Coverage Report

Created: 2026-06-10 07:04

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/libavc/encoder/ih264e_cabac.c
Line
Count
Source
1
/******************************************************************************
2
 *
3
 * Copyright (C) 2015 The Android Open Source Project
4
 *
5
 * Licensed under the Apache License, Version 2.0 (the "License");
6
 * you may not use this file except in compliance with the License.
7
 * You may obtain a copy of the License at:
8
 *
9
 * http://www.apache.org/licenses/LICENSE-2.0
10
 *
11
 * Unless required by applicable law or agreed to in writing, software
12
 * distributed under the License is distributed on an "AS IS" BASIS,
13
 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
14
 * See the License for the specific language governing permissions and
15
 * limitations under the License.
16
 *
17
 *****************************************************************************
18
 * Originally developed and contributed by Ittiam Systems Pvt. Ltd, Bangalore
19
*/
20
21
/**
22
*******************************************************************************
23
* @file
24
*  ih264e_cabac.c
25
*
26
* @brief
27
*  Contains all leaf level functions for CABAC entropy coding.
28
*
29
* @author
30
*  ittiam
31
*
32
* @par List of Functions:
33
*  - ih264e_cabac_UEGk0_binarization
34
*  - ih264e_get_cabac_context
35
*  - ih264e_cabac_put_byte
36
*  - ih264e_cabac_encode_bin
37
*  - ih264e_encode_decision_bins
38
*  - ih264e_cabac_encode_terminate
39
*  - ih264e_cabac_encode_bypass_bin
40
*  - ih264e_cabac_encode_bypass_bins
41
*
42
* @remarks
43
*  none
44
*
45
*******************************************************************************
46
*/
47
48
/*****************************************************************************/
49
/* File Includes                                                             */
50
/*****************************************************************************/
51
52
/* System Include Files */
53
#include <stdio.h>
54
#include <assert.h>
55
#include <limits.h>
56
#include <string.h>
57
58
/* User Include Files */
59
#include "ih264e_config.h"
60
#include "ih264_typedefs.h"
61
#include "iv2.h"
62
#include "ive2.h"
63
64
#include "ih264_debug.h"
65
#include "ih264_macros.h"
66
#include "ih264_error.h"
67
#include "ih264_defs.h"
68
#include "ih264_mem_fns.h"
69
#include "ih264_padding.h"
70
#include "ih264_structs.h"
71
#include "ih264_trans_quant_itrans_iquant.h"
72
#include "ih264_inter_pred_filters.h"
73
#include "ih264_intra_pred_filters.h"
74
#include "ih264_deblk_edge_filters.h"
75
#include "ih264_cavlc_tables.h"
76
#include "ih264_cabac_tables.h"
77
#include "ih264_platform_macros.h"
78
79
#include "ime_defs.h"
80
#include "ime_distortion_metrics.h"
81
#include "ime_structs.h"
82
83
#include "irc_cntrl_param.h"
84
#include "irc_frame_info_collector.h"
85
86
#include "ih264e_error.h"
87
#include "ih264e_defs.h"
88
#include "ih264e_bitstream.h"
89
#include "ih264e_cabac_structs.h"
90
#include "ih264e_structs.h"
91
#include "ih264e_encode_header.h"
92
#include "ih264e_cabac.h"
93
#include "ih264e_statistics.h"
94
#include "ih264e_trace.h"
95
96
97
/*****************************************************************************/
98
/* Function Definitions                                                      */
99
/*****************************************************************************/
100
101
/**
102
*******************************************************************************
103
*
104
* @brief
105
*  k-th order Exp-Golomb (UEGk) binarization process: Implements concatenated
106
*  unary/ k-th order Exp-Golomb  (UEGk) binarization process, where k = 0 as
107
*  defined in 9.3.2.3 of  ITU_T_H264-201402
108
*
109
* @param[in] i2_sufs
110
*  Suffix bit string
111
*
112
* @param[in] pi1_bins_len
113
*  Pointer to length of tthe string
114
*
115
* @returns Binarized value
116
*
117
* @remarks none
118
*
119
*******************************************************************************
120
*/
121
UWORD32 ih264e_cabac_UEGk0_binarization(WORD16 i2_sufs, WORD8 *pi1_bins_len)
122
0
{
123
0
    WORD32 unary_length;
124
0
    UWORD32 u4_sufs_shiftk_plus1, u4_egk, u4_unary_bins;
125
126
0
    u4_sufs_shiftk_plus1 = i2_sufs + 1;
127
128
0
    unary_length = (32 - CLZ(u4_sufs_shiftk_plus1) + (0 == u4_sufs_shiftk_plus1));
129
130
    /* unary code with (unary_length-1) '1's and terminating '0' bin */
131
0
    u4_unary_bins = (1 << unary_length) - 2;
132
133
    /* insert the symbol prefix of (unary length - 1)  bins */
134
0
    u4_egk = (u4_unary_bins << (unary_length - 1))
135
0
                    | (u4_sufs_shiftk_plus1 & ((1 << (unary_length - 1)) - 1));
136
137
    /* length of the code = 2 *(unary_length - 1) + 1 + k */
138
0
    *pi1_bins_len = (2 * unary_length) - 1;
139
140
0
    return (u4_egk);
141
0
}
142
143
/**
144
*******************************************************************************
145
*
146
* @brief
147
*  Get cabac context for the MB :calculates the pointers to Top and left
148
*  cabac neighbor context depending upon neighbor  availability.
