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  1. /*
  2. * AAC Spectral Band Replication decoding functions
  3. * Copyright (c) 2008-2009 Robert Swain ( rob opendot cl )
  4. * Copyright (c) 2009-2010 Alex Converse <alex.converse@gmail.com>
  5. *
  6. * This file is part of Libav.
  7. *
  8. * Libav 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 2.1 of the License, or (at your option) any later version.
  12. *
  13. * Libav 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 Libav; if not, write to the Free Software
  20. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  21. */
  22. /**
  23. * @file
  24. * AAC Spectral Band Replication decoding functions
  25. * @author Robert Swain ( rob opendot cl )
  26. */
  27. #include "aac.h"
  28. #include "sbr.h"
  29. #include "aacsbr.h"
  30. #include "aacsbrdata.h"
  31. #include "fft.h"
  32. #include "aacps.h"
  33. #include "sbrdsp.h"
  34. #include "libavutil/internal.h"
  35. #include "libavutil/libm.h"
  36. #include <stdint.h>
  37. #include <float.h>
  38. #define ENVELOPE_ADJUSTMENT_OFFSET 2
  39. #define NOISE_FLOOR_OFFSET 6.0f
  40. /**
  41. * SBR VLC tables
  42. */
  43. enum {
  44. T_HUFFMAN_ENV_1_5DB,
  45. F_HUFFMAN_ENV_1_5DB,
  46. T_HUFFMAN_ENV_BAL_1_5DB,
  47. F_HUFFMAN_ENV_BAL_1_5DB,
  48. T_HUFFMAN_ENV_3_0DB,
  49. F_HUFFMAN_ENV_3_0DB,
  50. T_HUFFMAN_ENV_BAL_3_0DB,
  51. F_HUFFMAN_ENV_BAL_3_0DB,
  52. T_HUFFMAN_NOISE_3_0DB,
  53. T_HUFFMAN_NOISE_BAL_3_0DB,
  54. };
  55. /**
  56. * bs_frame_class - frame class of current SBR frame (14496-3 sp04 p98)
  57. */
  58. enum {
  59. FIXFIX,
  60. FIXVAR,
  61. VARFIX,
  62. VARVAR,
  63. };
  64. enum {
  65. EXTENSION_ID_PS = 2,
  66. };
  67. static VLC vlc_sbr[10];
  68. static const int8_t vlc_sbr_lav[10] =
  69. { 60, 60, 24, 24, 31, 31, 12, 12, 31, 12 };
  70. #define SBR_INIT_VLC_STATIC(num, size) \
  71. INIT_VLC_STATIC(&vlc_sbr[num], 9, sbr_tmp[num].table_size / sbr_tmp[num].elem_size, \
  72. sbr_tmp[num].sbr_bits , 1, 1, \
  73. sbr_tmp[num].sbr_codes, sbr_tmp[num].elem_size, sbr_tmp[num].elem_size, \
  74. size)
  75. #define SBR_VLC_ROW(name) \
  76. { name ## _codes, name ## _bits, sizeof(name ## _codes), sizeof(name ## _codes[0]) }
  77. av_cold void ff_aac_sbr_init(void)
  78. {
  79. int n;
  80. static const struct {
  81. const void *sbr_codes, *sbr_bits;
  82. const unsigned int table_size, elem_size;
  83. } sbr_tmp[] = {
  84. SBR_VLC_ROW(t_huffman_env_1_5dB),
  85. SBR_VLC_ROW(f_huffman_env_1_5dB),
  86. SBR_VLC_ROW(t_huffman_env_bal_1_5dB),
  87. SBR_VLC_ROW(f_huffman_env_bal_1_5dB),
  88. SBR_VLC_ROW(t_huffman_env_3_0dB),
  89. SBR_VLC_ROW(f_huffman_env_3_0dB),
  90. SBR_VLC_ROW(t_huffman_env_bal_3_0dB),
  91. SBR_VLC_ROW(f_huffman_env_bal_3_0dB),
  92. SBR_VLC_ROW(t_huffman_noise_3_0dB),
  93. SBR_VLC_ROW(t_huffman_noise_bal_3_0dB),
  94. };
  95. // SBR VLC table initialization
  96. SBR_INIT_VLC_STATIC(0, 1098);
  97. SBR_INIT_VLC_STATIC(1, 1092);
  98. SBR_INIT_VLC_STATIC(2, 768);
  99. SBR_INIT_VLC_STATIC(3, 1026);
  100. SBR_INIT_VLC_STATIC(4, 1058);
  101. SBR_INIT_VLC_STATIC(5, 1052);
  102. SBR_INIT_VLC_STATIC(6, 544);
  103. SBR_INIT_VLC_STATIC(7, 544);
  104. SBR_INIT_VLC_STATIC(8, 592);
  105. SBR_INIT_VLC_STATIC(9, 512);
  106. for (n = 1; n < 320; n++)
  107. sbr_qmf_window_us[320 + n] = sbr_qmf_window_us[320 - n];
  108. sbr_qmf_window_us[384] = -sbr_qmf_window_us[384];
  109. sbr_qmf_window_us[512] = -sbr_qmf_window_us[512];
  110. for (n = 0; n < 320; n++)
  111. sbr_qmf_window_ds[n] = sbr_qmf_window_us[2*n];
  112. ff_ps_init();
  113. }
  114. /** Places SBR in pure upsampling mode. */
  115. static void sbr_turnoff(SpectralBandReplication *sbr) {
  116. sbr->start = 0;
  117. // Init defults used in pure upsampling mode
  118. sbr->kx[1] = 32; //Typo in spec, kx' inits to 32
  119. sbr->m[1] = 0;
  120. // Reset values for first SBR header
  121. sbr->data[0].e_a[1] = sbr->data[1].e_a[1] = -1;
  122. memset(&sbr->spectrum_params, -1, sizeof(SpectrumParameters));
  123. }
  124. av_cold void ff_aac_sbr_ctx_init(AACContext *ac, SpectralBandReplication *sbr)
  125. {
  126. sbr->kx[0] = sbr->kx[1];
  127. sbr_turnoff(sbr);
  128. sbr->data[0].synthesis_filterbank_samples_offset = SBR_SYNTHESIS_BUF_SIZE - (1280 - 128);
  129. sbr->data[1].synthesis_filterbank_samples_offset = SBR_SYNTHESIS_BUF_SIZE - (1280 - 128);
  130. /* SBR requires samples to be scaled to +/-32768.0 to work correctly.
  131. * mdct scale factors are adjusted to scale up from +/-1.0 at analysis
  132. * and scale back down at synthesis. */
  133. ff_mdct_init(&sbr->mdct, 7, 1, 1.0 / (64 * 32768.0));
  134. ff_mdct_init(&sbr->mdct_ana, 7, 1, -2.0 * 32768.0);
  135. ff_ps_ctx_init(&sbr->ps);
  136. ff_sbrdsp_init(&sbr->dsp);
  137. }
  138. av_cold void ff_aac_sbr_ctx_close(SpectralBandReplication *sbr)
  139. {
  140. ff_mdct_end(&sbr->mdct);
  141. ff_mdct_end(&sbr->mdct_ana);
  142. }
  143. static int qsort_comparison_function_int16(const void *a, const void *b)
  144. {
  145. return *(const int16_t *)a - *(const int16_t *)b;
  146. }
  147. static inline int in_table_int16(const int16_t *table, int last_el, int16_t needle)
  148. {
  149. int i;
  150. for (i = 0; i <= last_el; i++)
  151. if (table[i] == needle)
  152. return 1;
  153. return 0;
  154. }
  155. /// Limiter Frequency Band Table (14496-3 sp04 p198)
  156. static void sbr_make_f_tablelim(SpectralBandReplication *sbr)
  157. {
  158. int k;
  159. if (sbr->bs_limiter_bands > 0) {
  160. static const float bands_warped[3] = { 1.32715174233856803909f, //2^(0.49/1.2)
  161. 1.18509277094158210129f, //2^(0.49/2)
  162. 1.11987160404675912501f }; //2^(0.49/3)
  163. const float lim_bands_per_octave_warped = bands_warped[sbr->bs_limiter_bands - 1];
  164. int16_t patch_borders[7];
  165. uint16_t *in = sbr->f_tablelim + 1, *out = sbr->f_tablelim;
  166. patch_borders[0] = sbr->kx[1];
  167. for (k = 1; k <= sbr->num_patches; k++)
  168. patch_borders[k] = patch_borders[k-1] + sbr->patch_num_subbands[k-1];
  169. memcpy(sbr->f_tablelim, sbr->f_tablelow,
  170. (sbr->n[0] + 1) * sizeof(sbr->f_tablelow[0]));
  171. if (sbr->num_patches > 1)
  172. memcpy(sbr->f_tablelim + sbr->n[0] + 1, patch_borders + 1,
  173. (sbr->num_patches - 1) * sizeof(patch_borders[0]));
  174. qsort(sbr->f_tablelim, sbr->num_patches + sbr->n[0],
  175. sizeof(sbr->f_tablelim[0]),
  176. qsort_comparison_function_int16);
  177. sbr->n_lim = sbr->n[0] + sbr->num_patches - 1;
  178. while (out < sbr->f_tablelim + sbr->n_lim) {
  179. if (*in >= *out * lim_bands_per_octave_warped) {
  180. *++out = *in++;
  181. } else if (*in == *out ||
  182. !in_table_int16(patch_borders, sbr->num_patches, *in)) {
  183. in++;
  184. sbr->n_lim--;
  185. } else if (!in_table_int16(patch_borders, sbr->num_patches, *out)) {
  186. *out = *in++;
  187. sbr->n_lim--;
  188. } else {
  189. *++out = *in++;
  190. }
  191. }
  192. } else {
  193. sbr->f_tablelim[0] = sbr->f_tablelow[0];
  194. sbr->f_tablelim[1] = sbr->f_tablelow[sbr->n[0]];
  195. sbr->n_lim = 1;
  196. }
  197. }
  198. static unsigned int read_sbr_header(SpectralBandReplication *sbr, GetBitContext *gb)
  199. {
  200. unsigned int cnt = get_bits_count(gb);
  201. uint8_t bs_header_extra_1;
  202. uint8_t bs_header_extra_2;
  203. int old_bs_limiter_bands = sbr->bs_limiter_bands;
  204. SpectrumParameters old_spectrum_params;
  205. sbr->start = 1;
  206. // Save last spectrum parameters variables to compare to new ones
  207. memcpy(&old_spectrum_params, &sbr->spectrum_params, sizeof(SpectrumParameters));
  208. sbr->bs_amp_res_header = get_bits1(gb);
  209. sbr->spectrum_params.bs_start_freq = get_bits(gb, 4);
  210. sbr->spectrum_params.bs_stop_freq = get_bits(gb, 4);
  211. sbr->spectrum_params.bs_xover_band = get_bits(gb, 3);
  212. skip_bits(gb, 2); // bs_reserved
  213. bs_header_extra_1 = get_bits1(gb);
  214. bs_header_extra_2 = get_bits1(gb);
  215. if (bs_header_extra_1) {
  216. sbr->spectrum_params.bs_freq_scale = get_bits(gb, 2);
  217. sbr->spectrum_params.bs_alter_scale = get_bits1(gb);
  218. sbr->spectrum_params.bs_noise_bands = get_bits(gb, 2);
  219. } else {
  220. sbr->spectrum_params.bs_freq_scale = 2;
  221. sbr->spectrum_params.bs_alter_scale = 1;
  222. sbr->spectrum_params.bs_noise_bands = 2;
  223. }
  224. // Check if spectrum parameters changed
  225. if (memcmp(&old_spectrum_params, &sbr->spectrum_params, sizeof(SpectrumParameters)))
  226. sbr->reset = 1;
