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  1. /*
  2. * G.726 ADPCM audio codec
  3. * Copyright (c) 2004 Roman Shaposhnik.
  4. *
  5. * This is a very straightforward rendition of the G.726
  6. * Section 4 "Computational Details".
  7. *
  8. * This library is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU Lesser General Public
  10. * License as published by the Free Software Foundation; either
  11. * version 2 of the License, or (at your option) any later version.
  12. *
  13. * This library is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  16. * Lesser General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU Lesser General Public
  19. * License along with this library; if not, write to the Free Software
  20. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  21. */
  22. #include <limits.h>
  23. #include "avcodec.h"
  24. #include "common.h"
  25. /**
  26. * G.726 11bit float.
  27. * G.726 Standard uses rather odd 11bit floating point arithmentic for
  28. * numerous occasions. It's a mistery to me why they did it this way
  29. * instead of simply using 32bit integer arithmetic.
  30. */
  31. typedef struct Float11 {
  32. int sign; /**< 1bit sign */
  33. int exp; /**< 4bit exponent */
  34. int mant; /**< 6bit mantissa */
  35. } Float11;
  36. static inline Float11* i2f(int16_t i, Float11* f)
  37. {
  38. f->sign = (i < 0);
  39. if (f->sign)
  40. i = -i;
  41. f->exp = av_log2_16bit(i) + !!i;
  42. f->mant = i? (i<<6) >> f->exp :
  43. 1<<5;
  44. return f;
  45. }
  46. static inline int16_t mult(Float11* f1, Float11* f2)
  47. {
  48. int res, exp;
  49. exp = f1->exp + f2->exp;
  50. res = (((f1->mant * f2->mant) + 0x30) >> 4) << 7;
  51. res = exp > 26 ? res << (exp - 26) : res >> (26 - exp);
  52. return (f1->sign ^ f2->sign) ? -res : res;
  53. }
  54. static inline int sgn(int value)
  55. {
  56. return (value < 0) ? -1 : 1;
  57. }
  58. typedef struct G726Tables {
  59. int bits; /**< bits per sample */
  60. int* quant; /**< quantization table */
  61. int* iquant; /**< inverse quantization table */
  62. int* W; /**< special table #1 ;-) */
  63. int* F; /**< special table #2 */
  64. } G726Tables;
  65. typedef struct G726Context {
  66. G726Tables* tbls; /**< static tables needed for computation */
  67. Float11 sr[2]; /**< prev. reconstructed samples */
  68. Float11 dq[6]; /**< prev. difference */
  69. int a[2]; /**< second order predictor coeffs */
  70. int b[6]; /**< sixth order predictor coeffs */
  71. int pk[2]; /**< signs of prev. 2 sez + dq */
  72. int ap; /**< scale factor control */
  73. int yu; /**< fast scale factor */
  74. int yl; /**< slow scale factor */
  75. int dms; /**< short average magnitude of F[i] */
  76. int dml; /**< long average magnitude of F[i] */
  77. int td; /**< tone detect */
  78. int se; /**< estimated signal for the next iteration */
