Coverage Report

Created: 2026-09-01 07:47

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/src/opus/silk/float/wrappers_FLP.c
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Source
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/***********************************************************************
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Copyright (c) 2006-2011, Skype Limited. All rights reserved.
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Redistribution and use in source and binary forms, with or without
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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,
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this list of conditions and the following disclaimer.
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- 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.
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- Neither the name of Internet Society, IETF or IETF Trust, nor the
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names of specific contributors, may be used to endorse or promote
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products derived from this software without specific prior written
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permission.
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THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
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LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
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CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
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SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
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CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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POSSIBILITY OF SUCH DAMAGE.
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***********************************************************************/
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28
#ifdef HAVE_CONFIG_H
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#include "config.h"
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#endif
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32
#include "main_FLP.h"
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34
/* Wrappers. Calls flp / fix code */
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36
/* Convert AR filter coefficients to NLSF parameters */
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void silk_A2NLSF_FLP(
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    opus_int16                      *NLSF_Q15,                          /* O    NLSF vector      [ LPC_order ]              */
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    const silk_float                *pAR,                               /* I    LPC coefficients [ LPC_order ]              */
40
    const opus_int                  LPC_order                           /* I    LPC order                                   */
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)
42
81.0M
{
43
81.0M
    opus_int   i;
44
81.0M
    opus_int32 a_fix_Q16[ MAX_LPC_ORDER ];
45
46
973M
    for( i = 0; i < LPC_order; i++ ) {
47
892M
        a_fix_Q16[ i ] = silk_float2int( pAR[ i ] * 65536.0f );
48
892M
    }
49
50
81.0M
    silk_A2NLSF( NLSF_Q15, a_fix_Q16, LPC_order );
51
81.0M
}
52
53
/* Convert LSF parameters to AR prediction filter coefficients */
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void silk_NLSF2A_FLP(
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    silk_float                      *pAR,                               /* O    LPC coefficients [ LPC_order ]              */
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    const opus_int16                *NLSF_Q15,                          /* I    NLSF vector      [ LPC_order ]              */
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    const opus_int                  LPC_order,                          /* I    LPC order                                   */
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    int                             arch                                /* I    Run-time architecture                       */
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)
60
28.9M
{
61
28.9M
    opus_int   i;
62
28.9M
    opus_int16 a_fix_Q12[ MAX_LPC_ORDER ];
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64
28.9M
    silk_NLSF2A( a_fix_Q12, NLSF_Q15, LPC_order, arch );
65
66
345M
    for( i = 0; i < LPC_order; i++ ) {
67
316M
        pAR[ i ] = ( silk_float )a_fix_Q12[ i ] * ( 1.0f / 4096.0f );
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316M
    }
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28.9M
