Coverage Report

Created: 2025-11-16 07:20

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/opus/silk/NSQ_del_dec.c
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Source
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/***********************************************************************
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Copyright (c) 2006-2011, Skype Limited. All rights reserved.
3
Redistribution and use in source and binary forms, with or without
4
modification, are permitted provided that the following conditions
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are met:
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- Redistributions of source code must retain the above copyright notice,
7
this list of conditions and the following disclaimer.
8
- Redistributions in binary form must reproduce the above copyright
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notice, this list of conditions and the following disclaimer in the
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documentation and/or other materials provided with the distribution.
11
- Neither the name of Internet Society, IETF or IETF Trust, nor the
12
names of specific contributors, may be used to endorse or promote
13
products derived from this software without specific prior written
14
permission.
15
THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
16
AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17
IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18
ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
19
LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
20
CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
21
SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
22
INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
23
CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
24
ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
25
POSSIBILITY OF SUCH DAMAGE.
26
***********************************************************************/
27
28
#ifdef HAVE_CONFIG_H
29
#include "config.h"
30
#endif
31
32
#include "main.h"
33
#include "stack_alloc.h"
34
#include "NSQ.h"
35
36
37
typedef struct {
38
    opus_int32 sLPC_Q14[ MAX_SUB_FRAME_LENGTH + NSQ_LPC_BUF_LENGTH ];
39
    opus_int32 RandState[ DECISION_DELAY ];
40
    opus_int32 Q_Q10[     DECISION_DELAY ];
41
    opus_int32 Xq_Q14[    DECISION_DELAY ];
42
    opus_int32 Pred_Q15[  DECISION_DELAY ];
43
    opus_int32 Shape_Q14[ DECISION_DELAY ];
44
    opus_int32 sAR2_Q14[ MAX_SHAPE_LPC_ORDER ];
45
    opus_int32 LF_AR_Q14;
46
    opus_int32 Diff_Q14;
47
    opus_int32 Seed;
48
    opus_int32 SeedInit;
49
    opus_int32 RD_Q10;
50
} NSQ_del_dec_struct;
51
52
typedef struct {
53
    opus_int32 Q_Q10;
54
    opus_int32 RD_Q10;
55
    opus_int32 xq_Q14;
56
    opus_int32 LF_AR_Q14;
57
    opus_int32 Diff_Q14;
58
    opus_int32 sLTP_shp_Q14;
59
    opus_int32 LPC_exc_Q14;
60
} NSQ_sample_struct;
61
62
typedef NSQ_sample_struct  NSQ_sample_pair[ 2 ];
63
64
static OPUS_INLINE void silk_nsq_del_dec_scale_states(
65
    const silk_encoder_state *psEncC,               /* I    Encoder State                       */
66
    silk_nsq_state      *NSQ,                       /* I/O  NSQ state                           */
67
    NSQ_del_dec_struct  psDelDec[],                 /* I/O  Delayed decision states             */
68
    const opus_int16    x16[],                      /* I    Input                               */
69
    opus_int32          x_sc_Q10[],                 /* O    Input scaled with 1/Gain in Q10     */
70
    const opus_int16    sLTP[],                     /* I    Re-whitened LTP state in Q0         */
71
    opus_int32          sLTP_Q15[],                 /* O    LTP state matching scaled input     */
72
    opus_int            subfr,                      /* I    Subframe number                     */
73
    opus_int            nStatesDelayedDecision,     /* I    Number of del dec states            */
74
    const opus_int      LTP_scale_Q14,              /* I    LTP state scaling                   */
75
    const opus_int32    Gains_Q16[ MAX_NB_SUBFR ],  /* I                                        */
76
    const opus_int      pitchL[ MAX_NB_SUBFR ],     /* I    Pitch lag                           */
77
    const opus_int      signal_type,                /* I    Signal type                         */
78
    const opus_int      decisionDelay               /* I    Decision delay                      */
79
);
80
81
/******************************************/
82
/* Noise shape quantizer for one subframe */
83
/******************************************/
84
static OPUS_INLINE void silk_noise_shape_quantizer_del_dec(
85
    silk_nsq_state      *NSQ,                   /* I/O  NSQ state                           */
86
    NSQ_del_dec_struct  psDelDec[],             /* I/O  Delayed decision states             */
87
    opus_int            signalType,             /* I    Signal type                         */
88
    const opus_int32    x_Q10[],                /* I                                        */
89
    opus_int8           pulses[],               /* O                                        */
90
    opus_int16          xq[],                   /* O                                        */
91
    opus_int32          sLTP_Q15[],             /* I/O  LTP filter state                    */
92
