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#define USE_FIXED 1 |
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#define TX_TYPE AV_TX_INT32_MDCT |
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|
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#include "libavutil/fixed_dsp.h" |
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#include "libavutil/opt.h" |
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#include "avcodec.h" |
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#include "codec_internal.h" |
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#include "get_bits.h" |
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#include "lpc.h" |
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#include "kbdwin.h" |
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#include "sinewin_fixed_tablegen.h" |
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|
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#include "aac.h" |
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#include "aactab.h" |
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#include "aacdectab.h" |
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#include "adts_header.h" |
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#include "cbrt_data.h" |
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#include "sbr.h" |
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#include "aacsbr.h" |
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#include "mpeg4audio.h" |
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#include "profiles.h" |
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#include "libavutil/intfloat.h" |
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|
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#include <math.h> |
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#include <string.h> |
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|
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DECLARE_ALIGNED(32, static int, AAC_RENAME2(aac_kbd_long_1024))[1024]; |
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DECLARE_ALIGNED(32, static int, AAC_RENAME2(aac_kbd_short_128))[128]; |
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DECLARE_ALIGNED(32, static int, AAC_RENAME2(aac_kbd_long_960))[960]; |
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DECLARE_ALIGNED(32, static int, AAC_RENAME2(aac_kbd_short_120))[120]; |
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|
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static av_always_inline void reset_predict_state(PredictorState *ps) |
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{ |
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ps->r0.mant = 0; |
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ps->r0.exp = 0; |
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ps->r1.mant = 0; |
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ps->r1.exp = 0; |
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ps->cor0.mant = 0; |
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ps->cor0.exp = 0; |
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ps->cor1.mant = 0; |
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ps->cor1.exp = 0; |
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ps->var0.mant = 0x20000000; |
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ps->var0.exp = 1; |
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ps->var1.mant = 0x20000000; |
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ps->var1.exp = 1; |
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} |
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|
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static const int exp2tab[4] = { Q31(1.0000000000/2), Q31(1.1892071150/2), Q31(1.4142135624/2), Q31(1.6817928305/2) }; |
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|
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static inline int *DEC_SPAIR(int *dst, unsigned idx) |
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{ |
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dst[0] = (idx & 15) - 4; |
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dst[1] = (idx >> 4 & 15) - 4; |
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return dst + 2; |
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} |
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static inline int *DEC_SQUAD(int *dst, unsigned idx) |
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{ |
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dst[0] = (idx & 3) - 1; |
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dst[1] = (idx >> 2 & 3) - 1; |
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dst[2] = (idx >> 4 & 3) - 1; |
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dst[3] = (idx >> 6 & 3) - 1; |
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return dst + 4; |
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} |
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static inline int *DEC_UPAIR(int *dst, unsigned idx, unsigned sign) |
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{ |
|
dst[0] = (idx & 15) * (1 - (sign & 0xFFFFFFFE)); |
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dst[1] = (idx >> 4 & 15) * (1 - ((sign & 1) * 2)); |
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|
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return dst + 2; |
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} |
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|
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static inline int *DEC_UQUAD(int *dst, unsigned idx, unsigned sign) |
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{ |
|
unsigned nz = idx >> 12; |
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|
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dst[0] = (idx & 3) * (1 + (((int)sign >> 31) * 2)); |
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sign <<= nz & 1; |
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nz >>= 1; |
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dst[1] = (idx >> 2 & 3) * (1 + (((int)sign >> 31) * 2)); |
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sign <<= nz & 1; |
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nz >>= 1; |
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dst[2] = (idx >> 4 & 3) * (1 + (((int)sign >> 31) * 2)); |
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sign <<= nz & 1; |
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nz >>= 1; |
