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1 /*********************************************************************** | 1 /* Copyright (c) 2014, Cisco Systems, INC |
2 Copyright (c) 2006-2011, Skype Limited. All rights reserved. | 2 Written by XiangMingZhu WeiZhou MinPeng YanWang |
3 Redistribution and use in source and binary forms, with or without | 3 |
4 modification, are permitted provided that the following conditions | 4 Redistribution and use in source and binary forms, with or without |
5 are met: | 5 modification, are permitted provided that the following conditions |
6 - Redistributions of source code must retain the above copyright notice, | 6 are met: |
7 this list of conditions and the following disclaimer. | 7 |
8 - Redistributions in binary form must reproduce the above copyright | 8 - Redistributions of source code must retain the above copyright |
9 notice, this list of conditions and the following disclaimer in the | 9 notice, this list of conditions and the following disclaimer. |
10 documentation and/or other materials provided with the distribution. | 10 |
11 - Neither the name of Internet Society, IETF or IETF Trust, nor the | 11 - Redistributions in binary form must reproduce the above copyright |
12 names of specific contributors, may be used to endorse or promote | 12 notice, this list of conditions and the following disclaimer in the |
13 products derived from this software without specific prior written | 13 documentation and/or other materials provided with the distribution. |
14 permission. | 14 |
15 THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS" | 15 THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS |
16 AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE | 16 ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT |
17 IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE | 17 LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR |
18 ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE | 18 A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER |
19 LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR | 19 OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, |
20 CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF | 20 EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, |
21 SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS | 21 PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR |
22 INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN | 22 PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF |
23 CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) | 23 LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING |
24 ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE | 24 NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS |
25 POSSIBILITY OF SUCH DAMAGE. | 25 SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. |
26 ***********************************************************************/ | 26 */ |
27 | 27 |
28 #ifdef HAVE_CONFIG_H | 28 #ifdef HAVE_CONFIG_H |
29 #include "config.h" | 29 #include "config.h" |
30 #endif | 30 #endif |
31 | 31 |
| 32 #include <xmmintrin.h> |
| 33 #include <emmintrin.h> |
| 34 #include <smmintrin.h> |
| 35 |
32 #include "main.h" | 36 #include "main.h" |
33 #include "stack_alloc.h" | 37 #include "stack_alloc.h" |
34 | 38 |
35 /* Silk VAD noise level estimation */ | |