    opus_int32          delayedGain_Q10[],      /* I/O  Gain delay buffer                   */
93
    const opus_int16    a_Q12[],                /* I    Short term prediction coefs         */
94
    const opus_int16    b_Q14[],                /* I    Long term prediction coefs          */
95
    const opus_int16    AR_shp_Q13[],           /* I    Noise shaping coefs                 */
96
    opus_int            lag,                    /* I    Pitch lag                           */
97
    opus_int32          HarmShapeFIRPacked_Q14, /* I                                        */
98
    opus_int            Tilt_Q14,               /* I    Spectral tilt                       */
99
    opus_int32          LF_shp_Q14,             /* I                                        */
100
    opus_int32          Gain_Q16,               /* I                                        */
101
    opus_int            Lambda_Q10,             /* I                                        */
102
    opus_int            offset_Q10,             /* I                                        */
103
    opus_int            length,                 /* I    Input length                        */
104
    opus_int            subfr,                  /* I    Subframe number                     */
105
    opus_int            shapingLPCOrder,        /* I    Shaping LPC filter order            */
106
    opus_int            predictLPCOrder,        /* I    Prediction filter order             */
107
    opus_int            warping_Q16,            /* I                                        */
108
    opus_int            nStatesDelayedDecision, /* I    Number of states in decision tree   */
109
    opus_int            *smpl_buf_idx,          /* I/O  Index to newest samples in buffers  */
110
    opus_int            decisionDelay,          /* I                                        */
111
    int                 arch                    /* I                                        */
112
);
113
114
void silk_NSQ_del_dec_c(
115
    const silk_encoder_state    *psEncC,                                      /* I    Encoder State                   */
116
    silk_nsq_state              *NSQ,                                         /* I/O  NSQ state                       */
117
    SideInfoIndices             *psIndices,                                   /* I/O  Quantization Indices            */
118
    const opus_int16            x16[],                                        /* I    Input                           */
119
    opus_int8                   pulses[],                                     /* O    Quantized pulse signal          */
120
    const opus_int16            *PredCoef_Q12,                                /* I    Short term prediction coefs     */
121
    const opus_int16            LTPCoef_Q14[ LTP_ORDER * MAX_NB_SUBFR ],      /* I    Long term prediction coefs      */
122
    const opus_int16            AR_Q13[ MAX_NB_SUBFR * MAX_SHAPE_LPC_ORDER ], /* I    Noise shaping coefs             */
123
    const opus_int              HarmShapeGain_Q14[ MAX_NB_SUBFR ],            /* I    Long term shaping coefs         */
124
    const opus_int              Tilt_Q14[ MAX_NB_SUBFR ],                     /* I    Spectral tilt                   */
125
    const opus_int32            LF_shp_Q14[ MAX_NB_SUBFR ],                   /* I    Low frequency shaping coefs     */
126
    const opus_int32            Gains_Q16[ MAX_NB_SUBFR ],                    /* I    Quantization step sizes         */
127
    const opus_int              pitchL[ MAX_NB_SUBFR ],                       /* I    Pitch lags                      */
128
    const opus_int              Lambda_Q10,                                   /* I    Rate/distortion tradeoff        */
129
    const opus_int              LTP_scale_Q14                                 /* I    LTP state scaling               */
130
)
131
0
{
132
0
    opus_int            i, k, lag, start_idx, LSF_interpolation_flag, Winner_ind, subfr;
133
0
    opus_int            last_smple_idx, smpl_buf_idx, decisionDelay;
134
0
    const opus_int16    *A_Q12, *B_Q14, *AR_shp_Q13;
135
0
    opus_int16          *pxq;
136
0
    VARDECL( opus_int32, sLTP_Q15 );
137
0
    VARDECL( opus_int16, sLTP );
138
0
    opus_int32          HarmShapeFIRPacked_Q14;
139
0
    opus_int            offset_Q10;
140
0
    opus_int32          RDmin_Q10, Gain_Q10;
141
0
    VARDECL( opus_int32, x_sc_Q10 );
142
0
    VARDECL( opus_int32, delayedGain_Q10 );
143
0
    VARDECL( NSQ_del_dec_struct, psDelDec );
144
0
    NSQ_del_dec_struct  *psDD;
145
0
    SAVE_STACK;
146
147
    /* Set unvoiced lag to the previous one, overwrite later for voiced */
148
0
    lag = NSQ->lagPrev;
149
150
0
    silk_assert( NSQ->prev_gain_Q16 != 0 );
151
152
    /* Initialize delayed decision states */
153
0
    ALLOC( psDelDec, psEncC->nStatesDelayedDecision, NSQ_del_dec_struct );
154
0
    silk_memset( psDelDec, 0, psEncC->nStatesDelayedDecision * sizeof( NSQ_del_dec_struct ) );
155
0
    for( k = 0; k < psEncC->nStatesDelayedDecision; k++ ) {
156
0
        psDD                 = &psDelDec[ k ];
157
0
        psDD->Seed           = ( k + psIndices->Seed ) & 3;
158
0
        psDD->SeedInit       = psDD->Seed;
159
0
        psDD->RD_Q10         = 0;
160
0
        psDD->LF_AR_Q14      = NSQ->sLF_AR_shp_Q14;
161
0
        psDD->Diff_Q14       = NSQ->sDiff_shp_Q14;
162
0
        psDD->Shape_Q14[ 0 ] = NSQ->sLTP_shp_Q14[ psEncC->ltp_mem_length - 1 ];