  79. int sez; /**< estimated second order prediction */
  80. int y; /**< quantizer scaling factor for the next iteration */
  81. } G726Context;
  82. static int quant_tbl16[] = /**< 16kbit/s 2bits per sample */
  83. { 260, INT_MAX };
  84. static int iquant_tbl16[] =
  85. { 116, 365, 365, 116 };
  86. static int W_tbl16[] =
  87. { -22, 439, 439, -22 };
  88. static int F_tbl16[] =
  89. { 0, 7, 7, 0 };
  90. static int quant_tbl24[] = /**< 24kbit/s 3bits per sample */
  91. { 7, 217, 330, INT_MAX };
  92. static int iquant_tbl24[] =
  93. { INT_MIN, 135, 273, 373, 373, 273, 135, INT_MIN };
  94. static int W_tbl24[] =
  95. { -4, 30, 137, 582, 582, 137, 30, -4 };
  96. static int F_tbl24[] =
  97. { 0, 1, 2, 7, 7, 2, 1, 0 };
  98. static int quant_tbl32[] = /**< 32kbit/s 4bits per sample */
  99. { -125, 79, 177, 245, 299, 348, 399, INT_MAX };
  100. static int iquant_tbl32[] =
  101. { INT_MIN, 4, 135, 213, 273, 323, 373, 425,
  102. 425, 373, 323, 273, 213, 135, 4, INT_MIN };
  103. static int W_tbl32[] =
  104. { -12, 18, 41, 64, 112, 198, 355, 1122,
  105. 1122, 355, 198, 112, 64, 41, 18, -12};
  106. static int F_tbl32[] =
  107. { 0, 0, 0, 1, 1, 1, 3, 7, 7, 3, 1, 1, 1, 0, 0, 0 };
  108. static int quant_tbl40[] = /**< 40kbit/s 5bits per sample */
  109. { -122, -16, 67, 138, 197, 249, 297, 338,
  110. 377, 412, 444, 474, 501, 527, 552, INT_MAX };
  111. static int iquant_tbl40[] =
  112. { INT_MIN, -66, 28, 104, 169, 224, 274, 318,
  113. 358, 395, 429, 459, 488, 514, 539, 566,
  114. 566, 539, 514, 488, 459, 429, 395, 358,
  115. 318, 274, 224, 169, 104, 28, -66, INT_MIN };
  116. static int W_tbl40[] =
  117. { 14, 14, 24, 39, 40, 41, 58, 100,
  118. 141, 179, 219, 280, 358, 440, 529, 696,
  119. 696, 529, 440, 358, 280, 219, 179, 141,
  120. 100, 58, 41, 40, 39, 24, 14, 14 };
  121. static int F_tbl40[] =
  122. { 0, 0, 0, 0, 0, 1, 1, 1, 1, 1, 2, 3, 4, 5, 6, 6,
  123. 6, 6, 5, 4, 3, 2, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0 };
  124. static G726Tables G726Tables_pool[] =
  125. {{ 2, quant_tbl16, iquant_tbl16, W_tbl16, F_tbl16 },
  126. { 3, quant_tbl24, iquant_tbl24, W_tbl24, F_tbl24 },
  127. { 4, quant_tbl32, iquant_tbl32, W_tbl32, F_tbl32 },
  128. { 5, quant_tbl40, iquant_tbl40, W_tbl40, F_tbl40 }};
  129. /**
  130. * Para 4.2.2 page 18: Adaptive quantizer.
  131. */
  132. static inline uint8_t quant(G726Context* c, int d)
  133. {
  134. int sign, exp, i, dln;
  135. sign = i = 0;
  136. if (d < 0) {
  137. sign = 1;
  138. d = -d;
  139. }
  140. exp = av_log2_16bit(d);
  141. dln = ((exp<<7) + (((d<<7)>>exp)&0x7f)) - (c->y>>2);
  142. while (c->tbls->quant[i] < INT_MAX && c->tbls->quant[i] < dln)
  143. ++i;
  144. if (sign)
  145. i = ~i;
  146. if (c->tbls->bits != 2 && i == 0) /* I'm not sure this is a good idea */
  147. i = 0xff;
  148. return i;
  149. }
  150. /**
  151. * Para 4.2.3 page 22: Inverse adaptive quantizer.