149
*
150
* @param[in] ps_ent_ctxt
151
*  Pointer to entropy context structure
152
*
153
* @param[in] u4_mb_type
154
*  Type of MB
155
*
156
* @returns none
157
*
158
* @remarks none
159
*
160
*******************************************************************************
161
*/
162
void ih264e_get_cabac_context(entropy_ctxt_t *ps_ent_ctxt, WORD32 u4_mb_type)
163
0
{
164
0
    cabac_ctxt_t *ps_cabac_ctxt = ps_ent_ctxt->ps_cabac;
165
0
    mb_info_ctxt_t *ps_ctx_inc_mb_map;
166
0
    cab_csbp_t *ps_lft_csbp;
167
0
    WORD32 i4_lft_avail, i4_top_avail, i4_is_intra;
168
0
    WORD32 i4_mb_x, i4_mb_y;
169
0
    UWORD8 *pu1_slice_idx = ps_ent_ctxt->pu1_slice_idx;
170
171
0
    i4_is_intra = ((u4_mb_type == I16x16) || (u4_mb_type == I8x8)
172
0
                    || (u4_mb_type == I4x4));
173
174
    /* derive neighbor availability */
175
0
    i4_mb_x = ps_ent_ctxt->i4_mb_x;
176
0
    i4_mb_y = ps_ent_ctxt->i4_mb_y;
177
0
    pu1_slice_idx += (i4_mb_y * ps_ent_ctxt->i4_wd_mbs);
178
    /* left macroblock availability */
179
0
    i4_lft_avail = (i4_mb_x == 0
180
0
                    || (pu1_slice_idx[i4_mb_x - 1] != pu1_slice_idx[i4_mb_x])) ?
181
0
                    0 : 1;
182
    /* top macroblock availability */
183
0
    i4_top_avail = (i4_mb_y == 0
184
0
                    || (pu1_slice_idx[i4_mb_x - ps_ent_ctxt->i4_wd_mbs]
185
0
                                    != pu1_slice_idx[i4_mb_x])) ? 0 : 1;
186
0
    i4_mb_x = ps_ent_ctxt->i4_mb_x;
187
0
    ps_ctx_inc_mb_map = ps_cabac_ctxt->ps_mb_map_ctxt_inc;
188
0
    ps_cabac_ctxt->ps_curr_ctxt_mb_info = ps_ctx_inc_mb_map + i4_mb_x;
189
0
    ps_cabac_ctxt->ps_left_ctxt_mb_info = ps_cabac_ctxt->ps_def_ctxt_mb_info;
190
0
    ps_cabac_ctxt->ps_top_ctxt_mb_info = ps_cabac_ctxt->ps_def_ctxt_mb_info;
191
0
    ps_lft_csbp = ps_cabac_ctxt->ps_lft_csbp;
192
0
    ps_cabac_ctxt->pu1_left_y_ac_csbp = &ps_lft_csbp->u1_y_ac_csbp_top_mb;
193
0
    ps_cabac_ctxt->pu1_left_uv_ac_csbp = &ps_lft_csbp->u1_uv_ac_csbp_top_mb;
194
0
    ps_cabac_ctxt->pu1_left_yuv_dc_csbp = &ps_lft_csbp->u1_yuv_dc_csbp_top_mb;
195
0
    ps_cabac_ctxt->pi1_left_ref_idx_ctxt_inc =
196
0
                    &ps_cabac_ctxt->i1_left_ref_idx_ctx_inc_arr[0][0];
197
0
    ps_cabac_ctxt->pu1_left_mv_ctxt_inc =
198
0
                    ps_cabac_ctxt->u1_left_mv_ctxt_inc_arr[0];
199
200
0
    if (i4_lft_avail)
201
0
        ps_cabac_ctxt->ps_left_ctxt_mb_info =
202
0
                        ps_cabac_ctxt->ps_curr_ctxt_mb_info - 1;
203
0
    if (i4_top_avail)
204
0
        ps_cabac_ctxt->ps_top_ctxt_mb_info =
205
0
                        ps_cabac_ctxt->ps_curr_ctxt_mb_info;
206
207
0
    if (!i4_lft_avail)
208
0
    {
209
0
        UWORD8 u1_def_csbp = i4_is_intra ? 0xf : 0;
210
0
        *(ps_cabac_ctxt->pu1_left_y_ac_csbp) = u1_def_csbp;
211
0
        *(ps_cabac_ctxt->pu1_left_uv_ac_csbp) = u1_def_csbp;
212
0
        *(ps_cabac_ctxt->pu1_left_yuv_dc_csbp) = u1_def_csbp;
213
0
        *((UWORD32 *) ps_cabac_ctxt->pi1_left_ref_idx_ctxt_inc) = 0;
214
0
        memset(ps_cabac_ctxt->pu1_left_mv_ctxt_inc, 0, 16);
215
0
    }
216
0
    if (!i4_top_avail)
217
0
    {
218
0
        UWORD8 u1_def_csbp = i4_is_intra ? 0xff : 0;
219
0
        ps_cabac_ctxt->ps_top_ctxt_mb_info->u1_yuv_ac_csbp = u1_def_csbp;
220
0
        ps_cabac_ctxt->ps_top_ctxt_mb_info->u1_yuv_dc_csbp = u1_def_csbp;
221
0
        ps_cabac_ctxt->ps_curr_ctxt_mb_info->i1_ref_idx[0] =
222
0