163
0
        silk_memcpy( psDD->sLPC_Q14, NSQ->sLPC_Q14, NSQ_LPC_BUF_LENGTH * sizeof( opus_int32 ) );
164
0
        silk_memcpy( psDD->sAR2_Q14, NSQ->sAR2_Q14, sizeof( NSQ->sAR2_Q14 ) );
165
0
    }
166
167
0
    offset_Q10   = silk_Quantization_Offsets_Q10[ psIndices->signalType >> 1 ][ psIndices->quantOffsetType ];
168
0
    smpl_buf_idx = 0; /* index of oldest samples */
169
170
0
    decisionDelay = silk_min_int( DECISION_DELAY, psEncC->subfr_length );
171
172
    /* For voiced frames limit the decision delay to lower than the pitch lag */
173
0
    if( psIndices->signalType == TYPE_VOICED ) {
174
0
        for( k = 0; k < psEncC->nb_subfr; k++ ) {
175
0
            decisionDelay = silk_min_int( decisionDelay, pitchL[ k ] - LTP_ORDER / 2 - 1 );
176
0
        }
177
0
    } else {
178
0
        if( lag > 0 ) {
179
0
            decisionDelay = silk_min_int( decisionDelay, lag - LTP_ORDER / 2 - 1 );
180
0
        }
181
0
    }
182
183
0
    if( psIndices->NLSFInterpCoef_Q2 == 4 ) {
184
0
        LSF_interpolation_flag = 0;
185
0
    } else {
186
0
        LSF_interpolation_flag = 1;
187
0
    }
188
189
0
    ALLOC( sLTP_Q15, psEncC->ltp_mem_length + psEncC->frame_length, opus_int32 );
190
0
    ALLOC( sLTP, psEncC->ltp_mem_length + psEncC->frame_length, opus_int16 );
191
0
    ALLOC( x_sc_Q10, psEncC->subfr_length, opus_int32 );
192
0
    ALLOC( delayedGain_Q10, DECISION_DELAY, opus_int32 );
193
    /* Set up pointers to start of sub frame */
194
0
    pxq                   = &NSQ->xq[ psEncC->ltp_mem_length ];
195
0
    NSQ->sLTP_shp_buf_idx = psEncC->ltp_mem_length;
196
0
    NSQ->sLTP_buf_idx     = psEncC->ltp_mem_length;
197
0
    subfr = 0;
198
0
    for( k = 0; k < psEncC->nb_subfr; k++ ) {
199
0
        A_Q12      = &PredCoef_Q12[ ( ( k >> 1 ) | ( 1 - LSF_interpolation_flag ) ) * MAX_LPC_ORDER ];
200
0
        B_Q14      = &LTPCoef_Q14[ k * LTP_ORDER           ];
201
0
        AR_shp_Q13 = &AR_Q13[     k * MAX_SHAPE_LPC_ORDER ];
202
203
        /* Noise shape parameters */
204
0
        silk_assert( HarmShapeGain_Q14[ k ] >= 0 );
205
0
        HarmShapeFIRPacked_Q14  =                          silk_RSHIFT( HarmShapeGain_Q14[ k ], 2 );
206
0
        HarmShapeFIRPacked_Q14 |= silk_LSHIFT( (opus_int32)silk_RSHIFT( HarmShapeGain_Q14[ k ], 1 ), 16 );
207
208
0
        NSQ->rewhite_flag = 0;
209
0
        if( psIndices->signalType == TYPE_VOICED ) {
210
            /* Voiced */
211
0
            lag = pitchL[ k ];
212
213
            /* Re-whitening */
214
0
            if( ( k & ( 3 - silk_LSHIFT( LSF_interpolation_flag, 1 ) ) ) == 0 ) {
215
0
                if( k == 2 ) {
216
                    /* RESET DELAYED DECISIONS */
217
                    /* Find winner */
218
0
                    RDmin_Q10 = psDelDec[ 0 ].RD_Q10;
219
0
                    Winner_ind = 0;
220
0
                    for( i = 1; i < psEncC->nStatesDelayedDecision; i++ ) {
221
0
                        if( psDelDec[ i ].RD_Q10 < RDmin_Q10 ) {
222
0
                            RDmin_Q10 = psDelDec[ i ].RD_Q10;
223
0
                            Winner_ind = i;
224
0
                        }
225
0
                    }
226
0
                    for( i = 0; i < psEncC->nStatesDelayedDecision; i++ ) {
227
0
                        if( i != Winner_ind ) {
228
0
                            psDelDec[ i ].RD_Q10 += ( silk_int32_MAX >> 4 );
229
0
                            silk_assert( psDelDec[ i ].RD_Q10 >= 0 );
230
0
                        }
231
0
                    }
232
233
                    /* Copy final part of signals from winner state to output and long-term filter states */
234
0
                    psDD = &psDelDec[ Winner_ind ];
235
0
                    last_smple_idx = smpl_buf_idx + decisionDelay;
236
0
                    for( i = 0; i < decisionDelay; i++ ) {
237
0
                        last_smple_idx = ( last_smple_idx - 1 ) % DECISION_DELAY;
238
0
                        if( last_smple_idx < 0 ) last_smple_idx += DECISION_DELAY;
239
0
                        pulses[   i - decisionDelay ] = (opus_int8)silk_RSHIFT_ROUND( psDD->Q_Q10[ last_smple_idx ], 10 );
240
0
                        pxq[ i - decisionDelay ] = (opus_int16)silk_SAT16( silk_RSHIFT_ROUND(
241
0
                            silk_SMULWW( psDD->Xq_Q14[ last_smple_idx ], Gains_Q16[ 1 ] ), 14 ) );
242
0
                        NSQ->sLTP_shp_Q14[ NSQ->sLTP_shp_buf_idx - decisionDelay + i ] = psDD->Shape_Q14[ last_smple_idx ];
243
0
                    }
244
245
0
                    subfr = 0;
246
0
                }
247
248
                /* Rewhiten with new A coefs */
249
0
                start_idx = psEncC->ltp_mem_length - lag - psEncC->predictLPCOrder - LTP_ORDER / 2;
250
0
                celt_assert( start_idx > 0 );
251
252
0
                silk_LPC_analysis_filter( &sLTP[ start_idx ], &NSQ->xq[ start_idx + k * psEncC->subfr_length ],
253
0
                    A_Q12, psEncC->ltp_mem_length - start_idx, psEncC->predictLPCOrder, psEncC->arch );
254
255
0
                NSQ->sLTP_buf_idx = psEncC->ltp_mem_length;
256
0
                NSQ->rewhite_flag = 1;
257
0
            }
258
0
        }
259
260
0
        silk_nsq_del_dec_scale_states( psEncC, NSQ, psDelDec, x16, x_sc_Q10, sLTP, sLTP_Q15, k,
261
0
            psEncC->nStatesDelayedDecision, LTP_scale_Q14, Gains_Q16, pitchL, psIndices->signalType, decisionDelay );
262
