Fix compiler warnings
- celt/modes.c:430:14: warning: cast from 'const unsigned char *' to 'opus_int16 *' increases required alignment from 1 to 2 [-Wcast-align] - 'C[0][1]' may be used uninitialized [-Wmaybe-uninitialized] - Unused variable/parameter - Value stored is never read - MSVC warnings about "possible loss of data" due to type conversions - MSVC warning C4146: unary minus operator applied to unsigned type - silk/NLSF_del_dec_quant.c:137:20: warning: array subscript is above array bounds [-Warray-bounds] (gcc -O3 false positive) - src/mlp_train.h:39:20: warning: function declaration isn't a prototype [-Wstrict-prototypes] - Remove SMALL_FOOTPRINT code from SSE 4.1 FIR implementation, matching the C implementation. The clang -Wcast-align warnings with SSE intrinsics are a known clang issue: https://llvm.org/bugs/show_bug.cgi?id=20670
This commit is contained in:
parent
8056706f48
commit
d6d70371e8
22 changed files with 91 additions and 90 deletions
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@ -1997,7 +1997,7 @@ int celt_encode_with_ec(CELTEncoder * OPUS_RESTRICT st, const opus_val16 * pcm,
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if (st->silk_info.offset > 100) target -= 18 << BITRES >> (3-LM);
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/* Boosting bitrate on transients and vowels with significant temporal
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spikes. */
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target += MULT16_16_Q14(tf_estimate-QCONST16(.25f,14), (50<<BITRES));
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target += (opus_int32)MULT16_16_Q14(tf_estimate-QCONST16(.25f,14), (50<<BITRES));
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/* If we have a strong transient, let's make sure it has enough bits to code
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the first two bands, so that it can use folding rather than noise. */
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if (tf_estimate > QCONST16(.7f,14))
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@ -61,9 +61,11 @@ extern opus_int64 celt_mips;
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/** Add two 32-bit values, ignore any overflows */
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#define ADD32_ovflw(a,b) (celt_mips+=2,(opus_val32)((opus_uint32)(a)+(opus_uint32)(b)))
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/** Subtract two 32-bit values, ignore any overflows */
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/** Subtract two 32-bit values, ignore any overflows */
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#define SUB32_ovflw(a,b) (celt_mips+=2,(opus_val32)((opus_uint32)(a)-(opus_uint32)(b)))
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#define NEG32_ovflw(a) (celt_mips+=2,(opus_val32)(-(opus_uint32)(a)))
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/* Avoid MSVC warning C4146: unary minus operator applied to unsigned type */
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/** Negate 32-bit value, ignore any overflows */
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#define NEG32_ovflw(a) (celt_mips+=2,(opus_val32)(0-(opus_uint32)(a)))
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static OPUS_INLINE short NEG16(int x)
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{
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@ -122,9 +122,11 @@
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/** Add two 32-bit values, ignore any overflows */
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#define ADD32_ovflw(a,b) ((opus_val32)((opus_uint32)(a)+(opus_uint32)(b)))
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/** Subtract two 32-bit values, ignore any overflows */
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/** Subtract two 32-bit values, ignore any overflows */
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#define SUB32_ovflw(a,b) ((opus_val32)((opus_uint32)(a)-(opus_uint32)(b)))
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#define NEG32_ovflw(a) ((opus_val32)(-(opus_uint32)(a)))
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/* Avoid MSVC warning C4146: unary minus operator applied to unsigned type */
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/** Negate 32-bit value, ignore any overflows */
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#define NEG32_ovflw(a) ((opus_val32)(0-(opus_uint32)(a)))
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/** 16x16 multiplication where the result fits in 16 bits */
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#define MULT16_16_16(a,b) ((((opus_val16)(a))*((opus_val16)(b))))
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@ -427,7 +427,7 @@ void opus_custom_mode_destroy(CELTMode *mode)
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}
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#endif /* CUSTOM_MODES_ONLY */
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opus_free((opus_int16*)mode->eBands);
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opus_free((opus_int16*)mode->allocVectors);