  152. */
  153. static inline int16_t inverse_quant(G726Context* c, int i)
  154. {
  155. int dql, dex, dqt;
  156. dql = c->tbls->iquant[i] + (c->y >> 2);
  157. dex = (dql>>7) & 0xf; /* 4bit exponent */
  158. dqt = (1<<7) + (dql & 0x7f); /* log2 -> linear */
  159. return (dql < 0) ? 0 : ((dqt<<7) >> (14-dex));
  160. }
  161. static inline int16_t g726_iterate(G726Context* c, int16_t I)
  162. {
  163. int dq, re_signal, pk0, fa1, i, tr, ylint, ylfrac, thr2, al, dq0;
  164. Float11 f;
  165. dq = inverse_quant(c, I);
  166. if (I >> (c->tbls->bits - 1)) /* get the sign */
  167. dq = -dq;
  168. re_signal = c->se + dq;
  169. /* Transition detect */
  170. ylint = (c->yl >> 15);
  171. ylfrac = (c->yl >> 10) & 0x1f;
  172. thr2 = (ylint > 9) ? 0x1f << 10 : (0x20 + ylfrac) << ylint;
  173. if (c->td == 1 && abs(dq) > ((thr2+(thr2>>1))>>1))
  174. tr = 1;
  175. else
  176. tr = 0;
  177. /* Update second order predictor coefficient A2 and A1 */
  178. pk0 = (c->sez + dq) ? sgn(c->sez + dq) : 0;
  179. dq0 = dq ? sgn(dq) : 0;
  180. if (tr) {
  181. c->a[0] = 0;
  182. c->a[1] = 0;
  183. for (i=0; i<6; i++)
  184. c->b[i] = 0;
  185. } else {
  186. /* This is a bit crazy, but it really is +255 not +256 */
  187. fa1 = clip((-c->a[0]*c->pk[0]*pk0)>>5, -256, 255);
  188. c->a[1] += 128*pk0*c->pk[1] + fa1 - (c->a[1]>>7);
  189. c->a[1] = clip(c->a[1], -12288, 12288);
  190. c->a[0] += 64*3*pk0*c->pk[0] - (c->a[0] >> 8);
  191. c->a[0] = clip(c->a[0], -(15360 - c->a[1]), 15360 - c->a[1]);
  192. for (i=0; i<6; i++)
  193. c->b[i] += 128*dq0*sgn(-c->dq[i].sign) - (c->b[i]>>8);
  194. }
  195. /* Update Dq and Sr and Pk */
  196. c->pk[1] = c->pk[0];
  197. c->pk[0] = pk0 ? pk0 : 1;
  198. c->sr[1] = c->sr[0];
  199. i2f(re_signal, &c->sr[0]);
  200. for (i=5; i>0; i--)
  201. c->dq[i] = c->dq[i-1];
  202. i2f(dq, &c->dq[0]);
  203. c->dq[0].sign = I >> (c->tbls->bits - 1); /* Isn't it crazy ?!?! */
  204. /* Update tone detect [I'm not sure 'tr == 0' is really needed] */
  205. c->td = (tr == 0 && c->a[1] < -11776);
  206. /* Update Ap */
  207. c->dms += ((c->tbls->F[I]<<9) - c->dms) >> 5;
  208. c->dml += ((c->tbls->F[I]<<11) - c->dml) >> 7;
  209. if (tr)
  210. c->ap = 256;
  211. else if (c->y > 1535 && !c->td && (abs((c->dms << 2) - c->dml) < (c->dml >> 3)))
  212. c->ap += (-c->ap) >> 4;
  213. else
  214. c->ap += (0x200 - c->ap) >> 4;
  215. /* Update Yu and Yl */
  216. c->yu = clip(c->y + (((c->tbls->W[I] << 5) - c->y) >> 5), 544, 5120);
  217. c->yl += c->yu + ((-c->yl)>>6);
  218. /* Next iteration for Y */
  219. al = (c->ap >= 256) ? 1<<6 : c->ap >> 2;
  220. c->y = (c->yl + (c->yu - (c->yl>>6))*al) >> 6;
  221. /* Next iteration for SE and SEZ */
  222. c->se = 0;
  223. for (i=0; i<6; i++)
  224. c->se += mult(i2f(c->b[i] >> 2, &f), &c->dq[i]);
  225. c->sez = c->se >> 1;
  226. for (i=0; i<2; i++)
  227. c->se += mult(i2f(c->a[i] >> 2, &f), &c->sr[i]);
  228. c->se >>= 1;
  229. return clip(re_signal << 2, -0xffff, 0xffff);
  230. }
  231. static int g726_reset(G726Context* c, int bit_rate)
  232. {
  233. int i;
  234. c->tbls = &G726Tables_pool[bit_rate/8000 - 2];
  235. for (i=0; i<2; i++) {
  236. i2f(0, &c->sr[i]);
  237. c->a[i] = 0;
  238. c->pk[i] = 1;
  239. }
  240. for (i=0; i<6; i++) {
  241. i2f(0, &c->dq[i]);
  242. c->b[i] = 0;
  243. }
  244. c->ap = 0;
  245. c->dms = 0;
  246. c->dml = 0;
  247. c->yu = 544;
  248. c->yl = 34816;
  249. c->td = 0;