263
0
        silk_noise_shape_quantizer_del_dec( NSQ, psDelDec, psIndices->signalType, x_sc_Q10, pulses, pxq, sLTP_Q15,
264
0
            delayedGain_Q10, A_Q12, B_Q14, AR_shp_Q13, lag, HarmShapeFIRPacked_Q14, Tilt_Q14[ k ], LF_shp_Q14[ k ],
265
0
            Gains_Q16[ k ], Lambda_Q10, offset_Q10, psEncC->subfr_length, subfr++, psEncC->shapingLPCOrder,
266
0
            psEncC->predictLPCOrder, psEncC->warping_Q16, psEncC->nStatesDelayedDecision, &smpl_buf_idx, decisionDelay, psEncC->arch );
267
268
0
        x16    += psEncC->subfr_length;
269
0
        pulses += psEncC->subfr_length;
270
0
        pxq    += psEncC->subfr_length;
271
0
    }
272
273
    /* Find winner */
274
0
    RDmin_Q10 = psDelDec[ 0 ].RD_Q10;
275
0
    Winner_ind = 0;
276
0
    for( k = 1; k < psEncC->nStatesDelayedDecision; k++ ) {
277
0
        if( psDelDec[ k ].RD_Q10 < RDmin_Q10 ) {
278
0
            RDmin_Q10 = psDelDec[ k ].RD_Q10;
279
0
            Winner_ind = k;
280
0
        }
281
0
    }
282
283
    /* Copy final part of signals from winner state to output and long-term filter states */
284
0
    psDD = &psDelDec[ Winner_ind ];
285
0
    psIndices->Seed = psDD->SeedInit;
286
0
    last_smple_idx = smpl_buf_idx + decisionDelay;
287
0
    Gain_Q10 = silk_RSHIFT32( Gains_Q16[ psEncC->nb_subfr - 1 ], 6 );
288
0
    for( i = 0; i < decisionDelay; i++ ) {
289
0
        last_smple_idx = ( last_smple_idx - 1 ) % DECISION_DELAY;
290
0
        if( last_smple_idx < 0 ) last_smple_idx += DECISION_DELAY;
291
292
0
        pulses[   i - decisionDelay ] = (opus_int8)silk_RSHIFT_ROUND( psDD->Q_Q10[ last_smple_idx ], 10 );
293
0
        pxq[ i - decisionDelay ] = (opus_int16)silk_SAT16( silk_RSHIFT_ROUND(
294
0
            silk_SMULWW( psDD->Xq_Q14[ last_smple_idx ], Gain_Q10 ), 8 ) );
295
0
        NSQ->sLTP_shp_Q14[ NSQ->sLTP_shp_buf_idx - decisionDelay + i ] = psDD->Shape_Q14[ last_smple_idx ];
296
0
    }
297
0
    silk_memcpy( NSQ->sLPC_Q14, &psDD->sLPC_Q14[ psEncC->subfr_length ], NSQ_LPC_BUF_LENGTH * sizeof( opus_int32 ) );
298
0
    silk_memcpy( NSQ->sAR2_Q14, psDD->sAR2_Q14, sizeof( psDD->sAR2_Q14 ) );
299
300
    /* Update states */
301
0
    NSQ->sLF_AR_shp_Q14 = psDD->LF_AR_Q14;
302
0
    NSQ->sDiff_shp_Q14  = psDD->Diff_Q14;
303
0
    NSQ->lagPrev        = pitchL[ psEncC->nb_subfr - 1 ];
304
305
    /* Save quantized speech signal */
306
0
    silk_memmove( NSQ->xq,           &NSQ->xq[           psEncC->frame_length ], psEncC->ltp_mem_length * sizeof( opus_int16 ) );
307
0
    silk_memmove( NSQ->sLTP_shp_Q14, &NSQ->sLTP_shp_Q14[ psEncC->frame_length ], psEncC->ltp_mem_length * sizeof( opus_int32 ) );
308
0
    RESTORE_STACK;
309
0
}
310
311
/******************************************/
312
/* Noise shape quantizer for one subframe */
313
/******************************************/
314
#ifndef OVERRIDE_silk_noise_shape_quantizer_del_dec
315
static OPUS_INLINE void silk_noise_shape_quantizer_del_dec(
316
    silk_nsq_state      *NSQ,                   /* I/O  NSQ state                           */
317
    NSQ_del_dec_struct  psDelDec[],             /* I/O  Delayed decision states             */
318
    opus_int            signalType,             /* I    Signal type                         */
319
    const opus_int32    x_Q10[],                /* I                                        */
320
    opus_int8           pulses[],               /* O                                        */
321
    opus_int16          xq[],                   /* O                                        */
322
    opus_int32          sLTP_Q15[],             /* I/O  LTP filter state                    */
323
    opus_int32          delayedGain_Q10[],      /* I/O  Gain delay buffer                   */
324
    const opus_int16    a_Q12[],                /* I    Short term prediction coefs         */
325
    const opus_int16    b_Q14[],                /* I    Long term prediction coefs          */
326
    const opus_int16    AR_shp_Q13[],           /* I    Noise shaping coefs                 */
327
    opus_int            lag,                    /* I    Pitch lag                           */
328
    opus_int32          HarmShapeFIRPacked_Q14, /* I                                        */
329
    opus_int            Tilt_Q14,               /* I    Spectral tilt                       */
330
    opus_int32          LF_shp_Q14,             /* I                                        */
331
    opus_int32          Gain_Q16,               /* I                                        */
332
    opus_int            Lambda_Q10,             /* I                                        */
333
    opus_int            offset_Q10,             /* I                                        */
334
    opus_int            length,                 /* I    Input length                        */
335
    opus_int            subfr,                  /* I    Subframe number                     */
336
    opus_int            shapingLPCOrder,        /* I    Shaping LPC filter order            */
337
    opus_int            predictLPCOrder,        /* I    Prediction filter order             */
338
    opus_int            warping_Q16,            /* I                                        */
339
    opus_int            nStatesDelayedDecision, /* I    Number of states in decision tree   */
340
    opus_int            *smpl_buf_idx,          /* I/O  Index to newest samples in buffers  */
341