  227. if (bs_header_extra_2) {
  228. sbr->bs_limiter_bands = get_bits(gb, 2);
  229. sbr->bs_limiter_gains = get_bits(gb, 2);
  230. sbr->bs_interpol_freq = get_bits1(gb);
  231. sbr->bs_smoothing_mode = get_bits1(gb);
  232. } else {
  233. sbr->bs_limiter_bands = 2;
  234. sbr->bs_limiter_gains = 2;
  235. sbr->bs_interpol_freq = 1;
  236. sbr->bs_smoothing_mode = 1;
  237. }
  238. if (sbr->bs_limiter_bands != old_bs_limiter_bands && !sbr->reset)
  239. sbr_make_f_tablelim(sbr);
  240. return get_bits_count(gb) - cnt;
  241. }
  242. static int array_min_int16(const int16_t *array, int nel)
  243. {
  244. int i, min = array[0];
  245. for (i = 1; i < nel; i++)
  246. min = FFMIN(array[i], min);
  247. return min;
  248. }
  249. static void make_bands(int16_t* bands, int start, int stop, int num_bands)
  250. {
  251. int k, previous, present;
  252. float base, prod;
  253. base = powf((float)stop / start, 1.0f / num_bands);
  254. prod = start;
  255. previous = start;
  256. for (k = 0; k < num_bands-1; k++) {
  257. prod *= base;
  258. present = lrintf(prod);
  259. bands[k] = present - previous;
  260. previous = present;
  261. }
  262. bands[num_bands-1] = stop - previous;
  263. }
  264. static int check_n_master(AVCodecContext *avctx, int n_master, int bs_xover_band)
  265. {
  266. // Requirements (14496-3 sp04 p205)
  267. if (n_master <= 0) {
  268. av_log(avctx, AV_LOG_ERROR, "Invalid n_master: %d\n", n_master);
  269. return -1;
  270. }
  271. if (bs_xover_band >= n_master) {
  272. av_log(avctx, AV_LOG_ERROR,
  273. "Invalid bitstream, crossover band index beyond array bounds: %d\n",
  274. bs_xover_band);
  275. return -1;
  276. }
  277. return 0;
  278. }
  279. /// Master Frequency Band Table (14496-3 sp04 p194)
  280. static int sbr_make_f_master(AACContext *ac, SpectralBandReplication *sbr,
  281. SpectrumParameters *spectrum)
  282. {
  283. unsigned int temp, max_qmf_subbands;
  284. unsigned int start_min, stop_min;
  285. int k;
  286. const int8_t *sbr_offset_ptr;
  287. int16_t stop_dk[13];
  288. if (sbr->sample_rate < 32000) {
  289. temp = 3000;
  290. } else if (sbr->sample_rate < 64000) {
  291. temp = 4000;
  292. } else
  293. temp = 5000;
  294. start_min = ((temp << 7) + (sbr->sample_rate >> 1)) / sbr->sample_rate;
  295. stop_min = ((temp << 8) + (sbr->sample_rate >> 1)) / sbr->sample_rate;
  296. switch (sbr->sample_rate) {
  297. case 16000:
  298. sbr_offset_ptr = sbr_offset[0];
  299. break;
  300. case 22050:
  301. sbr_offset_ptr = sbr_offset[1];
  302. break;
  303. case 24000:
  304. sbr_offset_ptr = sbr_offset[2];
  305. break;
  306. case 32000:
  307. sbr_offset_ptr = sbr_offset[3];
  308. break;
  309. case 44100: case 48000: case 64000:
  310. sbr_offset_ptr = sbr_offset[4];
  311. break;
  312. case 88200: case 96000: case 128000: case 176400: case 192000:
  313. sbr_offset_ptr = sbr_offset[5];
  314. break;
  315. default:
  316. av_log(ac->avctx, AV_LOG_ERROR,
  317. "Unsupported sample rate for SBR: %d\n", sbr->sample_rate);
  318. return -1;
  319. }
  320. sbr->k[0] = start_min + sbr_offset_ptr[spectrum->bs_start_freq];
  321. if (spectrum->bs_stop_freq < 14) {
  322. sbr->k[2] = stop_min;
  323. make_bands(stop_dk, stop_min, 64, 13);
  324. qsort(stop_dk, 13, sizeof(stop_dk[0]), qsort_comparison_function_int16);
  325. for (k = 0; k < spectrum->bs_stop_freq; k++)
  326. sbr->k[2] += stop_dk[k];
  327. } else if (spectrum->bs_stop_freq == 14) {
  328. sbr->k[2] = 2*sbr->k[0];
  329. } else if (spectrum->bs_stop_freq == 15) {
  330. sbr->k[2] = 3*sbr->k[0];
  331. } else {
  332. av_log(ac->avctx, AV_LOG_ERROR,
  333. "Invalid bs_stop_freq: %d\n", spectrum->bs_stop_freq);
  334. return -1;
  335. }
  336. sbr->k[2] = FFMIN(64, sbr->k[2]);
  337. // Requirements (14496-3 sp04 p205)
  338. if (sbr->sample_rate <= 32000) {
  339. max_qmf_subbands = 48;
  340. } else if (sbr->sample_rate == 44100) {
  341. max_qmf_subbands = 35;
  342. } else if (sbr->sample_rate >= 48000)
  343. max_qmf_subbands = 32;
  344. if (sbr->k[2] - sbr->k[0] > max_qmf_subbands) {
  345. av_log(ac->avctx, AV_LOG_ERROR,
  346. "Invalid bitstream, too many QMF subbands: %d\n", sbr->k[2] - sbr->k[0]);
  347. return -1;
  348. }
  349. if (!spectrum->bs_freq_scale) {
  350. int dk, k2diff;
  351. dk = spectrum->bs_alter_scale + 1;
  352. sbr->n_master = ((sbr->k[2] - sbr->k[0] + (dk&2)) >> dk) << 1;
  353. if (check_n_master(ac->avctx, sbr->n_master, sbr->spectrum_params.bs_xover_band))
  354. return -1;
  355. for (k = 1; k <= sbr->n_master; k++)
  356. sbr->f_master[k] = dk;
  357. k2diff = sbr->k[2] - sbr->k[0] - sbr->n_master * dk;
  358. if (k2diff < 0) {
  359. sbr->f_master[1]--;
  360. sbr->f_master[2]-= (k2diff < -1);
  361. } else if (k2diff) {
  362. sbr->f_master[sbr->n_master]++;
  363. }
  364. sbr->f_master[0] = sbr->k[0];
  365. for (k = 1; k <= sbr->n_master; k++)
  366. sbr->f_master[k] += sbr->f_master[k - 1];
  367. } else {
  368. int half_bands = 7 - spectrum->bs_freq_scale; // bs_freq_scale = {1,2,3}
  369. int two_regions, num_bands_0;
  370. int vdk0_max, vdk1_min;
  371. int16_t vk0[49];
  372. if (49 * sbr->k[2] > 110 * sbr->k[0]) {
  373. two_regions = 1;
  374. sbr->k[1] = 2 * sbr->k[0];
  375. } else {
  376. two_regions = 0;
  377. sbr->k[1] = sbr->k[2];
  378. }
  379. num_bands_0 = lrintf(half_bands * log2f(sbr->k[1] / (float)sbr->k[0])) * 2;
  380. if (num_bands_0 <= 0) { // Requirements (14496-3 sp04 p205)
  381. av_log(ac->avctx, AV_LOG_ERROR, "Invalid num_bands_0: %d\n", num_bands_0);
  382. return -1;
  383. }
  384. vk0[0] = 0;
  385. make_bands(vk0+1, sbr->k[0], sbr->k[1], num_bands_0);
  386. qsort(vk0 + 1, num_bands_0, sizeof(vk0[1]), qsort_comparison_function_int16);
  387. vdk0_max = vk0[num_bands_0];
  388. vk0[0] = sbr->k[0];
  389. for (k = 1; k <= num_bands_0; k++) {
  390. if (vk0[k] <= 0) { // Requirements (14496-3 sp04 p205)
  391. av_log(ac->avctx, AV_LOG_ERROR, "Invalid vDk0[%d]: %d\n", k, vk0[k]);
  392. return -1;
  393. }
  394. vk0[k] += vk0[k-1];
  395. }
  396. if (two_regions) {
  397. int16_t vk1[49];
  398. float invwarp = spectrum->bs_alter_scale ? 0.76923076923076923077f
  399. : 1.0f; // bs_alter_scale = {0,1}
  400. int num_bands_1 = lrintf(half_bands * invwarp *
  401. log2f(sbr->k[2] / (float)sbr->k[1])) * 2;
  402. make_bands(vk1+1, sbr->k[1], sbr->k[2], num_bands_1);
  403. vdk1_min = array_min_int16(vk1 + 1, num_bands_1);
  404. if (vdk1_min < vdk0_max) {
  405. int change;
  406. qsort(vk1 + 1, num_bands_1, sizeof(vk1[1]), qsort_comparison_function_int16);
  407. change = FFMIN(vdk0_max - vk1[1], (vk1[num_bands_1] - vk1[1]) >> 1);
  408. vk1[1] += change;
  409. vk1[num_bands_1] -= change;
  410. }
  411. qsort(vk1 + 1, num_bands_1, sizeof(vk1[1]), qsort_comparison_function_int16);
  412. vk1[0] = sbr->k[1];
  413. for (k = 1; k <= num_bands_1; k++) {
  414. if (vk1[k] <= 0) { // Requirements (14496-3 sp04 p205)
  415. av_log(ac->avctx, AV_LOG_ERROR, "Invalid vDk1[%d]: %d\n", k, vk1[k]);
  416. return -1;
  417. }
  418. vk1[k] += vk1[k-1];
  419. }
  420. sbr->n_master = num_bands_0 + num_bands_1;
  421. if (check_n_master(ac->avctx, sbr->n_master, sbr->spectrum_params.bs_xover_band))
  422. return -1;
  423. memcpy(&sbr->f_master[0], vk0,
  424. (num_bands_0 + 1) * sizeof(sbr->f_master[0]));
  425. memcpy(&sbr->f_master[num_bands_0 + 1], vk1 + 1,
  426. num_bands_1 * sizeof(sbr->f_master[0]));
  427. } else {
  428. sbr->n_master = num_bands_0;
  429. if (check_n_master(ac->avctx, sbr->n_master, sbr->spectrum_params.bs_xover_band))
  430. return -1;
  431. memcpy(sbr->f_master, vk0, (num_bands_0 + 1) * sizeof(sbr->f_master[0]));
  432. }
  433. }
  434. return 0;
  435. }
  436. /// High Frequency Generation - Patch Construction (14496-3 sp04 p216 fig. 4.46)
  437. static int sbr_hf_calc_npatches(AACContext *ac, SpectralBandReplication *sbr)
  438. {
  439. int i, k, sb = 0;
  440. int msb = sbr->k[0];
  441. int usb = sbr->kx[1];
  442. int goal_sb = ((1000 << 11) + (sbr->sample_rate >> 1)) / sbr->sample_rate;
  443. sbr->num_patches = 0;
  444. if (goal_sb < sbr->kx[1] + sbr->m[1]) {
  445. for (k = 0; sbr->f_master[k] < goal_sb; k++) ;
  446. } else
  447. k = sbr->n_master;
  448. do {
  449. int odd = 0;
  450. for (i = k; i == k || sb > (sbr->k[0] - 1 + msb - odd); i--) {
  451. sb = sbr->f_master[i];
  452. odd = (sb + sbr->k[0]) & 1;
  453. }
  454. // Requirements (14496-3 sp04 p205) sets the maximum number of patches to 5.