        ps_cabac_ctxt->ps_curr_ctxt_mb_info->i1_ref_idx[1] =
223
0
        ps_cabac_ctxt->ps_curr_ctxt_mb_info->i1_ref_idx[2] =
224
0
        ps_cabac_ctxt->ps_curr_ctxt_mb_info->i1_ref_idx[3] = 0;
225
0
        memset(ps_cabac_ctxt->ps_curr_ctxt_mb_info->u1_mv, 0, 16);
226
0
    }
227
0
}
228
229
/**
230
*******************************************************************************
231
*
232
* @brief
233
*  flushing at termination: Explained in flowchart 9-12(ITU_T_H264-201402).
234
*
235
* @param[in]   ps_cabac_ctxt
236
*  pointer to cabac context (handle)
237
*
238
* @returns none
239
*
240
* @remarks none
241
*
242
*******************************************************************************
243
*/
244
IH264E_ERROR_T ih264e_cabac_flush(cabac_ctxt_t *ps_cabac_ctxt)
245
0
{
246
0
    bitstrm_t *ps_stream = ps_cabac_ctxt->ps_bitstrm;
247
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac_ctxt->s_cab_enc_env);
248
0
    UWORD32 u4_low = ps_cab_enc_env->u4_code_int_low;
249
0
    UWORD32 u4_bits_gen = ps_cab_enc_env->u4_bits_gen;
250
0
    UWORD8 *pu1_strm_buf = ps_stream->pu1_strm_buffer;
251
0
    UWORD32 u4_out_standing_bytes = ps_cab_enc_env->u4_out_standing_bytes;
252
0
    IH264E_ERROR_T status = IH264E_SUCCESS;
253
254
    /************************************************************************/
255
    /* Insert the carry (propogated in previous byte) along with            */
256
    /* outstanding bytes (if any) and flush remaining bits                  */
257
    /************************************************************************/
258
0
    {
259
        /* carry = 1 => putbit(1); carry propogated due to L renorm */
260
0
        WORD32 carry = (u4_low >> (u4_bits_gen + CABAC_BITS)) & 0x1;
261
0
        WORD32 last_byte;
262
0
        WORD32 bits_left;
263
0
        WORD32 rem_bits;
264
265
0
        if (carry)
266
0
        {
267
            /* CORNER CASE: if the previous data is 0x000003, then EPB will be inserted
268
             and the data will become 0x00000303 and if the carry is present, it will
269
             be added with the last byte and it will become 0x00000304 which is not correct
270
             as per standard */
271
            /* so check for previous four bytes and if it is equal to 0x00000303
272
             then subtract u4_strm_buf_offset by 1 */
273
0
            if (pu1_strm_buf[ps_stream->u4_strm_buf_offset - 1] == 0x03
274
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 2] == 0x03
275
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 3] == 0x00
276
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 4] == 0x00)
277
0
            {
278
0
                ps_stream->u4_strm_buf_offset -= 1;
279
0
            }
280
            /* previous byte carry add will not result in overflow to        */
281
            /* u4_strm_buf_offset - 2 as we track 0xff as outstanding bytes  */
282
0
            pu1_strm_buf[ps_stream->u4_strm_buf_offset - 1] += carry;
283
0
            ps_stream->i4_zero_bytes_run = 0;
284
0
        }
285
286
        /*        Insert outstanding bytes (if any)         */
287
0
        while (u4_out_standing_bytes)
288
0
        {
289
0
            UWORD8 u1_0_or_ff = carry ? 0 : 0xFF;
290
291
0
            status |= ih264e_put_byte_epb(ps_stream, u1_0_or_ff);
292
0
            u4_out_standing_bytes--;
293
0
        }
294
295
        /*  clear the carry in low */
296
0