36 static OPUS_INLINE void silk_VAD_GetNoiseLevels( | |
37 const opus_int32 pX[ VAD_N_BANDS ], /* I subband energies
*/ | |
38 silk_VAD_state *psSilk_VAD /* I/O Pointer to Silk VAD
state */ | |
39 ); | |
40 | |
41 /**********************************/ | |
42 /* Initialization of the Silk VAD */ | |
43 /**********************************/ | |
44 opus_int silk_VAD_Init( /* O Return v
alue, 0 if success */ | |
45 silk_VAD_state *psSilk_VAD /* I/O Pointer
to Silk VAD state */ | |
46 ) | |
47 { | |
48 opus_int b, ret = 0; | |
49 | |
50 /* reset state memory */ | |
51 silk_memset( psSilk_VAD, 0, sizeof( silk_VAD_state ) ); | |
52 | |
53 /* init noise levels */ | |
54 /* Initialize array with approx pink noise levels (psd proportional to inver
se of frequency) */ | |
55 for( b = 0; b < VAD_N_BANDS; b++ ) { | |
56 psSilk_VAD->NoiseLevelBias[ b ] = silk_max_32( silk_DIV32_16( VAD_NOISE_
LEVELS_BIAS, b + 1 ), 1 ); | |
57 } | |
58 | |
59 /* Initialize state */ | |
60 for( b = 0; b < VAD_N_BANDS; b++ ) { | |
61 psSilk_VAD->NL[ b ] = silk_MUL( 100, psSilk_VAD->NoiseLevelBias[ b ]
); | |
62 psSilk_VAD->inv_NL[ b ] = silk_DIV32( silk_int32_MAX, psSilk_VAD->NL[ b
] ); | |
63 } | |
64 psSilk_VAD->counter = 15; | |
65 | |
66 /* init smoothed energy-to-noise ratio*/ | |
67 for( b = 0; b < VAD_N_BANDS; b++ ) { | |
68 psSilk_VAD->NrgRatioSmth_Q8[ b ] = 100 * 256; /* 100 * 256 --> 20
dB SNR */ | |
69 } | |
70 | |
71 return( ret ); | |
72 } | |
73 | |
74 /* Weighting factors for tilt measure */ | 39 /* Weighting factors for tilt measure */ |
75 static const opus_int32 tiltWeights[ VAD_N_BANDS ] = { 30000, 6000, -12000, -120
00 }; | 40 static const opus_int32 tiltWeights[ VAD_N_BANDS ] = { 30000, 6000, -12000, -120
00 }; |
76 | 41 |
77 /***************************************/ | 42 /***************************************/ |
78 /* Get the speech activity level in Q8 */ | 43 /* Get the speech activity level in Q8 */ |
79 /***************************************/ | 44 /***************************************/ |
80 opus_int silk_VAD_GetSA_Q8( /* O Return v
alue, 0 if success */ | 45 opus_int silk_VAD_GetSA_Q8_sse4_1( /* O Return value, 0 if s
uccess */ |
81 silk_encoder_state *psEncC, /* I/O Encoder
state */ | 46 silk_encoder_state *psEncC, /* I/O Encoder state
*/ |
82 const opus_int16 pIn[] /* I PCM inpu
t */ | 47 const opus_int16 pIn[] /* I PCM input
*/ |
83 ) | 48 ) |
84 { | 49 { |
85 opus_int SA_Q15, pSNR_dB_Q7, input_tilt; | 50 opus_int SA_Q15, pSNR_dB_Q7, input_tilt; |
86 opus_int decimated_framelength1, decimated_framelength2; | 51 opus_int decimated_framelength1, decimated_framelength2; |
87 opus_int decimated_framelength; | 52 opus_int decimated_framelength; |
88 opus_int dec_subframe_length, dec_subframe_offset, SNR_Q7, i, b, s; | 53 opus_int dec_subframe_length, dec_subframe_offset, SNR_Q7, i, b, s; |
89 opus_int32 sumSquared, smooth_coef_Q16; | 54 opus_int32 sumSquared, smooth_coef_Q16; |
90 opus_int16 HPstateTmp; | 55 opus_int16 HPstateTmp; |
91 VARDECL( opus_int16, X ); | 56 VARDECL( opus_int16, X ); |
92 opus_int32 Xnrg[ VAD_N_BANDS ]; | 57 opus_int32 Xnrg[ VAD_N_BANDS ]; |
93 opus_int32 NrgToNoiseRatio_Q8[ VAD_N_BANDS ]; | 58 opus_int32 NrgToNoiseRatio_Q8[ VAD_N_BANDS ]; |
94 opus_int32 speech_nrg, x_tmp; | 59 opus_int32 speech_nrg, x_tmp; |
95 opus_int X_offset[ VAD_N_BANDS ]; | 60 opus_int X_offset[ VAD_N_BANDS ]; |
