cx88-dsp.c 8.6 KB

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  1. /*
  2. *
  3. * Stereo and SAP detection for cx88
  4. *
  5. * Copyright (c) 2009 Marton Balint <cus@fazekas.hu>
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program 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
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  20. */
  21. #include <linux/kernel.h>
  22. #include <linux/module.h>
  23. #include <linux/jiffies.h>
  24. #include <asm/div64.h>
  25. #include "cx88.h"
  26. #include "cx88-reg.h"
  27. #define INT_PI ((s32)(3.141592653589 * 32768.0))
  28. #define compat_remainder(a, b) \
  29. ((float)(((s32)((a)*100))%((s32)((b)*100)))/100.0)
  30. #define baseband_freq(carrier, srate, tone) ((s32)( \
  31. (compat_remainder(carrier + tone, srate)) / srate * 2 * INT_PI))
  32. /* We calculate the baseband frequencies of the carrier and the pilot tones
  33. * based on the the sampling rate of the audio rds fifo. */
  34. #define FREQ_A2_CARRIER baseband_freq(54687.5, 2689.36, 0.0)
  35. #define FREQ_A2_DUAL baseband_freq(54687.5, 2689.36, 274.1)
  36. #define FREQ_A2_STEREO baseband_freq(54687.5, 2689.36, 117.5)
  37. /* The frequencies below are from the reference driver. They probably need
  38. * further adjustments, because they are not tested at all. You may even need
  39. * to play a bit with the registers of the chip to select the proper signal
  40. * for the input of the audio rds fifo, and measure it's sampling rate to
  41. * calculate the proper baseband frequencies... */
  42. #define FREQ_A2M_CARRIER ((s32)(2.114516 * 32768.0))
  43. #define FREQ_A2M_DUAL ((s32)(2.754916 * 32768.0))
  44. #define FREQ_A2M_STEREO ((s32)(2.462326 * 32768.0))
  45. #define FREQ_EIAJ_CARRIER ((s32)(1.963495 * 32768.0)) /* 5pi/8 */
  46. #define FREQ_EIAJ_DUAL ((s32)(2.562118 * 32768.0))
  47. #define FREQ_EIAJ_STEREO ((s32)(2.601053 * 32768.0))
  48. #define FREQ_BTSC_DUAL ((s32)(1.963495 * 32768.0)) /* 5pi/8 */
  49. #define FREQ_BTSC_DUAL_REF ((s32)(1.374446 * 32768.0)) /* 7pi/16 */
  50. #define FREQ_BTSC_SAP ((s32)(2.471532 * 32768.0))
  51. #define FREQ_BTSC_SAP_REF ((s32)(1.730072 * 32768.0))
  52. /* The spectrum of the signal should be empty between these frequencies. */
  53. #define FREQ_NOISE_START ((s32)(0.100000 * 32768.0))
  54. #define FREQ_NOISE_END ((s32)(1.200000 * 32768.0))
  55. static unsigned int dsp_debug;
  56. module_param(dsp_debug, int, 0644);
  57. MODULE_PARM_DESC(dsp_debug, "enable audio dsp debug messages");
  58. #define dprintk(level, fmt, arg...) if (dsp_debug >= level) \
  59. printk(KERN_DEBUG "%s/0: " fmt, core->name , ## arg)
  60. static s32 int_cos(u32 x)
  61. {
  62. u32 t2, t4, t6, t8;
  63. s32 ret;
  64. u16 period = x / INT_PI;
  65. if (period % 2)
  66. return -int_cos(x - INT_PI);
  67. x = x % INT_PI;
  68. if (x > INT_PI/2)
  69. return -int_cos(INT_PI/2 - (x % (INT_PI/2)));
  70. /* Now x is between 0 and INT_PI/2.