        u4_low &= ((1 << (u4_bits_gen + CABAC_BITS)) - 1);
297
298
        /* extract the remaining bits;                                   */
299
        /* includes additional msb bit of low as per Figure 9-12      */
300
0
        bits_left = u4_bits_gen + 1;
301
0
        rem_bits = (u4_low >> (u4_bits_gen + CABAC_BITS - bits_left));
302
303
0
        if (bits_left >= 8)
304
0
        {
305
0
            last_byte = (rem_bits >> (bits_left - 8)) & 0xFF;
306
0
            status |= ih264e_put_byte_epb(ps_stream, last_byte);
307
0
            bits_left -= 8;
308
0
        }
309
310
        /* insert last byte along with rbsp stop bit(1) and 0's in the end */
311
0
        last_byte = (rem_bits << (8 - bits_left))
312
0
                        | (1 << (7 - bits_left) | (1 << (7 - bits_left - 1)));
313
0
        last_byte &= 0xFF;
314
0
        status |= ih264e_put_byte_epb(ps_stream, last_byte);
315
316
0
        if (status == IH264E_SUCCESS) {
317
            /* update the state variables and return success */
318
0
            ps_stream->i4_zero_bytes_run = 0;
319
            /* Default init values for scratch variables of bitstream context */
320
0
            ps_stream->u4_cur_word = 0;
321
0
            ps_stream->i4_bits_left_in_cw = WORD_SIZE;
322
0
        }
323
324
0
    }
325
0
    return status;
326
0
}
327
328
/**
329
******************************************************************************
330
*
331
* @brief Puts new byte (and outstanding bytes) into bitstream after cabac
332
*  renormalization
333
*
334
* @par   Description
335
*  1. Extract the leading byte of low(L)
336
*  2. If leading byte=0xff increment outstanding bytes and return
337
*     (as the actual bits depend on carry propogation later)
338
*  3. If leading byte is not 0xff check for any carry propogation
339
*  4. Insert the carry (propogated in previous byte) along with outstanding
340
*     bytes (if any) and leading byte
341
*
342
* @param[in]   ps_cabac_ctxt
343
*  pointer to cabac context (handle)
344
*
345
* @returns none
346
*
347
******************************************************************************
348
*/
349
IH264E_ERROR_T ih264e_cabac_put_byte(cabac_ctxt_t *ps_cabac_ctxt)
350
0
{
351
0
    bitstrm_t *ps_stream = ps_cabac_ctxt->ps_bitstrm;
352
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac_ctxt->s_cab_enc_env);
353
0
    UWORD32 u4_low = ps_cab_enc_env->u4_code_int_low;
354
0
    UWORD32 u4_bits_gen = ps_cab_enc_env->u4_bits_gen;
355
0
    UWORD8 *pu1_strm_buf = ps_stream->pu1_strm_buffer;
356
0
    WORD32 lead_byte = u4_low >> (u4_bits_gen + CABAC_BITS - 8);
357
0
    IH264E_ERROR_T status = IH264E_SUCCESS;
358
359
    /* Sanity checks */
360
0
    ASSERT((ps_cab_enc_env->u4_code_int_range >= 256)
361
0
                    && (ps_cab_enc_env->u4_code_int_range < 512));
362
0
    ASSERT((u4_bits_gen >= 8));
363
364
    /* update bits generated and low after extracting leading byte */
365
0
    u4_bits_gen -= 8;
366
0
    ps_cab_enc_env->u4_code_int_low &= ((1 << (CABAC_BITS + u4_bits_gen)) - 1);
367
0
    ps_cab_enc_env->u4_bits_gen = u4_bits_gen;
368
369
    /************************************************************************/
370
    /* 1. Extract the leading byte of low(L)                                */
371
    /* 2. If leading byte=0xff increment outstanding bytes and return       */
372
    /*      (as the actual bits depend on carry propogation later)          */