    opus_int            decisionDelay,          /* I                                        */
342
    int                 arch                    /* I                                        */
343
)
344
0
{
345
0
    opus_int     i, j, k, Winner_ind, RDmin_ind, RDmax_ind, last_smple_idx;
346
0
    opus_int32   Winner_rand_state;
347
0
    opus_int32   LTP_pred_Q14, LPC_pred_Q14, n_AR_Q14, n_LTP_Q14;
348
0
    opus_int32   n_LF_Q14, r_Q10, rr_Q10, rd1_Q10, rd2_Q10, RDmin_Q10, RDmax_Q10;
349
0
    opus_int32   q1_Q0, q1_Q10, q2_Q10, exc_Q14, LPC_exc_Q14, xq_Q14, Gain_Q10;
350
0
    opus_int32   tmp1, tmp2, sLF_AR_shp_Q14;
351
0
    opus_int32   *pred_lag_ptr, *shp_lag_ptr, *psLPC_Q14;
352
#ifdef silk_short_prediction_create_arch_coef
353
    opus_int32   a_Q12_arch[MAX_LPC_ORDER];
354
#endif
355
356
0
    VARDECL( NSQ_sample_pair, psSampleState );
357
0
    NSQ_del_dec_struct *psDD;
358
0
    NSQ_sample_struct  *psSS;
359
0
    SAVE_STACK;
360
361
0
    celt_assert( nStatesDelayedDecision > 0 );
362
0
    ALLOC( psSampleState, nStatesDelayedDecision, NSQ_sample_pair );
363
364
0
    shp_lag_ptr  = &NSQ->sLTP_shp_Q14[ NSQ->sLTP_shp_buf_idx - lag + HARM_SHAPE_FIR_TAPS / 2 ];
365
0
    pred_lag_ptr = &sLTP_Q15[ NSQ->sLTP_buf_idx - lag + LTP_ORDER / 2 ];
366
0
    Gain_Q10     = silk_RSHIFT( Gain_Q16, 6 );
367
368
#ifdef silk_short_prediction_create_arch_coef
369
    silk_short_prediction_create_arch_coef(a_Q12_arch, a_Q12, predictLPCOrder);
370
#endif
371
372
0
    for( i = 0; i < length; i++ ) {
373
        /* Perform common calculations used in all states */
374
375
        /* Long-term prediction */
376
0
        if( signalType == TYPE_VOICED ) {
377
            /* Unrolled loop */
378
            /* Avoids introducing a bias because silk_SMLAWB() always rounds to -inf */
379
0
            LTP_pred_Q14 = 2;
380
0
            LTP_pred_Q14 = silk_SMLAWB( LTP_pred_Q14, pred_lag_ptr[  0 ], b_Q14[ 0 ] );
381
0
            LTP_pred_Q14 = silk_SMLAWB( LTP_pred_Q14, pred_lag_ptr[ -1 ], b_Q14[ 1 ] );
382
0
            LTP_pred_Q14 = silk_SMLAWB( LTP_pred_Q14, pred_lag_ptr[ -2 ], b_Q14[ 2 ] );
383
0
            LTP_pred_Q14 = silk_SMLAWB( LTP_pred_Q14, pred_lag_ptr[ -3 ], b_Q14[ 3 ] );
384
0
            LTP_pred_Q14 = silk_SMLAWB( LTP_pred_Q14, pred_lag_ptr[ -4 ], b_Q14[ 4 ] );
385
0
            LTP_pred_Q14 = silk_LSHIFT( LTP_pred_Q14, 1 );                          /* Q13 -> Q14 */
386
0
            pred_lag_ptr++;
387
0
        } else {
388
0
            LTP_pred_Q14 = 0;
389
0
        }
390
391
        /* Long-term shaping */
392
0
        if( lag > 0 ) {
393
            /* Symmetric, packed FIR coefficients */
394
0
            n_LTP_Q14 = silk_SMULWB( silk_ADD_SAT32( shp_lag_ptr[ 0 ], shp_lag_ptr[ -2 ] ), HarmShapeFIRPacked_Q14 );
395
0
            n_LTP_Q14 = silk_SMLAWT( n_LTP_Q14, shp_lag_ptr[ -1 ], HarmShapeFIRPacked_Q14 );
396
0
            n_LTP_Q14 = silk_SUB_LSHIFT32( LTP_pred_Q14, n_LTP_Q14, 2 );            /* Q12 -> Q14 */
397
0
            shp_lag_ptr++;
398
0
        } else {
399
0
            n_LTP_Q14 = 0;
400
0
        }
401
402
0
        for( k = 0; k < nStatesDelayedDecision; k++ ) {
403
            /* Delayed decision state */
404
0
            psDD = &psDelDec[ k ];
405
406
            /* Sample state */
407
0
            psSS = psSampleState[ k ];
408
409
            /* Generate dither */
410
0
            psDD->Seed = silk_RAND( psDD->Seed );
411
412
            /* Pointer used in short term prediction and shaping */
413
0
            psLPC_Q14 = &psDD->sLPC_Q14[ NSQ_LPC_BUF_LENGTH - 1 + i ];
414
            /* Short-term prediction */
415
0
            LPC_pred_Q14 = silk_noise_shape_quantizer_short_prediction(psLPC_Q14, a_Q12, a_Q12_arch, predictLPCOrder, arch);
416
0
            LPC_pred_Q14 = silk_LSHIFT( LPC_pred_Q14, 4 );                              /* Q10 -> Q14 */
417
418
            /* Noise shape feedback */
419
0
            celt_assert( ( shapingLPCOrder & 1 ) == 0 );   /* check that order is even */
420
            /* Output of lowpass section */
421
0
            tmp2 = silk_SMLAWB( psDD->Diff_Q14, psDD->sAR2_Q14[ 0 ], warping_Q16 );
422
            /* Output of allpass section */
423
0
            tmp1 = silk_SMLAWB( psDD->sAR2_Q14[ 0 ], silk_SUB32_ovflw(psDD->sAR2_Q14[ 1 ], tmp2), warping_Q16 );
424
0
            psDD->sAR2_Q14[ 0 ] = tmp2;
425
0
            n_AR_Q14 = silk_RSHIFT( shapingLPCOrder, 1 );
426
0
            n_AR_Q14 = silk_SMLAWB( n_AR_Q14, tmp2, AR_shp_Q13[ 0 ] );
427
            /* Loop over allpass sections */
428
0
            for( j = 2; j < shapingLPCOrder; j += 2 ) {
429
                /* Output of allpass section */
430
0
                tmp2 = silk_SMLAWB( psDD->sAR2_Q14[ j - 1 ], silk_SUB32_ovflw(psDD->sAR2_Q14[ j + 0 ], tmp1), warping_Q16 );
431
0
                psDD->sAR2_Q14[ j - 1 ] = tmp1;
432
0
                n_AR_Q14 = silk_SMLAWB( n_AR_Q14, tmp1, AR_shp_Q13[ j - 1 ] );
433
                /* Output of allpass section */
434
0
                tmp1 = silk_SMLAWB( psDD->sAR2_Q14[ j + 0 ], silk_SUB32_ovflw(psDD->sAR2_Q14[ j + 1 ], tmp2), warping_Q16 );
435
0
                psDD->sAR2_Q14[ j + 0 ] = tmp2;
436
0
                n_AR_Q14 = silk_SMLAWB( n_AR_Q14, tmp2, AR_shp_Q13[ j ] );
437
0
            }
438
0
            psDD->sAR2_Q14[ shapingLPCOrder - 1 ] = tmp1;
439
0
            n_AR_Q14 = silk_SMLAWB( n_AR_Q14, tmp1, AR_shp_Q13[ shapingLPCOrder - 1 ] );
440