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opus_free((unsigned char*)mode->allocVectors);
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opus_free((opus_val16*)mode->window);
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opus_free((opus_int16*)mode->logN);
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@ -214,7 +214,7 @@ opus_val16 op_pvq_search_c(celt_norm *X, int *iy, int K, int N, int arch)
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rcp = EXTRACT16(MULT16_32_Q16(K, celt_rcp(sum)));
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#else
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/* Using K+e with e < 1 guarantees we cannot get more than K pulses. */
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rcp = EXTRACT16(MULT16_32_Q16(K+0.8, celt_rcp(sum)));
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rcp = EXTRACT16(MULT16_32_Q16(K+0.8f, celt_rcp(sum)));
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#endif
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j=0; do {
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#ifdef FIXED_POINT
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@ -57,17 +57,6 @@ void celt_fir_sse4_1(const opus_val16 *x,
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ALLOC(rnum, ord, opus_val16);
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for(i=0;i<ord;i++)
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rnum[i] = num[ord-i-1];
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#ifdef SMALL_FOOTPRINT
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for (i=0;i<N;i++)
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{
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opus_val32 sum = SHL32(EXTEND32(x[i]), SIG_SHIFT);
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for (j=0;j<ord;j++)
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{
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sum = MAC16_16(sum,rnum[j],x[i+j-ord]);
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}
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y[i] = SATURATE16(PSHR32(sum, SIG_SHIFT));
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}
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#else
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noA = EXTEND32(1) << SIG_SHIFT >> 1;
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vecNoA = _mm_set_epi32(noA, noA, noA, noA);
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@ -94,7 +83,6 @@ void celt_fir_sse4_1(const opus_val16 *x,
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y[i] = SATURATE16(ADD32(EXTEND32(x[i]), PSHR32(sum, SIG_SHIFT)));
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}
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#endif
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RESTORE_STACK;
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}
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@ -155,7 +155,6 @@ opus_val16 op_pvq_search_sse2(celt_norm *_X, int *iy, int K, int N, int arch)
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__m128 max, max2;
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__m128i count;
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__m128i pos;
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best_id = 0;
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/* The squared magnitude term gets added anyway, so we might as well
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add it outside the loop */
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yy = ADD16(yy, 1);
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@ -131,7 +131,7 @@ opus_int32 silk_NLSF_del_dec_quant( /* O Returns
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RD_Q25[ j + nStates ] = silk_SMLABB( silk_MLA( RD_tmp_Q25, silk_SMULBB( diff_Q10, diff_Q10 ), w_Q5[ i ] ), mu_Q20, rate1_Q5 );
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}
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if( silk_LSHIFT( nStates, 1 ) <= NLSF_QUANT_DEL_DEC_STATES ) {
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if( nStates <= NLSF_QUANT_DEL_DEC_STATES/2 ) {
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/* double number of states and copy */
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for( j = 0; j < nStates; j++ ) {
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ind[ j + nStates ][ i ] = ind[ j ][ i ] + 1;
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@ -233,7 +233,6 @@ opus_int silk_Encode( /* O Returns error co
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}
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}
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TargetRate_bps = silk_RSHIFT32( encControl->bitRate, encControl->nChannelsInternal - 1 );
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for( n = 0; n < encControl->nChannelsInternal; n++ ) {
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/* Force the side channel to the same rate as the mid */
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opus_int force_fs_kHz = (n==1) ? psEnc->state_Fxx[0].sCmn.fs_kHz : 0;
