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  1. /*
  2. * LSP routines for ACELP-based codecs
  3. *
  4. * Copyright (c) 2007 Reynaldo H. Verdejo Pinochet (QCELP decoder)
  5. * Copyright (c) 2008 Vladimir Voroshilov
  6. *
  7. * This file is part of FFmpeg.
  8. *
  9. * FFmpeg is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU Lesser General Public
  11. * License as published by the Free Software Foundation; either
  12. * version 2.1 of the License, or (at your option) any later version.
  13. *
  14. * FFmpeg is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  17. * Lesser General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU Lesser General Public
  20. * License along with FFmpeg; if not, write to the Free Software
  21. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  22. */
  23. #include <inttypes.h>
  24. #include "avcodec.h"
  25. #define FRAC_BITS 14
  26. #include "mathops.h"
  27. #include "lsp.h"
  28. #include "celp_math.h"
  29. #include "libavcodec/mips/lsp_mips.h"
  30. void ff_acelp_reorder_lsf(int16_t* lsfq, int lsfq_min_distance, int lsfq_min, int lsfq_max, int lp_order)
  31. {
  32. int i, j;
  33. /* sort lsfq in ascending order. float bubble agorithm,
  34. O(n) if data already sorted, O(n^2) - otherwise */
  35. for(i=0; i<lp_order-1; i++)
  36. for(j=i; j>=0 && lsfq[j] > lsfq[j+1]; j--)
  37. FFSWAP(int16_t, lsfq[j], lsfq[j+1]);
  38. for(i=0; i<lp_order; i++)
  39. {
  40. lsfq[i] = FFMAX(lsfq[i], lsfq_min);
  41. lsfq_min = lsfq[i] + lsfq_min_distance;
  42. }
  43. lsfq[lp_order-1] = FFMIN(lsfq[lp_order-1], lsfq_max);//Is warning required ?
  44. }
  45. void ff_set_min_dist_lsf(float *lsf, double min_spacing, int size)
  46. {
  47. int i;
  48. float prev = 0.0;
  49. for (i = 0; i < size; i++)
  50. prev = lsf[i] = FFMAX(lsf[i], prev + min_spacing);
  51. }
  52. void ff_acelp_lsf2lsp(int16_t *lsp, const int16_t *lsf, int lp_order)
  53. {
  54. int i;
  55. /* Convert LSF to LSP, lsp=cos(lsf) */
  56. for(i=0; i<lp_order; i++)
  57. // 20861 = 2.0 / PI in (0.15)
  58. lsp[i] = ff_cos(lsf[i] * 20861 >> 15); // divide by PI and (0,13) -> (0,14)
  59. }
  60. void ff_acelp_lsf2lspd(double *lsp, const float *lsf, int lp_order)
  61. {
  62. int i;
  63. for(i = 0; i < lp_order; i++)
  64. lsp[i] = cos(2.0 * M_PI * lsf[i]);
  65. }
  66. /**
  67. * @brief decodes polynomial coefficients from LSP
  68. * @param[out] f decoded polynomial coefficients (-0x20000000 <= (3.22) <= 0x1fffffff)
  69. * @param lsp LSP coefficients (-0x8000 <= (0.15) <= 0x7fff)
  70. */
  71. static void lsp2poly(int* f, const int16_t* lsp, int lp_half_order)
  72. {
  73. int i, j;
  74. f[0] = 0x400000; // 1.0 in (3.22)
  75. f[1] = -lsp[0] << 8; // *2 and (0.15) -> (3.22)
  76. for(i=2; i<=lp_half_order; i++)
  77. {
  78. f[i] = f[i-2];
  79. for(j=i; j>1; j--)
  80. f[j] -= MULL(f[j-1], lsp[2*i-2], FRAC_BITS) - f[j-2];
  81. f[1] -= lsp[2*i-2] << 8;
  82. }
  83. }
  84. void ff_acelp_lsp2lpc(int16_t* lp, const int16_t* lsp, int lp_half_order)
  85. {
  86. int i;
  87. int f1[MAX_LP_HALF_ORDER+1]; // (3.22)
  88. int f2[MAX_LP_HALF_ORDER+1]; // (3.22)
  89. lsp2poly(f1, lsp , lp_half_order);
