_hdr->cdef_params.cdef_uv_strength[0] = 0;
3992
151k
        return;
3993
151k
    }
3994
3995
6.56k
    const int32_t     m    = ~((1 << (6 - MI_SIZE_LOG2)) - 1);
3996
6.56k
    const MbModeInfo* mbmi = pcs->mi_grid_base[(mi_row & m) * cm->mi_stride + (mi_col & m)];
3997
3998
    // Initialise when at top left part of the superblock
3999
6.56k
    if (!(mi_row & (scs->seq_header.sb_mi_size - 1)) && !(mi_col & (scs->seq_header.sb_mi_size - 1))) { // Top left?
4000
3.43k
        ctx->cdef_transmitted[0] = ctx->cdef_transmitted[1] = ctx->cdef_transmitted[2] = ctx->cdef_transmitted[3] =
4001
3.43k
            false;
4002
3.43k
    }
4003
4004
    // Emit CDEF param at first non-skip coding block
4005
6.56k
    const int32_t mask  = 1 << (6 - MI_SIZE_LOG2);
4006
6.56k
    const int32_t index = scs->seq_header.sb_size == BLOCK_128X128 ? !!(mi_col & mask) + 2 * !!(mi_row & mask) : 0;
4007
4008
6.56k
    if (!ctx->cdef_transmitted[index] && !skip) {
4009
3.14k
        aom_write_literal(w, mbmi->cdef_strength, frm_hdr->cdef_params.cdef_bits);
4010
3.14k
        ctx->cdef_transmitted[index] = true;
4011
3.14k
    }
4012
6.56k
}
4013
4014
5.15k
void svt_av1_reset_loop_restoration(EntropyCodingContext* ctx) {
4015
20.6k
    for (int32_t p = 0; p < MAX_PLANES; ++p) {
4016
15.4k
        set_default_wiener(ctx->wiener_info + p);
4017
15.4k
        set_default_sgrproj(ctx->sgrproj_info + p);
4018
15.4k
    }
4019
5.15k
}
4020
4021
static void write_wiener_filter(int32_t wiener_win, const WienerInfo* wiener_info, WienerInfo* ref_wiener_info,
4022
0
                                AomWriter* wb) {
4023
0
    if (wiener_win == WIENER_WIN) {
4024
0
        svt_aom_write_primitive_refsubexpfin(wb,
4025
0
                                             WIENER_FILT_TAP0_MAXV - WIENER_FILT_TAP0_MINV + 1,
4026
0
                                             WIENER_FILT_TAP0_SUBEXP_K,
4027
0
                                             ref_wiener_info->vfilter[0] - WIENER_FILT_TAP0_MINV,
4028
0
                                             wiener_info->vfilter[0] - WIENER_FILT_TAP0_MINV);
4029
0
    } else {
4030
0
        assert(wiener_info->vfilter[0] == 0 && wiener_info->vfilter[WIENER_WIN - 1] == 0);
4031
0
    }
4032
0
    svt_aom_write_primitive_refsubexpfin(wb,
4033
0
                                         WIENER_FILT_TAP1_MAXV - WIENER_FILT_TAP1_MINV + 1,
4034
0
                                         WIENER_FILT_TAP1_SUBEXP_K,
4035
0
                                         ref_wiener_info->vfilter[1] - WIENER_FILT_TAP1_MINV,
4036
0
                                         wiener_info->vfilter[1] - WIENER_FILT_TAP1_MINV);
4037
0
    svt_aom_write_primitive_refsubexpfin(wb,
4038
0
                                         WIENER_FILT_TAP2_MAXV - WIENER_FILT_TAP2_MINV + 1,
4039
0
                                         WIENER_FILT_TAP2_SUBEXP_K,
4040
0
                                         ref_wiener_info->vfilter[2] - WIENER_FILT_TAP2_MINV,
4041
0
                                         wiener_info->vfilter[2] - WIENER_FILT_TAP2_MINV);
4042
0
    if (wiener_win == WIENER_WIN) {
4043
0
        svt_aom_write_primitive_refsubexpfin(wb,
4044
0
                                             WIENER_FILT_TAP0_MAXV - WIENER_FILT_TAP0_MINV + 1,
4045
0
                                             WIENER_FILT_TAP0_SUBEXP_K,
4046
0
                                             ref_wiener_info->hfilter[0] - WIENER_FILT_TAP0_MINV,
4047
0
                                             wiener_info->hfilter[0] - WIENER_FILT_TAP0_MINV);
4048
0
    } else {
4049
0
        assert(wiener_info->hfilter[0] == 0 && wiener_info->hfilter[WIENER_WIN - 1] == 0);
4050
0
    }
4051
0
    svt_aom_write_primitive_refsubexpfin(wb,
4052
0
                                         WIENER_FILT_TAP1_MAXV - WIENER_FILT_TAP1_MINV + 1,
4053
0
                                         WIENER_FILT_TAP1_SUBEXP_K,
4054
0
                                         ref_wiener_info->hfilter[1] - WIENER_FILT_TAP1_MINV,
4055
0
                                         wiener_info->hfilter[1] - WIENER_FILT_TAP1_MINV);
4056
0
    svt_aom_write_primitive_refsubexpfin(wb,
4057
0
                                         WIENER_FILT_TAP2_MAXV - WIENER_FILT_TAP2_MINV + 1,
4058
0
                                         WIENER_FILT_TAP2_SUBEXP_K,
4059
0
                                         ref_wiener_info->hfilter[2] - WIENER_FILT_TAP2_MINV,
4060
0
                                         wiener_info->hfilter[2] - WIENER_FILT_TAP2_MINV);
4061
0
    memcpy(ref_wiener_info, wiener_info, sizeof(*wiener_info));
4062
0
}
4063
4064
0
static void write_sgrproj_filter(const SgrprojInfo* sgrproj_info, SgrprojInfo* ref_sgrproj_info, AomWriter* wb) {
4065
0
    aom_write_literal(wb, sgrproj_info->ep, SGRPROJ_PARAMS_BITS);
4066
0
    const SgrParamsType* params = &svt_aom_eb_sgr_params[sgrproj_info->ep];
4067
4068
0
    if (params->r[0] == 0) {
4069
0
        assert(sgrproj_info->xqd[0] == 0);
4070
0
        svt_aom_write_primitive_refsubexpfin(wb,
4071
0
                                             SGRPROJ_PRJ_MAX1 - SGRPROJ_PRJ_MIN1 + 1,
4072
0
                                             SGRPROJ_PRJ_SUBEXP_K,
4073
0
                                             (uint16_t)(ref_sgrproj_info->xqd[1] - SGRPROJ_PRJ_MIN1),
4074
0
                                             (uint16_t)(sgrproj_info->xqd[1] - SGRPROJ_PRJ_MIN1));
4075
0
    } else if (params->r[1] == 0) {
4076
0
        svt_aom_write_primitive_refsubexpfin(wb,
4077
0
                                             SGRPROJ_PRJ_MAX0 - SGRPROJ_PRJ_MIN0 + 1,
4078
0
                                             SGRPROJ_PRJ_SUBEXP_K,
4079
0
                                             (uint16_t)(ref_sgrproj_info->xqd[0] - SGRPROJ_PRJ_MIN0),
4080
0
                                             (uint16_t)(sgrproj_info->xqd[0] - SGRPROJ_PRJ_MIN0));
4081
0
    } else {
4082
0
        svt_aom_write_primitive_refsubexpfin(wb,
4083
0
                                             SGRPROJ_PRJ_MAX0 - SGRPROJ_PRJ_MIN0 + 1,
4084
0
                                             SGRPROJ_PRJ_SUBEXP_K,
4085
0
                                             (uint16_t)(ref_sgrproj_info->xqd[0] - SGRPROJ_PRJ_MIN0),
4086
0
                                             (uint16_t)(sgrproj_info->xqd[0] - SGRPROJ_PRJ_MIN0));
4087
0
        svt_aom_write_primitive_refsubexpfin(wb,
4088
0
                                             SGRPROJ_PRJ_MAX1 - SGRPROJ_PRJ_MIN1 + 1,
4089
0
                                             SGRPROJ_PRJ_SUBEXP_K,
4090
0
                                             (uint16_t)(ref_sgrproj_info->xqd[1] - SGRPROJ_PRJ_MIN1),
4091
0
                                             (uint16_t)(sgrproj_info->xqd[1] - SGRPROJ_PRJ_MIN1));
4092
0
    }
4093
4094
0
    memcpy(ref_sgrproj_info, sgrproj_info, sizeof(*sgrproj_info));
4095
0
}
4096
4097
static void loop_restoration_write_sb_coeffs(PictureControlSet* pcs, FRAME_CONTEXT* frame_context,
4098
                                             EntropyCodingContext* ctx, const RestorationUnitInfo* rui,
4099
0
                                             AomWriter* const w, int32_t plane) {
4100
0
    const RestorationInfo* rsi         = pcs->rst_info + plane;
4101
0
    RestorationType        frame_rtype = rsi->frame_restoration_type;
4102
0
    if (frame_rtype == RESTORE_NONE) {
4103
0
        return;
4104
0
    }
4105
4106
0
    const int32_t   wiener_win   = (plane > 0) ? WIENER_WIN_CHROMA : WIENER_WIN;
4107
0
    WienerInfo*     wiener_info  = &ctx->wiener_info[plane];
4108
0
    SgrprojInfo*    sgrproj_info = &ctx->sgrproj_info[plane];
4109
0
    RestorationType unit_rtype   = rui->restoration_type;
4110
4111
0
    assert(unit_rtype < CDF_SIZE(RESTORE_SWITCHABLE_TYPES));
4112
4113
0
    if (frame_rtype == RESTORE_SWITCHABLE) {
4114
0
        aom_write_symbol(w,
4115
0
                         unit_rtype,
4116
0
                         /*xd->tile_ctx->*/ frame_context->switchable_restore_cdf,
4117
0
                         RESTORE_SWITCHABLE_TYPES);
4118
0
        switch (unit_rtype) {
4119
0
        case RESTORE_WIENER:
4120
0
            write_wiener_filter(wiener_win, &rui->wiener_info, wiener_info, w);
4121
            //SVT_LOG("POC:%i plane:%i v:%i %i %i  h:%i %i %i\n", piCSetPtr->picture_number, plane, rui->wiener_info.vfilter[0], rui->wiener_info.vfilter[1], rui->wiener_info.vfilter[2], rui->wiener_info.hfilter[0], rui->wiener_info.hfilter[1], rui->wiener_info.hfilter[2]);
4122
0
            break;
4123
0
        case RESTORE_SGRPROJ:
4124
0
            write_sgrproj_filter(&rui->sgrproj_info, sgrproj_info, w);
4125
            //SVT_LOG("POC:%i plane:%i ep:%i xqd_0:%i  xqd_1:%i\n", piCSetPtr->picture_number, plane, rui->sgrproj_info.ep, rui->sgrproj_info.xqd[0], rui->sgrproj_info.xqd[1]);
4126
0
            break;
4127
0
        default:
4128
0
            assert(unit_rtype == RESTORE_NONE); // SVT_LOG("POC:%i plane:%i OFF\n", piCSetPtr->picture_number, plane);
4129
0
            break;
4130
0
        }
4131
0
    } else if (frame_rtype == RESTORE_WIENER) {
4132
0
        aom_write_symbol(w,
4133
0
                         unit_rtype != RESTORE_NONE,
4134
0
                         /*xd->tile_ctx->*/ frame_context->wiener_restore_cdf,
4135
0
                         2);
4136
0
        if (unit_rtype != RESTORE_NONE) {
4137
0
            write_wiener_filter(wiener_win, &rui->wiener_info, wiener_info, w);
4138
            //SVT_LOG("POC:%i plane:%i v:%i %i %i  h:%i %i %i\n", piCSetPtr->picture_number, plane, rui->wiener_info.vfilter[0], rui->wiener_info.vfilter[1], rui->wiener_info.vfilter[2], rui->wiener_info.hfilter[0], rui->wiener_info.hfilter[1], rui->wiener_info.hfilter[2]);
4139
0
        }
4140
        //else
4141
        //SVT_LOG("POC:%i plane:%i OFF\n", piCSetPtr->picture_number, plane);
4142
0
    } else if (frame_rtype == RESTORE_SGRPROJ) {
4143
0
        aom_write_symbol(w,
4144
0
                         unit_rtype != RESTORE_NONE,
4145
0
                         /*xd->tile_ctx->*/ frame_context->sgrproj_restore_cdf,
4146
0
                         2);
4147
0
        if (unit_rtype != RESTORE_NONE) {
4148
0
            write_sgrproj_filter(&rui->sgrproj_info, sgrproj_info, w);
4149
            //SVT_LOG("POC:%i plane:%i ep:%i xqd_0:%i  xqd_1:%i\n", piCSetPtr->picture_number, plane, rui->sgrproj_info.ep, rui->sgrproj_info.xqd[0], rui->sgrproj_info.xqd[1]);
4150
0
        }
4151
        //else
4152