373
    /* 3. If leading byte is not 0xff check for any carry propogation       */
374
    /* 4. Insert the carry (propogated in previous byte) along with         */
375
    /*    outstanding bytes (if any) and leading byte                       */
376
    /************************************************************************/
377
0
    if (lead_byte == 0xff)
378
0
    {
379
        /* actual bits depend on carry propogration     */
380
0
        ps_cab_enc_env->u4_out_standing_bytes++;
381
0
    }
382
0
    else
383
0
    {
384
        /* carry = 1 => putbit(1); carry propogated due to L renorm */
385
0
        WORD32 carry = (lead_byte >> 8) & 0x1;
386
0
        UWORD32 u4_out_standing_bytes = ps_cab_enc_env->u4_out_standing_bytes;
387
388
389
        /*********************************************************************/
390
        /*        Insert the carry propogated in previous byte               */
391
        /*                                                                   */
392
        /* Note : Do not worry about corruption into slice header align byte */
393
        /*        This is because the first bin cannot result in overflow    */
394
        /*********************************************************************/
395
0
        if (carry)
396
0
        {
397
            /* CORNER CASE: if the previous data is 0x000003, then EPB will be inserted
398
             and the data will become 0x00000303 and if the carry is present, it will
399
             be added with the last byte and it will become 0x00000304 which is not correct
400
             as per standard */
401
            /* so check for previous four bytes and if it is equal to 0x00000303
402
             then subtract u4_strm_buf_offset by 1 */
403
0
            if (pu1_strm_buf[ps_stream->u4_strm_buf_offset - 1] == 0x03
404
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 2] == 0x03
405
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 3] == 0x00
406
0
                            && pu1_strm_buf[ps_stream->u4_strm_buf_offset - 4] == 0x00)
407
0
            {
408
0
                ps_stream->u4_strm_buf_offset -= 1;
409
0
            }
410
            /* previous byte carry add will not result in overflow to        */
411
            /* u4_strm_buf_offset - 2 as we track 0xff as outstanding bytes  */
412
0
            pu1_strm_buf[ps_stream->u4_strm_buf_offset - 1] += carry;
413
0
            ps_stream->i4_zero_bytes_run = 0;
414
0
        }
415
416
        /*        Insert outstanding bytes (if any)         */
417
0
        while (u4_out_standing_bytes)
418
0
        {
419
0
            UWORD8 u1_0_or_ff = carry ? 0 : 0xFF;
420
421
0
            status |= ih264e_put_byte_epb(ps_stream, u1_0_or_ff);
422
423
0
            u4_out_standing_bytes--;
424
0
        }
425
0
        ps_cab_enc_env->u4_out_standing_bytes = 0;
426
427
        /*        Insert the leading byte                   */
428
0
        lead_byte &= 0xFF;
429
0
        status |= ih264e_put_byte_epb(ps_stream, lead_byte);
430
0
    }
431
0
    return status;
432
0
}
433
434
/**
435
******************************************************************************
436
*
437
* @brief Codes a bin based on probablilty and mps packed context model
438
*
439
* @par   Description
440
*  1. Apart from encoding bin, context model is updated as per state transition
441
*  2. Range and Low renormalization is done based on bin and original state