441
0
            n_AR_Q14 = silk_LSHIFT( n_AR_Q14, 1 );                                      /* Q11 -> Q12 */
442
0
            n_AR_Q14 = silk_SMLAWB( n_AR_Q14, psDD->LF_AR_Q14, Tilt_Q14 );              /* Q12 */
443
0
            n_AR_Q14 = silk_LSHIFT( n_AR_Q14, 2 );                                      /* Q12 -> Q14 */
444
445
0
            n_LF_Q14 = silk_SMULWB( psDD->Shape_Q14[ *smpl_buf_idx ], LF_shp_Q14 );     /* Q12 */
446
0
            n_LF_Q14 = silk_SMLAWT( n_LF_Q14, psDD->LF_AR_Q14, LF_shp_Q14 );            /* Q12 */
447
0
            n_LF_Q14 = silk_LSHIFT( n_LF_Q14, 2 );                                      /* Q12 -> Q14 */
448
449
            /* Input minus prediction plus noise feedback                       */
450
            /* r = x[ i ] - LTP_pred - LPC_pred + n_AR + n_Tilt + n_LF + n_LTP  */
451
0
            tmp1 = silk_ADD_SAT32( n_AR_Q14, n_LF_Q14 );                                /* Q14 */
452
0
            tmp2 = silk_ADD32_ovflw( n_LTP_Q14, LPC_pred_Q14 );                         /* Q13 */
453
0
            tmp1 = silk_SUB_SAT32( tmp2, tmp1 );                                        /* Q13 */
454
0
            tmp1 = silk_RSHIFT_ROUND( tmp1, 4 );                                        /* Q10 */
455
456
0
            r_Q10 = silk_SUB32( x_Q10[ i ], tmp1 );                                     /* residual error Q10 */
457
458
            /* Flip sign depending on dither */
459
0
            if ( psDD->Seed < 0 ) {
460
0
                r_Q10 = -r_Q10;
461
0
            }
462
0
            r_Q10 = silk_LIMIT_32( r_Q10, -(31 << 10), 30 << 10 );
463
464
            /* Find two quantization level candidates and measure their rate-distortion */
465
0
            q1_Q10 = silk_SUB32( r_Q10, offset_Q10 );
466
0
            q1_Q0 = silk_RSHIFT( q1_Q10, 10 );
467
0
            if (Lambda_Q10 > 2048) {
468
                /* For aggressive RDO, the bias becomes more than one pulse. */
469
0
                int rdo_offset = Lambda_Q10/2 - 512;
470
0
                if (q1_Q10 > rdo_offset) {
471
0
                    q1_Q0 = silk_RSHIFT( q1_Q10 - rdo_offset, 10 );
472
0
                } else if (q1_Q10 < -rdo_offset) {
473
0
                    q1_Q0 = silk_RSHIFT( q1_Q10 + rdo_offset, 10 );
474
0
                } else if (q1_Q10 < 0) {
475
0
                    q1_Q0 = -1;
476
0
                } else {
477
0
                    q1_Q0 = 0;
478
0
                }
479
0
            }
480
0
            if( q1_Q0 > 0 ) {
481
0
                q1_Q10  = silk_SUB32( silk_LSHIFT( q1_Q0, 10 ), QUANT_LEVEL_ADJUST_Q10 );
482
0
                q1_Q10  = silk_ADD32( q1_Q10, offset_Q10 );
483
0
                q2_Q10  = silk_ADD32( q1_Q10, 1024 );
484
0
                rd1_Q10 = silk_SMULBB( q1_Q10, Lambda_Q10 );
485
0
                rd2_Q10 = silk_SMULBB( q2_Q10, Lambda_Q10 );
486
0
            } else if( q1_Q0 == 0 ) {
487
0
                q1_Q10  = offset_Q10;
488
0
                q2_Q10  = silk_ADD32( q1_Q10, 1024 - QUANT_LEVEL_ADJUST_Q10 );
489
0
                rd1_Q10 = silk_SMULBB( q1_Q10, Lambda_Q10 );
490
0
                rd2_Q10 = silk_SMULBB( q2_Q10, Lambda_Q10 );
491
0
            } else if( q1_Q0 == -1 ) {
492
0
                q2_Q10  = offset_Q10;
493
0
                q1_Q10  = silk_SUB32( q2_Q10, 1024 - QUANT_LEVEL_ADJUST_Q10 );
494
0
                rd1_Q10 = silk_SMULBB( -q1_Q10, Lambda_Q10 );
495
0
                rd2_Q10 = silk_SMULBB(  q2_Q10, Lambda_Q10 );
496
0
            } else {            /* q1_Q0 < -1 */
497
0
                q1_Q10  = silk_ADD32( silk_LSHIFT( q1_Q0, 10 ), QUANT_LEVEL_ADJUST_Q10 );
498
0
                q1_Q10  = silk_ADD32( q1_Q10, offset_Q10 );
499
0
                q2_Q10  = silk_ADD32( q1_Q10, 1024 );
500
0
                rd1_Q10 = silk_SMULBB( -q1_Q10, Lambda_Q10 );
501
0
                rd2_Q10 = silk_SMULBB( -q2_Q10, Lambda_Q10 );
502
0
            }
503
0
            rr_Q10  = silk_SUB32( r_Q10, q1_Q10 );
504
0
            rd1_Q10 = silk_RSHIFT( silk_SMLABB( rd1_Q10, rr_Q10, rr_Q10 ), 10 );
505
0
            rr_Q10  = silk_SUB32( r_Q10, q2_Q10 );
506
0
            rd2_Q10 = silk_RSHIFT( silk_SMLABB( rd2_Q10, rr_Q10, rr_Q10 ), 10 );
507
508
0
            if( rd1_Q10 < rd2_Q10 ) {
509
0
                psSS[ 0 ].RD_Q10 = silk_ADD32( psDD->RD_Q10, rd1_Q10 );
510
0
                psSS[ 1 ].RD_Q10 = silk_ADD32( psDD->RD_Q10, rd2_Q10 );
511
0
                psSS[ 0 ].Q_Q10  = q1_Q10;
512
0
                psSS[ 1 ].Q_Q10  = q2_Q10;
513
0
            } else {
514
0
                psSS[ 0 ].RD_Q10 = silk_ADD32( psDD->RD_Q10, rd2_Q10 );
515
0
                psSS[ 1 ].RD_Q10 = silk_ADD32( psDD->RD_Q10, rd1_Q10 );
516
0
                psSS[ 0 ].Q_Q10  = q2_Q10;
517
0
                psSS[ 1 ].Q_Q10  = q1_Q10;
518
0
            }
519
520
            /* Update states for best quantization */
521
522
            /* Quantized excitation */
523
0
            exc_Q14 = silk_LSHIFT32( psSS[ 0 ].Q_Q10, 4 );
524
0
            if ( psDD->Seed < 0 ) {
525
0
                exc_Q14 = -exc_Q14;
526
0
            }
527
528
            /* Add predictions */
529
0
            LPC_exc_Q14 = silk_ADD32( exc_Q14, LTP_pred_Q14 );
530
0
            xq_Q14      = silk_ADD32_ovflw( LPC_exc_Q14, LPC_pred_Q14 );
531
532
            /* Update states */
533
0
            psSS[ 0 ].Diff_Q14     = silk_SUB32_ovflw( xq_Q14, silk_LSHIFT32( x_Q10[ i ], 4 ) );
534
0