        //    SVT_LOG("POC:%i plane:%i OFF\n", piCSetPtr->picture_number, plane);
4153
0
    }
4154
0
}
4155
4156
static void ec_update_neighbors(PictureControlSet* pcs, EntropyCodingContext* ec_ctx, uint32_t blk_org_x,
4157
157k
                                uint32_t blk_org_y, uint16_t tile_idx, BlockSize bsize) {
4158
157k
    NeighborArrayUnit* partition_context_na        = pcs->partition_context_na[tile_idx];
4159
157k
    NeighborArrayUnit* luma_dc_sign_level_coeff_na = pcs->luma_dc_sign_level_coeff_na[tile_idx];
4160
157k
    NeighborArrayUnit* cr_dc_sign_level_coeff_na   = pcs->cr_dc_sign_level_coeff_na[tile_idx];
4161
157k
    NeighborArrayUnit* cb_dc_sign_level_coeff_na   = pcs->cb_dc_sign_level_coeff_na[tile_idx];
4162
157k
    MbModeInfo*        mbmi                        = get_mbmi(pcs, blk_org_x, blk_org_y);
4163
157k
    uint8_t            skip_coeff                  = mbmi->block_mi.skip;
4164
157k
    const int          bwidth                      = block_size_wide[bsize];
4165
157k
    const int          bheight                     = block_size_high[bsize];
4166
157k
    const bool         has_uv                      = is_chroma_reference(blk_org_y >> 2, blk_org_x >> 2, bsize, 1, 1);
4167
4168
    // Update the Leaf Depth Neighbor Array
4169
157k
    svt_aom_neighbor_array_unit_mode_write_pu(partition_context_na,
4170
157k
                                              (uint8_t*)&partition_context_lookup[bsize].above,
4171
157k
                                              blk_org_x,
4172
157k
                                              blk_org_y,
4173
157k
                                              bwidth,
4174
157k
                                              bheight,
4175
157k
                                              NEIGHBOR_ARRAY_UNIT_TOP_MASK);
4176
157k
    svt_aom_neighbor_array_unit_mode_write_pu(partition_context_na,
4177
157k
                                              (uint8_t*)&partition_context_lookup[bsize].left,
4178
157k
                                              blk_org_x,
4179
157k
                                              blk_org_y,
4180
157k
                                              bwidth,
4181
157k
                                              bheight,
4182
157k
                                              NEIGHBOR_ARRAY_UNIT_LEFT_MASK);
4183
157k
    if (skip_coeff) {
4184
151k
        uint8_t dc_sign_level_coeff = 0;
4185
4186
151k
        svt_aom_neighbor_array_unit_mode_write_pu(luma_dc_sign_level_coeff_na,
4187
151k
                                                  (uint8_t*)&dc_sign_level_coeff,
4188
151k
                                                  blk_org_x,
4189
151k
                                                  blk_org_y,
4190
151k
                                                  bwidth,
4191
151k
                                                  bheight,
4192
151k
                                                  NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
4193
4194
151k
        if (has_uv) {
4195
151k
            const BlockSize bsize_uv   = get_plane_block_size(bsize, 1, 1);
4196
151k
            const int       bwidth_uv  = block_size_wide[bsize_uv];
4197
151k
            const int       bheight_uv = block_size_high[bsize_uv];
4198
151k
            svt_aom_neighbor_array_unit_mode_write_pu(cb_dc_sign_level_coeff_na,
4199
151k
                                                      &dc_sign_level_coeff,
4200
151k
                                                      ((blk_org_x >> 3) << 3) >> 1,
4201
151k
                                                      ((blk_org_y >> 3) << 3) >> 1,
4202
151k
                                                      bwidth_uv,
4203
151k
                                                      bheight_uv,
4204
151k
                                                      NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
4205
151k
            svt_aom_neighbor_array_unit_mode_write_pu(cr_dc_sign_level_coeff_na,
4206
151k
                                                      &dc_sign_level_coeff,
4207
151k
                                                      ((blk_org_x >> 3) << 3) >> 1,
4208
151k
                                                      ((blk_org_y >> 3) << 3) >> 1,
4209
151k
                                                      bwidth_uv,
4210
151k
                                                      bheight_uv,
4211
151k
                                                      NEIGHBOR_ARRAY_UNIT_TOP_AND_LEFT_ONLY_MASK);
4212
151k
            ec_ctx->coded_area_sb_uv += bwidth_uv * bheight_uv;
4213
151k
        }
4214
151k
        ec_ctx->coded_area_sb += bwidth * bheight;
4215
151k
    }
4216
157k
}
4217
4218
472k
int svt_aom_allow_palette(int allow_screen_content_tools, BlockSize bsize) {
4219
    // Palette is off in RTC (CONFIG_ENABLE_PALETTE=0) -> const-folds to 0, DCE-ing the palette entropy write.
4220
472k
    return CONFIG_ENABLE_PALETTE && allow_screen_content_tools && block_size_wide[bsize] <= 64 &&
4221
0
        block_size_high[bsize] <= 64 && bsize >= BLOCK_8X8;
4222
472k
}
4223
4224
0
int svt_aom_get_palette_bsize_ctx(BlockSize bsize) {
4225
0
    return eb_num_pels_log2_lookup[bsize] - eb_num_pels_log2_lookup[BLOCK_8X8];
4226
0
}
4227
4228
void svt_av1_tokenize_color_map(FRAME_CONTEXT* frame_context, EcBlkStruct* blk_ptr, int plane, TOKENEXTRA** t,
4229
                                BlockSize bsize, TxSize tx_size, COLOR_MAP_TYPE type, int allow_update_cdf);
4230
void svt_aom_get_block_dimensions(BlockSize bsize, int plane, const MacroBlockD* xd, int* width, int* height,
4231
                                  int* rows_within_bounds, int* cols_within_bounds);
4232
int  svt_get_palette_cache_y(const MacroBlockD* const xd, uint16_t* cache);
4233
int  svt_av1_index_color_cache(const uint16_t* color_cache, int n_cache, const uint16_t* colors, int n_colors,
4234
                               uint8_t* cache_color_found, int* out_cache_colors);
4235
4236
0
int svt_aom_get_palette_mode_ctx(const MacroBlockD* xd) {
4237
0
    const MbModeInfo* const above_mi = xd->above_mbmi;
4238
0
    const MbModeInfo* const left_mi  = xd->left_mbmi;
4239
0
    int                     ctx      = 0;
4240
0
    if (above_mi) {
4241
0
        ctx += (above_mi->palette_mode_info.palette_size > 0);
4242
0
    }
4243
0
    if (left_mi) {
4244
0
        ctx += (left_mi->palette_mode_info.palette_size > 0);
4245
0
    }
4246
0
    return ctx;
4247
0
}
4248
4249
// Transmit color values with delta encoding. Write the first value as
4250
// literal, and the deltas between each value and the previous one. "min_val" is
4251
// the smallest possible value of the deltas.
4252
static AOM_INLINE void delta_encode_palette_colors(const int* colors, int num, int bit_depth, int min_val,
4253
0
                                                   AomWriter* w) {
4254
0
    if (num <= 0) {
4255
0
        return;
4256
0
    }
4257
0
    assert(colors[0] < (1 << bit_depth));
4258
0
    aom_write_literal(w, colors[0], bit_depth);
4259
0
    if (num == 1) {
4260
0
        return;
4261
0
    }
4262
0
    int max_delta = 0;
4263
0
    int deltas[PALETTE_MAX_SIZE];
4264
0
    memset(deltas, 0, sizeof(deltas));
4265
0
    for (int i = 1; i < num; ++i) {
4266
0
        assert(colors[i] < (1 << bit_depth));
4267
0
        const int delta = colors[i] - colors[i - 1];
4268
0
        deltas[i - 1]   = delta;
4269
0
        assert(delta >= min_val);
4270
0
        if (delta > max_delta) {
4271
0
            max_delta = delta;
4272
0
        }
4273
0
    }
4274
0
    const int min_bits = bit_depth - 3;
4275
0
    int       bits     = AOMMAX(av1_ceil_log2(max_delta + 1 - min_val), min_bits);
4276
0
    assert(bits <= bit_depth);
4277
0
    int range = (1 << bit_depth) - colors[0] - min_val;
4278
0
    aom_write_literal(w, bits - min_bits, 2);
4279
0
    for (int i = 0; i < num - 1; ++i) {
4280
0
        aom_write_literal(w, deltas[i] - min_val, bits);
4281
0
        range -= deltas[i];
4282
0
        bits = AOMMIN(bits, av1_ceil_log2(range));
4283
0
    }
4284
0
}
4285
4286
0
static INLINE int get_unsigned_bits(unsigned int num_values) {
4287
0
    return num_values > 0 ? get_msb(num_values) + 1 : 0;
4288
0
}
4289
4290
0
static INLINE void write_uniform(AomWriter* w, int n, int v) {
4291
0
    const int l = get_unsigned_bits(n);
4292
0
    const int m = (1 << l) - n;
4293
0
    if (l == 0) {
4294
0
        return;
4295
0
    }
4296
0
    if (v < m) {
4297
0
        aom_write_literal(w, v, l - 1);
4298
0
    } else {
4299
0
        aom_write_literal(w, m + ((v - m) >> 1), l - 1);
4300
0
        aom_write_literal(w, (v - m) & 1, 1);
4301
0
    }
4302
0
}
4303
4304
0
int svt_aom_write_uniform_cost(int n, int v) {
4305
0
    const int l = get_unsigned_bits(n);
4306
0
    const int m = (1 << l) - n;
4307
0
    if (l == 0) {
4308
0
        return 0;
4309
0
    }
4310
0
    if (v < m) {
4311
0
        return av1_cost_literal(l - 1);
4312
0
    } else {
4313
0
        return av1_cost_literal(l);
4314
0
    }
4315
0
}
4316
4317
// Transmit luma palette color values. First signal if each color in the color
4318
// cache is used. Those colors that are not in the cache are transmitted with
4319
// delta encoding.
4320
static AOM_INLINE void write_palette_colors_y(const MacroBlockD* const xd, const PaletteModeInfo* const pmi,
4321
0
                                              int bit_depth, AomWriter* w, const int palette_size) {
4322
0
    const int n = palette_size;
4323
0
    uint16_t  color_cache[2 * PALETTE_MAX_SIZE];
4324
0
    const int n_cache = svt_get_palette_cache_y(xd, color_cache);
4325
0
    int       out_cache_colors[PALETTE_MAX_SIZE];
4326
0
    uint8_t   cache_color_found[2 * PALETTE_MAX_SIZE];
4327
0
    const int n_out_cache = svt_av1_index_color_cache(
4328
0
        color_cache, n_cache, pmi->palette_colors, n, cache_color_found, out_cache_colors);
4329
0
    int n_in_cache = 0;
4330
0
    for (int i = 0; i < n_cache && n_in_cache < n; ++i) {
4331
0
        const int found = cache_color_found[i];
4332
0
        aom_write_bit(w, found);
4333
0
        n_in_cache += found;
4334
0
    }
4335
0
    assert(n_in_cache + n_out_cache == n);
4336
0
    delta_encode_palette_colors(out_cache_colors, n_out_cache, bit_depth, 1, w);
4337
0
}
4338
4339
0
static inline void pack_map_tokens(AomWriter* w, const TOKENEXTRA** tp, int n, int num) {
4340
0
    const TOKENEXTRA* p = *tp;
4341
0
    write_uniform(w, n, p->token); // The first color index.