  250. c->se = 0;
  251. c->sez = 0;
  252. c->y = 544;
  253. return 0;
  254. }
  255. static int16_t g726_decode(G726Context* c, int16_t i)
  256. {
  257. return g726_iterate(c, i);
  258. }
  259. static int16_t g726_encode(G726Context* c, int16_t sig)
  260. {
  261. uint8_t i;
  262. i = quant(c, sig/4 - c->se) & ((1<<c->tbls->bits) - 1);
  263. g726_iterate(c, i);
  264. return i;
  265. }
  266. /* Interfacing to the libavcodec */
  267. typedef struct AVG726Context {
  268. G726Context c;
  269. int bits_left;
  270. int bit_buffer;
  271. int code_size;
  272. } AVG726Context;
  273. static int g726_init(AVCodecContext * avctx)
  274. {
  275. AVG726Context* c = (AVG726Context*)avctx->priv_data;
  276. if (avctx->channels != 1 ||
  277. (avctx->bit_rate != 16000 && avctx->bit_rate != 24000 &&
  278. avctx->bit_rate != 32000 && avctx->bit_rate != 40000)) {
  279. av_log(avctx, AV_LOG_ERROR, "G726: unsupported audio format\n");
  280. return -1;
  281. }
  282. if (avctx->sample_rate != 8000 && avctx->strict_std_compliance>=0) {
  283. av_log(avctx, AV_LOG_ERROR, "G726: unsupported audio format\n");
  284. return -1;
  285. }
  286. g726_reset(&c->c, avctx->bit_rate);
  287. c->code_size = c->c.tbls->bits;
  288. c->bit_buffer = 0;
  289. c->bits_left = 0;
  290. avctx->coded_frame = avcodec_alloc_frame();
  291. if (!avctx->coded_frame)
  292. return -ENOMEM;
  293. avctx->coded_frame->key_frame = 1;
  294. return 0;
  295. }
  296. static int g726_close(AVCodecContext *avctx)
  297. {
  298. av_freep(&avctx->coded_frame);
  299. return 0;
  300. }
  301. static int g726_encode_frame(AVCodecContext *avctx,
  302. uint8_t *dst, int buf_size, void *data)
  303. {
  304. AVG726Context *c = avctx->priv_data;
  305. short *samples = data;
  306. PutBitContext pb;
  307. init_put_bits(&pb, dst, 1024*1024);
  308. for (; buf_size; buf_size--)
  309. put_bits(&pb, c->code_size, g726_encode(&c->c, *samples++));
  310. flush_put_bits(&pb);
  311. return put_bits_count(&pb)>>3;
  312. }
  313. static int g726_decode_frame(AVCodecContext *avctx,
  314. void *data, int *data_size,
  315. uint8_t *buf, int buf_size)
  316. {
  317. AVG726Context *c = avctx->priv_data;
  318. short *samples = data;
  319. uint8_t code;
  320. uint8_t mask;
  321. GetBitContext gb;
  322. if (!buf_size)
  323. goto out;
  324. mask = (1<<c->code_size) - 1;
  325. init_get_bits(&gb, buf, buf_size * 8);
  326. if (c->bits_left) {
  327. int s = c->code_size - c->bits_left;;
  328. code = (c->bit_buffer << s) | get_bits(&gb, s);
  329. *samples++ = g726_decode(&c->c, code & mask);
  330. }
  331. while (get_bits_count(&gb) + c->code_size <= buf_size*8)
  332. *samples++ = g726_decode(&c->c, get_bits(&gb, c->code_size) & mask);
  333. c->bits_left = buf_size*8 - get_bits_count(&gb);
  334. c->bit_buffer = get_bits(&gb, c->bits_left);
  335. out:
  336. *data_size = (uint8_t*)samples - (uint8_t*)data;
  337. return buf_size;
  338. }
  339. #ifdef CONFIG_ENCODERS
  340. AVCodec adpcm_g726_encoder = {
  341. "g726",
  342. CODEC_TYPE_AUDIO,
  343. CODEC_ID_ADPCM_G726,
  344. sizeof(AVG726Context),
  345. g726_init,
  346. g726_encode_frame,
  347. g726_close,
  348. NULL,
  349. };
  350. #endif //CONFIG_ENCODERS
  351. AVCodec adpcm_g726_decoder = {
  352. "g726",
  353. CODEC_TYPE_AUDIO,
  354. CODEC_ID_ADPCM_G726,
  355. sizeof(AVG726Context),
  356. g726_init,
  357. NULL,
  358. g726_close,
  359. g726_decode_frame,
  360. };