  455. // After this check the final number of patches can still be six which is
  456. // illegal however the Coding Technologies decoder check stream has a final
  457. // count of 6 patches
  458. if (sbr->num_patches > 5) {
  459. av_log(ac->avctx, AV_LOG_ERROR, "Too many patches: %d\n", sbr->num_patches);
  460. return -1;
  461. }
  462. sbr->patch_num_subbands[sbr->num_patches] = FFMAX(sb - usb, 0);
  463. sbr->patch_start_subband[sbr->num_patches] = sbr->k[0] - odd - sbr->patch_num_subbands[sbr->num_patches];
  464. if (sbr->patch_num_subbands[sbr->num_patches] > 0) {
  465. usb = sb;
  466. msb = sb;
  467. sbr->num_patches++;
  468. } else
  469. msb = sbr->kx[1];
  470. if (sbr->f_master[k] - sb < 3)
  471. k = sbr->n_master;
  472. } while (sb != sbr->kx[1] + sbr->m[1]);
  473. if (sbr->patch_num_subbands[sbr->num_patches-1] < 3 && sbr->num_patches > 1)
  474. sbr->num_patches--;
  475. return 0;
  476. }
  477. /// Derived Frequency Band Tables (14496-3 sp04 p197)
  478. static int sbr_make_f_derived(AACContext *ac, SpectralBandReplication *sbr)
  479. {
  480. int k, temp;
  481. sbr->n[1] = sbr->n_master - sbr->spectrum_params.bs_xover_band;
  482. sbr->n[0] = (sbr->n[1] + 1) >> 1;
  483. memcpy(sbr->f_tablehigh, &sbr->f_master[sbr->spectrum_params.bs_xover_band],
  484. (sbr->n[1] + 1) * sizeof(sbr->f_master[0]));
  485. sbr->m[1] = sbr->f_tablehigh[sbr->n[1]] - sbr->f_tablehigh[0];
  486. sbr->kx[1] = sbr->f_tablehigh[0];
  487. // Requirements (14496-3 sp04 p205)
  488. if (sbr->kx[1] + sbr->m[1] > 64) {
  489. av_log(ac->avctx, AV_LOG_ERROR,
  490. "Stop frequency border too high: %d\n", sbr->kx[1] + sbr->m[1]);
  491. return -1;
  492. }
  493. if (sbr->kx[1] > 32) {
  494. av_log(ac->avctx, AV_LOG_ERROR, "Start frequency border too high: %d\n", sbr->kx[1]);
  495. return -1;
  496. }
  497. sbr->f_tablelow[0] = sbr->f_tablehigh[0];
  498. temp = sbr->n[1] & 1;
  499. for (k = 1; k <= sbr->n[0]; k++)
  500. sbr->f_tablelow[k] = sbr->f_tablehigh[2 * k - temp];
  501. sbr->n_q = FFMAX(1, lrintf(sbr->spectrum_params.bs_noise_bands *
  502. log2f(sbr->k[2] / (float)sbr->kx[1]))); // 0 <= bs_noise_bands <= 3
  503. if (sbr->n_q > 5) {
  504. av_log(ac->avctx, AV_LOG_ERROR, "Too many noise floor scale factors: %d\n", sbr->n_q);
  505. return -1;
  506. }
  507. sbr->f_tablenoise[0] = sbr->f_tablelow[0];
  508. temp = 0;
  509. for (k = 1; k <= sbr->n_q; k++) {
  510. temp += (sbr->n[0] - temp) / (sbr->n_q + 1 - k);
  511. sbr->f_tablenoise[k] = sbr->f_tablelow[temp];
  512. }
  513. if (sbr_hf_calc_npatches(ac, sbr) < 0)
  514. return -1;
  515. sbr_make_f_tablelim(sbr);
  516. sbr->data[0].f_indexnoise = 0;
  517. sbr->data[1].f_indexnoise = 0;
  518. return 0;
  519. }
  520. static av_always_inline void get_bits1_vector(GetBitContext *gb, uint8_t *vec,
  521. int elements)
  522. {
  523. int i;
  524. for (i = 0; i < elements; i++) {
  525. vec[i] = get_bits1(gb);
  526. }
  527. }
  528. /** ceil(log2(index+1)) */
  529. static const int8_t ceil_log2[] = {
  530. 0, 1, 2, 2, 3, 3,
  531. };
  532. static int read_sbr_grid(AACContext *ac, SpectralBandReplication *sbr,
  533. GetBitContext *gb, SBRData *ch_data)
  534. {
  535. int i;
  536. unsigned bs_pointer = 0;
  537. // frameLengthFlag ? 15 : 16; 960 sample length frames unsupported; this value is numTimeSlots
  538. int abs_bord_trail = 16;
  539. int num_rel_lead, num_rel_trail;
  540. unsigned bs_num_env_old = ch_data->bs_num_env;
  541. ch_data->bs_freq_res[0] = ch_data->bs_freq_res[ch_data->bs_num_env];
  542. ch_data->bs_amp_res = sbr->bs_amp_res_header;
  543. ch_data->t_env_num_env_old = ch_data->t_env[bs_num_env_old];
  544. switch (ch_data->bs_frame_class = get_bits(gb, 2)) {
  545. case FIXFIX:
  546. ch_data->bs_num_env = 1 << get_bits(gb, 2);
  547. num_rel_lead = ch_data->bs_num_env - 1;
  548. if (ch_data->bs_num_env == 1)
  549. ch_data->bs_amp_res = 0;
  550. if (ch_data->bs_num_env > 4) {
  551. av_log(ac->avctx, AV_LOG_ERROR,
  552. "Invalid bitstream, too many SBR envelopes in FIXFIX type SBR frame: %d\n",
  553. ch_data->bs_num_env);
  554. return -1;
  555. }
  556. ch_data->t_env[0] = 0;
  557. ch_data->t_env[ch_data->bs_num_env] = abs_bord_trail;
  558. abs_bord_trail = (abs_bord_trail + (ch_data->bs_num_env >> 1)) /
  559. ch_data->bs_num_env;
  560. for (i = 0; i < num_rel_lead; i++)
  561. ch_data->t_env[i + 1] = ch_data->t_env[i] + abs_bord_trail;
  562. ch_data->bs_freq_res[1] = get_bits1(gb);
  563. for (i = 1; i < ch_data->bs_num_env; i++)
  564. ch_data->bs_freq_res[i + 1] = ch_data->bs_freq_res[1];
  565. break;
  566. case FIXVAR:
  567. abs_bord_trail += get_bits(gb, 2);
  568. num_rel_trail = get_bits(gb, 2);
  569. ch_data->bs_num_env = num_rel_trail + 1;
  570. ch_data->t_env[0] = 0;
  571. ch_data->t_env[ch_data->bs_num_env] = abs_bord_trail;
  572. for (i = 0; i < num_rel_trail; i++)
  573. ch_data->t_env[ch_data->bs_num_env - 1 - i] =
  574. ch_data->t_env[ch_data->bs_num_env - i] - 2 * get_bits(gb, 2) - 2;
  575. bs_pointer = get_bits(gb, ceil_log2[ch_data->bs_num_env]);
  576. for (i = 0; i < ch_data->bs_num_env; i++)
  577. ch_data->bs_freq_res[ch_data->bs_num_env - i] = get_bits1(gb);
  578. break;
  579. case VARFIX:
  580. ch_data->t_env[0] = get_bits(gb, 2);
  581. num_rel_lead = get_bits(gb, 2);
  582. ch_data->bs_num_env = num_rel_lead + 1;
  583. ch_data->t_env[ch_data->bs_num_env] = abs_bord_trail;
  584. for (i = 0; i < num_rel_lead; i++)
  585. ch_data->t_env[i + 1] = ch_data->t_env[i] + 2 * get_bits(gb, 2) + 2;
  586. bs_pointer = get_bits(gb, ceil_log2[ch_data->bs_num_env]);
  587. get_bits1_vector(gb, ch_data->bs_freq_res + 1, ch_data->bs_num_env);
  588. break;
  589. case VARVAR:
  590. ch_data->t_env[0] = get_bits(gb, 2);
  591. abs_bord_trail += get_bits(gb, 2);
  592. num_rel_lead = get_bits(gb, 2);
  593. num_rel_trail = get_bits(gb, 2);
  594. ch_data->bs_num_env = num_rel_lead + num_rel_trail + 1;
  595. if (ch_data->bs_num_env > 5) {
  596. av_log(ac->avctx, AV_LOG_ERROR,
  597. "Invalid bitstream, too many SBR envelopes in VARVAR type SBR frame: %d\n",
  598. ch_data->bs_num_env);
  599. return -1;
  600. }
  601. ch_data->t_env[ch_data->bs_num_env] = abs_bord_trail;
  602. for (i = 0; i < num_rel_lead; i++)
  603. ch_data->t_env[i + 1] = ch_data->t_env[i] + 2 * get_bits(gb, 2) + 2;
  604. for (i = 0; i < num_rel_trail; i++)
  605. ch_data->t_env[ch_data->bs_num_env - 1 - i] =
  606. ch_data->t_env[ch_data->bs_num_env - i] - 2 * get_bits(gb, 2) - 2;
  607. bs_pointer = get_bits(gb, ceil_log2[ch_data->bs_num_env]);
  608. get_bits1_vector(gb, ch_data->bs_freq_res + 1, ch_data->bs_num_env);
  609. break;
  610. }
  611. if (bs_pointer > ch_data->bs_num_env + 1) {
  612. av_log(ac->avctx, AV_LOG_ERROR,
  613. "Invalid bitstream, bs_pointer points to a middle noise border outside the time borders table: %d\n",
  614. bs_pointer);
  615. return -1;
  616. }