96 opus_int ret = 0; | 61 opus_int ret = 0; |
97 silk_VAD_state *psSilk_VAD = &psEncC->sVAD; | 62 silk_VAD_state *psSilk_VAD = &psEncC->sVAD; |
| 63 |
98 SAVE_STACK; | 64 SAVE_STACK; |
99 | 65 |
100 /* Safety checks */ | 66 /* Safety checks */ |
101 silk_assert( VAD_N_BANDS == 4 ); | 67 silk_assert( VAD_N_BANDS == 4 ); |
102 silk_assert( MAX_FRAME_LENGTH >= psEncC->frame_length ); | 68 silk_assert( MAX_FRAME_LENGTH >= psEncC->frame_length ); |
103 silk_assert( psEncC->frame_length <= 512 ); | 69 silk_assert( psEncC->frame_length <= 512 ); |
104 silk_assert( psEncC->frame_length == 8 * silk_RSHIFT( psEncC->frame_length,
3 ) ); | 70 silk_assert( psEncC->frame_length == 8 * silk_RSHIFT( psEncC->frame_length,
3 ) ); |
105 | 71 |
106 /***********************/ | 72 /***********************/ |
107 /* Filter and Decimate */ | 73 /* Filter and Decimate */ |
(...skipping 48 matching lines...) Expand 10 before | Expand all | Expand 10 after Loading... |
156 decimated_framelength = silk_RSHIFT( psEncC->frame_length, silk_min_int(
VAD_N_BANDS - b, VAD_N_BANDS - 1 ) ); | 122 decimated_framelength = silk_RSHIFT( psEncC->frame_length, silk_min_int(
VAD_N_BANDS - b, VAD_N_BANDS - 1 ) ); |
157 | 123 |
158 /* Split length into subframe lengths */ | 124 /* Split length into subframe lengths */ |
159 dec_subframe_length = silk_RSHIFT( decimated_framelength, VAD_INTERNAL_S
UBFRAMES_LOG2 ); | 125 dec_subframe_length = silk_RSHIFT( decimated_framelength, VAD_INTERNAL_S
UBFRAMES_LOG2 ); |
160 dec_subframe_offset = 0; | 126 dec_subframe_offset = 0; |
161 | 127 |
162 /* Compute energy per sub-frame */ | 128 /* Compute energy per sub-frame */ |
163 /* initialize with summed energy of last subframe */ | 129 /* initialize with summed energy of last subframe */ |
164 Xnrg[ b ] = psSilk_VAD->XnrgSubfr[ b ]; | 130 Xnrg[ b ] = psSilk_VAD->XnrgSubfr[ b ]; |
165 for( s = 0; s < VAD_INTERNAL_SUBFRAMES; s++ ) { | 131 for( s = 0; s < VAD_INTERNAL_SUBFRAMES; s++ ) { |
| 132 __m128i xmm_X, xmm_acc; |
166 sumSquared = 0; | 133 sumSquared = 0; |
167 for( i = 0; i < dec_subframe_length; i++ ) { | 134 |
| 135 xmm_acc = _mm_setzero_si128(); |
| 136 |
| 137 for( i = 0; i < dec_subframe_length - 7; i += 8 ) |
| 138 { |
| 139 xmm_X = _mm_loadu_si128( (__m128i *)&(X[ X_offset[ b ] + i + d
ec_subframe_offset ] ) ); |
| 140 xmm_X = _mm_srai_epi16( xmm_X, 3 ); |
| 141 xmm_X = _mm_madd_epi16( xmm_X, xmm_X ); |
| 142 xmm_acc = _mm_add_epi32( xmm_acc, xmm_X ); |
| 143 } |
| 144 |
| 145 xmm_acc = _mm_add_epi32( xmm_acc, _mm_unpackhi_epi64( xmm_acc, xmm_a
cc ) ); |
| 146 xmm_acc = _mm_add_epi32( xmm_acc, _mm_shufflelo_epi16( xmm_acc, 0x0E
) ); |
| 147 |
| 148 sumSquared += _mm_cvtsi128_si32( xmm_acc ); |
| 149 |
| 150 for( ; i < dec_subframe_length; i++ ) { |
168 /* The energy will be less than dec_subframe_length * ( silk_int
16_MIN / 8 ) ^ 2. */ | 151 /* The energy will be less than dec_subframe_length * ( silk_int
16_MIN / 8 ) ^ 2. */ |
169 /* Therefore we can accumulate with no risk of overflow (unless
dec_subframe_length > 128) */ | 152 /* Therefore we can accumulate with no risk of overflow (unless
dec_subframe_length > 128) */ |
170 x_tmp = silk_RSHIFT( | 153 x_tmp = silk_RSHIFT( |
171 X[ X_offset[ b ] + i + dec_subframe_offset ], 3 ); | 154 X[ X_offset[ b ] + i + dec_subframe_offset ], 3 ); |