4342
0
    ++p;
4343
0
    --num;
4344
0
    for (int i = 0; i < num; ++i) {
4345
0
        aom_write_symbol(w, p->token, p->color_map_cdf, n);
4346
0
        ++p;
4347
0
    }
4348
0
    *tp = p;
4349
0
}
4350
4351
static void write_palette_mode_info(PictureParentControlSet* ppcs, FRAME_CONTEXT* ec_ctx, MbModeInfo* mbmi,
4352
0
                                    EcBlkStruct* blk_ptr, BlockSize bsize, int mi_row, int mi_col, AomWriter* w) {
4353
0
    const uint32_t intra_luma_mode   = mbmi->block_mi.mode;
4354
0
    uint32_t       intra_chroma_mode = mbmi->block_mi.uv_mode;
4355
4356
0
    const PaletteModeInfo* const pmi       = &blk_ptr->palette_info->pmi;
4357
0
    const int                    bsize_ctx = svt_aom_get_palette_bsize_ctx(bsize);
4358
0
    assert(bsize_ctx >= 0);
4359
0
    if (intra_luma_mode == DC_PRED) {
4360
0
        const int n                  = blk_ptr->palette_size[0];
4361
0
        const int palette_y_mode_ctx = svt_aom_get_palette_mode_ctx(blk_ptr->av1xd);
4362
0
        aom_write_symbol(w, n > 0, ec_ctx->palette_y_mode_cdf[bsize_ctx][palette_y_mode_ctx], 2);
4363
0
        if (n > 0) {
4364
0
            aom_write_symbol(w, n - PALETTE_MIN_SIZE, ec_ctx->palette_y_size_cdf[bsize_ctx], PALETTE_SIZES);
4365
0
            write_palette_colors_y(blk_ptr->av1xd, pmi, ppcs->scs->static_config.encoder_bit_depth, w, n);
4366
0
        }
4367
0
    }
4368
4369
0
    const int uv_dc_pred = intra_chroma_mode == UV_DC_PRED && is_chroma_reference(mi_row, mi_col, bsize, 1, 1);
4370
0
    if (uv_dc_pred) {
4371
0
        assert(blk_ptr->palette_size[1] == 0); //remove when chroma is on
4372
0
        const int palette_uv_mode_ctx = (blk_ptr->palette_size[0] > 0);
4373
0
        aom_write_symbol(w, 0, ec_ctx->palette_uv_mode_cdf[palette_uv_mode_ctx], 2);
4374
0
    }
4375
0
}
4376
4377
0
void svt_av1_encode_dv(AomWriter* w, const Mv mv, const Mv ref, NmvContext* mvctx) {
4378
    // DV and ref DV should not have sub-pel.
4379
0
    assert((mv.x & 7) == 0);
4380
0
    assert((mv.y & 7) == 0);
4381
0
    assert((ref.x & 7) == 0);
4382
0
    assert((ref.y & 7) == 0);
4383
    // The y-component (row component) of the MV is coded first
4384
0
    const Mv          diff = {{mv.x - ref.x, mv.y - ref.y}};
4385
0
    const MvJointType j    = svt_av1_get_mv_joint(diff);
4386
4387
0
    aom_write_symbol(w, j, mvctx->joints_cdf, MV_JOINTS);
4388
0
    if (mv_joint_vertical(j)) {
4389
0
        encode_mv_component(w, diff.y, &mvctx->comps[0], MV_SUBPEL_NONE);
4390
0
    }
4391
4392
0
    if (mv_joint_horizontal(j)) {
4393
0
        encode_mv_component(w, diff.x, &mvctx->comps[1], MV_SUBPEL_NONE);
4394
0
    }
4395
0
}
4396
4397
472k
int svt_aom_allow_intrabc(const FrameHeader* frm_hdr, SliceType slice_type) {
4398
472k
    return (slice_type == I_SLICE && frm_hdr->allow_screen_content_tools && frm_hdr->allow_intrabc);
4399
472k
}
4400
4401
0
static void write_intrabc_info(FRAME_CONTEXT* ec_ctx, MbModeInfo* mbmi, EcBlkStruct* blk_ptr, AomWriter* w) {
4402
0
    int use_intrabc = mbmi->block_mi.use_intrabc;
4403
0
    aom_write_symbol(w, use_intrabc, ec_ctx->intrabc_cdf, 2);
4404
0
    if (use_intrabc) {
4405
        //assert(mbmi->mode == DC_PRED);
4406
        //assert(mbmi->uv_mode == UV_DC_PRED);
4407
        //assert(mbmi->motion_mode == SIMPLE_TRANSLATION);
4408
0
        Mv dv_ref = blk_ptr->predmv[0];
4409
0
        Mv mv     = mbmi->block_mi.mv[INTRA_FRAME];
4410
0
        svt_av1_encode_dv(w, mv, dv_ref, &ec_ctx->ndvc);
4411
0
    }
4412
0
}
4413
4414
164k
static INLINE int block_signals_txsize(BlockSize bsize) {
4415
164k
    return bsize > BLOCK_4X4;
4416
164k
}
4417
4418
0
static INLINE int get_vartx_max_txsize(/*const MbModeInfo *xd,*/ BlockSize bsize, int plane) {
4419
    /* if (xd->lossless[xd->mi[0]->segment_id]) return TX_4X4;*/
4420
0
    const TxSize max_txsize = blocksize_to_txsize[bsize];
4421
0
    if (plane == 0) {
4422
0
        return max_txsize; // luma
4423
0
    }
4424
0
    return av1_get_adjusted_tx_size(max_txsize); // chroma
4425
0
}
4426
4427
0
static INLINE int max_block_wide(const MacroBlockD* xd, BlockSize bsize, int plane) {
4428
0
    int max_blocks_wide = block_size_wide[bsize];
4429
4430
0
    if (xd->mb_to_right_edge < 0) {
4431
0
        max_blocks_wide += xd->mb_to_right_edge >> (3 + !!plane);
4432
0
    }
4433
4434
    // Scale the width in the transform block unit.
4435
0
    return max_blocks_wide >> tx_size_wide_log2[0];
4436
0
}
4437
4438
0
static INLINE int max_block_high(const MacroBlockD* xd, BlockSize bsize, int plane) {
4439
0
    int max_blocks_high = block_size_high[bsize];
4440
4441
0
    if (xd->mb_to_bottom_edge < 0) {
4442
0
        max_blocks_high += xd->mb_to_bottom_edge >> (3 + !!plane);
4443
0
    }
4444
4445
    // Scale the height in the transform block unit.
4446
0
    return max_blocks_high >> tx_size_high_log2[0];
4447
0
}
4448
4449
static INLINE void txfm_partition_update(TXFM_CONTEXT* above_ctx, TXFM_CONTEXT* left_ctx, TxSize tx_size,
4450
0
                                         TxSize txb_size) {
4451
0
    BlockSize bsize = txsize_to_bsize[txb_size];
4452
0
    assert(bsize < BLOCK_SIZES_ALL);
4453
0
    int     bh  = mi_size_high[bsize];
4454
0
    int     bw  = mi_size_wide[bsize];
4455
0
    uint8_t txw = tx_size_wide[tx_size];
4456
0
    uint8_t txh = tx_size_high[tx_size];
4457
0
    int     i;
4458
0
    for (i = 0; i < bh; ++i) {
4459
0
        left_ctx[i] = txh;
4460
0
    }
4461
0
    for (i = 0; i < bw; ++i) {
4462
0
        above_ctx[i] = txw;
4463
0
    }
4464
0
}
4465
4466
0
static INLINE TxSize get_sqr_tx_size(int tx_dim) {
4467
0
    switch (tx_dim) {
4468
0
    case 128:
4469
0
    case 64:
4470
0
        return TX_64X64;
4471
0
        break;
4472
0
    case 32:
4473
0
        return TX_32X32;
4474
0
        break;
4475
0
    case 16:
4476
0
        return TX_16X16;
4477
0
        break;
4478
0
    case 8:
4479
0
        return TX_8X8;
4480
0
        break;
4481
0
    default:
4482
0
        return TX_4X4;
4483
0
    }
4484
0
}
4485
4486
static INLINE int txfm_partition_context(TXFM_CONTEXT* above_ctx, TXFM_CONTEXT* left_ctx, BlockSize bsize,
4487
0
                                         TxSize tx_size) {
4488
0
    const uint8_t txw      = tx_size_wide[tx_size];
4489
0
    const uint8_t txh      = tx_size_high[tx_size];
4490
0
    const int     above    = *above_ctx < txw;
4491
0
    const int     left     = *left_ctx < txh;
4492
0
    int           category = TXFM_PARTITION_CONTEXTS;
4493
4494
    // dummy return, not used by others.
4495
0
    if (tx_size == TX_4X4) {
4496
0
        return 0;
4497
0
    }
4498
4499
0
    TxSize max_tx_size = get_sqr_tx_size(AOMMAX(block_size_wide[bsize], block_size_high[bsize]));
4500
4501
0
    if (max_tx_size >= TX_8X8) {
4502
0
        category = (txsize_sqr_up_map[tx_size] != max_tx_size && max_tx_size > TX_8X8) +
4503
0
            (TX_SIZES - 1 - max_tx_size) * 2;
4504
0
    }
4505
0
    assert(category != TXFM_PARTITION_CONTEXTS);
4506
0
    return category * 3 + above + left;
4507
0
}
4508
4509
static void write_tx_size_vartx(MacroBlockD* xd, const MbModeInfo* mbmi, TxSize tx_size, int depth, int blk_row,
4510
0
                                int blk_col, FRAME_CONTEXT* ec_ctx, AomWriter* w) {
4511
0
    const int max_blocks_high = max_block_high(xd, mbmi->bsize, 0);
4512
0
    const int max_blocks_wide = max_block_wide(xd, mbmi->bsize, 0);
4513
4514
0
    if (blk_row >= max_blocks_high || blk_col >= max_blocks_wide) {
4515
0
        return;
4516
0
    }
4517
4518
0
    if (depth == MAX_VARTX_DEPTH) {
4519
0
        txfm_partition_update(xd->above_txfm_context + blk_col, xd->left_txfm_context + blk_row, tx_size, tx_size);
4520
0
        return;
4521
0
    }
4522
4523
0
    const int ctx = txfm_partition_context(
4524
0
        xd->above_txfm_context + blk_col, xd->left_txfm_context + blk_row, mbmi->bsize, tx_size);
4525
0
    const int write_txfm_partition = (tx_size == tx_depth_to_tx_size[mbmi->block_mi.tx_depth][mbmi->bsize]);
4526
4527
0
    if (write_txfm_partition) {
4528
0
        aom_write_symbol(w, 0, ec_ctx->txfm_partition_cdf[ctx], 2);
4529
4530
0
        txfm_partition_update(xd->above_txfm_context + blk_col, xd->left_txfm_context + blk_row, tx_size, tx_size);
4531
0
    } else {
4532
0
        ASSERT(tx_size < TX_SIZES_ALL);
4533
0
        const TxSize sub_txs = eb_sub_tx_size_map[tx_size];
4534
0
        const int    bsw     = eb_tx_size_wide_unit[sub_txs];
4535
0
        const int    bsh     = eb_tx_size_high_unit[sub_txs];
4536
4537
0
        aom_write_symbol(w, 1, ec_ctx->txfm_partition_cdf[ctx], 2);
4538
4539
0
        if (sub_txs == TX_4X4) {
4540
0
            txfm_partition_update(xd->above_txfm_context + blk_col, xd->left_txfm_context + blk_row, sub_txs, tx_size);
4541
0
            return;
4542
0
        }
4543
4544
0
        assert(bsw > 0 && bsh > 0);
4545
0
        for (int row = 0; row < eb_tx_size_high_unit[tx_size]; row += bsh) {
4546
0
            for (int col = 0; col < eb_tx_size_wide_unit[tx_size]; col += bsw) {
4547
0
                int offsetr = blk_row + row;
4548
0
                int offsetc = blk_col + col;
4549
0
                write_tx_size_vartx(xd, mbmi, sub_txs, depth + 1, offsetr, offsetc, ec_ctx, w);
4550
0
            }
4551
0
        }
4552
0
    }
4553
0
}
4554
4555
315k
static INLINE void set_txfm_ctx(TXFM_CONTEXT* txfm_ctx, uint8_t txs, int len) {
4556
315k
    int i;
4557
1.02M
    for (i = 0; i < len; ++i) {
4558
712k
        txfm_ctx[i] = txs;
4559
712k
    }
4560
315k
}
4561
4562
157k
static INLINE void set_txfm_ctxs(TxSize tx_size, int n8_w, int n8_h, int skip, const MacroBlockD* xd) {
4563
157k
    uint8_t bw = tx_size_wide[tx_size];
4564
157k
    uint8_t bh = tx_size_high[tx_size];
4565
4566
157k
    if (skip) {
4567
0
        bw = n8_w * MI_SIZE;
4568
0
        bh = n8_h * MI_SIZE;
4569
0
    }
4570
4571
157k
    set_txfm_ctx(xd->above_txfm_context, bw, n8_w);
4572
157k
    set_txfm_ctx(xd->left_txfm_context, bh, n8_h);
4573
157k
}
4574
4575
6.56k
static INLINE int tx_size_to_depth(TxSize tx_size, BlockSize bsize) {
4576
6.56k
    TxSize ctx_size = blocksize_to_txsize[bsize];
4577
6.56k
    int    depth    = 0;
4578
6.56k
    while (tx_size != ctx_size) {
4579
0
        depth++;
4580
0
        ctx_size = eb_sub_tx_size_map[ctx_size];
4581
0
        assert(depth <= MAX_TX_DEPTH);
4582
0
    }
4583
6.56k
    return depth;
4584
6.56k
}
4585
4586
// Returns a context number for the given MB prediction signal
4587
// The mode info data structure has a one element border above and to the
4588
// left of the entries corresponding to real blocks.