442
*  3. After renorm bistream is updated (if required)
443
*
444
* @param[in]   ps_cabac
445
*  pointer to cabac context (handle)
446
*
447
* @param[in]   bin
448
*  bin(boolean) to be encoded
449
*
450
* @param[in]  pu1_bin_ctxts
451
*  index of cabac context model containing pState[bits 5-0] | MPS[bit6]
452
*
453
*  @return none
454
*
455
******************************************************************************
456
*/
457
void ih264e_cabac_encode_bin(cabac_ctxt_t *ps_cabac, WORD32 bin,
458
                             bin_ctxt_model *pu1_bin_ctxts)
459
0
{
460
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac->s_cab_enc_env);
461
0
    UWORD32 u4_range = ps_cab_enc_env->u4_code_int_range;
462
0
    UWORD32 u4_low = ps_cab_enc_env->u4_code_int_low;
463
0
    UWORD32 u4_rlps;
464
0
    UWORD8 state_mps = (*pu1_bin_ctxts) & 0x3F;
465
0
    UWORD8 u1_mps = !!((*pu1_bin_ctxts) & (0x40));
466
0
    WORD32 shift;
467
0
    UWORD32 u4_table_val;
468
469
    /* Sanity checks */
470
0
    ASSERT((bin == 0) || (bin == 1));
471
0
    ASSERT((u4_range >= 256) && (u4_range < 512));
472
473
    /* Get the lps range from LUT based on quantized range and state */
474
0
    u4_table_val= gau4_ih264_cabac_table[state_mps][(u4_range >> 6) & 0x3];
475
0
    u4_rlps = u4_table_val & 0xFF;
476
0
    u4_range -= u4_rlps;
477
478
    /* check if bin is mps or lps */
479
0
    if (u1_mps ^ bin)
480
0
    {
481
        /* lps path;  L= L + R; R = RLPS */
482
0
        u4_low += u4_range;
483
0
        u4_range = u4_rlps;
484
0
        if (state_mps == 0)
485
0
        {
486
            /* MPS(CtxIdx) = 1 - MPS(CtxIdx) */
487
0
            u1_mps = 1 - u1_mps;
488
0
        } /* update the context model from state transition LUT */
489
490
0
        state_mps =  (u4_table_val >> 15) & 0x3F;
491
0
    }
492
0
    else
493
0
    { /* update the context model from state transition LUT */
494
0
        state_mps =  (u4_table_val >> 8) & 0x3F;
495
0
    }
496
497
0
    (*pu1_bin_ctxts) = (u1_mps << 6) | state_mps;
498
499
    /*****************************************************************/
500
    /* Renormalization; calculate bits generated based on range(R)   */
501
    /* Note : 6 <= R < 512; R is 2 only for terminating encode       */
502
    /*****************************************************************/
503
0
    GETRANGE(shift, u4_range);
504
0
    shift   = 9 - shift;
505
0
    u4_low   <<= shift;
506
0
    u4_range <<= shift;
507
508
    /* bits to be inserted in the bitstream */
509
0
    ps_cab_enc_env->u4_bits_gen += shift;
510
0
    ps_cab_enc_env->u4_code_int_range = u4_range;
511
0
    ps_cab_enc_env->u4_code_int_low   = u4_low;
512
513
    /* generate stream when a byte is ready */
514
0
    if (ps_cab_enc_env->u4_bits_gen > CABAC_BITS)
515
0
    {
516
0
        ih264e_cabac_put_byte(ps_cabac);
517
0
    }
518
0
}
519
520
/**
521
*******************************************************************************
522
*
523
* @brief Encoding process for a binary decision: implements encoding process of
524
*  a decision as defined in 9.3.4.2. This function encodes multiple bins, of a
525
*  symbol. Implements flowchart Figure 9-7( ITU_T_H264-201402)
526
*
527
* @param[in] u4_bins
528
*  array of bin values
529
*
530
* @param[in] i1_bins_len
531
*  Length of bins, maximum 32
532
*
533
* @param[in] u4_ctx_inc
534
*  CtxInc, byte0- bin0, byte1-bin1 ..
