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  1. /*
  2. * audio resampling
  3. * Copyright (c) 2004-2012 Michael Niedermayer <michaelni@gmx.at>
  4. *
  5. * This file is part of FFmpeg.
  6. *
  7. * FFmpeg is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU Lesser General Public
  9. * License as published by the Free Software Foundation; either
  10. * version 2.1 of the License, or (at your option) any later version.
  11. *
  12. * FFmpeg is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  15. * Lesser General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU Lesser General Public
  18. * License along with FFmpeg; if not, write to the Free Software
  19. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  20. */
  21. /**
  22. * @file
  23. * audio resampling
  24. * @author Michael Niedermayer <michaelni@gmx.at>
  25. */
  26. #if defined(TEMPLATE_RESAMPLE_DBL) \
  27. || defined(TEMPLATE_RESAMPLE_DBL_SSE2)
  28. # define FILTER_SHIFT 0
  29. # define DELEM double
  30. # define FELEM double
  31. # define FELEM2 double
  32. # define FELEML double
  33. # define OUT(d, v) d = v
  34. # if defined(TEMPLATE_RESAMPLE_DBL)
  35. # define RENAME(N) N ## _double
  36. # elif defined(TEMPLATE_RESAMPLE_DBL_SSE2)
  37. # define COMMON_CORE COMMON_CORE_DBL_SSE2
  38. # define LINEAR_CORE LINEAR_CORE_DBL_SSE2
  39. # define RENAME(N) N ## _double_sse2
  40. # endif
  41. #elif defined(TEMPLATE_RESAMPLE_FLT) \
  42. || defined(TEMPLATE_RESAMPLE_FLT_SSE) \
  43. || defined(TEMPLATE_RESAMPLE_FLT_AVX)
  44. # define FILTER_SHIFT 0
  45. # define DELEM float
  46. # define FELEM float
  47. # define FELEM2 float
  48. # define FELEML float
  49. # define OUT(d, v) d = v
  50. # if defined(TEMPLATE_RESAMPLE_FLT)
  51. # define RENAME(N) N ## _float
  52. # elif defined(TEMPLATE_RESAMPLE_FLT_SSE)
  53. # define COMMON_CORE COMMON_CORE_FLT_SSE
  54. # define LINEAR_CORE LINEAR_CORE_FLT_SSE
  55. # define RENAME(N) N ## _float_sse
  56. # elif defined(TEMPLATE_RESAMPLE_FLT_AVX)
  57. # define COMMON_CORE COMMON_CORE_FLT_AVX
  58. # define LINEAR_CORE LINEAR_CORE_FLT_AVX
  59. # define RENAME(N) N ## _float_avx
  60. # endif
  61. #elif defined(TEMPLATE_RESAMPLE_S32)
  62. # define RENAME(N) N ## _int32
  63. # define FILTER_SHIFT 30
  64. # define DELEM int32_t
  65. # define FELEM int32_t
  66. # define FELEM2 int64_t
  67. # define FELEML int64_t
  68. # define FELEM_MAX INT32_MAX
  69. # define FELEM_MIN INT32_MIN
  70. # define OUT(d, v) v = (v + (1<<(FILTER_SHIFT-1)))>>FILTER_SHIFT;\
  71. d = (uint64_t)(v + 0x80000000) > 0xFFFFFFFF ? (v>>63) ^ 0x7FFFFFFF : v
  72. #elif defined(TEMPLATE_RESAMPLE_S16) \
  73. || defined(TEMPLATE_RESAMPLE_S16_MMX2) \
  74. || defined(TEMPLATE_RESAMPLE_S16_SSE2)
  75. # define FILTER_SHIFT 15
  76. # define DELEM int16_t
  77. # define FELEM int16_t
  78. # define FELEM2 int32_t
  79. # define FELEML int64_t
  80. # define FELEM_MAX INT16_MAX
  81. # define FELEM_MIN INT16_MIN
  82. # define OUT(d, v) v = (v + (1<<(FILTER_SHIFT-1)))>>FILTER_SHIFT;\
  83. d = (unsigned)(v + 32768) > 65535 ? (v>>31) ^ 32767 : v
  84. # if defined(TEMPLATE_RESAMPLE_S16)
  85. # define RENAME(N) N ## _int16
  86. # elif defined(TEMPLATE_RESAMPLE_S16_MMX2)
  87. # define COMMON_CORE COMMON_CORE_INT16_MMX2
  88. # define LINEAR_CORE LINEAR_CORE_INT16_MMX2
  89. # define RENAME(N) N ## _int16_mmx2
  90. # elif defined(TEMPLATE_RESAMPLE_S16_SSE2)
  91. # define COMMON_CORE COMMON_CORE_INT16_SSE2
  92. # define LINEAR_CORE LINEAR_CORE_INT16_SSE2
  93. # define RENAME(N) N ## _int16_sse2
  94. # endif
  95. #endif
  96. int RENAME(swri_resample)(ResampleContext *c, DELEM *dst, const DELEM *src, int *consumed, int src_size, int dst_size, int update_ctx){
  97. int dst_index, i;
  98. int index= c->index;
  99. int frac= c->frac;
  100. int dst_incr_frac= c->dst_incr % c->src_incr;
  101. int dst_incr= c->dst_incr / c->src_incr;
  102. int compensation_distance= c->compensation_distance;