4589
// The prediction flags in these dummy entries are initialized to 0.
4590
6.56k
static INLINE int get_tx_size_context(const MacroBlockD* xd) {
4591
6.56k
    const MbModeInfo*       mbmi        = xd->mi[0];
4592
6.56k
    const MbModeInfo* const above_mbmi  = xd->above_mbmi;
4593
6.56k
    const MbModeInfo* const left_mbmi   = xd->left_mbmi;
4594
6.56k
    const TxSize            max_tx_size = blocksize_to_txsize[mbmi->bsize];
4595
6.56k
    const int               max_tx_wide = tx_size_wide[max_tx_size];
4596
6.56k
    const int               max_tx_high = tx_size_high[max_tx_size];
4597
6.56k
    const int               has_above   = xd->up_available;
4598
6.56k
    const int               has_left    = xd->left_available;
4599
4600
6.56k
    int above = xd->above_txfm_context[0] >= max_tx_wide;
4601
6.56k
    int left  = xd->left_txfm_context[0] >= max_tx_high;
4602
4603
6.56k
    if (has_above) {
4604
2.02k
        if (is_inter_block(&above_mbmi->block_mi)) {
4605
0
            above = block_size_wide[above_mbmi->bsize] >= max_tx_wide;
4606
0
        }
4607
2.02k
    }
4608
4609
6.56k
    if (has_left) {
4610
1.93k
        if (is_inter_block(&left_mbmi->block_mi)) {
4611
0
            left = block_size_high[left_mbmi->bsize] >= max_tx_high;
4612
0
        }
4613
1.93k
    }
4614
4615
6.56k
    if (has_above && has_left) {
4616
148
        return (above + left);
4617
6.42k
    } else if (has_above) {
4618
1.87k
        return above;
4619
4.54k
    } else if (has_left) {
4620
1.78k
        return left;
4621
2.75k
    } else {
4622
2.75k
        return 0;
4623
2.75k
    }
4624
6.56k
}
4625
4626
6.56k
static void write_selected_tx_size(const MacroBlockD* xd, FRAME_CONTEXT* ec_ctx, AomWriter* w, TxSize tx_size) {
4627
6.56k
    const MbModeInfo* const mbmi  = xd->mi[0];
4628
6.56k
    const BlockSize         bsize = mbmi->bsize;
4629
4630
6.56k
    if (block_signals_txsize(bsize)) {
4631
6.56k
        const int tx_size_ctx = get_tx_size_context(xd);
4632
6.56k
        assert(bsize < BLOCK_SIZES_ALL);
4633
6.56k
        const int     depth       = tx_size_to_depth(tx_size, bsize);
4634
6.56k
        const int     max_depths  = bsize_to_max_depth(bsize);
4635
6.56k
        const int32_t tx_size_cat = bsize_to_tx_size_cat(bsize);
4636
4637
6.56k
        assert(depth >= 0 && depth <= max_depths);
4638
6.56k
        assert(!is_inter_block(&mbmi->block_mi));
4639
6.56k
        assert(IMPLIES(is_rect_tx(tx_size), is_rect_tx_allowed(/*xd,*/ mbmi)));
4640
4641
6.56k
        aom_write_symbol(w, depth, ec_ctx->tx_size_cdf[tx_size_cat][tx_size_ctx], max_depths + 1);
4642
6.56k
    }
4643
6.56k
}
4644
4645
static EbErrorType av1_code_tx_size(PictureControlSet* pcs, int segment_id, FRAME_CONTEXT* ec_ctx, AomWriter* w,
4646
                                    MacroBlockD* xd, const MbModeInfo* mbmi, TxSize tx_size, TxMode tx_mode,
4647
157k
                                    BlockSize bsize, uint8_t skip) {
4648
157k
    EbErrorType return_error = EB_ErrorNone;
4649
157k
    int         is_inter_tx  = is_inter_block(&mbmi->block_mi);
4650
    //int skip = mbmi->skip;
4651
    //int segment_id = 0;// mbmi->segment_id;
4652
157k
    if (tx_mode == TX_MODE_SELECT && block_signals_txsize(bsize) && !(is_inter_tx && skip) &&
4653
157k
        !svt_av1_is_lossless_segment(pcs, segment_id)) {
4654
6.56k
        if (is_inter_tx) { // This implies skip flag is 0.
4655
0
            const TxSize max_tx_size = get_vartx_max_txsize(/*xd,*/ bsize, 0);
4656
0
            const int    txbh        = eb_tx_size_high_unit[max_tx_size];
4657
0
            const int    txbw        = eb_tx_size_wide_unit[max_tx_size];
4658
0
            const int    width       = block_size_wide[bsize] >> tx_size_wide_log2[0];
4659
0
            const int    height      = block_size_high[bsize] >> tx_size_high_log2[0];
4660
0
            int          idx, idy;
4661
0
            for (idy = 0; idy < height; idy += txbh) {
4662
0
                for (idx = 0; idx < width; idx += txbw) {
4663
0
                    write_tx_size_vartx(xd, mbmi, max_tx_size, 0, idy, idx, ec_ctx, w);
4664
0
                }
4665
0
            }
4666
6.56k
        } else {
4667
6.56k
            write_selected_tx_size(xd, ec_ctx, w, tx_size);
4668
6.56k
            set_txfm_ctxs(tx_size, xd->n8_w, xd->n8_h, 0, xd);
4669
6.56k
        }
4670
151k
    } else {
4671
151k
        set_txfm_ctxs(tx_size, xd->n8_w, xd->n8_h, skip && is_inter_tx, xd);
4672
151k
    }
4673
4674
157k
    return return_error;
4675
157k
}
4676
4677
void set_mi_row_col(PictureControlSet* pcs, MacroBlockD* xd, TileInfo* tile, int mi_row, int bh, int mi_col, int bw,
4678
157k
                    uint32_t mi_stride, int mi_rows, int mi_cols) {
4679
157k
    xd->mb_to_top_edge    = -((mi_row * MI_SIZE) * 8);
4680
157k
    xd->mb_to_bottom_edge = ((mi_rows - bh - mi_row) * MI_SIZE) * 8;
4681
157k
    xd->mb_to_left_edge   = -((mi_col * MI_SIZE) * 8);
4682
157k
    xd->mb_to_right_edge  = ((mi_cols - bw - mi_col) * MI_SIZE) * 8;
4683
4684
157k
    xd->mi_stride = mi_stride;
4685
4686
    // Are edges available for intra prediction?
4687
157k
    xd->up_available     = (mi_row > tile->mi_row_start);
4688
157k
    xd->left_available   = (mi_col > tile->mi_col_start);
4689
157k
    const int32_t offset = mi_row * mi_stride + mi_col;
4690
157k
    xd->mi               = pcs->mi_grid_base + offset;
4691
4692
157k
    if (xd->up_available) {
4693
134k
        xd->above_mbmi = xd->mi[-xd->mi_stride];
4694
134k
    } else {
4695
23.7k
        xd->above_mbmi = NULL;
4696
23.7k
    }
4697
4698
157k
    if (xd->left_available) {
4699
134k
        xd->left_mbmi = xd->mi[-1];
4700
134k
    } else {
4701
23.3k
        xd->left_mbmi = NULL;
4702
23.3k
    }
4703
4704
157k
    xd->n8_h        = bh;
4705
157k
    xd->n8_w        = bw;
4706
157k
    xd->is_sec_rect = 0;
4707
157k
    if (xd->n8_w < xd->n8_h) {
4708
        // Only mark is_sec_rect as 1 for the last block.
4709
        // For PARTITION_VERT_4, it would be (0, 0, 0, 1);
4710
        // For other partitions, it would be (0, 1).
4711
0
        if (!((mi_col + xd->n8_w) & (xd->n8_h - 1))) {
4712
0
            xd->is_sec_rect = 1;
4713
0
        }
4714
0
    }
4715
4716
157k
    if (xd->n8_w > xd->n8_h) {
4717
0
        if (mi_row & (xd->n8_w - 1)) {
4718
0
            xd->is_sec_rect = 1;
4719
0
        }
4720
0
    }
4721
157k
}
4722
4723
static INLINE int svt_aom_get_segment_id(Av1Common* cm, const uint8_t* segment_ids, BlockSize bsize, int mi_row,
4724
0
                                         int mi_col) {
4725
0
    const int mi_offset = mi_row * cm->mi_cols + mi_col;
4726
0
    const int bw        = mi_size_wide[bsize];
4727
0
    const int bh        = mi_size_high[bsize];
4728
0
    const int xmis      = AOMMIN(cm->mi_cols - mi_col, bw);
4729
0
    const int ymis      = AOMMIN(cm->mi_rows - mi_row, bh);
4730
0
    int       x, y, segment_id = MAX_SEGMENTS;
4731
4732
0
    for (y = 0; y < ymis; ++y) {
4733
0
        for (x = 0; x < xmis; ++x) {
4734
0
            segment_id = AOMMIN(segment_id, segment_ids[mi_offset + y * cm->mi_cols + x]);
4735
0
        }
4736
0
    }
4737
4738
0
    assert(segment_id >= 0 && segment_id < MAX_SEGMENTS);
4739
0
    return segment_id;
4740
0
}
4741
4742
static void code_tx_size(PictureControlSet* pcs, uint32_t blk_org_x, uint32_t blk_org_y, EcBlkStruct* blk_ptr,
4743
                         const BlockSize bsize, NeighborArrayUnit* txfm_context_array, FRAME_CONTEXT* ec_ctx,
4744
157k
                         AomWriter* w, uint8_t skip) {
4745
157k
    TxMode       tx_mode = pcs->ppcs->frm_hdr.tx_mode;
4746
157k
    Av1Common*   cm      = pcs->ppcs->av1_cm;
4747
157k
    MacroBlockD* xd      = blk_ptr->av1xd;
4748
    // xd fields (mi, up_available, left_available, etc.) are already set by
4749
    // the caller (write_modes_b) via set_mi_row_col — no need to redo.