172 sumSquared = silk_SMLABB( sumSquared, x_tmp, x_tmp ); | 155 sumSquared = silk_SMLABB( sumSquared, x_tmp, x_tmp ); |
173 | 156 |
174 /* Safety check */ | 157 /* Safety check */ |
175 silk_assert( sumSquared >= 0 ); | 158 silk_assert( sumSquared >= 0 ); |
176 } | 159 } |
177 | 160 |
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285 | 268 |
286 /* signal to noise ratio in dB per band */ | 269 /* signal to noise ratio in dB per band */ |
287 SNR_Q7 = 3 * ( silk_lin2log( psSilk_VAD->NrgRatioSmth_Q8[b] ) - 8 * 128
); | 270 SNR_Q7 = 3 * ( silk_lin2log( psSilk_VAD->NrgRatioSmth_Q8[b] ) - 8 * 128
); |
288 /* quality = sigmoid( 0.25 * ( SNR_dB - 16 ) ); */ | 271 /* quality = sigmoid( 0.25 * ( SNR_dB - 16 ) ); */ |
289 psEncC->input_quality_bands_Q15[ b ] = silk_sigm_Q15( silk_RSHIFT( SNR_Q
7 - 16 * 128, 4 ) ); | 272 psEncC->input_quality_bands_Q15[ b ] = silk_sigm_Q15( silk_RSHIFT( SNR_Q
7 - 16 * 128, 4 ) ); |
290 } | 273 } |
291 | 274 |
292 RESTORE_STACK; | 275 RESTORE_STACK; |
293 return( ret ); | 276 return( ret ); |
294 } | 277 } |
295 | |
296 /**************************/ | |
297 /* Noise level estimation */ | |
298 /**************************/ | |
299 static OPUS_INLINE void silk_VAD_GetNoiseLevels( | |
300 const opus_int32 pX[ VAD_N_BANDS ], /* I subband energies
*/ | |
301 silk_VAD_state *psSilk_VAD /* I/O Pointer to Silk VAD
state */ | |
302 ) | |
303 { | |
304 opus_int k; | |
305 opus_int32 nl, nrg, inv_nrg; | |
306 opus_int coef, min_coef; | |
307 | |
308 /* Initially faster smoothing */ | |
309 if( psSilk_VAD->counter < 1000 ) { /* 1000 = 20 sec */ | |
310 min_coef = silk_DIV32_16( silk_int16_MAX, silk_RSHIFT( psSilk_VAD->count
er, 4 ) + 1 ); | |
311 } else { | |
312 min_coef = 0; | |
313 } | |
314 | |
315 for( k = 0; k < VAD_N_BANDS; k++ ) { | |
316 /* Get old noise level estimate for current band */ | |
317 nl = psSilk_VAD->NL[ k ]; | |
318 silk_assert( nl >= 0 ); | |
319 | |
320 /* Add bias */ | |
321 nrg = silk_ADD_POS_SAT32( pX[ k ], psSilk_VAD->NoiseLevelBias[ k ] ); | |
322 silk_assert( nrg > 0 ); | |
323 | |
324 /* Invert energies */ | |
325 inv_nrg = silk_DIV32( silk_int32_MAX, nrg ); | |
326 silk_assert( inv_nrg >= 0 ); | |
327 | |
328 /* Less update when subband energy is high */ | |
329 if( nrg > silk_LSHIFT( nl, 3 ) ) { | |
330 coef = VAD_NOISE_LEVEL_SMOOTH_COEF_Q16 >> 3; | |
331 } else if( nrg < nl ) { | |
332 coef = VAD_NOISE_LEVEL_SMOOTH_COEF_Q16; | |
333 } else { | |
334 coef = silk_SMULWB( silk_SMULWW( inv_nrg, nl ), VAD_NOISE_LEVEL_SMOO
TH_COEF_Q16 << 1 ); | |
335 } | |
336 | |
337 /* Initially faster smoothing */ | |
338 coef = silk_max_int( coef, min_coef ); | |
339 | |
340 /* Smooth inverse energies */ | |
341 psSilk_VAD->inv_NL[ k ] = silk_SMLAWB( psSilk_VAD->inv_NL[ k ], inv_nrg
- psSilk_VAD->inv_NL[ k ], coef ); | |
342 silk_assert( psSilk_VAD->inv_NL[ k ] >= 0 ); | |
343 | |
344 /* Compute noise level by inverting again */ | |
345 nl = silk_DIV32( silk_int32_MAX, psSilk_VAD->inv_NL[ k ] ); | |
346 silk_assert( nl >= 0 ); | |
347 | |
348 /* Limit noise levels (guarantee 7 bits of head room) */ | |
349 nl = silk_min( nl, 0x00FFFFFF ); | |
350 | |
351 /* Store as part of state */ | |
352 psSilk_VAD->NL[ k ] = nl; | |
353 } | |
354 | |
355 /* Increment frame counter */ | |
356 psSilk_VAD->counter++; | |
357 } | |
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