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1 /***********************************************************************
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2 Copyright (c) 2006-2011, Skype Limited. All rights reserved.
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3 Redistribution and use in source and binary forms, with or without
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4 modification, are permitted provided that the following conditions
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5 are met:
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6 - Redistributions of source code must retain the above copyright notice,
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7 this list of conditions and the following disclaimer.
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8 - Redistributions in binary form must reproduce the above copyright
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9 notice, this list of conditions and the following disclaimer in the
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10 documentation and/or other materials provided with the distribution.
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11 - Neither the name of Internet Society, IETF or IETF Trust, nor the
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12 names of specific contributors, may be used to endorse or promote
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13 products derived from this software without specific prior written
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14 permission.
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15 THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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16 AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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17 IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
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18 ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
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19 LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
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20 CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
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21 SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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22 INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
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23 CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
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24 ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
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25 POSSIBILITY OF SUCH DAMAGE.
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26 ***********************************************************************/
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27
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28 #ifdef HAVE_CONFIG_H
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29 #include "config.h"
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30 #endif
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31
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32 /*
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33 Elliptic/Cauer filters designed with 0.1 dB passband ripple,
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34 80 dB minimum stopband attenuation, and
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35 [0.95 : 0.15 : 0.35] normalized cut off frequencies.
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36 */
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37
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38 #include "main.h"
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39
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40 /* Helper function, interpolates the filter taps */
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41 static OPUS_INLINE void silk_LP_interpolate_filter_taps(
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42 opus_int32 B_Q28[ TRANSITION_NB ],
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43 opus_int32 A_Q28[ TRANSITION_NA ],
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44 const opus_int ind,
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45 const opus_int32 fac_Q16
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46 )
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47 {
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48 opus_int nb, na;
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49
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50 if( ind < TRANSITION_INT_NUM - 1 ) {
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51 if( fac_Q16 > 0 ) {
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52 if( fac_Q16 < 32768 ) { /* fac_Q16 is in range of a 16-bit int */
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53 /* Piece-wise linear interpolation of B and A */
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54 for( nb = 0; nb < TRANSITION_NB; nb++ ) {
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55 B_Q28[ nb ] = silk_SMLAWB(
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56 silk_Transition_LP_B_Q28[ ind ][ nb ],
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57 silk_Transition_LP_B_Q28[ ind + 1 ][ nb ] -
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58 silk_Transition_LP_B_Q28[ ind ][ nb ],
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59 fac_Q16 );
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60 }
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61 for( na = 0; na < TRANSITION_NA; na++ ) {
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62 A_Q28[ na ] = silk_SMLAWB(
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63 silk_Transition_LP_A_Q28[ ind ][ na ],
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64 silk_Transition_LP_A_Q28[ ind + 1 ][ na ] -
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65 silk_Transition_LP_A_Q28[ ind ][ na ],
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66 fac_Q16 );
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67 }
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68 } else { /* ( fac_Q16 - ( 1 << 16 ) ) is in range of a 16-bit int */
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69 silk_assert( fac_Q16 - ( 1 << 16 ) == silk_SAT16( fac_Q16 - ( 1 << 16 ) ) );
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70 /* Piece-wise linear interpolation of B and A */
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71 for( nb = 0; nb < TRANSITION_NB; nb++ ) {
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72 B_Q28[ nb ] = silk_SMLAWB(
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73 silk_Transition_LP_B_Q28[ ind + 1 ][ nb ],
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74 silk_Transition_LP_B_Q28[ ind + 1 ][ nb ] -
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75 silk_Transition_LP_B_Q28[ ind ][ nb ],
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76 fac_Q16 - ( (opus_int32)1 << 16 ) );
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77 }
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78 for( na = 0; na < TRANSITION_NA; na++ ) {
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79 A_Q28[ na ] = silk_SMLAWB(
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80 silk_Transition_LP_A_Q28[ ind + 1 ][ na ],
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81 silk_Transition_LP_A_Q28[ ind + 1 ][ na ] -
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82 silk_Transition_LP_A_Q28[ ind ][ na ],
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83 fac_Q16 - ( (opus_int32)1 << 16 ) );
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84 }
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85 }
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86 } else {
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87 silk_memcpy( B_Q28, silk_Transition_LP_B_Q28[ ind ], TRANSITION_NB * sizeof( opus_int32 ) );
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88 silk_memcpy( A_Q28, silk_Transition_LP_A_Q28[ ind ], TRANSITION_NA * sizeof( opus_int32 ) );
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89 }
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90 } else {
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91 silk_memcpy( B_Q28, silk_Transition_LP_B_Q28[ TRANSITION_INT_NUM - 1 ], TRANSITION_NB * sizeof( opus_int32 ) );
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92 silk_memcpy( A_Q28, silk_Transition_LP_A_Q28[ TRANSITION_INT_NUM - 1 ], TRANSITION_NA * sizeof( opus_int32 ) );
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93 }
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94 }
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95
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96 /* Low-pass filter with variable cutoff frequency based on */
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97 /* piece-wise linear interpolation between elliptic filters */
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98 /* Start by setting psEncC->mode <> 0; */
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99 /* Deactivate by setting psEncC->mode = 0; */
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100 void silk_LP_variable_cutoff(
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101 silk_LP_state *psLP, /* I/O LP filter state */
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102 opus_int16 *frame, /* I/O Low-pass filtered output signal */
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103 const opus_int frame_length /* I Frame length */
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104 )
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105 {
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106 opus_int32 B_Q28[ TRANSITION_NB ], A_Q28[ TRANSITION_NA ], fac_Q16 = 0;
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107 opus_int ind = 0;
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108
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109 silk_assert( psLP->transition_frame_no >= 0 && psLP->transition_frame_no <= TRANSITION_FRAMES );
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110
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111 /* Run filter if needed */
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112 if( psLP->mode != 0 ) {
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113 /* Calculate index and interpolation factor for interpolation */
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114 #if( TRANSITION_INT_STEPS == 64 )
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115 fac_Q16 = silk_LSHIFT( TRANSITION_FRAMES - psLP->transition_frame_no, 16 - 6 );
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116 #else
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117 fac_Q16 = silk_DIV32_16( silk_LSHIFT( TRANSITION_FRAMES - psLP->transition_frame_no, 16 ), TRANSITION_FRAMES );
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118 #endif
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119 ind = silk_RSHIFT( fac_Q16, 16 );
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120 fac_Q16 -= silk_LSHIFT( ind, 16 );
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121
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122 silk_assert( ind >= 0 );
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123 silk_assert( ind < TRANSITION_INT_NUM );
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124
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125 /* Interpolate filter coefficients */
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126 silk_LP_interpolate_filter_taps( B_Q28, A_Q28, ind, fac_Q16 );
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127
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128 /* Update transition frame number for next frame */
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129 psLP->transition_frame_no = silk_LIMIT( psLP->transition_frame_no + psLP->mode, 0, TRANSITION_FRAMES );
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130
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131 /* ARMA low-pass filtering */
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132 silk_assert( TRANSITION_NB == 3 && TRANSITION_NA == 2 );
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133 silk_biquad_alt_stride1( frame, B_Q28, A_Q28, psLP->In_LP_State, frame, frame_length);
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134 }
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135 }
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