4750
4751
157k
    const MbModeInfo* const mbmi              = xd->mi[0];
4752
157k
    xd->above_txfm_context                    = (TXFM_CONTEXT*)svt_aom_na_top_ptr_pu(txfm_context_array, blk_org_x);
4753
157k
    xd->left_txfm_context                     = (TXFM_CONTEXT*)svt_aom_na_left_ptr_pu(txfm_context_array, blk_org_y);
4754
157k
    const TxSize             tx_size          = tx_depth_to_tx_size[mbmi->block_mi.tx_depth][bsize];
4755
157k
    FrameHeader*             frm_hdr          = &pcs->ppcs->frm_hdr;
4756
157k
    SegmentationNeighborMap* segmentation_map = pcs->segmentation_neighbor_map;
4757
157k
    int32_t                  mi_row           = blk_org_y >> MI_SIZE_LOG2;
4758
157k
    int32_t                  mi_col           = blk_org_x >> MI_SIZE_LOG2;
4759
157k
    av1_code_tx_size(pcs,
4760
157k
                     frm_hdr->segmentation_params.segmentation_enabled
4761
157k
                         ? svt_aom_get_segment_id(cm, segmentation_map->data, BLOCK_4X4, mi_row, mi_col)
4762
157k
                         : 0,
4763
157k
                     ec_ctx,
4764
157k
                     w,
4765
157k
                     xd,
4766
157k
                     mbmi,
4767
157k
                     tx_size,
4768
157k
                     tx_mode,
4769
157k
                     bsize,
4770
157k
                     skip);
4771
157k
}
4772
4773
int svt_av1_get_spatial_seg_prediction(PictureControlSet* pcs, MacroBlockD* xd, uint32_t blk_org_x, uint32_t blk_org_y,
4774
0
                                       int* cdf_index) {
4775
0
    int prev_ul = -1; // top left segment_id
4776
0
    int prev_l  = -1; // left segment_id
4777
0
    int prev_u  = -1; // top segment_id
4778
4779
0
    uint32_t                 mi_col           = blk_org_x >> MI_SIZE_LOG2;
4780
0
    uint32_t                 mi_row           = blk_org_y >> MI_SIZE_LOG2;
4781
0
    bool                     left_available   = xd->left_available;
4782
0
    bool                     up_available     = xd->up_available;
4783
0
    Av1Common*               cm               = pcs->ppcs->av1_cm;
4784
0
    SegmentationNeighborMap* segmentation_map = pcs->segmentation_neighbor_map;
4785
4786
    //    SVT_LOG("Left available = %d, Up Available = %d ", left_available, up_available);
4787
4788
0
    if ((up_available) && (left_available)) {
4789
0
        prev_ul = svt_aom_get_segment_id(cm, segmentation_map->data, BLOCK_4X4, mi_row - 1, mi_col - 1);
4790
0
    }
4791
4792
0
    if (up_available) {
4793
0
        prev_u = svt_aom_get_segment_id(cm, segmentation_map->data, BLOCK_4X4, mi_row - 1, mi_col - 0);
4794
0
    }
4795
4796
0
    if (left_available) {
4797
0
        prev_l = svt_aom_get_segment_id(cm, segmentation_map->data, BLOCK_4X4, mi_row - 0, mi_col - 1);
4798
0
    }
4799
4800
    // Pick CDF index based on number of matching/out-of-bounds segment IDs.
4801
0
    if (prev_ul < 0 || prev_u < 0 || prev_l < 0) { /* Edge case */
4802
0
        *cdf_index = 0;
4803
0
    } else if ((prev_ul == prev_u) && (prev_ul == prev_l)) {
4804
0
        *cdf_index = 2;
4805
0
    } else if ((prev_ul == prev_u) || (prev_ul == prev_l) || (prev_u == prev_l)) {
4806
0
        *cdf_index = 1;
4807
0
    } else {
4808
0
        *cdf_index = 0;
4809
0
    }
4810
4811
    // If 2 or more are identical returns that as predictor, otherwise prev_l.
4812
0
    if (prev_u == -1) { // edge case
4813
0
        return prev_l == -1 ? 0 : prev_l;
4814
0
    }
4815
0
    if (prev_l == -1) { // edge case
4816
0
        return prev_u;
4817
0
    }
4818
0
    return (prev_ul == prev_u) ? prev_u : prev_l;
4819
0
}
4820
4821
0
int svt_av1_neg_interleave(int x, int ref, int max) {
4822
0
    assert(x < max);
4823
0
    const int diff = x - ref;
4824
0
    if (!ref) {
4825
0
        return x;
4826
0
    }
4827
0
    if (ref >= (max - 1)) {
4828
0
        return -x + max - 1;
4829
0
    }
4830
0
    if (2 * ref < max) {
4831
0
        if (abs(diff) <= ref) {
4832
0
            return diff > 0 ? (diff << 1) - 1 : ((-diff) << 1);
4833
0
        }
4834
0
        return x;
4835
0
    } else {
4836
0
        if (abs(diff) < (max - ref)) {
4837
0
            return diff > 0 ? (diff << 1) - 1 : ((-diff) << 1);
4838
0
        }
4839
0
        return (max - x) - 1;
4840
0
    }
4841
0
}
4842
4843
void svt_av1_update_segmentation_map(PictureControlSet* pcs, BlockSize bsize, uint32_t blk_org_x, uint32_t blk_org_y,
4844
0
                                     uint8_t segment_id) {
4845
0
    Av1Common* cm          = pcs->ppcs->av1_cm;
4846
0
    uint8_t*   segment_ids = pcs->segmentation_neighbor_map->data;
4847
0
    uint32_t   mi_col      = blk_org_x >> MI_SIZE_LOG2;
4848
0
    uint32_t   mi_row      = blk_org_y >> MI_SIZE_LOG2;
4849
0
    const int  mi_offset   = mi_row * cm->mi_cols + mi_col;
4850
0
    const int  bw          = mi_size_wide[bsize];
4851
0
    const int  bh          = mi_size_high[bsize];
4852
0
    const int  xmis        = AOMMIN((int)(cm->mi_cols - mi_col), bw);
4853
0
    const int  ymis        = AOMMIN((int)(cm->mi_rows - mi_row), bh);
4854
0
    int        x, y;
4855
4856
0
    for (y = 0; y < ymis; ++y) {
4857
0
        for (x = 0; x < xmis; ++x) {
4858
0
            segment_ids[mi_offset + y * cm->mi_cols + x] = segment_id;
4859
0
        }
4860
0
    }
4861
0
}
4862
4863
void write_segment_id(PictureControlSet* pcs, FRAME_CONTEXT* frame_context, AomWriter* ecWriter, BlockSize bsize,
4864
0
                      uint32_t blk_org_x, uint32_t blk_org_y, EcBlkStruct* blk_ptr, bool skip_coeff) {
4865
0
    SegmentationParams* segmentation_params = &pcs->ppcs->frm_hdr.segmentation_params;
4866
0
    if (!segmentation_params->segmentation_enabled) {
4867
0
        return;
4868
0
    }
4869
0
    MbModeInfo* mbmi = get_mbmi(pcs, blk_org_x, blk_org_y);
4870
0
    int         cdf_num;
4871
0
    const int   spatial_pred = svt_av1_get_spatial_seg_prediction(pcs, blk_ptr->av1xd, blk_org_x, blk_org_y, &cdf_num);
4872
0
    if (skip_coeff) {
4873
0
        svt_av1_update_segmentation_map(pcs, bsize, blk_org_x, blk_org_y, spatial_pred);
4874
0
        mbmi->segment_id = spatial_pred;
4875
0
        return;
4876
0
    }
4877
0
    const int coded_id = svt_av1_neg_interleave(
4878
0
        mbmi->segment_id, spatial_pred, segmentation_params->last_active_seg_id + 1);
4879
0
    struct segmentation_probs* segp     = &frame_context->seg;
4880
0
    AomCdfProb*                pred_cdf = segp->spatial_pred_seg_cdf[cdf_num];
4881
0
    aom_write_symbol(ecWriter, coded_id, pred_cdf, MAX_SEGMENTS);
4882
0
    svt_av1_update_segmentation_map(pcs, bsize, blk_org_x, blk_org_y, mbmi->segment_id);
4883
0
}
4884
4885
static void write_inter_segment_id(PictureControlSet* pcs, FRAME_CONTEXT* frame_context, AomWriter* ecWriter,
4886
                                   const BlockSize bsize, uint32_t blk_org_x, uint32_t blk_org_y, EcBlkStruct* blk_ptr,
4887
0
                                   bool skip, int pre_skip) {
4888
0
    SegmentationParams* segmentation_params = &pcs->ppcs->frm_hdr.segmentation_params;
4889
0
    if (!segmentation_params->segmentation_enabled) {
4890
0
        return;
4891
0
    }
4892
4893
0
    if (segmentation_params->segmentation_update_map) {
4894
0
        if (pre_skip) {
4895
0
            if (!segmentation_params->seg_id_pre_skip) {
4896
0
                return;
4897
0
            }
4898
0
        } else {
4899
0
            if (segmentation_params->seg_id_pre_skip) {
4900
0
                return;
4901
0
            }
4902
0
            if (skip) {
4903
0
                write_segment_id(pcs, frame_context, ecWriter, bsize, blk_org_x, blk_org_y, blk_ptr, 1);
4904
0
                if (segmentation_params->segmentation_temporal_update) {
4905
0
                    SVT_ERROR("Temporal update is not supported yet! \n");
4906
0
                    assert(0);
4907
                    //                    blk_ptr->seg_id_predicted = 0;
4908
0
                }
4909
0
                return;
4910
0
            }
4911
0
        }
4912
4913
0
        if (segmentation_params->segmentation_temporal_update) {
4914
0
            SVT_ERROR("Temporal update is not supported yet! \n");
4915
0
            assert(0);
4916
4917
0
        } else {
4918
0
            write_segment_id(pcs, frame_context, ecWriter, bsize, blk_org_x, blk_org_y, blk_ptr, 0);
4919
0
        }
4920
0
    }
4921
0
}
4922
4923
0
int svt_aom_is_interintra_allowed(const MbModeInfo* mbmi) {
4924
    // Inter-intra is off in RTC (CONFIG_ENABLE_INTER_INTRA=0) -> const-folds to 0, DCE-ing all callers.