}
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71
/******************************************/
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/* Floating-point NLSF processing wrapper */
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/******************************************/
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void silk_process_NLSFs_FLP(
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    silk_encoder_state              *psEncC,                            /* I/O  Encoder state                               */
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    silk_float                      PredCoef[ 2 ][ MAX_LPC_ORDER ],     /* O    Prediction coefficients                     */
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    opus_int16                      NLSF_Q15[      MAX_LPC_ORDER ],     /* I/O  Normalized LSFs (quant out) (0 - (2^15-1))  */
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    const opus_int16                prev_NLSF_Q15[ MAX_LPC_ORDER ]      /* I    Previous Normalized LSFs (0 - (2^15-1))     */
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)
80
67.0M
{
81
67.0M
    opus_int     i, j;
82
67.0M
    opus_int16   PredCoef_Q12[ 2 ][ MAX_LPC_ORDER ];
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84
67.0M
    silk_process_NLSFs( psEncC, PredCoef_Q12, NLSF_Q15, prev_NLSF_Q15);
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86
201M
    for( j = 0; j < 2; j++ ) {
87
1.61G
        for( i = 0; i < psEncC->predictLPCOrder; i++ ) {
88
1.47G
            PredCoef[ j ][ i ] = ( silk_float )PredCoef_Q12[ j ][ i ] * ( 1.0f / 4096.0f );
89
1.47G
        }
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134M
    }
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67.0M
}
92
93
/****************************************/
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/* Floating-point Silk NSQ wrapper      */
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/****************************************/
96
void silk_NSQ_wrapper_FLP(
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    silk_encoder_state_FLP          *psEnc,                             /* I/O  Encoder state FLP                           */
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    silk_encoder_control_FLP        *psEncCtrl,                         /* I/O  Encoder control FLP                         */
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    SideInfoIndices                 *psIndices,                         /* I/O  Quantization indices                        */
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    silk_nsq_state                  *psNSQ,                             /* I/O  Noise Shaping Quantzation state             */
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    opus_int8                       pulses[],                           /* O    Quantized pulse signal                      */
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    const silk_float                x[]                                 /* I    Prefiltered input signal                    */
103
)
104
70.8M
{
105
70.8M
    opus_int     i, j;
106
70.8M
    opus_int16   x16[ MAX_FRAME_LENGTH ];
107
70.8M
    opus_int32   Gains_Q16[ MAX_NB_SUBFR ];
108
70.8M
    silk_DWORD_ALIGN opus_int16 PredCoef_Q12[ 2 ][ MAX_LPC_ORDER ];
109
70.8M
    opus_int16   LTPCoef_Q14[ LTP_ORDER * MAX_NB_SUBFR ];
110
70.8M
    opus_int     LTP_scale_Q14;
111
112
    /* Noise shaping parameters */
113
70.8M
    opus_int16   AR_Q13[ MAX_NB_SUBFR * MAX_SHAPE_LPC_ORDER ];
114
70.8M
    opus_int32   LF_shp_Q14[ MAX_NB_SUBFR ];         /* Packs two int16 coefficients per int32 value             */
115
70.8M
    opus_int     Lambda_Q10;
116
70.8M
    opus_int     Tilt_Q14[ MAX_NB_SUBFR ];
117
70.8M
    opus_int     HarmShapeGain_Q14[ MAX_NB_SUBFR ];
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119
    /* Convert control struct to fix control struct */
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    /* Noise shape parameters */
121
307M
    for( i = 0; i < psEnc->sCmn.nb_subfr; i++ ) {
122
3.88G
        for( j = 0; j < psEnc->sCmn.shapingLPCOrder; j++ ) {
123
3.65G
            AR_Q13[ i * MAX_SHAPE_LPC_ORDER + j ] = silk_float2int( psEncCtrl->AR[ i * MAX_SHAPE_LPC_ORDER + j ] * 8192.0f );
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3.65G
        }
125
236M
    }
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127
307M
    for( i = 0; i < psEnc->sCmn.nb_subfr; i++ ) {
128
236M
        LF_shp_Q14[ i ] =   silk_LSHIFT32( silk_float2int( psEncCtrl->LF_AR_shp[ i ]     * 16384.0f ), 16 ) |
129
236M
                              (opus_uint16)silk_float2int( psEncCtrl->LF_MA_shp[ i ]     * 16384.0f );
130
236M