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dst[3] = (idx >> 6 & 3) * (1 + (((int)sign >> 31) * 2)); |
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return dst + 4; |
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} |
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|
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static void vector_pow43(int *coefs, int len) |
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{ |
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int i, coef; |
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|
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for (i=0; i<len; i++) { |
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coef = coefs[i]; |
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if (coef < 0) |
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coef = -(int)ff_cbrt_tab_fixed[(-coef) & 8191]; |
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else |
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coef = (int)ff_cbrt_tab_fixed[ coef & 8191]; |
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coefs[i] = coef; |
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} |
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} |
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static void subband_scale(int *dst, int *src, int scale, int offset, int len, void *log_context) |
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{ |
|
int ssign = scale < 0 ? -1 : 1; |
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int s = FFABS(scale); |
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unsigned int round; |
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int i, out, c = exp2tab[s & 3]; |
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|
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s = offset - (s >> 2); |
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|
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if (s > 31) { |
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for (i=0; i<len; i++) { |
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dst[i] = 0; |
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} |
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} else if (s > 0) { |
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round = 1 << (s-1); |
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for (i=0; i<len; i++) { |
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out = (int)(((int64_t)src[i] * c) >> 32); |
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dst[i] = ((int)(out+round) >> s) * ssign; |
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} |
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} else if (s > -32) { |
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s = s + 32; |
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round = 1U << (s-1); |
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for (i=0; i<len; i++) { |
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out = (int)((int64_t)((int64_t)src[i] * c + round) >> s); |
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dst[i] = out * (unsigned)ssign; |
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} |
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} else { |
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av_log(log_context, AV_LOG_ERROR, "Overflow in subband_scale()\n"); |
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} |
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} |
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|
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static void noise_scale(int *coefs, int scale, int band_energy, int len) |
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{ |
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int s = -scale; |
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unsigned int round; |
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int i, out, c = exp2tab[s & 3]; |
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int nlz = 0; |
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|
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av_assert0(s >= 0); |
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while (band_energy > 0x7fff) { |
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band_energy >>= 1; |
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nlz++; |
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} |
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c /= band_energy; |
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s = 21 + nlz - (s >> 2); |
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|
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if (s > 31) { |
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for (i=0; i<len; i++) { |
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coefs[i] = 0; |
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} |
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} else if (s >= 0) { |
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round = s ? 1 << (s-1) : 0; |
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for (i=0; i<len; i++) { |
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out = (int)(((int64_t)coefs[i] * c) >> 32); |
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coefs[i] = -((int)(out+round) >> s); |
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} |
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} |
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else { |
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s = s + 32; |
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if (s > 0) { |
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round = 1 << (s-1); |
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for (i=0; i<len; i++) { |
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out = (int)((int64_t)((int64_t)coefs[i] * c + round) >> s); |
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coefs[i] = -out; |
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} |
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} else { |
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for (i=0; i<len; i++) |
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coefs[i] = -(int64_t)coefs[i] * c * (1 << -s); |
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} |
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} |
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} |