4925
0
    return CONFIG_ENABLE_INTER_INTRA && svt_aom_is_interintra_allowed_bsize(mbmi->bsize) &&
4926
0
        svt_aom_is_interintra_allowed_mode(mbmi->block_mi.mode) &&
4927
0
        svt_aom_is_interintra_allowed_ref(mbmi->block_mi.ref_frame);
4928
0
}
4929
4930
int svt_aom_is_interintra_wedge_used(BlockSize bsize);
4931
4932
static EbErrorType write_modes_b(PictureControlSet* pcs, EntropyCodingContext* ec_ctx, EntropyCoder* ec,
4933
                                 SuperBlock* sb_ptr, EcBlkStruct* blk_ptr, uint16_t tile_idx,
4934
157k
                                 EbPictureBufferDesc* coeff_ptr, const int mi_row, const int mi_col) {
4935
157k
    EbErrorType         return_error  = EB_ErrorNone;
4936
157k
    FRAME_CONTEXT*      frame_context = ec->fc;
4937
157k
    AomWriter*          ec_writer     = &ec->ec_writer;
4938
157k
    SequenceControlSet* scs           = pcs->scs;
4939
157k
    FrameHeader*        frm_hdr       = &pcs->ppcs->frm_hdr;
4940
4941
157k
    NeighborArrayUnit* luma_dc_sign_level_coeff_na = pcs->luma_dc_sign_level_coeff_na[tile_idx];
4942
157k
    NeighborArrayUnit* cr_dc_sign_level_coeff_na   = pcs->cr_dc_sign_level_coeff_na[tile_idx];
4943
157k
    NeighborArrayUnit* cb_dc_sign_level_coeff_na   = pcs->cb_dc_sign_level_coeff_na[tile_idx];
4944
157k
    NeighborArrayUnit* txfm_context_array          = pcs->txfm_context_array[tile_idx];
4945
157k
    const uint32_t     blk_org_x                   = mi_col << MI_SIZE_LOG2;
4946
157k
    const uint32_t     blk_org_y                   = mi_row << MI_SIZE_LOG2;
4947
157k
    MbModeInfo*        mbmi                        = get_mbmi(pcs, blk_org_x, blk_org_y);
4948
157k
    const BlockSize    bsize                       = mbmi->bsize;
4949
157k
    const int          bwidth                      = block_size_wide[bsize];
4950
157k
    const int          bheight                     = block_size_high[bsize];
4951
157k
    bool               skip_coeff                  = mbmi->block_mi.skip;
4952
157k
    const bool         has_uv                      = is_chroma_reference(blk_org_y >> 2, blk_org_x >> 2, bsize, 1, 1);
4953
157k
    ec_ctx->mbmi                                   = mbmi;
4954
4955
157k
    const uint8_t skip_mode = mbmi->block_mi.skip_mode;
4956
4957
157k
    assert(bsize < BLOCK_SIZES_ALL);
4958
157k
    int mi_stride                     = pcs->ppcs->av1_cm->mi_stride;
4959
157k
    blk_ptr->av1xd->tile.mi_col_start = sb_ptr->tile_info.mi_col_start;
4960
157k
    blk_ptr->av1xd->tile.mi_col_end   = sb_ptr->tile_info.mi_col_end;
4961
157k
    blk_ptr->av1xd->tile.mi_row_start = sb_ptr->tile_info.mi_row_start;
4962
157k
    blk_ptr->av1xd->tile.mi_row_end   = sb_ptr->tile_info.mi_row_end;
4963
157k
    blk_ptr->av1xd->tile_ctx          = frame_context;
4964
4965
157k
    const int32_t bw = mi_size_wide[bsize];
4966
157k
    const int32_t bh = mi_size_high[bsize];
4967
157k
    set_mi_row_col(pcs,
4968
157k
                   blk_ptr->av1xd,
4969
157k
                   &blk_ptr->av1xd->tile,
4970
157k
                   mi_row,
4971
157k
                   bh,
4972
157k
                   mi_col,
4973
157k
                   bw,
4974
157k
                   mi_stride,
4975
157k
                   pcs->ppcs->av1_cm->mi_rows,
4976
157k
                   pcs->ppcs->av1_cm->mi_cols);
4977
157k
    if (pcs->slice_type == I_SLICE) {
4978
        //const int32_t skip = write_skip(cm, xd, mbmi->segment_id, mi, w)
4979
4980
157k
        if (pcs->ppcs->frm_hdr.segmentation_params.segmentation_enabled &&
4981
0
            pcs->ppcs->frm_hdr.segmentation_params.seg_id_pre_skip) {
4982
0
            write_segment_id(pcs, frame_context, ec_writer, bsize, blk_org_x, blk_org_y, blk_ptr, skip_coeff);
4983
0
        }
4984
4985
157k
        encode_skip_coeff_av1(blk_ptr, frame_context, ec_writer, skip_coeff);
4986
4987
157k
        if (pcs->ppcs->frm_hdr.segmentation_params.segmentation_enabled &&
4988
0
            !pcs->ppcs->frm_hdr.segmentation_params.seg_id_pre_skip) {
4989
0
            write_segment_id(pcs, frame_context, ec_writer, bsize, blk_org_x, blk_org_y, blk_ptr, skip_coeff);
4990
0
        }
4991
4992
157k
        write_cdef(scs, pcs, ec_ctx, ec_writer, skip_coeff, blk_org_x >> MI_SIZE_LOG2, blk_org_y >> MI_SIZE_LOG2);
4993
157k
        if (pcs->ppcs->frm_hdr.delta_q_params.delta_q_present) {
4994
0
            int32_t current_q_index        = blk_ptr->qindex;
4995
0
            int32_t super_block_upper_left = (((blk_org_y >> 2) & (scs->seq_header.sb_mi_size - 1)) == 0) &&
4996
0
                (((blk_org_x >> 2) & (scs->seq_header.sb_mi_size - 1)) == 0);
4997
0
            if ((bsize != scs->seq_header.sb_size || skip_coeff == 0) && super_block_upper_left) {
4998
0
                assert(current_q_index > 0);
4999
0
                int32_t reduced_delta_qindex = (current_q_index - pcs->ppcs->prev_qindex[tile_idx]) /
5000
0
                    frm_hdr->delta_q_params.delta_q_res;
5001
5002
                //write_delta_qindex(xd, reduced_delta_qindex, w);
5003
0
                av1_write_delta_q_index(frame_context, reduced_delta_qindex, ec_writer);
5004
                /*if (pcs->picture_number == 0){
5005
                SVT_LOG("%d\t%d\t%d\t%d\n",
5006
                blk_org_x,
5007
                blk_org_y,
5008
                current_q_index,
5009
                pcs->ppcs->prev_qindex);
5010
                }*/
5011
0
                pcs->ppcs->prev_qindex[tile_idx] = current_q_index;
5012
0
            }
5013
0
        }
5014
5015
157k
        {
5016
157k
            const uint32_t intra_luma_mode   = mbmi->block_mi.mode;
5017
157k
            uint32_t       intra_chroma_mode = mbmi->block_mi.uv_mode;
5018
157k
            if (svt_aom_allow_intrabc(&pcs->ppcs->frm_hdr, pcs->ppcs->slice_type)) {
5019
0
                write_intrabc_info(frame_context, mbmi, blk_ptr, ec_writer);
5020
0
            }
5021
157k
            if (mbmi->block_mi.use_intrabc == 0) {
5022
157k
                encode_intra_luma_mode_kf_av1(frame_context, ec_writer, mbmi, blk_ptr, bsize, intra_luma_mode);
5023
157k
            }
5024
157k
            if (mbmi->block_mi.use_intrabc == 0) {
5025
157k
                if (has_uv) {
5026
157k
                    encode_intra_chroma_mode_av1(frame_context,
5027
157k
                                                 ec_writer,
5028
157k
                                                 mbmi,
5029
157k
                                                 bsize,
5030
157k
                                                 intra_luma_mode,
5031
157k
                                                 intra_chroma_mode,
5032
157k
                                                 bwidth <= 32 && bheight <= 32);
5033
157k
                }
5034
157k
            }
5035
157k
            if (mbmi->block_mi.use_intrabc == 0 && svt_aom_allow_palette(frm_hdr->allow_screen_content_tools, bsize)) {
5036
0
                write_palette_mode_info(
5037
5038
0
                    pcs->ppcs,
5039
0
                    frame_context,
5040
0
                    mbmi,
5041
0
                    blk_ptr,
5042
0
                    bsize,
5043
0
                    blk_org_y >> MI_SIZE_LOG2,
5044
0
                    blk_org_x >> MI_SIZE_LOG2,
5045
0
                    ec_writer);
5046
0
            }
5047
157k
            if (mbmi->block_mi.use_intrabc == 0 &&
5048
157k
                svt_aom_filter_intra_allowed(
5049
157k
                    scs->seq_header.filter_intra_level, bsize, blk_ptr->palette_size[0], intra_luma_mode)) {
5050
0
                aom_write_symbol(ec_writer,
5051
0
                                 mbmi->block_mi.filter_intra_mode != FILTER_INTRA_MODES,
5052
0
                                 frame_context->filter_intra_cdfs[bsize],
5053
0
                                 2);
5054
0
                if (mbmi->block_mi.filter_intra_mode != FILTER_INTRA_MODES) {
5055
0
                    aom_write_symbol(ec_writer,
5056
0
                                     mbmi->block_mi.filter_intra_mode,
5057
0
                                     frame_context->filter_intra_mode_cdf,
5058
0
                                     FILTER_INTRA_MODES);
5059
0
                }
5060
0
            }
5061
157k
            if (mbmi->block_mi.use_intrabc == 0) {
5062
157k
                assert(blk_ptr->palette_size[1] == 0);
5063
157k
                TOKENEXTRA* tok = ec_ctx->tok;
5064
473k
                for (int plane = 0; plane < 2; ++plane) {
5065
315k
                    const uint8_t palette_size_plane = blk_ptr->palette_size[plane];
5066
315k
                    if (palette_size_plane > 0) {
5067
0
                        const TxSize tx_size = tx_depth_to_tx_size[mbmi->block_mi.tx_depth][mbmi->bsize];
5068
0
                        svt_av1_tokenize_color_map(
5069
0
                            frame_context,
5070
0
                            blk_ptr,
5071
0
                            plane,
5072
0
                            &tok,
5073
0
                            bsize,
5074
0
                            tx_size,
5075
0
                            PALETTE_MAP,
5076
0
                            0); //NO CDF update in entropy, the update will take place in arithmetic encode
5077
0
                        assert(mbmi->block_mi.use_intrabc == 0);
5078
0
                        assert(svt_aom_allow_palette(pcs->ppcs->frm_hdr.allow_screen_content_tools, bsize));
5079
0
                        int rows, cols;
5080
0
                        svt_aom_get_block_dimensions(bsize, plane, blk_ptr->av1xd, NULL, NULL, &rows, &cols);
5081
0
                        pack_map_tokens(ec_writer, (const TOKENEXTRA**)(&ec_ctx->tok), palette_size_plane, rows * cols);
5082
                        // advance the pointer
5083
0
                        ec_ctx->tok = tok;
5084
0
                    }
5085
315k
                }
5086
157k
            }
5087
157k
            if (frm_hdr->tx_mode == TX_MODE_SELECT) {
5088
157k
                code_tx_size(pcs,
5089
157k
                             blk_org_x,
5090
157k
                             blk_org_y,
5091
157k
                             blk_ptr,
5092
157k
                             bsize,
5093
157k
                             txfm_context_array,
5094
157k
                             frame_context,
5095
157k
                             ec_writer,
5096
157k
                             skip_coeff);
5097
157k
            }
5098
157k
            if (!skip_coeff) {
5099
5.97k
                av1_encode_coeff_1d(pcs,
5100
5.97k
                                    ec_ctx,
5101
5.97k
                                    frame_context,
5102
5.97k
                                    ec_writer,
5103
5.97k
                                    blk_ptr,
5104
5.97k
                                    blk_org_x,
5105
5.97k
                                    blk_org_y,
5106
5.97k
                                    intra_luma_mode,
5107
5.97k
                                    bsize,
5108
5.97k
                                    coeff_ptr,
5109
5.97k
                                    luma_dc_sign_level_coeff_na,
5110
5.97k
                                    cr_dc_sign_level_coeff_na,
5111
5.97k
                                    cb_dc_sign_level_coeff_na);
5112
5.97k
            }
5113
157k
        }
5114
157k
    } else {
5115
0
        write_inter_segment_id(pcs, frame_context, ec_writer, bsize, blk_org_x, blk_org_y, blk_ptr, 0, 1);
5116
0
        if (frm_hdr->skip_mode_params.skip_mode_flag && is_comp_ref_allowed(bsize)) {
5117
0
            encode_skip_mode_av1(blk_ptr, frame_context, ec_writer, skip_mode);
5118
0
        }
5119
0
        if (!frm_hdr->skip_mode_params.skip_mode_flag && skip_mode) {
5120
0
            SVT_ERROR("SKIP not supported\n");
5121
0
        }
5122
0
        if (!skip_mode) {
5123
            // const int32_t skip = write_skip(cm, xd, mbmi->segment_id, mi, w);
5124
0
            encode_skip_coeff_av1(blk_ptr, frame_context, ec_writer, skip_coeff);
5125
0
        }
5126
5127
0
        write_inter_segment_id(pcs, frame_context, ec_writer, bsize, blk_org_x, blk_org_y, blk_ptr, skip_coeff, 0);
5128
0
        write_cdef(scs,
5129
0
                   pcs, /*cm,*/
5130
0
                   ec_ctx,
5131
0
                   ec_writer,
5132
0
                   skip_mode ? 1 : skip_coeff,
5133
0
                   blk_org_x >> MI_SIZE_LOG2,
5134
0