  90. lsp2poly(f2, lsp+1, lp_half_order);
  91. /* 3.2.6 of G.729, Equations 25 and 26*/
  92. lp[0] = 4096;
  93. for(i=1; i<lp_half_order+1; i++)
  94. {
  95. int ff1 = f1[i] + f1[i-1]; // (3.22)
  96. int ff2 = f2[i] - f2[i-1]; // (3.22)
  97. ff1 += 1 << 10; // for rounding
  98. lp[i] = (ff1 + ff2) >> 11; // divide by 2 and (3.22) -> (3.12)
  99. lp[(lp_half_order << 1) + 1 - i] = (ff1 - ff2) >> 11; // divide by 2 and (3.22) -> (3.12)
  100. }
  101. }
  102. void ff_amrwb_lsp2lpc(const double *lsp, float *lp, int lp_order)
  103. {
  104. int lp_half_order = lp_order >> 1;
  105. double buf[MAX_LP_HALF_ORDER + 1];
  106. double pa[MAX_LP_HALF_ORDER + 1];
  107. double *qa = buf + 1;
  108. int i,j;
  109. qa[-1] = 0.0;
  110. ff_lsp2polyf(lsp , pa, lp_half_order );
  111. ff_lsp2polyf(lsp + 1, qa, lp_half_order - 1);
  112. for (i = 1, j = lp_order - 1; i < lp_half_order; i++, j--) {
  113. double paf = pa[i] * (1 + lsp[lp_order - 1]);
  114. double qaf = (qa[i] - qa[i-2]) * (1 - lsp[lp_order - 1]);
  115. lp[i-1] = (paf + qaf) * 0.5;
  116. lp[j-1] = (paf - qaf) * 0.5;
  117. }
  118. lp[lp_half_order - 1] = (1.0 + lsp[lp_order - 1]) *
  119. pa[lp_half_order] * 0.5;
  120. lp[lp_order - 1] = lsp[lp_order - 1];
  121. }
  122. void ff_acelp_lp_decode(int16_t* lp_1st, int16_t* lp_2nd, const int16_t* lsp_2nd, const int16_t* lsp_prev, int lp_order)
  123. {
  124. int16_t lsp_1st[MAX_LP_ORDER]; // (0.15)
  125. int i;
  126. /* LSP values for first subframe (3.2.5 of G.729, Equation 24)*/
  127. for(i=0; i<lp_order; i++)
  128. #ifdef G729_BITEXACT
  129. lsp_1st[i] = (lsp_2nd[i] >> 1) + (lsp_prev[i] >> 1);
  130. #else
  131. lsp_1st[i] = (lsp_2nd[i] + lsp_prev[i]) >> 1;
  132. #endif
  133. ff_acelp_lsp2lpc(lp_1st, lsp_1st, lp_order >> 1);
  134. /* LSP values for second subframe (3.2.5 of G.729)*/
  135. ff_acelp_lsp2lpc(lp_2nd, lsp_2nd, lp_order >> 1);
  136. }
  137. #ifndef ff_lsp2polyf
  138. void ff_lsp2polyf(const double *lsp, double *f, int lp_half_order)
  139. {
  140. int i, j;
  141. f[0] = 1.0;
  142. f[1] = -2 * lsp[0];
  143. lsp -= 2;
  144. for(i=2; i<=lp_half_order; i++)
  145. {
  146. double val = -2 * lsp[2*i];
  147. f[i] = val * f[i-1] + 2*f[i-2];
  148. for(j=i-1; j>1; j--)
  149. f[j] += f[j-1] * val + f[j-2];
  150. f[1] += val;
  151. }
  152. }
  153. #endif /* ff_lsp2polyf */
  154. void ff_acelp_lspd2lpc(const double *lsp, float *lpc, int lp_half_order)
  155. {
  156. double pa[MAX_LP_HALF_ORDER+1], qa[MAX_LP_HALF_ORDER+1];
  157. float *lpc2 = lpc + (lp_half_order << 1) - 1;
  158. assert(lp_half_order <= MAX_LP_HALF_ORDER);
  159. ff_lsp2polyf(lsp, pa, lp_half_order);
  160. ff_lsp2polyf(lsp + 1, qa, lp_half_order);
  161. while (lp_half_order--) {
  162. double paf = pa[lp_half_order+1] + pa[lp_half_order];
  163. double qaf = qa[lp_half_order+1] - qa[lp_half_order];
  164. lpc [ lp_half_order] = 0.5*(paf+qaf);
  165. lpc2[-lp_half_order] = 0.5*(paf-qaf);
  166. }
  167. }
  168. void ff_sort_nearly_sorted_floats(float *vals, int len)
  169. {
  170. int i,j;
  171. for (i = 0; i < len - 1; i++)
  172. for (j = i; j >= 0 && vals[j] > vals[j+1]; j--)
  173. FFSWAP(float, vals[j], vals[j+1]);
  174. }