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@ -43,7 +43,7 @@ opus_int32 silk_schur64( /* O returns residual ene
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opus_int32 C[ SILK_MAX_ORDER_LPC + 1 ][ 2 ];
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opus_int32 Ctmp1_Q30, Ctmp2_Q30, rc_tmp_Q31;
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silk_assert( order <= SILK_MAX_ORDER_LPC );
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silk_assert( order >= 0 && order <= SILK_MAX_ORDER_LPC );
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/* Check for invalid input */
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if( c[ 0 ] <= 0 ) {
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@ -51,9 +51,10 @@ opus_int32 silk_schur64( /* O returns residual ene
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return 0;
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}
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for( k = 0; k < order + 1; k++ ) {
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k = 0;
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do {
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C[ k ][ 0 ] = C[ k ][ 1 ] = c[ k ];
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}
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} while( ++k <= order );
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for( k = 0; k < order; k++ ) {
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/* Check that we won't be getting an unstable rc, otherwise stop here. */
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@ -43,28 +43,29 @@ opus_int32 silk_schur( /* O Returns residual ene
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opus_int32 C[ SILK_MAX_ORDER_LPC + 1 ][ 2 ];
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opus_int32 Ctmp1, Ctmp2, rc_tmp_Q15;
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silk_assert( order <= SILK_MAX_ORDER_LPC );
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silk_assert( order >= 0 && order <= SILK_MAX_ORDER_LPC );
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/* Get number of leading zeros */
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lz = silk_CLZ32( c[ 0 ] );
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/* Copy correlations and adjust level to Q30 */
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k = 0;
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if( lz < 2 ) {
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/* lz must be 1, so shift one to the right */
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for( k = 0; k < order + 1; k++ ) {
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do {
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C[ k ][ 0 ] = C[ k ][ 1 ] = silk_RSHIFT( c[ k ], 1 );
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}
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} while( ++k <= order );
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} else if( lz > 2 ) {
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/* Shift to the left */
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lz -= 2;
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for( k = 0; k < order + 1; k++ ) {
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do {
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C[ k ][ 0 ] = C[ k ][ 1 ] = silk_LSHIFT( c[ k ], lz );
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}
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} while( ++k <= order );
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} else {
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/* No need to shift */
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for( k = 0; k < order + 1; k++ ) {
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do {
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C[ k ][ 0 ] = C[ k ][ 1 ] = c[ k ];
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}
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} while( ++k <= order );
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}
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for( k = 0; k < order; k++ ) {
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@ -107,8 +107,8 @@ void silk_warped_LPC_analysis_filter_FIX_sse4_1(
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xmm_tempb = _mm_add_epi32( xmm_tempb, xmm_product2 );
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xmm_tempa = _mm_add_epi32( xmm_tempa, xmm_tempb );
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sum = (coef_Q13_8 * state_8) >> 16;
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sum += (coef_Q13_9 * state_9) >> 16;
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sum = (opus_int32)((coef_Q13_8 * state_8) >> 16);
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sum += (opus_int32)((coef_Q13_9 * state_9) >> 16);
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xmm_tempa = _mm_add_epi32( xmm_tempa, _mm_shuffle_epi32( xmm_tempa, _MM_SHUFFLE( 0, 0, 0, 2 ) ) );
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sum += _mm_cvtsi128_si32( xmm_tempa);
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@ -41,12 +41,13 @@ silk_float silk_schur_FLP( /* O returns residual energy