  617. for (i = 1; i <= ch_data->bs_num_env; i++) {
  618. if (ch_data->t_env[i-1] > ch_data->t_env[i]) {
  619. av_log(ac->avctx, AV_LOG_ERROR, "Non monotone time borders\n");
  620. return -1;
  621. }
  622. }
  623. ch_data->bs_num_noise = (ch_data->bs_num_env > 1) + 1;
  624. ch_data->t_q[0] = ch_data->t_env[0];
  625. ch_data->t_q[ch_data->bs_num_noise] = ch_data->t_env[ch_data->bs_num_env];
  626. if (ch_data->bs_num_noise > 1) {
  627. unsigned int idx;
  628. if (ch_data->bs_frame_class == FIXFIX) {
  629. idx = ch_data->bs_num_env >> 1;
  630. } else if (ch_data->bs_frame_class & 1) { // FIXVAR or VARVAR
  631. idx = ch_data->bs_num_env - FFMAX(bs_pointer - 1, 1);
  632. } else { // VARFIX
  633. if (!bs_pointer)
  634. idx = 1;
  635. else if (bs_pointer == 1)
  636. idx = ch_data->bs_num_env - 1;
  637. else // bs_pointer > 1
  638. idx = bs_pointer - 1;
  639. }
  640. ch_data->t_q[1] = ch_data->t_env[idx];
  641. }
  642. ch_data->e_a[0] = -(ch_data->e_a[1] != bs_num_env_old); // l_APrev
  643. ch_data->e_a[1] = -1;
  644. if ((ch_data->bs_frame_class & 1) && bs_pointer) { // FIXVAR or VARVAR and bs_pointer != 0
  645. ch_data->e_a[1] = ch_data->bs_num_env + 1 - bs_pointer;
  646. } else if ((ch_data->bs_frame_class == 2) && (bs_pointer > 1)) // VARFIX and bs_pointer > 1
  647. ch_data->e_a[1] = bs_pointer - 1;
  648. return 0;
  649. }
  650. static void copy_sbr_grid(SBRData *dst, const SBRData *src) {
  651. //These variables are saved from the previous frame rather than copied
  652. dst->bs_freq_res[0] = dst->bs_freq_res[dst->bs_num_env];
  653. dst->t_env_num_env_old = dst->t_env[dst->bs_num_env];
  654. dst->e_a[0] = -(dst->e_a[1] != dst->bs_num_env);
  655. //These variables are read from the bitstream and therefore copied
  656. memcpy(dst->bs_freq_res+1, src->bs_freq_res+1, sizeof(dst->bs_freq_res)-sizeof(*dst->bs_freq_res));
  657. memcpy(dst->t_env, src->t_env, sizeof(dst->t_env));
  658. memcpy(dst->t_q, src->t_q, sizeof(dst->t_q));
  659. dst->bs_num_env = src->bs_num_env;
  660. dst->bs_amp_res = src->bs_amp_res;
  661. dst->bs_num_noise = src->bs_num_noise;
  662. dst->bs_frame_class = src->bs_frame_class;
  663. dst->e_a[1] = src->e_a[1];
  664. }
  665. /// Read how the envelope and noise floor data is delta coded
  666. static void read_sbr_dtdf(SpectralBandReplication *sbr, GetBitContext *gb,
  667. SBRData *ch_data)
  668. {
  669. get_bits1_vector(gb, ch_data->bs_df_env, ch_data->bs_num_env);
  670. get_bits1_vector(gb, ch_data->bs_df_noise, ch_data->bs_num_noise);
  671. }
  672. /// Read inverse filtering data
  673. static void read_sbr_invf(SpectralBandReplication *sbr, GetBitContext *gb,
  674. SBRData *ch_data)
  675. {
  676. int i;
  677. memcpy(ch_data->bs_invf_mode[1], ch_data->bs_invf_mode[0], 5 * sizeof(uint8_t));
  678. for (i = 0; i < sbr->n_q; i++)
  679. ch_data->bs_invf_mode[0][i] = get_bits(gb, 2);
  680. }
  681. static void read_sbr_envelope(SpectralBandReplication *sbr, GetBitContext *gb,
  682. SBRData *ch_data, int ch)
  683. {
  684. int bits;
  685. int i, j, k;
  686. VLC_TYPE (*t_huff)[2], (*f_huff)[2];
  687. int t_lav, f_lav;
  688. const int delta = (ch == 1 && sbr->bs_coupling == 1) + 1;
  689. const int odd = sbr->n[1] & 1;
  690. if (sbr->bs_coupling && ch) {
  691. if (ch_data->bs_amp_res) {
  692. bits = 5;
  693. t_huff = vlc_sbr[T_HUFFMAN_ENV_BAL_3_0DB].table;
  694. t_lav = vlc_sbr_lav[T_HUFFMAN_ENV_BAL_3_0DB];
  695. f_huff = vlc_sbr[F_HUFFMAN_ENV_BAL_3_0DB].table;
  696. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_BAL_3_0DB];
  697. } else {
  698. bits = 6;
  699. t_huff = vlc_sbr[T_HUFFMAN_ENV_BAL_1_5DB].table;
  700. t_lav = vlc_sbr_lav[T_HUFFMAN_ENV_BAL_1_5DB];
  701. f_huff = vlc_sbr[F_HUFFMAN_ENV_BAL_1_5DB].table;
  702. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_BAL_1_5DB];
  703. }
  704. } else {
  705. if (ch_data->bs_amp_res) {
  706. bits = 6;
  707. t_huff = vlc_sbr[T_HUFFMAN_ENV_3_0DB].table;
  708. t_lav = vlc_sbr_lav[T_HUFFMAN_ENV_3_0DB];
  709. f_huff = vlc_sbr[F_HUFFMAN_ENV_3_0DB].table;
  710. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_3_0DB];
  711. } else {
  712. bits = 7;
  713. t_huff = vlc_sbr[T_HUFFMAN_ENV_1_5DB].table;
  714. t_lav = vlc_sbr_lav[T_HUFFMAN_ENV_1_5DB];
  715. f_huff = vlc_sbr[F_HUFFMAN_ENV_1_5DB].table;
  716. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_1_5DB];
  717. }
  718. }
  719. for (i = 0; i < ch_data->bs_num_env; i++) {
  720. if (ch_data->bs_df_env[i]) {
  721. // bs_freq_res[0] == bs_freq_res[bs_num_env] from prev frame
  722. if (ch_data->bs_freq_res[i + 1] == ch_data->bs_freq_res[i]) {
  723. for (j = 0; j < sbr->n[ch_data->bs_freq_res[i + 1]]; j++)
  724. ch_data->env_facs[i + 1][j] = ch_data->env_facs[i][j] + delta * (get_vlc2(gb, t_huff, 9, 3) - t_lav);
  725. } else if (ch_data->bs_freq_res[i + 1]) {
  726. for (j = 0; j < sbr->n[ch_data->bs_freq_res[i + 1]]; j++) {
  727. k = (j + odd) >> 1; // find k such that f_tablelow[k] <= f_tablehigh[j] < f_tablelow[k + 1]
  728. ch_data->env_facs[i + 1][j] = ch_data->env_facs[i][k] + delta * (get_vlc2(gb, t_huff, 9, 3) - t_lav);
  729. }
  730. } else {
  731. for (j = 0; j < sbr->n[ch_data->bs_freq_res[i + 1]]; j++) {
  732. k = j ? 2*j - odd : 0; // find k such that f_tablehigh[k] == f_tablelow[j]
  733. ch_data->env_facs[i + 1][j] = ch_data->env_facs[i][k] + delta * (get_vlc2(gb, t_huff, 9, 3) - t_lav);
  734. }
  735. }
  736. } else {
  737. ch_data->env_facs[i + 1][0] = delta * get_bits(gb, bits); // bs_env_start_value_balance
  738. for (j = 1; j < sbr->n[ch_data->bs_freq_res[i + 1]]; j++)
  739. ch_data->env_facs[i + 1][j] = ch_data->env_facs[i + 1][j - 1] + delta * (get_vlc2(gb, f_huff, 9, 3) - f_lav);
  740. }
  741. }
  742. //assign 0th elements of env_facs from last elements
  743. memcpy(ch_data->env_facs[0], ch_data->env_facs[ch_data->bs_num_env],
  744. sizeof(ch_data->env_facs[0]));
  745. }
  746. static void read_sbr_noise(SpectralBandReplication *sbr, GetBitContext *gb,
  747. SBRData *ch_data, int ch)
  748. {
  749. int i, j;
  750. VLC_TYPE (*t_huff)[2], (*f_huff)[2];
  751. int t_lav, f_lav;
  752. int delta = (ch == 1 && sbr->bs_coupling == 1) + 1;
  753. if (sbr->bs_coupling && ch) {
  754. t_huff = vlc_sbr[T_HUFFMAN_NOISE_BAL_3_0DB].table;
  755. t_lav = vlc_sbr_lav[T_HUFFMAN_NOISE_BAL_3_0DB];
  756. f_huff = vlc_sbr[F_HUFFMAN_ENV_BAL_3_0DB].table;
  757. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_BAL_3_0DB];
  758. } else {
  759. t_huff = vlc_sbr[T_HUFFMAN_NOISE_3_0DB].table;
  760. t_lav = vlc_sbr_lav[T_HUFFMAN_NOISE_3_0DB];
  761. f_huff = vlc_sbr[F_HUFFMAN_ENV_3_0DB].table;
  762. f_lav = vlc_sbr_lav[F_HUFFMAN_ENV_3_0DB];
  763. }
  764. for (i = 0; i < ch_data->bs_num_noise; i++) {
  765. if (ch_data->bs_df_noise[i]) {
  766. for (j = 0; j < sbr->n_q; j++)
  767. ch_data->noise_facs[i + 1][j] = ch_data->noise_facs[i][j] + delta * (get_vlc2(gb, t_huff, 9, 2) - t_lav);