                   blk_org_y >> MI_SIZE_LOG2);
5135
0
        if (pcs->ppcs->frm_hdr.delta_q_params.delta_q_present) {
5136
0
            int32_t current_q_index        = blk_ptr->qindex;
5137
0
            int32_t super_block_upper_left = (((blk_org_y >> 2) & (scs->seq_header.sb_mi_size - 1)) == 0) &&
5138
0
                (((blk_org_x >> 2) & (scs->seq_header.sb_mi_size - 1)) == 0);
5139
0
            if ((bsize != scs->seq_header.sb_size || skip_coeff == 0) && super_block_upper_left) {
5140
0
                assert(current_q_index > 0);
5141
0
                int32_t reduced_delta_qindex = (current_q_index - pcs->ppcs->prev_qindex[tile_idx]) /
5142
0
                    frm_hdr->delta_q_params.delta_q_res;
5143
0
                av1_write_delta_q_index(frame_context, reduced_delta_qindex, ec_writer);
5144
0
                pcs->ppcs->prev_qindex[tile_idx] = current_q_index;
5145
0
            }
5146
0
        }
5147
0
        if (frm_hdr->tx_mode == TX_MODE_SELECT) {
5148
0
            if (skip_mode) {
5149
0
                code_tx_size(
5150
0
                    pcs, blk_org_x, blk_org_y, blk_ptr, bsize, txfm_context_array, frame_context, ec_writer, skip_mode);
5151
0
            }
5152
0
        }
5153
0
        if (!skip_mode) {
5154
0
            write_is_inter(blk_ptr, frame_context, ec_writer, (int32_t)is_inter_mode(ec_ctx->mbmi->block_mi.mode));
5155
0
            if (is_intra_mode(ec_ctx->mbmi->block_mi.mode)) {
5156
0
                uint32_t intra_luma_mode = mbmi->block_mi.mode;
5157
5158
0
                uint32_t intra_chroma_mode = mbmi->block_mi.uv_mode;
5159
5160
0
                encode_intra_luma_mode_nonkey_av1(frame_context, ec_writer, mbmi, bsize, intra_luma_mode);
5161
0
                if (has_uv) {
5162
0
                    encode_intra_chroma_mode_av1(frame_context,
5163
0
                                                 ec_writer,
5164
0
                                                 mbmi,
5165
0
                                                 bsize,
5166
0
                                                 intra_luma_mode,
5167
0
                                                 intra_chroma_mode,
5168
0
                                                 bwidth <= 32 && bheight <= 32);
5169
0
                }
5170
0
                if (svt_aom_allow_palette(pcs->ppcs->frm_hdr.allow_screen_content_tools, bsize)) {
5171
0
                    write_palette_mode_info(pcs->ppcs,
5172
0
                                            frame_context,
5173
0
                                            mbmi,
5174
0
                                            blk_ptr,
5175
0
                                            bsize,
5176
0
                                            blk_org_y >> MI_SIZE_LOG2,
5177
0
                                            blk_org_x >> MI_SIZE_LOG2,
5178
0
                                            ec_writer);
5179
0
                }
5180
0
                if (svt_aom_filter_intra_allowed(
5181
0
                        scs->seq_header.filter_intra_level, bsize, blk_ptr->palette_size[0], intra_luma_mode)) {
5182
0
                    aom_write_symbol(ec_writer,
5183
0
                                     mbmi->block_mi.filter_intra_mode != FILTER_INTRA_MODES,
5184
0
                                     frame_context->filter_intra_cdfs[bsize],
5185
0
                                     2);
5186
0
                    if (mbmi->block_mi.filter_intra_mode != FILTER_INTRA_MODES) {
5187
0
                        aom_write_symbol(ec_writer,
5188
0
                                         mbmi->block_mi.filter_intra_mode,
5189
0
                                         frame_context->filter_intra_mode_cdf,
5190
0
                                         FILTER_INTRA_MODES);
5191
0
                    }
5192
0
                }
5193
5194
0
            } else {
5195
0
                svt_aom_collect_neighbors_ref_counts_new(blk_ptr->av1xd);
5196
5197
0
                write_ref_frames(pcs->ppcs, blk_ptr->av1xd, ec_writer);
5198
5199
0
                MvReferenceFrame* rf          = mbmi->block_mi.ref_frame;
5200
0
                int16_t           mode_ctx    = svt_aom_mode_context_analyzer(blk_ptr->inter_mode_ctx, rf);
5201
0
                PredictionMode    inter_mode  = mbmi->block_mi.mode;
5202
0
                const int32_t     is_compound = is_inter_compound_mode(inter_mode);
5203
5204
                // If segment skip is not enabled code the mode.
5205
0
                if (is_inter_compound_mode(inter_mode)) {
5206
0
                    write_inter_compound_mode(frame_context, ec_writer, inter_mode, mode_ctx);
5207
0
                } else if (is_inter_singleref_mode(inter_mode)) {
5208
0
                    write_inter_mode(frame_context, ec_writer, inter_mode, mode_ctx, blk_org_x, blk_org_y);
5209
0
                }
5210
5211
0
                if (inter_mode == NEWMV || inter_mode == NEW_NEWMV || have_nearmv_in_inter_mode(inter_mode)) {
5212
0
                    write_drl_idx(frame_context, ec_writer, mbmi, blk_ptr);
5213
0
                }
5214
5215
0
                if (inter_mode == NEWMV || inter_mode == NEW_NEWMV) {
5216
0
                    Mv ref_mv;
5217
5218
0
                    for (uint8_t ref = 0; ref < 1 + is_compound; ++ref) {
5219
0
                        NmvContext* nmvc = &frame_context->nmvc;
5220
0
                        ref_mv           = blk_ptr->predmv[ref];
5221
5222
0
                        Mv mv = mbmi->block_mi.mv[ref];
5223
5224
0
                        svt_av1_encode_mv(pcs->ppcs, ec_writer, mv, ref_mv, nmvc, frm_hdr->allow_high_precision_mv);
5225
0
                    }
5226
0
                } else if (inter_mode == NEAREST_NEWMV || inter_mode == NEAR_NEWMV) {
5227
0
                    NmvContext* nmvc   = &frame_context->nmvc;
5228
0
                    Mv          ref_mv = blk_ptr->predmv[1];
5229
5230
0
                    Mv mv = mbmi->block_mi.mv[1];
5231
5232
0
                    svt_av1_encode_mv(pcs->ppcs, ec_writer, mv, ref_mv, nmvc, frm_hdr->allow_high_precision_mv);
5233
0
                } else if (inter_mode == NEW_NEARESTMV || inter_mode == NEW_NEARMV) {
5234
0
                    NmvContext* nmvc   = &frame_context->nmvc;
5235
0
                    Mv          ref_mv = blk_ptr->predmv[0];
5236
5237
0
                    Mv mv = mbmi->block_mi.mv[0];
5238
5239
0
                    svt_av1_encode_mv(pcs->ppcs, ec_writer, mv, ref_mv, nmvc, frm_hdr->allow_high_precision_mv);
5240
0
                }
5241
0
                if (scs->seq_header.enable_interintra_compound && svt_aom_is_interintra_allowed(mbmi)) {
5242
0
                    if (mbmi->block_mi.is_interintra_used) {
5243
0
                        rf[1]                       = INTRA_FRAME;
5244
0
                        mbmi->block_mi.ref_frame[1] = INTRA_FRAME;
5245
0
                    }
5246
5247
0
                    const int interintra  = mbmi->block_mi.is_interintra_used;
5248
0
                    const int bsize_group = eb_size_group_lookup[bsize];
5249
0
                    aom_write_symbol(
5250
0
                        ec_writer, mbmi->block_mi.is_interintra_used, frame_context->interintra_cdf[bsize_group], 2);
5251
0
                    if (interintra) {
5252
0
                        aom_write_symbol(ec_writer,
5253
0
                                         mbmi->block_mi.interintra_mode,
5254
0
                                         frame_context->interintra_mode_cdf[bsize_group],
5255
0
                                         INTERINTRA_MODES);
5256
0
                        if (svt_aom_is_interintra_wedge_used(bsize)) {
5257
0
                            aom_write_symbol(ec_writer,
5258
0
                                             mbmi->block_mi.use_wedge_interintra,
5259
0
                                             frame_context->wedge_interintra_cdf[bsize],
5260
0
                                             2);
5261
0
                            if (mbmi->block_mi.use_wedge_interintra) {
5262
0
                                aom_write_symbol(ec_writer,
5263
0
                                                 mbmi->block_mi.interintra_wedge_index,
5264
0
                                                 frame_context->wedge_idx_cdf[bsize],
5265
0
                                                 16);
5266
0
                            }
5267
0
                        }
5268
0
                    }
5269
0
                }
5270
5271
0
                if (frm_hdr->is_motion_mode_switchable && rf[1] != INTRA_FRAME) {
5272
0
                    write_motion_mode(
5273
0
                        frame_context, ec_writer, bsize, mbmi, mbmi->block_mi.motion_mode, rf[0], rf[1], blk_ptr, pcs);
5274
0
                }
5275
                // First write idx to indicate current compound inter prediction mode group
5276
                // Group A (0): dist_wtd_comp, compound_average
5277
                // Group b (1): interintra, compound_diffwtd, wedge
5278
0
                if (has_second_ref(&mbmi->block_mi)) {
5279
0
                    const int masked_compound_used = is_any_masked_compound_used(bsize) &&
5280
0
                        scs->seq_header.enable_masked_compound;
5281
5282
0
                    if (masked_compound_used) {
5283
0
                        const int ctx_comp_group_idx = svt_aom_get_comp_group_idx_context_enc(blk_ptr->av1xd);
5284
0
                        aom_write_symbol(ec_writer,
5285
0
                                         mbmi->block_mi.comp_group_idx,
5286
0
                                         frame_context->comp_group_idx_cdf[ctx_comp_group_idx],
5287
0
                                         2);
5288
0
                    } else {
5289
0
                        assert(mbmi->block_mi.comp_group_idx == 0);
5290
0
                    }
5291
5292
0
                    if (mbmi->block_mi.comp_group_idx == 0) {
5293
0
                        assert(IMPLIES(mbmi->block_mi.compound_idx,
5294
0
                                       mbmi->block_mi.interinter_comp.type == COMPOUND_AVERAGE));
5295
5296
0
                        if (scs->seq_header.order_hint_info.enable_jnt_comp) {
5297
0
                            const int comp_index_ctx = svt_aom_get_comp_index_context_enc(
5298
0
                                pcs->ppcs,
5299
0
                                pcs->ppcs->cur_order_hint, // cur_frame_index,
5300
0
                                pcs->ppcs->ref_order_hint[rf[0] - 1], // bck_frame_index,
5301
0
                                pcs->ppcs->ref_order_hint[rf[1] - 1], // fwd_frame_index,
5302
0
                                blk_ptr->av1xd);
5303
0
                            aom_write_symbol(ec_writer,
5304
0
                                             mbmi->block_mi.compound_idx,
5305
0
                                             frame_context->compound_index_cdf[comp_index_ctx],
5306
0
                                             2);
5307
0
                        } else {
5308
0
                            assert(mbmi->block_mi.compound_idx == 1);
5309
0
                        }
5310
0
                    } else {
5311
0
                        assert(pcs->ppcs->frm_hdr.reference_mode != SINGLE_REFERENCE &&
5312
0
                               is_inter_compound_mode(mbmi->block_mi.mode) &&
5313
0
                               mbmi->block_mi.motion_mode == SIMPLE_TRANSLATION);
5314
0
                        assert(masked_compound_used);
5315
                        // compound_diffwtd, wedge
5316
0
                        assert(mbmi->block_mi.interinter_comp.type == COMPOUND_WEDGE ||
5317
0
                               mbmi->block_mi.interinter_comp.type == COMPOUND_DIFFWTD);
5318
5319
0
                        if (is_interinter_compound_used(COMPOUND_WEDGE, bsize)) {
5320
0
                            aom_write_symbol(ec_writer,
5321
0
                                             mbmi->block_mi.interinter_comp.type - COMPOUND_WEDGE,
5322
0
                                             frame_context->compound_type_cdf[bsize],
5323
0
                                             MASKED_COMPOUND_TYPES);
5324
0
                        }
5325
5326
0
                        if (mbmi->block_mi.interinter_comp.type == COMPOUND_WEDGE) {
5327
0
                            assert(is_interinter_compound_used(COMPOUND_WEDGE, bsize));
5328
0
                            aom_write_symbol(ec_writer,