  103. av_assert1(c->filter_shift == FILTER_SHIFT);
  104. av_assert1(c->felem_size == sizeof(FELEM));
  105. if(compensation_distance == 0 && c->filter_length == 1 && c->phase_shift==0){
  106. int64_t index2= (1LL<<32)*c->frac/c->src_incr + (1LL<<32)*index;
  107. int64_t incr= (1LL<<32) * c->dst_incr / c->src_incr;
  108. int new_size = (src_size * (int64_t)c->src_incr - frac + c->dst_incr - 1) / c->dst_incr;
  109. dst_size= FFMIN(dst_size, new_size);
  110. for(dst_index=0; dst_index < dst_size; dst_index++){
  111. dst[dst_index] = src[index2>>32];
  112. index2 += incr;
  113. }
  114. index += dst_index * dst_incr;
  115. index += (frac + dst_index * (int64_t)dst_incr_frac) / c->src_incr;
  116. frac = (frac + dst_index * (int64_t)dst_incr_frac) % c->src_incr;
  117. av_assert2(index >= 0);
  118. *consumed= index;
  119. index = 0;
  120. }else if(compensation_distance == 0 && !c->linear && index >= 0){
  121. int sample_index = 0;
  122. for(dst_index=0; dst_index < dst_size; dst_index++){
  123. FELEM *filter;
  124. sample_index += index >> c->phase_shift;
  125. index &= c->phase_mask;
  126. filter= ((FELEM*)c->filter_bank) + c->filter_alloc*index;
  127. if(sample_index + c->filter_length > src_size){
  128. break;
  129. }else{
  130. #ifdef COMMON_CORE
  131. COMMON_CORE
  132. #else
  133. FELEM2 val=0;
  134. for(i=0; i<c->filter_length; i++){
  135. val += src[sample_index + i] * (FELEM2)filter[i];
  136. }
  137. OUT(dst[dst_index], val);
  138. #endif
  139. }
  140. frac += dst_incr_frac;
  141. index += dst_incr;
  142. if(frac >= c->src_incr){
  143. frac -= c->src_incr;
  144. index++;
  145. }
  146. }
  147. *consumed = sample_index;
  148. }else{
  149. int sample_index = 0;
  150. for(dst_index=0; dst_index < dst_size; dst_index++){
  151. FELEM *filter;
  152. FELEM2 val=0;
  153. sample_index += index >> c->phase_shift;
  154. index &= c->phase_mask;
  155. filter = ((FELEM*)c->filter_bank) + c->filter_alloc*index;
  156. if(sample_index + c->filter_length > src_size || -sample_index >= src_size){
  157. break;
  158. }else if(sample_index < 0){
  159. for(i=0; i<c->filter_length; i++)
  160. val += src[FFABS(sample_index + i)] * (FELEM2)filter[i];
  161. OUT(dst[dst_index], val);
  162. }else if(c->linear){
  163. FELEM2 v2=0;
  164. #ifdef LINEAR_CORE
  165. LINEAR_CORE
  166. #else
  167. for(i=0; i<c->filter_length; i++){
  168. val += src[sample_index + i] * (FELEM2)filter[i];
  169. v2 += src[sample_index + i] * (FELEM2)filter[i + c->filter_alloc];
  170. }
  171. #endif
  172. val+=(v2-val)*(FELEML)frac / c->src_incr;
  173. OUT(dst[dst_index], val);
  174. }else{
  175. #ifdef COMMON_CORE
  176. COMMON_CORE
  177. #else
  178. for(i=0; i<c->filter_length; i++){
  179. val += src[sample_index + i] * (FELEM2)filter[i];
  180. }
  181. OUT(dst[dst_index], val);
  182. #endif
  183. }
  184. frac += dst_incr_frac;
  185. index += dst_incr;
  186. if(frac >= c->src_incr){
  187. frac -= c->src_incr;
  188. index++;
  189. }
  190. if(dst_index + 1 == compensation_distance){
  191. compensation_distance= 0;
  192. dst_incr_frac= c->ideal_dst_incr % c->src_incr;
  193. dst_incr= c->ideal_dst_incr / c->src_incr;
  194. }
  195. }
  196. *consumed= FFMAX(sample_index, 0);
  197. index += FFMIN(sample_index, 0) << c->phase_shift;
  198. if(compensation_distance){
  199. compensation_distance -= dst_index;
  200. av_assert1(compensation_distance > 0);
  201. }
  202. }
  203. if(update_ctx){
  204. c->frac= frac;
  205. c->index= index;
  206. c->dst_incr= dst_incr_frac + c->src_incr*dst_incr;
  207. c->compensation_distance= compensation_distance;
  208. }
  209. return dst_index;
  210. }
  211. #undef COMMON_CORE
  212. #undef LINEAR_CORE
  213. #undef RENAME
  214. #undef FILTER_SHIFT
  215. #undef DELEM
  216. #undef FELEM
  217. #undef FELEM2
  218. #undef FELEML
  219. #undef FELEM_MAX
  220. #undef FELEM_MIN
  221. #undef OUT