  768. } else {
  769. ch_data->noise_facs[i + 1][0] = delta * get_bits(gb, 5); // bs_noise_start_value_balance or bs_noise_start_value_level
  770. for (j = 1; j < sbr->n_q; j++)
  771. ch_data->noise_facs[i + 1][j] = ch_data->noise_facs[i + 1][j - 1] + delta * (get_vlc2(gb, f_huff, 9, 3) - f_lav);
  772. }
  773. }
  774. //assign 0th elements of noise_facs from last elements
  775. memcpy(ch_data->noise_facs[0], ch_data->noise_facs[ch_data->bs_num_noise],
  776. sizeof(ch_data->noise_facs[0]));
  777. }
  778. static void read_sbr_extension(AACContext *ac, SpectralBandReplication *sbr,
  779. GetBitContext *gb,
  780. int bs_extension_id, int *num_bits_left)
  781. {
  782. switch (bs_extension_id) {
  783. case EXTENSION_ID_PS:
  784. if (!ac->oc[1].m4ac.ps) {
  785. av_log(ac->avctx, AV_LOG_ERROR, "Parametric Stereo signaled to be not-present but was found in the bitstream.\n");
  786. skip_bits_long(gb, *num_bits_left); // bs_fill_bits
  787. *num_bits_left = 0;
  788. } else {
  789. #if 1
  790. *num_bits_left -= ff_ps_read_data(ac->avctx, gb, &sbr->ps, *num_bits_left);
  791. ac->avctx->profile = FF_PROFILE_AAC_HE_V2;
  792. #else
  793. avpriv_report_missing_feature(ac->avctx, "Parametric Stereo");
  794. skip_bits_long(gb, *num_bits_left); // bs_fill_bits
  795. *num_bits_left = 0;
  796. #endif
  797. }
  798. break;
  799. default:
  800. avpriv_request_sample(ac->avctx, "Reserved SBR extensions");
  801. skip_bits_long(gb, *num_bits_left); // bs_fill_bits
  802. *num_bits_left = 0;
  803. break;
  804. }
  805. }
  806. static int read_sbr_single_channel_element(AACContext *ac,
  807. SpectralBandReplication *sbr,
  808. GetBitContext *gb)
  809. {
  810. if (get_bits1(gb)) // bs_data_extra
  811. skip_bits(gb, 4); // bs_reserved
  812. if (read_sbr_grid(ac, sbr, gb, &sbr->data[0]))
  813. return -1;
  814. read_sbr_dtdf(sbr, gb, &sbr->data[0]);
  815. read_sbr_invf(sbr, gb, &sbr->data[0]);
  816. read_sbr_envelope(sbr, gb, &sbr->data[0], 0);
  817. read_sbr_noise(sbr, gb, &sbr->data[0], 0);
  818. if ((sbr->data[0].bs_add_harmonic_flag = get_bits1(gb)))
  819. get_bits1_vector(gb, sbr->data[0].bs_add_harmonic, sbr->n[1]);
  820. return 0;
  821. }
  822. static int read_sbr_channel_pair_element(AACContext *ac,
  823. SpectralBandReplication *sbr,
  824. GetBitContext *gb)
  825. {
  826. if (get_bits1(gb)) // bs_data_extra
  827. skip_bits(gb, 8); // bs_reserved
  828. if ((sbr->bs_coupling = get_bits1(gb))) {
  829. if (read_sbr_grid(ac, sbr, gb, &sbr->data[0]))
  830. return -1;
  831. copy_sbr_grid(&sbr->data[1], &sbr->data[0]);
  832. read_sbr_dtdf(sbr, gb, &sbr->data[0]);
  833. read_sbr_dtdf(sbr, gb, &sbr->data[1]);
  834. read_sbr_invf(sbr, gb, &sbr->data[0]);
  835. memcpy(sbr->data[1].bs_invf_mode[1], sbr->data[1].bs_invf_mode[0], sizeof(sbr->data[1].bs_invf_mode[0]));
  836. memcpy(sbr->data[1].bs_invf_mode[0], sbr->data[0].bs_invf_mode[0], sizeof(sbr->data[1].bs_invf_mode[0]));
  837. read_sbr_envelope(sbr, gb, &sbr->data[0], 0);
  838. read_sbr_noise(sbr, gb, &sbr->data[0], 0);
  839. read_sbr_envelope(sbr, gb, &sbr->data[1], 1);
  840. read_sbr_noise(sbr, gb, &sbr->data[1], 1);
  841. } else {
  842. if (read_sbr_grid(ac, sbr, gb, &sbr->data[0]) ||
  843. read_sbr_grid(ac, sbr, gb, &sbr->data[1]))
  844. return -1;
  845. read_sbr_dtdf(sbr, gb, &sbr->data[0]);
  846. read_sbr_dtdf(sbr, gb, &sbr->data[1]);
  847. read_sbr_invf(sbr, gb, &sbr->data[0]);
  848. read_sbr_invf(sbr, gb, &sbr->data[1]);
  849. read_sbr_envelope(sbr, gb, &sbr->data[0], 0);
  850. read_sbr_envelope(sbr, gb, &sbr->data[1], 1);
  851. read_sbr_noise(sbr, gb, &sbr->data[0], 0);
  852. read_sbr_noise(sbr, gb, &sbr->data[1], 1);
  853. }
  854. if ((sbr->data[0].bs_add_harmonic_flag = get_bits1(gb)))
  855. get_bits1_vector(gb, sbr->data[0].bs_add_harmonic, sbr->n[1]);
  856. if ((sbr->data[1].bs_add_harmonic_flag = get_bits1(gb)))
  857. get_bits1_vector(gb, sbr->data[1].bs_add_harmonic, sbr->n[1]);
  858. return 0;
  859. }
  860. static unsigned int read_sbr_data(AACContext *ac, SpectralBandReplication *sbr,
  861. GetBitContext *gb, int id_aac)
  862. {
  863. unsigned int cnt = get_bits_count(gb);
  864. if (id_aac == TYPE_SCE || id_aac == TYPE_CCE) {
  865. if (read_sbr_single_channel_element(ac, sbr, gb)) {
  866. sbr_turnoff(sbr);
  867. return get_bits_count(gb) - cnt;
  868. }
  869. } else if (id_aac == TYPE_CPE) {
  870. if (read_sbr_channel_pair_element(ac, sbr, gb)) {
  871. sbr_turnoff(sbr);
  872. return get_bits_count(gb) - cnt;
  873. }
  874. } else {
  875. av_log(ac->avctx, AV_LOG_ERROR,
  876. "Invalid bitstream - cannot apply SBR to element type %d\n", id_aac);
  877. sbr_turnoff(sbr);
  878. return get_bits_count(gb) - cnt;
  879. }
  880. if (get_bits1(gb)) { // bs_extended_data
  881. int num_bits_left = get_bits(gb, 4); // bs_extension_size
  882. if (num_bits_left == 15)
  883. num_bits_left += get_bits(gb, 8); // bs_esc_count
  884. num_bits_left <<= 3;
  885. while (num_bits_left > 7) {
  886. num_bits_left -= 2;
  887. read_sbr_extension(ac, sbr, gb, get_bits(gb, 2), &num_bits_left); // bs_extension_id
  888. }
  889. if (num_bits_left < 0) {
  890. av_log(ac->avctx, AV_LOG_ERROR, "SBR Extension over read.\n");
  891. }
  892. if (num_bits_left > 0)
  893. skip_bits(gb, num_bits_left);
  894. }
  895. return get_bits_count(gb) - cnt;
  896. }
  897. static void sbr_reset(AACContext *ac, SpectralBandReplication *sbr)
  898. {
  899. int err;
  900. err = sbr_make_f_master(ac, sbr, &sbr->spectrum_params);
  901. if (err >= 0)
  902. err = sbr_make_f_derived(ac, sbr);
  903. if (err < 0) {
  904. av_log(ac->avctx, AV_LOG_ERROR,
  905. "SBR reset failed. Switching SBR to pure upsampling mode.\n");
  906. sbr_turnoff(sbr);
  907. }
  908. }
  909. /**
  910. * Decode Spectral Band Replication extension data; reference: table 4.55.
  911. *
  912. * @param crc flag indicating the presence of CRC checksum
  913. * @param cnt length of TYPE_FIL syntactic element in bytes
  914. *
  915. * @return Returns number of bytes consumed from the TYPE_FIL element.
  916. */
  917. int ff_decode_sbr_extension(AACContext *ac, SpectralBandReplication *sbr,
  918. GetBitContext *gb_host, int crc, int cnt, int id_aac)
  919. {
  920. unsigned int num_sbr_bits = 0, num_align_bits;
  921. unsigned bytes_read;
  922. GetBitContext gbc = *gb_host, *gb = &gbc;
  923. skip_bits_long(gb_host, cnt*8 - 4);
  924. sbr->reset = 0;
  925. if (!sbr->sample_rate)
  926. sbr->sample_rate = 2 * ac->oc[1].m4ac.sample_rate; //TODO use the nominal sample rate for arbitrary sample rate support
  927. if (!ac->oc[1].m4ac.ext_sample_rate)
  928. ac->oc[1].m4ac.ext_sample_rate = 2 * ac->oc[1].m4ac.sample_rate;
  929. if (crc) {
  930. skip_bits(gb, 10); // bs_sbr_crc_bits; TODO - implement CRC check
  931. num_sbr_bits += 10;
  932. }
  933. //Save some state from the previous frame.