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double C[ SILK_MAX_ORDER_LPC + 1 ][ 2 ];
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double Ctmp1, Ctmp2, rc_tmp;
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silk_assert( order <= SILK_MAX_ORDER_LPC );
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silk_assert( order >= 0 && order <= SILK_MAX_ORDER_LPC );
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/* Copy correlations */
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for( k = 0; k < order+1; k++ ) {
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k = 0;
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do {
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C[ k ][ 0 ] = C[ k ][ 1 ] = auto_corr[ k ];
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}
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} while( ++k <= order );
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for( k = 0; k < order; k++ ) {
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/* Get reflection coefficient */
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@ -48,6 +48,8 @@
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#define M_PI 3.141592653
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#endif
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#ifndef DISABLE_FLOAT_API
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static const float dct_table[128] = {
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0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f,
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0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f, 0.250000f,
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@ -151,7 +153,7 @@ static opus_val32 silk_resampler_down2_hp(
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/* len2 can be up to 480, so we shift by 8 more to make it fit. */
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hp_ener = hp_ener >> (2*SIG_SHIFT + 8);
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#endif
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return hp_ener;
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return (opus_val32)hp_ener;
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}
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static opus_val32 downmix_and_resample(downmix_func downmix, const void *_x, opus_val32 *y, opus_val32 S[3], int subframe, int offset, int c1, int c2, int C, int Fs)
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@ -256,7 +258,7 @@ void tonality_get_info(TonalityAnalysisState *tonal, AnalysisInfo *info_out, int
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pos = 0;
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if (pos == tonal->write_pos)
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break;
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info_out->tonality = MAX32(0, -.03 + MAX32(info_out->tonality, tonal->info[pos].tonality-.05));
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info_out->tonality = MAX32(0, -.03f + MAX32(info_out->tonality, tonal->info[pos].tonality-.05f));
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}
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tonal->read_subframe += len/(tonal->Fs/400);
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while (tonal->read_subframe>=8)
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@ -284,8 +286,8 @@ void tonality_get_info(TonalityAnalysisState *tonal, AnalysisInfo *info_out, int
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}
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static const float std_feature_bias[9] = {
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5.684947, 3.475288, 1.770634, 1.599784, 3.773215,
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2.163313, 1.260756, 1.116868, 1.918795
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5.684947f, 3.475288f, 1.770634f, 1.599784f, 3.773215f,
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2.163313f, 1.260756f, 1.116868f, 1.918795f
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};
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static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt_mode, const void *x, int len, int offset, int c1, int c2, int C, int lsb_depth, downmix_func downmix)
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@ -346,7 +348,8 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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kfft = celt_mode->mdct.kfft[0];
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if (tonal->count==0)
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tonal->mem_fill = 240;
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tonal->hp_ener_accum += downmix_and_resample(downmix, x, &tonal->inmem[tonal->mem_fill], tonal->downmix_state,
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tonal->hp_ener_accum += (float)downmix_and_resample(downmix, x,
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&tonal->inmem[tonal->mem_fill], tonal->downmix_state,