535
*
536
* @param[in] i1_valid_len
537
*  valid length of bins, after that CtxInc is constant
538
*
539
* @param[in] pu1_bin_ctxt_type
540
*  Pointer to binary contexts
541
*
542
* @param[in] ps_cabac
543
*  Pointer to cabac_context_structure
544
*
545
* @returns none
546
*
547
* @remarks none
548
*
549
*******************************************************************************
550
*/
551
void ih264e_encode_decision_bins(UWORD32 u4_bins, WORD8 i1_bins_len,
552
                                 UWORD32 u4_ctx_inc, WORD8 i1_valid_len,
553
                                 bin_ctxt_model *pu1_bin_ctxt_type,
554
                                 cabac_ctxt_t *ps_cabac)
555
0
{
556
0
    WORD8 i;
557
0
    UWORD8 u1_ctx_inc, u1_bin;
558
559
0
    for (i = 0; i < i1_bins_len; i++)
560
0
    {
561
0
        u1_bin = (u4_bins & 0x01);
562
0
        u4_bins = u4_bins >> 1;
563
0
        u1_ctx_inc = u4_ctx_inc & 0x0f;
564
0
        if (i < i1_valid_len)
565
0
            u4_ctx_inc = u4_ctx_inc >> 4;
566
        /* Encode the bin */
567
0
        ih264e_cabac_encode_bin(ps_cabac, u1_bin,
568
0
                                pu1_bin_ctxt_type + u1_ctx_inc);
569
0
    }
570
0
}
571
572
/**
573
*******************************************************************************
574
* @brief
575
*  Encoding process for a binary decision before termination:Encoding process
576
*  of a termination(9.3.4.5:ITU_T_H264-201402). Explained in flowchart 9-11.
577
*
578
* @param[in] ps_cabac
579
*  Pointer to cabac structure
580
*
581
* @param[in] term_bin
582
*  Symbol value, end of slice or not, term_bin is binary
583
*
584
* @returns none
585
*
586
* @remarks none
587
*
588
*******************************************************************************
589
*/
590
void ih264e_cabac_encode_terminate(cabac_ctxt_t *ps_cabac, WORD32 term_bin)
591
0
{
592
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac->s_cab_enc_env);
593
0
    UWORD32 u4_range = ps_cab_enc_env->u4_code_int_range;
594
0
    UWORD32 u4_low = ps_cab_enc_env->u4_code_int_low;
595
0
    UWORD32 u4_rlps;
596
0
    WORD32 shift;
597
598
    /* Sanity checks */
599
0
    ASSERT((u4_range >= 256) && (u4_range < 512));
600
0
    ASSERT((term_bin == 0) || (term_bin == 1));
601
602
    /*  term_bin = 1 has lps range = 2 */
603
0
    u4_rlps = 2;
604
0
    u4_range -= u4_rlps;
605
606
    /* if terminate L is incremented by curR and R=2 */
607
0
    if (term_bin)
608
0
    {
609
        /* lps path;  L= L + R; R = RLPS */
610
0
        u4_low += u4_range;
611
0
        u4_range = u4_rlps;
612
0
    }
613
614
    /*****************************************************************/
615
    /* Renormalization; calculate bits generated based on range(R)   */
616
    /* Note : 6 <= R < 512; R is 2 only for terminating encode       */
617
    /*****************************************************************/
618
0
    GETRANGE(shift, u4_range);
619
0
    shift = 9 - shift;
620
0
    u4_low <<= shift;
621
0
    u4_range <<= shift;
622
623
    /* bits to be inserted in the bitstream */
624
0
    ps_cab_enc_env->u4_bits_gen += shift;
625
0
    ps_cab_enc_env->u4_code_int_range = u4_range;
626
0
    ps_cab_enc_env->u4_code_int_low = u4_low;
627
628
    /* generate stream when a byte is ready */
629
0
    if (ps_cab_enc_env->u4_bits_gen > CABAC_BITS)
630
0
    {
631
0
        ih264e_cabac_put_byte(ps_cabac);
632
0
    }
633
634
0
    if (term_bin)
635
0
    {
636
0
        ih264e_cabac_flush(ps_cabac);
637
0
    }
638
0
}
639
640
/**
641
*******************************************************************************
642
* @brief Bypass encoding process for binary decisions.
643
*  Explained (9.3.4.4 :ITU_T_H264-201402), flowchart 9-10.