  934. sbr->kx[0] = sbr->kx[1];
  935. sbr->m[0] = sbr->m[1];
  936. sbr->kx_and_m_pushed = 1;
  937. num_sbr_bits++;
  938. if (get_bits1(gb)) // bs_header_flag
  939. num_sbr_bits += read_sbr_header(sbr, gb);
  940. if (sbr->reset)
  941. sbr_reset(ac, sbr);
  942. if (sbr->start)
  943. num_sbr_bits += read_sbr_data(ac, sbr, gb, id_aac);
  944. num_align_bits = ((cnt << 3) - 4 - num_sbr_bits) & 7;
  945. bytes_read = ((num_sbr_bits + num_align_bits + 4) >> 3);
  946. if (bytes_read > cnt) {
  947. av_log(ac->avctx, AV_LOG_ERROR,
  948. "Expected to read %d SBR bytes actually read %d.\n", cnt, bytes_read);
  949. }
  950. return cnt;
  951. }
  952. /// Dequantization and stereo decoding (14496-3 sp04 p203)
  953. static void sbr_dequant(SpectralBandReplication *sbr, int id_aac)
  954. {
  955. int k, e;
  956. int ch;
  957. if (id_aac == TYPE_CPE && sbr->bs_coupling) {
  958. float alpha = sbr->data[0].bs_amp_res ? 1.0f : 0.5f;
  959. float pan_offset = sbr->data[0].bs_amp_res ? 12.0f : 24.0f;
  960. for (e = 1; e <= sbr->data[0].bs_num_env; e++) {
  961. for (k = 0; k < sbr->n[sbr->data[0].bs_freq_res[e]]; k++) {
  962. float temp1 = exp2f(sbr->data[0].env_facs[e][k] * alpha + 7.0f);
  963. float temp2 = exp2f((pan_offset - sbr->data[1].env_facs[e][k]) * alpha);
  964. float fac = temp1 / (1.0f + temp2);
  965. sbr->data[0].env_facs[e][k] = fac;
  966. sbr->data[1].env_facs[e][k] = fac * temp2;
  967. }
  968. }
  969. for (e = 1; e <= sbr->data[0].bs_num_noise; e++) {
  970. for (k = 0; k < sbr->n_q; k++) {
  971. float temp1 = exp2f(NOISE_FLOOR_OFFSET - sbr->data[0].noise_facs[e][k] + 1);
  972. float temp2 = exp2f(12 - sbr->data[1].noise_facs[e][k]);
  973. float fac = temp1 / (1.0f + temp2);
  974. sbr->data[0].noise_facs[e][k] = fac;
  975. sbr->data[1].noise_facs[e][k] = fac * temp2;
  976. }
  977. }
  978. } else { // SCE or one non-coupled CPE
  979. for (ch = 0; ch < (id_aac == TYPE_CPE) + 1; ch++) {
  980. float alpha = sbr->data[ch].bs_amp_res ? 1.0f : 0.5f;
  981. for (e = 1; e <= sbr->data[ch].bs_num_env; e++)
  982. for (k = 0; k < sbr->n[sbr->data[ch].bs_freq_res[e]]; k++)
  983. sbr->data[ch].env_facs[e][k] =
  984. exp2f(alpha * sbr->data[ch].env_facs[e][k] + 6.0f);
  985. for (e = 1; e <= sbr->data[ch].bs_num_noise; e++)
  986. for (k = 0; k < sbr->n_q; k++)
  987. sbr->data[ch].noise_facs[e][k] =
  988. exp2f(NOISE_FLOOR_OFFSET - sbr->data[ch].noise_facs[e][k]);
  989. }
  990. }
  991. }
  992. /**
  993. * Analysis QMF Bank (14496-3 sp04 p206)
  994. *
  995. * @param x pointer to the beginning of the first sample window
  996. * @param W array of complex-valued samples split into subbands
  997. */
  998. static void sbr_qmf_analysis(AVFloatDSPContext *dsp, FFTContext *mdct,
  999. SBRDSPContext *sbrdsp, const float *in, float *x,
  1000. float z[320], float W[2][32][32][2], int buf_idx)
  1001. {
  1002. int i;
  1003. memcpy(x , x+1024, (320-32)*sizeof(x[0]));
  1004. memcpy(x+288, in, 1024*sizeof(x[0]));
  1005. for (i = 0; i < 32; i++) { // numTimeSlots*RATE = 16*2 as 960 sample frames
  1006. // are not supported
  1007. dsp->vector_fmul_reverse(z, sbr_qmf_window_ds, x, 320);
  1008. sbrdsp->sum64x5(z);
  1009. sbrdsp->qmf_pre_shuffle(z);
  1010. mdct->imdct_half(mdct, z, z+64);
  1011. sbrdsp->qmf_post_shuffle(W[buf_idx][i], z);
  1012. x += 32;
  1013. }
  1014. }
  1015. /**
  1016. * Synthesis QMF Bank (14496-3 sp04 p206) and Downsampled Synthesis QMF Bank
  1017. * (14496-3 sp04 p206)
  1018. */
  1019. static void sbr_qmf_synthesis(FFTContext *mdct,
  1020. SBRDSPContext *sbrdsp, AVFloatDSPContext *dsp,
  1021. float *out, float X[2][38][64],
  1022. float mdct_buf[2][64],
  1023. float *v0, int *v_off, const unsigned int div)
  1024. {
  1025. int i, n;
  1026. const float *sbr_qmf_window = div ? sbr_qmf_window_ds : sbr_qmf_window_us;
  1027. const int step = 128 >> div;
  1028. float *v;
  1029. for (i = 0; i < 32; i++) {
  1030. if (*v_off < step) {
  1031. int saved_samples = (1280 - 128) >> div;
  1032. memcpy(&v0[SBR_SYNTHESIS_BUF_SIZE - saved_samples], v0, saved_samples * sizeof(float));
  1033. *v_off = SBR_SYNTHESIS_BUF_SIZE - saved_samples - step;
  1034. } else {
  1035. *v_off -= step;
  1036. }
  1037. v = v0 + *v_off;
  1038. if (div) {
  1039. for (n = 0; n < 32; n++) {
  1040. X[0][i][ n] = -X[0][i][n];
  1041. X[0][i][32+n] = X[1][i][31-n];
  1042. }
  1043. mdct->imdct_half(mdct, mdct_buf[0], X[0][i]);
  1044. sbrdsp->qmf_deint_neg(v, mdct_buf[0]);
  1045. } else {
  1046. sbrdsp->neg_odd_64(X[1][i]);
  1047. mdct->imdct_half(mdct, mdct_buf[0], X[0][i]);
  1048. mdct->imdct_half(mdct, mdct_buf[1], X[1][i]);
  1049. sbrdsp->qmf_deint_bfly(v, mdct_buf[1], mdct_buf[0]);
  1050. }
  1051. dsp->vector_fmul (out, v , sbr_qmf_window , 64 >> div);
  1052. dsp->vector_fmul_add(out, v + ( 192 >> div), sbr_qmf_window + ( 64 >> div), out , 64 >> div);
  1053. dsp->vector_fmul_add(out, v + ( 256 >> div), sbr_qmf_window + (128 >> div), out , 64 >> div);
  1054. dsp->vector_fmul_add(out, v + ( 448 >> div), sbr_qmf_window + (192 >> div), out , 64 >> div);
  1055. dsp->vector_fmul_add(out, v + ( 512 >> div), sbr_qmf_window + (256 >> div), out , 64 >> div);
  1056. dsp->vector_fmul_add(out, v + ( 704 >> div), sbr_qmf_window + (320 >> div), out , 64 >> div);
  1057. dsp->vector_fmul_add(out, v + ( 768 >> div), sbr_qmf_window + (384 >> div), out , 64 >> div);
  1058. dsp->vector_fmul_add(out, v + ( 960 >> div), sbr_qmf_window + (448 >> div), out , 64 >> div);
  1059. dsp->vector_fmul_add(out, v + (1024 >> div), sbr_qmf_window + (512 >> div), out , 64 >> div);
  1060. dsp->vector_fmul_add(out, v + (1216 >> div), sbr_qmf_window + (576 >> div), out , 64 >> div);
  1061. out += 64 >> div;
  1062. }
  1063. }
  1064. /** High Frequency Generation (14496-3 sp04 p214+) and Inverse Filtering
  1065. * (14496-3 sp04 p214)
  1066. * Warning: This routine does not seem numerically stable.
  1067. */
  1068. static void sbr_hf_inverse_filter(SBRDSPContext *dsp,
  1069. float (*alpha0)[2], float (*alpha1)[2],
  1070. const float X_low[32][40][2], int k0)
  1071. {
  1072. int k;
  1073. for (k = 0; k < k0; k++) {
  1074. LOCAL_ALIGNED_16(float, phi, [3], [2][2]);
  1075. float dk;
  1076. dsp->autocorrelate(X_low[k], phi);
  1077. dk = phi[2][1][0] * phi[1][0][0] -
  1078. (phi[1][1][0] * phi[1][1][0] + phi[1][1][1] * phi[1][1][1]) / 1.000001f;
  1079. if (!dk) {
  1080. alpha1[k][0] = 0;
  1081. alpha1[k][1] = 0;
  1082. } else {
  1083. float temp_real, temp_im;
  1084. temp_real = phi[0][0][0] * phi[1][1][0] -
  1085. phi[0][0][1] * phi[1][1][1] -
  1086. phi[0][1][0] * phi[1][0][0];
  1087. temp_im = phi[0][0][0] * phi[1][1][1] +
  1088. phi[0][0][1] * phi[1][1][0] -
  1089. phi[0][1][1] * phi[1][0][0];
  1090. alpha1[k][0] = temp_real / dk;
  1091. alpha1[k][1] = temp_im / dk;
  1092. }
  1093. if (!phi[1][0][0]) {
  1094. alpha0[k][0] = 0;
  1095. alpha0[k][1] = 0;
  1096. } else {
  1097. float temp_real, temp_im;
  1098. temp_real = phi[0][0][0] + alpha1[k][0] * phi[1][1][0] +
  1099. alpha1[k][1] * phi[1][1][1];
  1100. temp_im = phi[0][0][1] + alpha1[k][1] * phi[1][1][0] -
  1101. alpha1[k][0] * phi[1][1][1];
  1102. alpha0[k][0] = -temp_real / phi[1][0][0];
  1103. alpha0[k][1] = -temp_im / phi[1][0][0];
  1104. }
  1105. if (alpha1[k][0] * alpha1[k][0] + alpha1[k][1] * alpha1[k][1] >= 16.0f ||
  1106. alpha0[k][0] * alpha0[k][0] + alpha0[k][1] * alpha0[k][1] >= 16.0f) {
  1107. alpha1[k][0] = 0;
  1108. alpha1[k][1] = 0;
  1109. alpha0[k][0] = 0;
  1110. alpha0[k][1] = 0;
  1111. }
  1112. }
  1113. }
  1114. /// Chirp Factors (14496-3 sp04 p214)
  1115. static void sbr_chirp(SpectralBandReplication *sbr, SBRData *ch_data)
  1116. {
  1117. int i;
  1118. float new_bw;
  1119. static const float bw_tab[] = { 0.0f, 0.75f, 0.9f, 0.98f };
  1120. for (i = 0; i < sbr->n_q; i++) {
  1121. if (ch_data->bs_invf_mode[0][i] + ch_data->bs_invf_mode[1][i] == 1) {
  1122. new_bw = 0.6f;
  1123. } else
  1124. new_bw = bw_tab[ch_data->bs_invf_mode[0][i]];
  1125. if (new_bw < ch_data->bw_array[i]) {