5329
0
                                             mbmi->block_mi.interinter_comp.wedge_index,
5330
0
                                             frame_context->wedge_idx_cdf[bsize],
5331
0
                                             16);
5332
0
                            aom_write_bit(ec_writer, mbmi->block_mi.interinter_comp.wedge_sign);
5333
0
                        } else {
5334
0
                            assert(mbmi->block_mi.interinter_comp.type == COMPOUND_DIFFWTD);
5335
0
                            aom_write_literal(
5336
0
                                ec_writer, mbmi->block_mi.interinter_comp.mask_type, MAX_DIFFWTD_MASK_BITS);
5337
0
                        }
5338
0
                    }
5339
0
                }
5340
0
                write_mb_interp_filter(bsize, rf[0], rf[1], pcs->ppcs, ec_writer, mbmi, blk_ptr, ec);
5341
0
            }
5342
0
            {
5343
0
                assert(blk_ptr->palette_size[1] == 0);
5344
0
                TOKENEXTRA* tok = ec_ctx->tok;
5345
0
                for (int plane = 0; plane < 2; ++plane) {
5346
0
                    const uint8_t palette_size_plane = blk_ptr->palette_size[plane];
5347
0
                    if (palette_size_plane > 0) {
5348
0
                        const TxSize tx_size = tx_depth_to_tx_size[mbmi->block_mi.tx_depth][mbmi->bsize];
5349
0
                        svt_av1_tokenize_color_map(
5350
0
                            frame_context,
5351
0
                            blk_ptr,
5352
0
                            plane,
5353
0
                            &tok,
5354
0
                            bsize,
5355
0
                            tx_size,
5356
0
                            PALETTE_MAP,
5357
0
                            0); //NO CDF update in entropy, the update will take place in arithmetic encode
5358
0
                        assert(mbmi->block_mi.use_intrabc == 0);
5359
0
                        assert(svt_aom_allow_palette(pcs->ppcs->frm_hdr.allow_screen_content_tools, bsize));
5360
0
                        int rows, cols;
5361
0
                        svt_aom_get_block_dimensions(bsize, plane, blk_ptr->av1xd, NULL, NULL, &rows, &cols);
5362
0
                        pack_map_tokens(ec_writer, (const TOKENEXTRA**)(&ec_ctx->tok), palette_size_plane, rows * cols);
5363
                        // advance the pointer
5364
0
                        ec_ctx->tok = tok;
5365
0
                    }
5366
0
                }
5367
0
            }
5368
5369
0
            if (frm_hdr->tx_mode == TX_MODE_SELECT) {
5370
0
                code_tx_size(pcs,
5371
0
                             blk_org_x,
5372
0
                             blk_org_y,
5373
0
                             blk_ptr,
5374
0
                             bsize,
5375
0
                             txfm_context_array,
5376
0
                             frame_context,
5377
0
                             ec_writer,
5378
0
                             skip_coeff);
5379
0
            }
5380
0
            if (!skip_coeff) {
5381
0
                uint32_t intra_luma_mode = DC_PRED;
5382
0
                if (is_intra_mode(ec_ctx->mbmi->block_mi.mode)) {
5383
0
                    intra_luma_mode = mbmi->block_mi.mode;
5384
0
                }
5385
5386
0
                {
5387
0
                    av1_encode_coeff_1d(pcs,
5388
0
                                        ec_ctx,
5389
0
                                        frame_context,
5390
0
                                        ec_writer,
5391
0
                                        blk_ptr,
5392
0
                                        blk_org_x,
5393
0
                                        blk_org_y,
5394
0
                                        intra_luma_mode,
5395
0
                                        bsize,
5396
0
                                        coeff_ptr,
5397
0
                                        luma_dc_sign_level_coeff_na,
5398
0
                                        cr_dc_sign_level_coeff_na,
5399
0
                                        cb_dc_sign_level_coeff_na);
5400
0
                }
5401
0
            }
5402
0
        }
5403
0
    }
5404
157k
    ec_ctx->tot_qindex += (uint64_t)blk_ptr->qindex * bwidth * bheight;
5405
157k
    ec_ctx->valid_area += bwidth * bheight;
5406
    // Update the neighbors
5407
157k
    ec_update_neighbors(pcs, ec_ctx, blk_org_x, blk_org_y, tile_idx, bsize);
5408
5409
157k
    if (svt_av1_allow_palette(pcs->ppcs->palette_level, bsize)) {
5410
        // free ENCDEC palette info buffer
5411
0
        assert(blk_ptr->palette_info->color_idx_map != NULL && "free palette:Null");
5412
0
        EB_FREE(blk_ptr->palette_info->color_idx_map);
5413
0
        blk_ptr->palette_info->color_idx_map = NULL;
5414
0
        EB_FREE(blk_ptr->palette_info);
5415
0
    }
5416
5417
157k
    return return_error;
5418
157k
}
5419
5420
/**********************************************
5421
 * Write sb
5422
 **********************************************/
5423
void svt_aom_write_modes_sb(EntropyCodingContext* ec_ctx, SuperBlock* sb_ptr, PictureControlSet* pcs, uint16_t tile_idx,
5424
                            EntropyCoder* ec, EbPictureBufferDesc* coeff_ptr, PARTITION_TREE* ptree, int mi_row,
5425
214k
                            int mi_col) {
5426
214k
    if (mi_row >= pcs->ppcs->av1_cm->mi_rows || mi_col >= pcs->ppcs->av1_cm->mi_cols) {
5427
0
        return;
5428
0
    }
5429
214k
    FRAME_CONTEXT*     frame_context        = ec->fc;
5430
214k
    AomWriter*         ec_writer            = &ec->ec_writer;
5431
214k
    NeighborArrayUnit* partition_context_na = pcs->partition_context_na[tile_idx];
5432
5433
214k
    const BlockSize bsize = ptree->bsize;
5434
214k
    assert(bsize < BLOCK_SIZES_ALL);
5435
214k
    const int           hbs          = mi_size_wide[bsize] >> 1;
5436
214k
    const int           quarter_step = mi_size_wide[bsize] >> 2;
5437
214k
    const PartitionType partition    = ptree->partition;
5438
214k
    Av1Common*          cm           = pcs->ppcs->av1_cm;
5439
5440
214k
    if (bsize >= BLOCK_8X8) {
5441
858k
        for (int32_t plane = 0; plane < 3; ++plane) {
5442
643k
            int32_t rcol0, rcol1, rrow0, rrow1, tile_tl_idx;
5443
643k
            if (svt_av1_loop_restoration_corners_in_sb(cm,
5444
643k
                                                       &pcs->scs->seq_header,
5445
643k
                                                       plane,
5446
643k
                                                       mi_row,
5447
643k
                                                       mi_col,
5448
643k
                                                       bsize,
5449
643k
                                                       &rcol0,
5450
643k
                                                       &rcol1,
5451
643k
                                                       &rrow0,
5452
643k
                                                       &rrow1,
5453
643k
                                                       &tile_tl_idx)) {
5454
0
                const int32_t rstride = pcs->rst_info[plane].horz_units_per_tile;
5455
0
                for (int32_t rrow = rrow0; rrow < rrow1; ++rrow) {
5456
0
                    for (int32_t rcol = rcol0; rcol < rcol1; ++rcol) {
5457
0
                        const int32_t              runit_idx = tile_tl_idx + rcol + rrow * rstride;
5458
0
                        const RestorationUnitInfo* rui       = &pcs->rst_info[plane].unit_info[runit_idx];
5459
0
                        loop_restoration_write_sb_coeffs(pcs, frame_context, ec_ctx, rui, ec_writer, plane);
5460
0
                    }
5461
0
                }
5462
0
            }
5463
643k
        }
5464
5465
214k
        encode_partition_av1(pcs,
5466
214k
                             frame_context,
5467
214k
                             ec_writer,
5468
214k
                             bsize,
5469
214k
                             partition,
5470
214k
                             mi_col << MI_SIZE_LOG2,
5471
214k
                             mi_row << MI_SIZE_LOG2,
5472
214k
                             partition_context_na);
5473
214k
    }
5474
5475
214k
    assert(IMPLIES(bsize == BLOCK_4X4, partition == PARTITION_NONE));
5476
214k
    assert(IMPLIES(partition != PARTITION_SPLIT, (mi_row + hbs < cm->mi_rows) || (mi_col + hbs < cm->mi_cols)));
5477
214k
    switch (partition) {
5478
157k
    case PARTITION_NONE:
5479
157k
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5480
157k
        break;
5481
0
    case PARTITION_HORZ:
5482
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5483
0
        if (mi_row + hbs < cm->mi_rows) {
5484
0
            write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row + hbs, mi_col);
5485
0
        }
5486
0
        break;
5487
0
    case PARTITION_VERT:
5488
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5489
0
        if (mi_col + hbs < cm->mi_cols) {
5490
0
            write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row, mi_col + hbs);
5491
0
        }
5492
0
        break;
5493
56.6k
    case PARTITION_SPLIT:
5494
283k
        for (int i = 0; i < SUB_PARTITIONS_SPLIT; ++i) {
5495
226k
            const int x_idx = (i & 1) * hbs;
5496
226k
            const int y_idx = (i >> 1) * hbs;
5497
226k
            if (mi_row + y_idx >= cm->mi_rows || mi_col + x_idx >= cm->mi_cols) {
5498
18.5k
                continue;
5499
18.5k
            }
5500
208k
            svt_aom_write_modes_sb(
5501
208k
                ec_ctx, sb_ptr, pcs, tile_idx, ec, coeff_ptr, ptree->sub_tree[i], mi_row + y_idx, mi_col + x_idx);
5502
208k
        }
5503
56.6k
        break;
5504
0
    case PARTITION_HORZ_A:
5505
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5506
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row, mi_col + hbs);
5507
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[2], tile_idx, coeff_ptr, mi_row + hbs, mi_col);
5508
0
        break;
5509
0
    case PARTITION_HORZ_B:
5510
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5511
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row + hbs, mi_col);
5512
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[2], tile_idx, coeff_ptr, mi_row + hbs, mi_col + hbs);
5513
0
        break;
5514
0
    case PARTITION_VERT_A:
5515
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5516
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row + hbs, mi_col);
5517
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[2], tile_idx, coeff_ptr, mi_row, mi_col + hbs);
5518
0
        break;
5519
0
    case PARTITION_VERT_B:
5520
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[0], tile_idx, coeff_ptr, mi_row, mi_col);
5521
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[1], tile_idx, coeff_ptr, mi_row, mi_col + hbs);
5522
0
        write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[2], tile_idx, coeff_ptr, mi_row + hbs, mi_col + hbs);
5523
0
        break;
5524
0
    case PARTITION_HORZ_4:
5525
0
        for (int i = 0; i < SUB_PARTITIONS_PART4; ++i) {
5526
0
            int this_mi_row = mi_row + i * quarter_step;
5527
0
            if (i > 0 && this_mi_row >= cm->mi_rows) {
5528
                // Only the last block is able to be outside the picture boundary. If one of the first
5529
                // 3 blocks is outside the boundary, H4 is not a valid partition (see AV1 spec 5.11.4)
5530
0
                assert(i == 3);
5531
0
                break;
5532
0
            }
5533
0
            write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[i], tile_idx, coeff_ptr, this_mi_row, mi_col);
5534
0
        }
5535
0
        break;
5536
0
    case PARTITION_VERT_4:
5537
0
        for (int i = 0; i < SUB_PARTITIONS_PART4; ++i) {
5538
0
            int this_mi_col = mi_col + i * quarter_step;
5539
0
            if (i > 0 && this_mi_col >= cm->mi_cols) {
5540
                // Only the last block is able to be outside the picture boundary. If one of the first
5541
                // 3 blocks is outside the boundary, H4 is not a valid partition (see AV1 spec 5.11.4)
5542
0
                assert(i == 3);
5543
0
                break;
5544
0
            }
5545
0
            write_modes_b(pcs, ec_ctx, ec, sb_ptr, ptree->blk_data[i], tile_idx, coeff_ptr, mi_row, this_mi_col);
5546
0
        }
5547
0
        break;
5548
0
    default:
5549
        assert(0);
5550
214k
    }
5551
214k
}