644
*
645
* @param[ino]  ps_cabac
646
*  pointer to cabac context (handle)
647
*
648
* @param[in]  bin
649
*  bypass bin(0/1) to be encoded
650
*
651
* @returns none
652
*
653
* @remarks none
654
*
655
*******************************************************************************
656
*/
657
void ih264e_cabac_encode_bypass_bin(cabac_ctxt_t *ps_cabac, WORD32 bin)
658
0
{
659
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac->s_cab_enc_env);
660
0
    UWORD32 u4_range = ps_cab_enc_env->u4_code_int_range;
661
0
    UWORD32 u4_low = ps_cab_enc_env->u4_code_int_low;
662
663
    /* Sanity checks */
664
0
    ASSERT((u4_range >= 256) && (u4_range < 512));
665
0
    ASSERT((bin == 0) || (bin == 1));
666
667
0
    u4_low <<= 1;
668
    /* add range if bin is 1 */
669
0
    if (bin)
670
0
    {
671
0
        u4_low += u4_range;
672
0
    }
673
674
    /* 1 bit to be inserted in the bitstream */
675
0
    ps_cab_enc_env->u4_bits_gen++;
676
0
    ps_cab_enc_env->u4_code_int_low = u4_low;
677
678
    /* generate stream when a byte is ready */
679
0
    if (ps_cab_enc_env->u4_bits_gen > CABAC_BITS)
680
0
    {
681
0
        ih264e_cabac_put_byte(ps_cabac);
682
0
    }
683
0
}
684
685
/**
686
******************************************************************************
687
*
688
* @brief Encodes a series of bypass bins (FLC bypass bins)
689
*
690
* @par   Description
691
*  This function is more optimal than calling ih264e_cabac_encode_bypass_bin()
692
*  in a loop as cabac low, renorm and generating the stream (8bins at a time)
693
*  can be done in one operation
694
*
695
* @param[inout]ps_cabac
696
*  pointer to cabac context (handle)
697
*
698
* @param[in]   u4_bins
699
*  syntax element to be coded (as FLC bins)
700
*
701
* @param[in]   num_bins
702
*  This is the FLC length for u4_sym
703
*
704
* @return none
705
*
706
******************************************************************************
707
*/
708
void ih264e_cabac_encode_bypass_bins(cabac_ctxt_t *ps_cabac, UWORD32 u4_bins,
709
                                     WORD32 num_bins)
710
0
{
711
0
    encoding_envirnoment_t *ps_cab_enc_env = &(ps_cabac->s_cab_enc_env);
712
0
    UWORD32 u4_range = ps_cab_enc_env->u4_code_int_range;
713
0
    WORD32 next_byte;
714
715
    /* Sanity checks */
716
0
    ASSERT((num_bins < 33) && (num_bins > 0));
717
0
    ASSERT((u4_range >= 256) && (u4_range < 512));
718
719
    /* Compute bit always to populate the trace */
720
    /* increment bits generated by num_bins */
721
722
    /* Encode 8bins at a time and put in the bit-stream */
723
0
    while (num_bins > 8)
724
0
    {
725
0
        num_bins -= 8;
726
727
0
        next_byte = (u4_bins >> (num_bins)) & 0xff;
728
729
        /*  L = (L << 8) +  (R * next_byte) */
730
0
        ps_cab_enc_env->u4_code_int_low <<= 8;
731
0
        ps_cab_enc_env->u4_code_int_low += (next_byte * u4_range);
732
0
        ps_cab_enc_env->u4_bits_gen += 8;
733
734
0
        if (ps_cab_enc_env->u4_bits_gen > CABAC_BITS)
735
0
        {
736
            /*  insert the leading byte of low into stream */
737
0
            ih264e_cabac_put_byte(ps_cabac);
738
0
        }
739
0
    }
740
741
    /* Update low with remaining bins and return */
742
0
    next_byte = (u4_bins & ((1 << num_bins) - 1));
743
744
0
    ps_cab_enc_env->u4_code_int_low <<= num_bins;
745
0
    ps_cab_enc_env->u4_code_int_low += (next_byte * u4_range);
746
0
    ps_cab_enc_env->u4_bits_gen += num_bins;
747
748
0
    if (ps_cab_enc_env->u4_bits_gen > CABAC_BITS)
749
0
    {
750
        /*  insert the leading byte of low into stream */
751
0
        ih264e_cabac_put_byte(ps_cabac);
752
0
    }
753
0
}