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IMIN(len, ANALYSIS_BUF_SIZE-tonal->mem_fill), offset, c1, c2, C, tonal->Fs);
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if (tonal->mem_fill+len < ANALYSIS_BUF_SIZE)
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{
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@ -374,8 +377,9 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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}
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OPUS_MOVE(tonal->inmem, tonal->inmem+ANALYSIS_BUF_SIZE-240, 240);
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remaining = len - (ANALYSIS_BUF_SIZE-tonal->mem_fill);
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tonal->hp_ener_accum = downmix_and_resample(downmix, x, &tonal->inmem[240], tonal->downmix_state,
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remaining, offset+ANALYSIS_BUF_SIZE-tonal->mem_fill, c1, c2, C, tonal->Fs);
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tonal->hp_ener_accum = (float)downmix_and_resample(downmix, x,
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&tonal->inmem[240], tonal->downmix_state, remaining,
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offset+ANALYSIS_BUF_SIZE-tonal->mem_fill, c1, c2, C, tonal->Fs);
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tonal->mem_fill = 240 + remaining;
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opus_fft(kfft, in, out, tonal->arch);
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#ifndef FIXED_POINT
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@ -430,7 +434,7 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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for (i=2;i<N2-1;i++)
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{
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float tt = MIN32(tonality2[i], MAX32(tonality2[i-1], tonality2[i+1]));
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tonality[i] = .9*MAX32(tonality[i], tt-.1);
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tonality[i] = .9f*MAX32(tonality[i], tt-.1f);
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}
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frame_tonality = 0;
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max_frame_tonality = 0;
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@ -486,9 +490,9 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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if (tonal->highE[b] > tonal->lowE[b] + 7.5)
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{
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if (tonal->highE[b] - logE[b] > logE[b] - tonal->lowE[b])
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tonal->highE[b] -= .01;
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tonal->highE[b] -= .01f;
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else
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tonal->lowE[b] += .01;
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tonal->lowE[b] += .01f;
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}
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if (logE[b] > tonal->highE[b])
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{
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@ -534,7 +538,7 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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for (i=0;i<NB_FRAMES;i++)
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{
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int j;
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float mindist = 1e15;
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float mindist = 1e15f;
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for (j=0;j<NB_FRAMES;j++)
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{
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int k;
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}
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spec_variability += mindist;
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}
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spec_variability = sqrt(spec_variability/NB_FRAMES/NB_TBANDS);
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spec_variability = (float)sqrt(spec_variability/NB_FRAMES/NB_TBANDS);
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bandwidth_mask = 0;
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bandwidth = 0;
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maxE = 0;
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/* Special case for the last two bands, for which we don't have spectrum but only
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the energy above 12 kHz. */
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{
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float E = hp_ener*(1./(240*240));
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float E = hp_ener*(1.f/(240*240));
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#ifdef FIXED_POINT
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/* silk_resampler_down2_hp() shifted right by an extra 8 bits. */