  1126. new_bw = 0.75f * new_bw + 0.25f * ch_data->bw_array[i];
  1127. } else
  1128. new_bw = 0.90625f * new_bw + 0.09375f * ch_data->bw_array[i];
  1129. ch_data->bw_array[i] = new_bw < 0.015625f ? 0.0f : new_bw;
  1130. }
  1131. }
  1132. /// Generate the subband filtered lowband
  1133. static int sbr_lf_gen(AACContext *ac, SpectralBandReplication *sbr,
  1134. float X_low[32][40][2], const float W[2][32][32][2],
  1135. int buf_idx)
  1136. {
  1137. int i, k;
  1138. const int t_HFGen = 8;
  1139. const int i_f = 32;
  1140. memset(X_low, 0, 32*sizeof(*X_low));
  1141. for (k = 0; k < sbr->kx[1]; k++) {
  1142. for (i = t_HFGen; i < i_f + t_HFGen; i++) {
  1143. X_low[k][i][0] = W[buf_idx][i - t_HFGen][k][0];
  1144. X_low[k][i][1] = W[buf_idx][i - t_HFGen][k][1];
  1145. }
  1146. }
  1147. buf_idx = 1-buf_idx;
  1148. for (k = 0; k < sbr->kx[0]; k++) {
  1149. for (i = 0; i < t_HFGen; i++) {
  1150. X_low[k][i][0] = W[buf_idx][i + i_f - t_HFGen][k][0];
  1151. X_low[k][i][1] = W[buf_idx][i + i_f - t_HFGen][k][1];
  1152. }
  1153. }
  1154. return 0;
  1155. }
  1156. /// High Frequency Generator (14496-3 sp04 p215)
  1157. static int sbr_hf_gen(AACContext *ac, SpectralBandReplication *sbr,
  1158. float X_high[64][40][2], const float X_low[32][40][2],
  1159. const float (*alpha0)[2], const float (*alpha1)[2],
  1160. const float bw_array[5], const uint8_t *t_env,
  1161. int bs_num_env)
  1162. {
  1163. int j, x;
  1164. int g = 0;
  1165. int k = sbr->kx[1];
  1166. for (j = 0; j < sbr->num_patches; j++) {
  1167. for (x = 0; x < sbr->patch_num_subbands[j]; x++, k++) {
  1168. const int p = sbr->patch_start_subband[j] + x;
  1169. while (g <= sbr->n_q && k >= sbr->f_tablenoise[g])
  1170. g++;
  1171. g--;
  1172. if (g < 0) {
  1173. av_log(ac->avctx, AV_LOG_ERROR,
  1174. "ERROR : no subband found for frequency %d\n", k);
  1175. return -1;
  1176. }
  1177. sbr->dsp.hf_gen(X_high[k] + ENVELOPE_ADJUSTMENT_OFFSET,
  1178. X_low[p] + ENVELOPE_ADJUSTMENT_OFFSET,
  1179. alpha0[p], alpha1[p], bw_array[g],
  1180. 2 * t_env[0], 2 * t_env[bs_num_env]);
  1181. }
  1182. }
  1183. if (k < sbr->m[1] + sbr->kx[1])
  1184. memset(X_high + k, 0, (sbr->m[1] + sbr->kx[1] - k) * sizeof(*X_high));
  1185. return 0;
  1186. }
  1187. /// Generate the subband filtered lowband
  1188. static int sbr_x_gen(SpectralBandReplication *sbr, float X[2][38][64],
  1189. const float Y0[38][64][2], const float Y1[38][64][2],
  1190. const float X_low[32][40][2], int ch)
  1191. {
  1192. int k, i;
  1193. const int i_f = 32;
  1194. const int i_Temp = FFMAX(2*sbr->data[ch].t_env_num_env_old - i_f, 0);
  1195. memset(X, 0, 2*sizeof(*X));
  1196. for (k = 0; k < sbr->kx[0]; k++) {
  1197. for (i = 0; i < i_Temp; i++) {
  1198. X[0][i][k] = X_low[k][i + ENVELOPE_ADJUSTMENT_OFFSET][0];
  1199. X[1][i][k] = X_low[k][i + ENVELOPE_ADJUSTMENT_OFFSET][1];
  1200. }
  1201. }
  1202. for (; k < sbr->kx[0] + sbr->m[0]; k++) {
  1203. for (i = 0; i < i_Temp; i++) {
  1204. X[0][i][k] = Y0[i + i_f][k][0];
  1205. X[1][i][k] = Y0[i + i_f][k][1];
  1206. }
  1207. }
  1208. for (k = 0; k < sbr->kx[1]; k++) {
  1209. for (i = i_Temp; i < 38; i++) {
  1210. X[0][i][k] = X_low[k][i + ENVELOPE_ADJUSTMENT_OFFSET][0];
  1211. X[1][i][k] = X_low[k][i + ENVELOPE_ADJUSTMENT_OFFSET][1];
  1212. }
  1213. }
  1214. for (; k < sbr->kx[1] + sbr->m[1]; k++) {
  1215. for (i = i_Temp; i < i_f; i++) {
  1216. X[0][i][k] = Y1[i][k][0];
  1217. X[1][i][k] = Y1[i][k][1];
  1218. }
  1219. }
  1220. return 0;
  1221. }
  1222. /** High Frequency Adjustment (14496-3 sp04 p217) and Mapping
  1223. * (14496-3 sp04 p217)
  1224. */
  1225. static int sbr_mapping(AACContext *ac, SpectralBandReplication *sbr,
  1226. SBRData *ch_data, int e_a[2])
  1227. {
  1228. int e, i, m;
  1229. memset(ch_data->s_indexmapped[1], 0, 7*sizeof(ch_data->s_indexmapped[1]));
  1230. for (e = 0; e < ch_data->bs_num_env; e++) {
  1231. const unsigned int ilim = sbr->n[ch_data->bs_freq_res[e + 1]];
  1232. uint16_t *table = ch_data->bs_freq_res[e + 1] ? sbr->f_tablehigh : sbr->f_tablelow;
  1233. int k;
  1234. if (sbr->kx[1] != table[0]) {
  1235. av_log(ac->avctx, AV_LOG_ERROR, "kx != f_table{high,low}[0]. "
  1236. "Derived frequency tables were not regenerated.\n");
  1237. sbr_turnoff(sbr);
  1238. return AVERROR_BUG;
  1239. }
  1240. for (i = 0; i < ilim; i++)
  1241. for (m = table[i]; m < table[i + 1]; m++)
  1242. sbr->e_origmapped[e][m - sbr->kx[1]] = ch_data->env_facs[e+1][i];
  1243. // ch_data->bs_num_noise > 1 => 2 noise floors
  1244. k = (ch_data->bs_num_noise > 1) && (ch_data->t_env[e] >= ch_data->t_q[1]);
  1245. for (i = 0; i < sbr->n_q; i++)
  1246. for (m = sbr->f_tablenoise[i]; m < sbr->f_tablenoise[i + 1]; m++)
  1247. sbr->q_mapped[e][m - sbr->kx[1]] = ch_data->noise_facs[k+1][i];
  1248. for (i = 0; i < sbr->n[1]; i++) {
  1249. if (ch_data->bs_add_harmonic_flag) {
  1250. const unsigned int m_midpoint =
  1251. (sbr->f_tablehigh[i] + sbr->f_tablehigh[i + 1]) >> 1;
  1252. ch_data->s_indexmapped[e + 1][m_midpoint - sbr->kx[1]] = ch_data->bs_add_harmonic[i] *
  1253. (e >= e_a[1] || (ch_data->s_indexmapped[0][m_midpoint - sbr->kx[1]] == 1));
  1254. }
  1255. }
  1256. for (i = 0; i < ilim; i++) {
  1257. int additional_sinusoid_present = 0;
  1258. for (m = table[i]; m < table[i + 1]; m++) {
  1259. if (ch_data->s_indexmapped[e + 1][m - sbr->kx[1]]) {
  1260. additional_sinusoid_present = 1;
  1261. break;
  1262. }
  1263. }
  1264. memset(&sbr->s_mapped[e][table[i] - sbr->kx[1]], additional_sinusoid_present,
  1265. (table[i + 1] - table[i]) * sizeof(sbr->s_mapped[e][0]));
  1266. }
  1267. }
  1268. memcpy(ch_data->s_indexmapped[0], ch_data->s_indexmapped[ch_data->bs_num_env], sizeof(ch_data->s_indexmapped[0]));
  1269. return 0;
  1270. }
  1271. /// Estimation of current envelope (14496-3 sp04 p218)
  1272. static void sbr_env_estimate(float (*e_curr)[48], float X_high[64][40][2],
  1273. SpectralBandReplication *sbr, SBRData *ch_data)
  1274. {
  1275. int e, m;
  1276. int kx1 = sbr->kx[1];
  1277. if (sbr->bs_interpol_freq) {
  1278. for (e = 0; e < ch_data->bs_num_env; e++) {
  1279. const float recip_env_size = 0.5f / (ch_data->t_env[e + 1] - ch_data->t_env[e]);
  1280. int ilb = ch_data->t_env[e] * 2 + ENVELOPE_ADJUSTMENT_OFFSET;
  1281. int iub = ch_data->t_env[e + 1] * 2 + ENVELOPE_ADJUSTMENT_OFFSET;
  1282. for (m = 0; m < sbr->m[1]; m++) {
  1283. float sum = sbr->dsp.sum_square(X_high[m+kx1] + ilb, iub - ilb);
  1284. e_curr[e][m] = sum * recip_env_size;
  1285. }
  1286. }
  1287. } else {
  1288. int k, p;
  1289. for (e = 0; e < ch_data->bs_num_env; e++) {
  1290. const int env_size = 2 * (ch_data->t_env[e + 1] - ch_data->t_env[e]);
  1291. int ilb = ch_data->t_env[e] * 2 + ENVELOPE_ADJUSTMENT_OFFSET;
  1292. int iub = ch_data->t_env[e + 1] * 2 + ENVELOPE_ADJUSTMENT_OFFSET;
  1293. const uint16_t *table = ch_data->bs_freq_res[e + 1] ? sbr->f_tablehigh : sbr->f_tablelow;
  1294. for (p = 0; p < sbr->n[ch_data->bs_freq_res[e + 1]]; p++) {
  1295. float sum = 0.0f;
  1296. const int den = env_size * (table[p + 1] - table[p]);
  1297. for (k = table[p]; k < table[p + 1]; k++) {
  1298. sum += sbr->dsp.sum_square(X_high[k] + ilb, iub - ilb);
  1299. }
  1300. sum /= den;
  1301. for (k = table[p]; k < table[p + 1]; k++) {
  1302. e_curr[e][k - kx1] = sum;
  1303. }
  1304. }
  1305. }
  1306. }
  1307. }
  1308. /**
  1309. * Calculation of levels of additional HF signal components (14496-3 sp04 p219)
  1310. * and Calculation of gain (14496-3 sp04 p219)
  1311. */
  1312. static void sbr_gain_calc(AACContext *ac, SpectralBandReplication *sbr,
  1313. SBRData *ch_data, const int e_a[2])
  1314. {
  1315. int e, k, m;
  1316. // max gain limits : -3dB, 0dB, 3dB, inf dB (limiter off)
  1317. static const float limgain[4] = { 0.70795, 1.0, 1.41254, 10000000000 };
  1318. for (e = 0; e < ch_data->bs_num_env; e++) {
  1319. int delta = !((e == e_a[1]) || (e == e_a[0]));
  1320. for (k = 0; k < sbr->n_lim; k++) {
  1321. float gain_boost, gain_max;