            sLF_AR_shp_Q14         = silk_SUB32_ovflw( psSS[ 0 ].Diff_Q14, n_AR_Q14 );
535
0
            psSS[ 0 ].sLTP_shp_Q14 = silk_SUB_SAT32( sLF_AR_shp_Q14, n_LF_Q14 );
536
0
            psSS[ 0 ].LF_AR_Q14    = sLF_AR_shp_Q14;
537
0
            psSS[ 0 ].LPC_exc_Q14  = LPC_exc_Q14;
538
0
            psSS[ 0 ].xq_Q14       = xq_Q14;
539
540
            /* Update states for second best quantization */
541
542
            /* Quantized excitation */
543
0
            exc_Q14 = silk_LSHIFT32( psSS[ 1 ].Q_Q10, 4 );
544
0
            if ( psDD->Seed < 0 ) {
545
0
                exc_Q14 = -exc_Q14;
546
0
            }
547
548
            /* Add predictions */
549
0
            LPC_exc_Q14 = silk_ADD32( exc_Q14, LTP_pred_Q14 );
550
0
            xq_Q14      = silk_ADD32_ovflw( LPC_exc_Q14, LPC_pred_Q14 );
551
552
            /* Update states */
553
0
            psSS[ 1 ].Diff_Q14     = silk_SUB32_ovflw( xq_Q14, silk_LSHIFT32( x_Q10[ i ], 4 ) );
554
0
            sLF_AR_shp_Q14         = silk_SUB32_ovflw( psSS[ 1 ].Diff_Q14, n_AR_Q14 );
555
0
            psSS[ 1 ].sLTP_shp_Q14 = silk_SUB_SAT32( sLF_AR_shp_Q14, n_LF_Q14 );
556
0
            psSS[ 1 ].LF_AR_Q14    = sLF_AR_shp_Q14;
557
0
            psSS[ 1 ].LPC_exc_Q14  = LPC_exc_Q14;
558
0
            psSS[ 1 ].xq_Q14       = xq_Q14;
559
0
        }
560
561
0
        *smpl_buf_idx  = ( *smpl_buf_idx - 1 ) % DECISION_DELAY;
562
0
        if( *smpl_buf_idx < 0 ) *smpl_buf_idx += DECISION_DELAY;
563
0
        last_smple_idx = ( *smpl_buf_idx + decisionDelay ) % DECISION_DELAY;
564
565
        /* Find winner */
566
0
        RDmin_Q10 = psSampleState[ 0 ][ 0 ].RD_Q10;
567
0
        Winner_ind = 0;
568
0
        for( k = 1; k < nStatesDelayedDecision; k++ ) {
569
0
            if( psSampleState[ k ][ 0 ].RD_Q10 < RDmin_Q10 ) {
570
0
                RDmin_Q10  = psSampleState[ k ][ 0 ].RD_Q10;
571
0
                Winner_ind = k;
572
0
            }
573
0
        }
574
575
        /* Increase RD values of expired states */
576
0
        Winner_rand_state = psDelDec[ Winner_ind ].RandState[ last_smple_idx ];
577
0
        for( k = 0; k < nStatesDelayedDecision; k++ ) {
578
0
            if( psDelDec[ k ].RandState[ last_smple_idx ] != Winner_rand_state ) {
579
0
                psSampleState[ k ][ 0 ].RD_Q10 = silk_ADD32( psSampleState[ k ][ 0 ].RD_Q10, silk_int32_MAX >> 4 );
580
0
                psSampleState[ k ][ 1 ].RD_Q10 = silk_ADD32( psSampleState[ k ][ 1 ].RD_Q10, silk_int32_MAX >> 4 );
581
0
                silk_assert( psSampleState[ k ][ 0 ].RD_Q10 >= 0 );
582
0
            }
583
0
        }
584
585
        /* Find worst in first set and best in second set */
586
0
        RDmax_Q10  = psSampleState[ 0 ][ 0 ].RD_Q10;
587
0
        RDmin_Q10  = psSampleState[ 0 ][ 1 ].RD_Q10;
588
0
        RDmax_ind = 0;
589
0
        RDmin_ind = 0;
590
0
        for( k = 1; k < nStatesDelayedDecision; k++ ) {
591
            /* find worst in first set */
592
0
            if( psSampleState[ k ][ 0 ].RD_Q10 > RDmax_Q10 ) {
593
0
                RDmax_Q10  = psSampleState[ k ][ 0 ].RD_Q10;
594
0
                RDmax_ind = k;
595
0
            }
596
            /* find best in second set */
597
0
            if( psSampleState[ k ][ 1 ].RD_Q10 < RDmin_Q10 ) {
598
0
                RDmin_Q10  = psSampleState[ k ][ 1 ].RD_Q10;
599
0
                RDmin_ind = k;
600
0
            }
601
0
        }
602
603
        /* Replace a state if best from second set outperforms worst in first set */
604
0
        if( RDmin_Q10 < RDmax_Q10 ) {
605
0
            silk_memcpy( ( (opus_int32 *)&psDelDec[ RDmax_ind ] ) + i,
606
0
                         ( (opus_int32 *)&psDelDec[ RDmin_ind ] ) + i, sizeof( NSQ_del_dec_struct ) - i * sizeof( opus_int32) );
607
0
            silk_memcpy( &psSampleState[ RDmax_ind ][ 0 ], &psSampleState[ RDmin_ind ][ 1 ], sizeof( NSQ_sample_struct ) );
608
0
        }
609
610
        /* Write samples from winner to output and long-term filter states */
611
0
        psDD = &psDelDec[ Winner_ind ];
612
0
        if( subfr > 0 || i >= decisionDelay ) {
613
0
            pulses[  i - decisionDelay ] = (opus_int8)silk_RSHIFT_ROUND( psDD->Q_Q10[ last_smple_idx ], 10 );
614
0
            xq[ i - decisionDelay ] = (opus_int16)silk_SAT16( silk_RSHIFT_ROUND(
615
0
                silk_SMULWW( psDD->Xq_Q14[ last_smple_idx ], delayedGain_Q10[ last_smple_idx ] ), 8 ) );
616
0
            NSQ->sLTP_shp_Q14[ NSQ->sLTP_shp_buf_idx - decisionDelay ] = psDD->Shape_Q14[ last_smple_idx ];
617
0
            sLTP_Q15[          NSQ->sLTP_buf_idx     - decisionDelay ] = psDD->Pred_Q15[  last_smple_idx ];
618
0
        }
619
0
        NSQ->sLTP_shp_buf_idx++;
620
0
        NSQ->sLTP_buf_idx++;
621
622
        /* Update states */
623
0
        for( k = 0; k < nStatesDelayedDecision; k++ ) {
624
0
            psDD                                     = &psDelDec[ k ];
625
0
            psSS                                     = &psSampleState[ k ][ 0 ];
626
0
            psDD->LF_AR_Q14                          = psSS->LF_AR_Q14;
627
0
            psDD->Diff_Q14                           = psSS->Diff_Q14;
628
0
            psDD->sLPC_Q14[ NSQ_LPC_BUF_LENGTH + i ] = psSS->xq_Q14;
629
0
            psDD->Xq_Q14[    *smpl_buf_idx ]         = psSS->xq_Q14;
630
0
            psDD->Q_Q10[     *smpl_buf_idx ]         = psSS->Q_Q10;
631
0
            psDD->Pred_Q15[  *smpl_buf_idx ]         = silk_LSHIFT32( psSS->LPC_exc_Q14, 1 );