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E *= ((opus_int32)1 << 2*SIG_SHIFT)*256.f;
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@ -622,7 +626,7 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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{
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float sum=0;
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for (b=0;b<16;b++)
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sum += dct_table[i*16+b]*.5*(tonal->highE[b]+tonal->lowE[b]);
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sum += dct_table[i*16+b]*.5f*(tonal->highE[b]+tonal->lowE[b]);
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midE[i] = sum;
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}
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@ -675,14 +679,13 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
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}
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for (i=0;i<9;i++)
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features[11+i] = (float)sqrt(tonal->std[i]) - std_feature_bias[i];
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features[18] = spec_variability-.78;;
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features[20] = info->tonality - 0.154723;
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features[21] = info->activity - 0.724643;
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features[22] = frame_stationarity - 0.743717;
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features[23] = info->tonality_slope + 0.069216;
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features[24] = tonal->lowECount - 0.067930;
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features[18] = spec_variability - 0.78f;
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features[20] = info->tonality - 0.154723f;
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features[21] = info->activity - 0.724643f;
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features[22] = frame_stationarity - 0.743717f;
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features[23] = info->tonality_slope + 0.069216f;
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||||
features[24] = tonal->lowECount - 0.067930f;
|
||||
|
||||
#ifndef DISABLE_FLOAT_API
|
||||
mlp_process(&net, features, frame_probs);
|
||||
frame_probs[0] = .5f*(frame_probs[0]+1);
|
||||
/* Curve fitting between the MLP probability and the actual probability */
|
||||
|
@ -818,9 +821,6 @@ static void tonality_analysis(TonalityAnalysisState *tonal, const CELTMode *celt
|
|||
}
|
||||
}
|
||||
tonal->last_music = tonal->music_prob>.5f;
|
||||
#else
|
||||
info->music_prob = 0;
|
||||
#endif
|
||||
#ifdef MLP_TRAINING
|
||||
for (i=0;i<25;i++)
|
||||
printf("%f ", features[i]);
|
||||
|
@ -862,3 +862,5 @@ void run_analysis(TonalityAnalysisState *analysis, const CELTMode *celt_mode, co
|
|||
analysis_info->valid = 0;
|
||||
tonality_get_info(analysis, analysis_info, frame_size);
|
||||
}
|
||||
|
||||
#endif /* DISABLE_FLOAT_API */
|
||||
|
|
|
@ -95,18 +95,18 @@ static const float weights[450] = {
|
|||
-0.222056f, -0.508859f, -0.473369f, 0.484958f, -2.28411f,
|
||||
0.0139516f,
|
||||
/* output layer */
|
||||
3.90017, 1.71789, -1.43372, -2.70839, 1.77107,
|
||||
5.48006, 1.44661, 2.01134, -1.88383, -3.64958,
|
||||
-1.26351, 0.779421, 2.11357, 3.10409, 1.68846,
|
||||
-4.46197, -1.61455, 3.59832, 2.43531, -1.26458,
|
||||
0.417941, 1.47437, 2.16635, -1.909, -0.828869,
|
||||
1.38805, -2.67975, -0.110044, 1.95596, 0.697931,
|
||||
-0.313226, -0.889315, 0.283236, 0.946102, };
|
||||
3.90017f, 1.71789f, -1.43372f, -2.70839f, 1.77107f,
|
||||
5.48006f, 1.44661f, 2.01134f, -1.88383f, -3.64958f,
|
||||
-1.26351f, 0.779421f, 2.11357f, 3.10409f, 1.68846f,
|
||||
-4.46197f, -1.61455f, 3.59832f, 2.43531f, -1.26458f,
|
||||
0.417941f, 1.47437f, 2.16635f, -1.909f, -0.828869f,
|
||||
1.38805f, -2.67975f, -0.110044f, 1.95596f, 0.697931f,
|
||||
-0.313226f, -0.889315f, 0.283236f, 0.946102f, };
|
||||
|
||||
static const int topo[3] = {25, 16, 2};
|
||||
|
||||
const MLP net = {
|
||||
3,
|
||||
topo,
|
||||
weights
|
||||
3,
|
||||
topo,
|
||||
weights
|
||||
};
|
||||
|
|
|
@ -485,7 +485,7 @@ int main(int argc, char **argv)
|
|||
printf ("\n/* output layer */\n");
|
||||
for (i=0;i<(topo[1]+1)*topo[2];i++)
|
||||
{
|
||||
printf ("%g,", net->weights[1][i]);
|
||||
printf ("%gf,", net->weights[1][i]);
|
||||
if (i%5==4)
|
||||
printf("\n");
|
||||
else
|
||||
|
@ -494,8 +494,8 @@ int main(int argc, char **argv)
|
|||
printf ("};\n\n");
|
||||
printf ("static const int topo[3] = {%d, %d, %d};\n\n", topo[0], topo[1], topo[2]);
|
||||
printf ("const MLP net = {\n");
|
||||
printf ("\t3,\n");
|
||||
printf ("\ttopo,\n");
|
||||
printf ("\tweights\n};\n");
|
||||
printf (" 3,\n");
|
||||
printf (" topo,\n");
|
||||
printf (" weights\n};\n");
|
||||
return 0;
|
||||
}
|
||||
|
|
|
@ -36,7 +36,7 @@ static inline double tansig_double(double x)
|
|||
{
|
||||
return 2./(1.+exp(-2.*x)) - 1.;
|
||||
}
|
||||
static inline void build_tansig_table()
|
||||
static inline void build_tansig_table(void)