  1322. float sum[2] = { 0.0f, 0.0f };
  1323. for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
  1324. const float temp = sbr->e_origmapped[e][m] / (1.0f + sbr->q_mapped[e][m]);
  1325. sbr->q_m[e][m] = sqrtf(temp * sbr->q_mapped[e][m]);
  1326. sbr->s_m[e][m] = sqrtf(temp * ch_data->s_indexmapped[e + 1][m]);
  1327. if (!sbr->s_mapped[e][m]) {
  1328. sbr->gain[e][m] = sqrtf(sbr->e_origmapped[e][m] /
  1329. ((1.0f + sbr->e_curr[e][m]) *
  1330. (1.0f + sbr->q_mapped[e][m] * delta)));
  1331. } else {
  1332. sbr->gain[e][m] = sqrtf(sbr->e_origmapped[e][m] * sbr->q_mapped[e][m] /
  1333. ((1.0f + sbr->e_curr[e][m]) *
  1334. (1.0f + sbr->q_mapped[e][m])));
  1335. }
  1336. }
  1337. for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
  1338. sum[0] += sbr->e_origmapped[e][m];
  1339. sum[1] += sbr->e_curr[e][m];
  1340. }
  1341. gain_max = limgain[sbr->bs_limiter_gains] * sqrtf((FLT_EPSILON + sum[0]) / (FLT_EPSILON + sum[1]));
  1342. gain_max = FFMIN(100000.f, gain_max);
  1343. for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
  1344. float q_m_max = sbr->q_m[e][m] * gain_max / sbr->gain[e][m];
  1345. sbr->q_m[e][m] = FFMIN(sbr->q_m[e][m], q_m_max);
  1346. sbr->gain[e][m] = FFMIN(sbr->gain[e][m], gain_max);
  1347. }
  1348. sum[0] = sum[1] = 0.0f;
  1349. for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
  1350. sum[0] += sbr->e_origmapped[e][m];
  1351. sum[1] += sbr->e_curr[e][m] * sbr->gain[e][m] * sbr->gain[e][m]
  1352. + sbr->s_m[e][m] * sbr->s_m[e][m]
  1353. + (delta && !sbr->s_m[e][m]) * sbr->q_m[e][m] * sbr->q_m[e][m];
  1354. }
  1355. gain_boost = sqrtf((FLT_EPSILON + sum[0]) / (FLT_EPSILON + sum[1]));
  1356. gain_boost = FFMIN(1.584893192f, gain_boost);
  1357. for (m = sbr->f_tablelim[k] - sbr->kx[1]; m < sbr->f_tablelim[k + 1] - sbr->kx[1]; m++) {
  1358. sbr->gain[e][m] *= gain_boost;
  1359. sbr->q_m[e][m] *= gain_boost;
  1360. sbr->s_m[e][m] *= gain_boost;
  1361. }
  1362. }
  1363. }
  1364. }
  1365. /// Assembling HF Signals (14496-3 sp04 p220)
  1366. static void sbr_hf_assemble(float Y1[38][64][2],
  1367. const float X_high[64][40][2],
  1368. SpectralBandReplication *sbr, SBRData *ch_data,
  1369. const int e_a[2])
  1370. {
  1371. int e, i, j, m;
  1372. const int h_SL = 4 * !sbr->bs_smoothing_mode;
  1373. const int kx = sbr->kx[1];
  1374. const int m_max = sbr->m[1];
  1375. static const float h_smooth[5] = {
  1376. 0.33333333333333,
  1377. 0.30150283239582,
  1378. 0.21816949906249,
  1379. 0.11516383427084,
  1380. 0.03183050093751,
  1381. };
  1382. static const int8_t phi[2][4] = {
  1383. { 1, 0, -1, 0}, // real
  1384. { 0, 1, 0, -1}, // imaginary
  1385. };
  1386. float (*g_temp)[48] = ch_data->g_temp, (*q_temp)[48] = ch_data->q_temp;
  1387. int indexnoise = ch_data->f_indexnoise;
  1388. int indexsine = ch_data->f_indexsine;
  1389. if (sbr->reset) {
  1390. for (i = 0; i < h_SL; i++) {
  1391. memcpy(g_temp[i + 2*ch_data->t_env[0]], sbr->gain[0], m_max * sizeof(sbr->gain[0][0]));
  1392. memcpy(q_temp[i + 2*ch_data->t_env[0]], sbr->q_m[0], m_max * sizeof(sbr->q_m[0][0]));
  1393. }
  1394. } else if (h_SL) {
  1395. memcpy(g_temp[2*ch_data->t_env[0]], g_temp[2*ch_data->t_env_num_env_old], 4*sizeof(g_temp[0]));
  1396. memcpy(q_temp[2*ch_data->t_env[0]], q_temp[2*ch_data->t_env_num_env_old], 4*sizeof(q_temp[0]));
  1397. }
  1398. for (e = 0; e < ch_data->bs_num_env; e++) {
  1399. for (i = 2 * ch_data->t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
  1400. memcpy(g_temp[h_SL + i], sbr->gain[e], m_max * sizeof(sbr->gain[0][0]));
  1401. memcpy(q_temp[h_SL + i], sbr->q_m[e], m_max * sizeof(sbr->q_m[0][0]));
  1402. }
  1403. }
  1404. for (e = 0; e < ch_data->bs_num_env; e++) {
  1405. for (i = 2 * ch_data->t_env[e]; i < 2 * ch_data->t_env[e + 1]; i++) {
  1406. int phi_sign = (1 - 2*(kx & 1));
  1407. LOCAL_ALIGNED_16(float, g_filt_tab, [48]);
  1408. LOCAL_ALIGNED_16(float, q_filt_tab, [48]);
  1409. float *g_filt, *q_filt;
  1410. if (h_SL && e != e_a[0] && e != e_a[1]) {
  1411. g_filt = g_filt_tab;
  1412. q_filt = q_filt_tab;
  1413. for (m = 0; m < m_max; m++) {
  1414. const int idx1 = i + h_SL;
  1415. g_filt[m] = 0.0f;
  1416. q_filt[m] = 0.0f;
  1417. for (j = 0; j <= h_SL; j++) {
  1418. g_filt[m] += g_temp[idx1 - j][m] * h_smooth[j];
  1419. q_filt[m] += q_temp[idx1 - j][m] * h_smooth[j];
  1420. }
  1421. }
  1422. } else {
  1423. g_filt = g_temp[i + h_SL];
  1424. q_filt = q_temp[i];
  1425. }
  1426. sbr->dsp.hf_g_filt(Y1[i] + kx, X_high + kx, g_filt, m_max,
  1427. i + ENVELOPE_ADJUSTMENT_OFFSET);
  1428. if (e != e_a[0] && e != e_a[1]) {
  1429. sbr->dsp.hf_apply_noise[indexsine](Y1[i] + kx, sbr->s_m[e],
  1430. q_filt, indexnoise,
  1431. kx, m_max);
  1432. } else {
  1433. for (m = 0; m < m_max; m++) {
  1434. Y1[i][m + kx][0] +=
  1435. sbr->s_m[e][m] * phi[0][indexsine];
  1436. Y1[i][m + kx][1] +=
  1437. sbr->s_m[e][m] * (phi[1][indexsine] * phi_sign);
  1438. phi_sign = -phi_sign;
  1439. }
  1440. }
  1441. indexnoise = (indexnoise + m_max) & 0x1ff;
  1442. indexsine = (indexsine + 1) & 3;
  1443. }
  1444. }
  1445. ch_data->f_indexnoise = indexnoise;
  1446. ch_data->f_indexsine = indexsine;
  1447. }
  1448. void ff_sbr_apply(AACContext *ac, SpectralBandReplication *sbr, int id_aac,
  1449. float* L, float* R)
  1450. {
  1451. int downsampled = ac->oc[1].m4ac.ext_sample_rate < sbr->sample_rate;
  1452. int ch;
  1453. int nch = (id_aac == TYPE_CPE) ? 2 : 1;
  1454. int err;
  1455. if (!sbr->kx_and_m_pushed) {
  1456. sbr->kx[0] = sbr->kx[1];
  1457. sbr->m[0] = sbr->m[1];
  1458. } else {
  1459. sbr->kx_and_m_pushed = 0;
  1460. }
  1461. if (sbr->start) {
  1462. sbr_dequant(sbr, id_aac);
  1463. }
  1464. for (ch = 0; ch < nch; ch++) {
  1465. /* decode channel */
  1466. sbr_qmf_analysis(&ac->fdsp, &sbr->mdct_ana, &sbr->dsp, ch ? R : L, sbr->data[ch].analysis_filterbank_samples,
  1467. (float*)sbr->qmf_filter_scratch,
  1468. sbr->data[ch].W, sbr->data[ch].Ypos);
  1469. sbr_lf_gen(ac, sbr, sbr->X_low,
  1470. (const float (*)[32][32][2]) sbr->data[ch].W,
  1471. sbr->data[ch].Ypos);
  1472. sbr->data[ch].Ypos ^= 1;
  1473. if (sbr->start) {
  1474. sbr_hf_inverse_filter(&sbr->dsp, sbr->alpha0, sbr->alpha1,
  1475. (const float (*)[40][2]) sbr->X_low, sbr->k[0]);
  1476. sbr_chirp(sbr, &sbr->data[ch]);
  1477. sbr_hf_gen(ac, sbr, sbr->X_high,
  1478. (const float (*)[40][2]) sbr->X_low,
  1479. (const float (*)[2]) sbr->alpha0,
  1480. (const float (*)[2]) sbr->alpha1,
  1481. sbr->data[ch].bw_array, sbr->data[ch].t_env,
  1482. sbr->data[ch].bs_num_env);
  1483. // hf_adj
  1484. err = sbr_mapping(ac, sbr, &sbr->data[ch], sbr->data[ch].e_a);
  1485. if (!err) {
  1486. sbr_env_estimate(sbr->e_curr, sbr->X_high, sbr, &sbr->data[ch]);
  1487. sbr_gain_calc(ac, sbr, &sbr->data[ch], sbr->data[ch].e_a);
  1488. sbr_hf_assemble(sbr->data[ch].Y[sbr->data[ch].Ypos],
  1489. (const float (*)[40][2]) sbr->X_high,
  1490. sbr, &sbr->data[ch],
  1491. sbr->data[ch].e_a);
  1492. }
  1493. }
  1494. /* synthesis */
  1495. sbr_x_gen(sbr, sbr->X[ch],
  1496. (const float (*)[64][2]) sbr->data[ch].Y[1-sbr->data[ch].Ypos],
  1497. (const float (*)[64][2]) sbr->data[ch].Y[ sbr->data[ch].Ypos],
  1498. (const float (*)[40][2]) sbr->X_low, ch);
  1499. }
  1500. if (ac->oc[1].m4ac.ps == 1) {
  1501. if (sbr->ps.start) {
  1502. ff_ps_apply(ac->avctx, &sbr->ps, sbr->X[0], sbr->X[1], sbr->kx[1] + sbr->m[1]);
  1503. } else {
  1504. memcpy(sbr->X[1], sbr->X[0], sizeof(sbr->X[0]));
  1505. }
  1506. nch = 2;
  1507. }
  1508. sbr_qmf_synthesis(&sbr->mdct, &sbr->dsp, &ac->fdsp,
  1509. L, sbr->X[0], sbr->qmf_filter_scratch,
  1510. sbr->data[0].synthesis_filterbank_samples,
  1511. &sbr->data[0].synthesis_filterbank_samples_offset,
  1512. downsampled);
  1513. if (nch == 2)
  1514. sbr_qmf_synthesis(&sbr->mdct, &sbr->dsp, &ac->fdsp,
  1515. R, sbr->X[1], sbr->qmf_filter_scratch,
  1516. sbr->data[1].synthesis_filterbank_samples,
  1517. &sbr->data[1].synthesis_filterbank_samples_offset,
  1518. downsampled);
  1519. }