  71. * To calculate cos(x) we use it's Taylor polinom. */
  72. t2 = x*x/32768/2;
  73. t4 = t2*x/32768*x/32768/3/4;
  74. t6 = t4*x/32768*x/32768/5/6;
  75. t8 = t6*x/32768*x/32768/7/8;
  76. ret = 32768-t2+t4-t6+t8;
  77. return ret;
  78. }
  79. static u32 int_goertzel(s16 x[], u32 N, u32 freq)
  80. {
  81. /* We use the Goertzel algorithm to determine the power of the
  82. * given frequency in the signal */
  83. s32 s_prev = 0;
  84. s32 s_prev2 = 0;
  85. s32 coeff = 2*int_cos(freq);
  86. u32 i;
  87. u64 tmp;
  88. u32 divisor;
  89. for (i = 0; i < N; i++) {
  90. s32 s = x[i] + ((s64)coeff*s_prev/32768) - s_prev2;
  91. s_prev2 = s_prev;
  92. s_prev = s;
  93. }
  94. tmp = (s64)s_prev2 * s_prev2 + (s64)s_prev * s_prev -
  95. (s64)coeff * s_prev2 * s_prev / 32768;
  96. /* XXX: N must be low enough so that N*N fits in s32.
  97. * Else we need two divisions. */
  98. divisor = N * N;
  99. do_div(tmp, divisor);
  100. return (u32) tmp;
  101. }
  102. static u32 freq_magnitude(s16 x[], u32 N, u32 freq)
  103. {
  104. u32 sum = int_goertzel(x, N, freq);
  105. return (u32)int_sqrt(sum);
  106. }
  107. static u32 noise_magnitude(s16 x[], u32 N, u32 freq_start, u32 freq_end)
  108. {
  109. int i;
  110. u32 sum = 0;
  111. u32 freq_step;
  112. int samples = 5;
  113. if (N > 192) {
  114. /* The last 192 samples are enough for noise detection */
  115. x += (N-192);
  116. N = 192;
  117. }
  118. freq_step = (freq_end - freq_start) / (samples - 1);
  119. for (i = 0; i < samples; i++) {
  120. sum += int_goertzel(x, N, freq_start);
  121. freq_start += freq_step;
  122. }
  123. return (u32)int_sqrt(sum / samples);
  124. }
  125. static s32 detect_a2_a2m_eiaj(struct cx88_core *core, s16 x[], u32 N)
  126. {
  127. s32 carrier, stereo, dual, noise;
  128. s32 carrier_freq, stereo_freq, dual_freq;
  129. s32 ret;
  130. switch (core->tvaudio) {
  131. case WW_BG:
  132. case WW_DK:
  133. carrier_freq = FREQ_A2_CARRIER;
  134. stereo_freq = FREQ_A2_STEREO;
  135. dual_freq = FREQ_A2_DUAL;
  136. break;
  137. case WW_M:
  138. carrier_freq = FREQ_A2M_CARRIER;
  139. stereo_freq = FREQ_A2M_STEREO;
  140. dual_freq = FREQ_A2M_DUAL;
  141. break;
  142. case WW_EIAJ:
  143. carrier_freq = FREQ_EIAJ_CARRIER;
  144. stereo_freq = FREQ_EIAJ_STEREO;
  145. dual_freq = FREQ_EIAJ_DUAL;
  146. break;
  147. default:
  148. printk(KERN_WARNING "%s/0: unsupported audio mode %d for %s\n",
  149. core->name, core->tvaudio, __func__);
  150. return UNSET;
  151. }
  152. carrier = freq_magnitude(x, N, carrier_freq);
  153. stereo = freq_magnitude(x, N, stereo_freq);
  154. dual = freq_magnitude(x, N, dual_freq);
  155. noise = noise_magnitude(x, N, FREQ_NOISE_START, FREQ_NOISE_END);
  156. dprintk(1, "detect a2/a2m/eiaj: carrier=%d, stereo=%d, dual=%d, "
  157. "noise=%d\n", carrier, stereo, dual, noise);
  158. if (stereo > dual)
  159. ret = V4L2_TUNER_SUB_STEREO;
  160. else
  161. ret = V4L2_TUNER_SUB_LANG1 | V4L2_TUNER_SUB_LANG2;
  162. if (core->tvaudio == WW_EIAJ) {
  163. /* EIAJ checks may need adjustments */
  164. if ((carrier > max(stereo, dual)*2) &&
  165. (carrier < max(stereo, dual)*6) &&
  166. (carrier > 20 && carrier < 200) &&
  167. (max(stereo, dual) > min(stereo, dual))) {