632
0
            psDD->Shape_Q14[ *smpl_buf_idx ]         = psSS->sLTP_shp_Q14;
633
0
            psDD->Seed                               = silk_ADD32_ovflw( psDD->Seed, silk_RSHIFT_ROUND( psSS->Q_Q10, 10 ) );
634
0
            psDD->RandState[ *smpl_buf_idx ]         = psDD->Seed;
635
0
            psDD->RD_Q10                             = psSS->RD_Q10;
636
0
        }
637
0
        delayedGain_Q10[     *smpl_buf_idx ]         = Gain_Q10;
638
0
    }
639
    /* Update LPC states */
640
0
    for( k = 0; k < nStatesDelayedDecision; k++ ) {
641
0
        psDD = &psDelDec[ k ];
642
0
        silk_memcpy( psDD->sLPC_Q14, &psDD->sLPC_Q14[ length ], NSQ_LPC_BUF_LENGTH * sizeof( opus_int32 ) );
643
0
    }
644
0
    RESTORE_STACK;
645
0
}
646
#endif /* OVERRIDE_silk_noise_shape_quantizer_del_dec */
647
648
static OPUS_INLINE void silk_nsq_del_dec_scale_states(
649
    const silk_encoder_state *psEncC,               /* I    Encoder State                       */
650
    silk_nsq_state      *NSQ,                       /* I/O  NSQ state                           */
651
    NSQ_del_dec_struct  psDelDec[],                 /* I/O  Delayed decision states             */
652
    const opus_int16    x16[],                      /* I    Input                               */
653
    opus_int32          x_sc_Q10[],                 /* O    Input scaled with 1/Gain in Q10     */
654
    const opus_int16    sLTP[],                     /* I    Re-whitened LTP state in Q0         */
655
    opus_int32          sLTP_Q15[],                 /* O    LTP state matching scaled input     */
656
    opus_int            subfr,                      /* I    Subframe number                     */
657
    opus_int            nStatesDelayedDecision,     /* I    Number of del dec states            */
658
    const opus_int      LTP_scale_Q14,              /* I    LTP state scaling                   */
659
    const opus_int32    Gains_Q16[ MAX_NB_SUBFR ],  /* I                                        */
660
    const opus_int      pitchL[ MAX_NB_SUBFR ],     /* I    Pitch lag                           */
661
    const opus_int      signal_type,                /* I    Signal type                         */
662
    const opus_int      decisionDelay               /* I    Decision delay                      */
663
)
664
0
{
665
0
    opus_int            i, k, lag;
666
0
    opus_int32          gain_adj_Q16, inv_gain_Q31, inv_gain_Q26;
667
0
    NSQ_del_dec_struct  *psDD;
668
669
0
    lag          = pitchL[ subfr ];
670
0
    inv_gain_Q31 = silk_INVERSE32_varQ( silk_max( Gains_Q16[ subfr ], 1 ), 47 );
671
0
    silk_assert( inv_gain_Q31 != 0 );
672
673
    /* Scale input */
674
0
    inv_gain_Q26 = silk_RSHIFT_ROUND( inv_gain_Q31, 5 );
675
0
    for( i = 0; i < psEncC->subfr_length; i++ ) {
676
0
        x_sc_Q10[ i ] = silk_SMULWW( x16[ i ], inv_gain_Q26 );
677
0
    }
678
679
    /* After rewhitening the LTP state is un-scaled, so scale with inv_gain_Q16 */
680
0
    if( NSQ->rewhite_flag ) {
681
0
        if( subfr == 0 ) {
682
            /* Do LTP downscaling */
683
0
            inv_gain_Q31 = silk_LSHIFT( silk_SMULWB( inv_gain_Q31, LTP_scale_Q14 ), 2 );
684
0
        }
685
0
        for( i = NSQ->sLTP_buf_idx - lag - LTP_ORDER / 2; i < NSQ->sLTP_buf_idx; i++ ) {
686
0
            silk_assert( i < MAX_FRAME_LENGTH );
687
0
            sLTP_Q15[ i ] = silk_SMULWB( inv_gain_Q31, sLTP[ i ] );
688
0
        }
689
0
    }
690
691
    /* Adjust for changing gain */
692
0
    if( Gains_Q16[ subfr ] != NSQ->prev_gain_Q16 ) {
693
0
        gain_adj_Q16 =  silk_DIV32_varQ( NSQ->prev_gain_Q16, Gains_Q16[ subfr ], 16 );
694
695
        /* Scale long-term shaping state */
696
0
        for( i = NSQ->sLTP_shp_buf_idx - psEncC->ltp_mem_length; i < NSQ->sLTP_shp_buf_idx; i++ ) {
697
0
            NSQ->sLTP_shp_Q14[ i ] = silk_SMULWW( gain_adj_Q16, NSQ->sLTP_shp_Q14[ i ] );
698
0
        }
699
700
        /* Scale long-term prediction state */
701
0
        if( signal_type == TYPE_VOICED && NSQ->rewhite_flag == 0 ) {
702
0
            for( i = NSQ->sLTP_buf_idx - lag - LTP_ORDER / 2; i < NSQ->sLTP_buf_idx - decisionDelay; i++ ) {
703
0
                sLTP_Q15[ i ] = silk_SMULWW( gain_adj_Q16, sLTP_Q15[ i ] );
704
0
            }
705
0
        }
706
707
0
        for( k = 0; k < nStatesDelayedDecision; k++ ) {
708
0
            psDD = &psDelDec[ k ];
709
710
            /* Scale scalar states */
711
0
            psDD->LF_AR_Q14 = silk_SMULWW( gain_adj_Q16, psDD->LF_AR_Q14 );
712
0
            psDD->Diff_Q14 = silk_SMULWW( gain_adj_Q16, psDD->Diff_Q14 );
713
714
            /* Scale short-term prediction and shaping states */
715
0
            for( i = 0; i < NSQ_LPC_BUF_LENGTH; i++ ) {
716
0
                psDD->sLPC_Q14[ i ] = silk_SMULWW( gain_adj_Q16, psDD->sLPC_Q14[ i ] );
717
0
            }
718
0
            for( i = 0; i < MAX_SHAPE_LPC_ORDER; i++ ) {
719
0
                psDD->sAR2_Q14[ i ] = silk_SMULWW( gain_adj_Q16, psDD->sAR2_Q14[ i ] );
720
0
            }
721
0
            for( i = 0; i < DECISION_DELAY; i++ ) {
722
0
                psDD->Pred_Q15[  i ] = silk_SMULWW( gain_adj_Q16, psDD->Pred_Q15[  i ] );
723
0
                psDD->Shape_Q14[ i ] = silk_SMULWW( gain_adj_Q16, psDD->Shape_Q14[ i ] );
724
0
            }
725
0
        }
726
727
        /* Save inverse gain */
728
0
        NSQ->prev_gain_Q16 = Gains_Q16[ subfr ];
729
0
    }
730
0
}