        Tilt_Q14[ i ]   =        (opus_int)silk_float2int( psEncCtrl->Tilt[ i ]          * 16384.0f );
131
236M
        HarmShapeGain_Q14[ i ] = (opus_int)silk_float2int( psEncCtrl->HarmShapeGain[ i ] * 16384.0f );
132
236M
    }
133
70.8M
    Lambda_Q10 = ( opus_int )silk_float2int( psEncCtrl->Lambda * 1024.0f );
134
135
    /* prediction and coding parameters */
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1.25G
    for( i = 0; i < psEnc->sCmn.nb_subfr * LTP_ORDER; i++ ) {
137
1.18G
        LTPCoef_Q14[ i ] = (opus_int16)silk_float2int( psEncCtrl->LTPCoef[ i ] * 16384.0f );
138
1.18G
    }
139
140
212M
    for( j = 0; j < 2; j++ ) {
141
1.70G
        for( i = 0; i < psEnc->sCmn.predictLPCOrder; i++ ) {
142
1.56G
            PredCoef_Q12[ j ][ i ] = (opus_int16)silk_float2int( psEncCtrl->PredCoef[ j ][ i ] * 4096.0f );
143
1.56G
        }
144
141M
    }
145
146
307M
    for( i = 0; i < psEnc->sCmn.nb_subfr; i++ ) {
147
236M
        Gains_Q16[ i ] = silk_float2int( psEncCtrl->Gains[ i ] * 65536.0f );
148
236M
        silk_assert( Gains_Q16[ i ] > 0 );
149
236M
    }
150
151
70.8M
    if( psIndices->signalType == TYPE_VOICED ) {
152
1.89M
        LTP_scale_Q14 = silk_LTPScales_table_Q14[ psIndices->LTP_scaleIndex ];
153
68.9M
    } else {
154
68.9M
        LTP_scale_Q14 = 0;
155
68.9M
    }
156
157
    /* Convert input to fix */
158
12.1G
    for( i = 0; i < psEnc->sCmn.frame_length; i++ ) {
159
12.0G
        x16[ i ] = silk_float2int( x[ i ] );
160
12.0G
    }
161
162
    /* Call NSQ */
163
70.8M
    if( psEnc->sCmn.nStatesDelayedDecision > 1 || psEnc->sCmn.warping_Q16 > 0 ) {
164
43.3M
        silk_NSQ_del_dec( &psEnc->sCmn, psNSQ, psIndices, x16, pulses, PredCoef_Q12[ 0 ], LTPCoef_Q14,
165
43.3M
            AR_Q13, HarmShapeGain_Q14, Tilt_Q14, LF_shp_Q14, Gains_Q16, psEncCtrl->pitchL, Lambda_Q10, LTP_scale_Q14, psEnc->sCmn.arch );
166
43.3M
    } else {
167
27.4M
        silk_NSQ( &psEnc->sCmn, psNSQ, psIndices, x16, pulses, PredCoef_Q12[ 0 ], LTPCoef_Q14,
168
27.4M
            AR_Q13, HarmShapeGain_Q14, Tilt_Q14, LF_shp_Q14, Gains_Q16, psEncCtrl->pitchL, Lambda_Q10, LTP_scale_Q14, psEnc->sCmn.arch );
169
27.4M
    }
170
70.8M
}
171
172
/***********************************************/
173
/* Floating-point Silk LTP quantiation wrapper */
174
/***********************************************/
175
void silk_quant_LTP_gains_FLP(
176
    silk_float                      B[ MAX_NB_SUBFR * LTP_ORDER ],      /* O    Quantized LTP gains                            */
177
    opus_int8                       cbk_index[ MAX_NB_SUBFR ],          /* O    Codebook index                              */
178
    opus_int8                       *periodicity_index,                 /* O    Periodicity index                           */
179
    opus_int32                      *sum_log_gain_Q7,                   /* I/O  Cumulative max prediction gain  */
180
    silk_float                      *pred_gain_dB,                        /* O    LTP prediction gain                            */
181
    const silk_float                XX[ MAX_NB_SUBFR * LTP_ORDER * LTP_ORDER ], /* I    Correlation matrix                    */
182
    const silk_float                xX[ MAX_NB_SUBFR * LTP_ORDER ],        /* I    Correlation vector                            */
183
    const opus_int                    subfr_len,                            /* I    Number of samples per subframe                */
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    const opus_int                    nb_subfr,                           /* I    Number of subframes                            */
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    int                             arch                                /* I    Run-time architecture                       */
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)
187
571k
{
188
571k
    opus_int   i, pred_gain_dB_Q7;
189
571k
    opus_int16 B_Q14[ MAX_NB_SUBFR * LTP_ORDER ];
190
571k
    opus_int32 XX_Q17[ MAX_NB_SUBFR * LTP_ORDER * LTP_ORDER ];
191
571k
    opus_int32 xX_Q17[ MAX_NB_SUBFR * LTP_ORDER ];
192
193
571k
    i = 0;
194
50.3M
    do {
195
50.3M
        XX_Q17[ i ] = (opus_int32)silk_float2int( XX[ i ] * 131072.0f );
196
50.3M
    } while ( ++i < nb_subfr * LTP_ORDER * LTP_ORDER );
197
571k
    i = 0;
198
10.0M
    do {
199
10.0M
        xX_Q17[ i ] = (opus_int32)silk_float2int( xX[ i ] * 131072.0f );
200
10.0M
    } while ( ++i < nb_subfr * LTP_ORDER );
201
202
571k
    silk_quant_LTP_gains( B_Q14, cbk_index, periodicity_index, sum_log_gain_Q7, &pred_gain_dB_Q7, XX_Q17, xX_Q17, subfr_len, nb_subfr, arch );
203
204
10.6M
    for( i = 0; i < nb_subfr * LTP_ORDER; i++ ) {
205
10.0M
        B[ i ] = (silk_float)B_Q14[ i ] * ( 1.0f / 16384.0f );
206
10.0M
    }
207
208
571k
    *pred_gain_dB = (silk_float)pred_gain_dB_Q7 * ( 1.0f / 128.0f );
209
571k
}