|
||||
{
|
||||
int i;
|
||||
for (i=0;i<501;i++)
|
||||
|
@ -59,7 +59,7 @@ static inline double tansig_approx(double x)
|
|||
return y;
|
||||
}
|
||||
|
||||
inline float randn(float sd)
|
||||
static inline float randn(float sd)
|
||||
{
|
||||
float U1, U2, S, x;
|
||||
do {
|
||||
|
|
|
@ -107,7 +107,7 @@ OPUS_EXPORT void opus_pcm_soft_clip(float *_x, int N, int C, float *declip_mem)
|
|||
/* Slightly boost "a" by 2^-22. This is just enough to ensure -ffast-math
|
||||
does not cause output values larger than +/-1, but small enough not
|
||||
to matter even for 24-bit output. */
|
||||
a += a*2.4e-7;
|
||||
a += a*2.4e-7f;
|
||||
if (x[i*C]>0)
|
||||
a = -a;
|
||||
/* Apply soft clipping */
|
||||
|
|
|
@ -253,6 +253,7 @@ int main(int argc, char *argv[])
|
|||
opus_uint32 dec_final_range;
|
||||
int encode_only=0, decode_only=0;
|
||||
int max_frame_size = 48000*2;
|
||||
size_t num_read;
|
||||
int curr_read=0;
|
||||
int sweep_bps = 0;
|
||||
int random_framesize=0, newsize=0, delayed_celt=0;
|
||||
|
@ -657,8 +658,8 @@ int main(int argc, char *argv[])
|
|||
if (decode_only)
|
||||
{
|
||||
unsigned char ch[4];
|
||||
err = fread(ch, 1, 4, fin);
|
||||
if (feof(fin))
|
||||
num_read = fread(ch, 1, 4, fin);
|
||||
if (num_read!=4)
|
||||
break;
|
||||
len[toggle] = char_to_int(ch);
|
||||
if (len[toggle]>max_payload_bytes || len[toggle]<0)
|
||||
|
@ -666,14 +667,16 @@ int main(int argc, char *argv[])
|
|||
fprintf(stderr, "Invalid payload length: %d\n",len[toggle]);
|
||||
break;
|
||||
}
|
||||
err = fread(ch, 1, 4, fin);
|
||||
num_read = fread(ch, 1, 4, fin);
|
||||
if (num_read!=4)
|
||||
break;
|
||||
enc_final_range[toggle] = char_to_int(ch);
|
||||
err = fread(data[toggle], 1, len[toggle], fin);
|
||||
if (err<len[toggle])
|
||||
num_read = fread(data[toggle], 1, len[toggle], fin);
|
||||
if (num_read!=(size_t)len[toggle])
|
||||
{
|
||||
fprintf(stderr, "Ran out of input, "
|
||||
"expecting %d bytes got %d\n",
|
||||
len[toggle],err);
|
||||
len[toggle],(int)num_read);
|
||||
break;
|
||||
}
|
||||
} else {
|
||||
|
@ -685,8 +688,8 @@ int main(int argc, char *argv[])
|
|||
opus_encoder_ctl(enc, OPUS_SET_FORCE_CHANNELS(mode_list[curr_mode][3]));
|
||||
frame_size = mode_list[curr_mode][2];
|
||||
}
|
||||
err = fread(fbytes, sizeof(short)*channels, frame_size-remaining, fin);
|
||||
curr_read = err;
|
||||
num_read = fread(fbytes, sizeof(short)*channels, frame_size-remaining, fin);
|
||||
curr_read = (int)num_read;
|
||||
tot_in += curr_read;
|
||||
for(i=0;i<curr_read*channels;i++)
|
||||
{
|
||||
|
@ -795,7 +798,7 @@ int main(int argc, char *argv[])
|
|||
if (!decode_only && tot_out + output_samples > tot_in)
|
||||
{
|
||||
stop=1;
|
||||
output_samples = tot_in-tot_out;
|
||||
output_samples = (opus_int32)(tot_in - tot_out);
|
||||
}
|
||||
if (output_samples>skip) {
|
||||
int i;
|
||||
|
|
|
@ -1130,7 +1130,7 @@ opus_int32 opus_encode_native(OpusEncoder *st, const opus_val16 *pcm, int frame_
|
|||
|
||||
/* Track the peak signal energy */
|
||||
if (!is_silence && analysis_info.activity_probability > DTX_ACTIVITY_THRESHOLD)
|
||||
st->peak_signal_energy = MAX32(MULT16_32_Q15(QCONST16(0.999, 15), st->peak_signal_energy),
|
||||
st->peak_signal_energy = MAX32(MULT16_32_Q15(QCONST16(0.999f, 15), st->peak_signal_energy),
|
||||
compute_frame_energy(pcm, frame_size, st->channels, st->arch));
|
||||
}
|
||||
#else
|
||||
|
|
|
@ -935,6 +935,7 @@ static int ec_enc_shrink_assert(void)
|
|||
opus_encoder_ctl(enc, OPUS_SET_PACKET_LOSS_PERC(6));
|
||||
opus_encoder_ctl(enc, OPUS_SET_BITRATE(6000));
|
||||
data_len = opus_encode(enc, pcm1, 960, data, 2000);
|
||||
assert(data_len > 0);
|
||||
|
||||
opus_encoder_ctl(enc, OPUS_SET_SIGNAL(OPUS_SIGNAL_VOICE));
|
||||
opus_encoder_ctl(enc, OPUS_SET_PREDICTION_DISABLED(1));
|
||||
|
@ -942,11 +943,13 @@ static int ec_enc_shrink_assert(void)
|
|||
opus_encoder_ctl(enc, OPUS_SET_INBAND_FEC(1));
|
||||
opus_encoder_ctl(enc, OPUS_SET_BITRATE(15600));
|
||||
data_len = opus_encode(enc, pcm2, 2880, data, 122);
|
||||
assert(data_len > 0);
|
||||
|
||||
opus_encoder_ctl(enc, OPUS_SET_SIGNAL(OPUS_SIGNAL_MUSIC));
|
||||
opus_encoder_ctl(enc, OPUS_SET_BITRATE(27000));
|
||||
data_len = opus_encode(enc, pcm3, 2880, data, 122); /* assertion failure */
|
||||
(void)data_len;
|
||||
assert(data_len > 0);
|
||||
|
||||
opus_encoder_destroy(enc);
|
||||
return 0;
|
||||
}
|
||||
|
|
|
@ -582,7 +582,7 @@ int run_test1(int no_fuzz)
|
|||
the decoders in order to compare them. */
|
||||
if(opus_packet_parse(packet,len,&toc,frames,size,&payload_offset)<=0)test_failed();
|
||||
if((fast_rand()&1023)==0)len=0;
|
||||
for(j=(frames[0]-packet);j<len;j++)for(jj=0;jj<8;jj++)packet[j]^=((!no_fuzz)&&((fast_rand()&1023)==0))<<jj;
|
||||
for(j=(opus_int32)(frames[0]-packet);j<len;j++)for(jj=0;jj<8;jj++)packet[j]^=((!no_fuzz)&&((fast_rand()&1023)==0))<<jj;
|
||||
out_samples = opus_decode(dec_err[0], len>0?packet:NULL, len, out2buf, MAX_FRAME_SAMP, 0);
|
||||
if(out_samples<0||out_samples>MAX_FRAME_SAMP)test_failed();
|
||||
if((len>0&&out_samples!=frame_size))test_failed(); /*FIXME use lastframe*/
|
||||
|
|
Loading…
Add table
Add a link
Reference in a new issue