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static av_always_inline SoftFloat flt16_round(SoftFloat pf) |
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{ |
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SoftFloat tmp; |
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int s; |
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|
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tmp.exp = pf.exp; |
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s = pf.mant >> 31; |
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tmp.mant = (pf.mant ^ s) - s; |
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tmp.mant = (tmp.mant + 0x00200000U) & 0xFFC00000U; |
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tmp.mant = (tmp.mant ^ s) - s; |
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return tmp; |
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} |
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|
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static av_always_inline SoftFloat flt16_even(SoftFloat pf) |
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{ |
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SoftFloat tmp; |
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int s; |
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|
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tmp.exp = pf.exp; |
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s = pf.mant >> 31; |
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tmp.mant = (pf.mant ^ s) - s; |
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tmp.mant = (tmp.mant + 0x001FFFFFU + (tmp.mant & 0x00400000U >> 16)) & 0xFFC00000U; |
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tmp.mant = (tmp.mant ^ s) - s; |
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return tmp; |
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} |
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static av_always_inline SoftFloat flt16_trunc(SoftFloat pf) |
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{ |
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SoftFloat pun; |
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int s; |
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|
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pun.exp = pf.exp; |
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s = pf.mant >> 31; |
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pun.mant = (pf.mant ^ s) - s; |
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pun.mant = pun.mant & 0xFFC00000U; |
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pun.mant = (pun.mant ^ s) - s; |
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|
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return pun; |
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} |
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|
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static av_always_inline void predict(PredictorState *ps, int *coef, |
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int output_enable) |
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{ |
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const SoftFloat a = { 1023410176, 0 }; |
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const SoftFloat alpha = { 973078528, 0 }; |
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SoftFloat e0, e1; |
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SoftFloat pv; |
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SoftFloat k1, k2; |
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SoftFloat r0 = ps->r0, r1 = ps->r1; |
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SoftFloat cor0 = ps->cor0, cor1 = ps->cor1; |
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SoftFloat var0 = ps->var0, var1 = ps->var1; |
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SoftFloat tmp; |
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|
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if (var0.exp > 1 || (var0.exp == 1 && var0.mant > 0x20000000)) { |
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k1 = av_mul_sf(cor0, flt16_even(av_div_sf(a, var0))); |
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} |
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else { |
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k1.mant = 0; |
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k1.exp = 0; |
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} |
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|
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if (var1.exp > 1 || (var1.exp == 1 && var1.mant > 0x20000000)) { |
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k2 = av_mul_sf(cor1, flt16_even(av_div_sf(a, var1))); |
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} |
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else { |
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k2.mant = 0; |
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k2.exp = 0; |
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} |
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|
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tmp = av_mul_sf(k1, r0); |
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pv = flt16_round(av_add_sf(tmp, av_mul_sf(k2, r1))); |
|
if (output_enable) { |
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int shift = 28 - pv.exp; |
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|
|
if (shift < 31) { |
|
if (shift > 0) { |
|
*coef += (unsigned)((pv.mant + (1 << (shift - 1))) >> shift); |
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} else |
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*coef += (unsigned)pv.mant << -shift; |
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} |
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} |
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|
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e0 = av_int2sf(*coef, 2); |
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e1 = av_sub_sf(e0, tmp); |
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|
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ps->cor1 = flt16_trunc(av_add_sf(av_mul_sf(alpha, cor1), av_mul_sf(r1, e1))); |
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tmp = av_add_sf(av_mul_sf(r1, r1), av_mul_sf(e1, e1)); |
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tmp.exp--; |
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ps->var1 = flt16_trunc(av_add_sf(av_mul_sf(alpha, var1), tmp)); |
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ps->cor0 = flt16_trunc(av_add_sf(av_mul_sf(alpha, cor0), av_mul_sf(r0, e0))); |
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tmp = av_add_sf(av_mul_sf(r0, r0), av_mul_sf(e0, e0)); |
|
tmp.exp--; |
|
ps->var0 = flt16_trunc(av_add_sf(av_mul_sf(alpha, var0), tmp)); |
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|
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ps->r1 = flt16_trunc(av_mul_sf(a, av_sub_sf(r0, av_mul_sf(k1, e0)))); |
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ps->r0 = flt16_trunc(av_mul_sf(a, e0)); |
|
} |
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|
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static const int cce_scale_fixed[8] = { |
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Q30(1.0), |
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Q30(1.0905077327), |
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Q30(1.1892071150), |
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Q30(1.2968395547), |
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Q30(1.4142135624), |
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Q30(1.5422108254), |
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Q30(1.6817928305), |
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Q30(1.8340080864), |
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}; |
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|
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static void apply_dependent_coupling_fixed(AACContext *ac, |
|
SingleChannelElement *target, |
|
ChannelElement *cce, int index) |
|
{ |
|
IndividualChannelStream *ics = &cce->ch[0].ics; |
|
const uint16_t *offsets = ics->swb_offset; |
|
int *dest = target->coeffs; |
|
const int *src = cce->ch[0].coeffs; |
|
int g, i, group, k, idx = 0; |
|
if (ac->oc[1].m4ac.object_type == AOT_AAC_LTP) { |
|
av_log(ac->avctx, AV_LOG_ERROR, |
|
"Dependent coupling is not supported together with LTP\n"); |
|
return; |
|
} |
|
for (g = 0; g < ics->num_window_groups; g++) { |
|
for (i = 0; i < ics->max_sfb; i++, idx++) { |
|
if (cce->ch[0].band_type[idx] != ZERO_BT) { |
|
const int gain = cce->coup.gain[index][idx]; |
|
int shift, round, c, tmp; |
|
|
|
if (gain < 0) { |
|
c = -cce_scale_fixed[-gain & 7]; |
|
shift = (-gain-1024) >> 3; |
|
} |
|
else { |
|
c = cce_scale_fixed[gain & 7]; |
|
shift = (gain-1024) >> 3; |
|
} |
|
|
|
if (shift < -31) { |
|
|
|
} else if (shift < 0) { |
|
shift = -shift; |
|
round = 1 << (shift - 1); |
|
|
|
for (group = 0; group < ics->group_len[g]; group++) { |
|
for (k = offsets[i]; k < offsets[i + 1]; k++) { |
|
tmp = (int)(((int64_t)src[group * 128 + k] * c + \ |
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(int64_t)0x1000000000) >> 37); |
|
dest[group * 128 + k] += (tmp + (int64_t)round) >> shift; |
|
} |
|
} |
|
} |
|
else { |
|
for (group = 0; group < ics->group_len[g]; group++) { |
|
for (k = offsets[i]; k < offsets[i + 1]; k++) { |
|
tmp = (int)(((int64_t)src[group * 128 + k] * c + \ |
|
(int64_t)0x1000000000) >> 37); |
|
dest[group * 128 + k] += tmp * (1U << shift); |
|
} |
|
} |
|
} |
|
} |
|
} |
|
dest += ics->group_len[g] * 128; |
|
src += ics->group_len[g] * 128; |
|
} |
|
} |
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|
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static void apply_independent_coupling_fixed(AACContext *ac, |
|
SingleChannelElement *target, |
|
ChannelElement *cce, int index) |
|
{ |
|
int i, c, shift, round, tmp; |
|
const int gain = cce->coup.gain[index][0]; |
|
const int *src = cce->ch[0].ret; |
|
unsigned int *dest = target->ret; |
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const int len = 1024 << (ac->oc[1].m4ac.sbr == 1); |
|
|
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c = cce_scale_fixed[gain & 7]; |
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shift = (gain-1024) >> 3; |
|
if (shift < -31) { |
|
return; |
|
} else if (shift < 0) { |
|
shift = -shift; |
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round = 1 << (shift - 1); |
|
|
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for (i = 0; i < len; i++) { |
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tmp = (int)(((int64_t)src[i] * c + (int64_t)0x1000000000) >> 37); |
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dest[i] += (tmp + round) >> shift; |
|
} |
|
} |
|
else { |
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for (i = 0; i < len; i++) { |
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tmp = (int)(((int64_t)src[i] * c + (int64_t)0x1000000000) >> 37); |
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dest[i] += tmp * (1U << shift); |
|
} |
|
} |
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} |
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#include "aacdec_template.c" |
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|
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const FFCodec ff_aac_fixed_decoder = { |
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.p.name = "aac_fixed", |
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CODEC_LONG_NAME("AAC (Advanced Audio Coding)"), |
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.p.type = AVMEDIA_TYPE_AUDIO, |
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.p.id = AV_CODEC_ID_AAC, |
|
.priv_data_size = sizeof(AACContext), |
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.init = aac_decode_init, |
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.close = aac_decode_close, |
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FF_CODEC_DECODE_CB(aac_decode_frame), |
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.p.sample_fmts = (const enum AVSampleFormat[]) { |
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AV_SAMPLE_FMT_S32P, AV_SAMPLE_FMT_NONE |
|
}, |
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.p.capabilities = AV_CODEC_CAP_CHANNEL_CONF | AV_CODEC_CAP_DR1, |
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.caps_internal = FF_CODEC_CAP_INIT_CLEANUP, |
|
CODEC_OLD_CHANNEL_LAYOUTS_ARRAY(aac_channel_layout) |
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.p.ch_layouts = aac_ch_layout, |
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.p.priv_class = &aac_decoder_class, |
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.p.profiles = NULL_IF_CONFIG_SMALL(ff_aac_profiles), |
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.flush = flush, |
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}; |
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|