  168. /* For EIAJ the carrier is always present,
  169. so we probably don't need noise detection */
  170. return ret;
  171. }
  172. } else {
  173. if ((carrier > max(stereo, dual)*2) &&
  174. (carrier < max(stereo, dual)*8) &&
  175. (carrier > 20 && carrier < 200) &&
  176. (noise < 10) &&
  177. (max(stereo, dual) > min(stereo, dual)*2)) {
  178. return ret;
  179. }
  180. }
  181. return V4L2_TUNER_SUB_MONO;
  182. }
  183. static s32 detect_btsc(struct cx88_core *core, s16 x[], u32 N)
  184. {
  185. s32 sap_ref = freq_magnitude(x, N, FREQ_BTSC_SAP_REF);
  186. s32 sap = freq_magnitude(x, N, FREQ_BTSC_SAP);
  187. s32 dual_ref = freq_magnitude(x, N, FREQ_BTSC_DUAL_REF);
  188. s32 dual = freq_magnitude(x, N, FREQ_BTSC_DUAL);
  189. dprintk(1, "detect btsc: dual_ref=%d, dual=%d, sap_ref=%d, sap=%d"
  190. "\n", dual_ref, dual, sap_ref, sap);
  191. /* FIXME: Currently not supported */
  192. return UNSET;
  193. }
  194. static s16 *read_rds_samples(struct cx88_core *core, u32 *N)
  195. {
  196. struct sram_channel *srch = &cx88_sram_channels[SRAM_CH27];
  197. s16 *samples;
  198. unsigned int i;
  199. unsigned int bpl = srch->fifo_size/AUD_RDS_LINES;
  200. unsigned int spl = bpl/4;
  201. unsigned int sample_count = spl*(AUD_RDS_LINES-1);
  202. u32 current_address = cx_read(srch->ptr1_reg);
  203. u32 offset = (current_address - srch->fifo_start + bpl);
  204. dprintk(1, "read RDS samples: current_address=%08x (offset=%08x), "
  205. "sample_count=%d, aud_intstat=%08x\n", current_address,
  206. current_address - srch->fifo_start, sample_count,
  207. cx_read(MO_AUD_INTSTAT));
  208. samples = kmalloc(sizeof(s16)*sample_count, GFP_KERNEL);
  209. if (!samples)
  210. return NULL;
  211. *N = sample_count;
  212. for (i = 0; i < sample_count; i++) {
  213. offset = offset % (AUD_RDS_LINES*bpl);
  214. samples[i] = cx_read(srch->fifo_start + offset);
  215. offset += 4;
  216. }
  217. if (dsp_debug >= 2) {
  218. dprintk(2, "RDS samples dump: ");
  219. for (i = 0; i < sample_count; i++)
  220. printk("%hd ", samples[i]);
  221. printk(".\n");
  222. }
  223. return samples;
  224. }
  225. s32 cx88_dsp_detect_stereo_sap(struct cx88_core *core)
  226. {
  227. s16 *samples;
  228. u32 N = 0;
  229. s32 ret = UNSET;
  230. /* If audio RDS fifo is disabled, we can't read the samples */
  231. if (!(cx_read(MO_AUD_DMACNTRL) & 0x04))
  232. return ret;
  233. if (!(cx_read(AUD_CTL) & EN_FMRADIO_EN_RDS))
  234. return ret;
  235. /* Wait at least 500 ms after an audio standard change */
  236. if (time_before(jiffies, core->last_change + msecs_to_jiffies(500)))
  237. return ret;
  238. samples = read_rds_samples(core, &N);
  239. if (!samples)
  240. return ret;
  241. switch (core->tvaudio) {
  242. case WW_BG:
  243. case WW_DK:
  244. ret = detect_a2_a2m_eiaj(core, samples, N);
  245. break;
  246. case WW_BTSC:
  247. ret = detect_btsc(core, samples, N);
  248. break;
  249. }
  250. kfree(samples);
  251. if (UNSET != ret)
  252. dprintk(1, "stereo/sap detection result:%s%s%s\n",
  253. (ret & V4L2_TUNER_SUB_MONO) ? " mono" : "",
  254. (ret & V4L2_TUNER_SUB_STEREO) ? " stereo" : "",
  255. (ret & V4L2_TUNER_SUB_LANG2) ? " dual" : "");
  256. return ret;
  257. }
  258. EXPORT_SYMBOL(cx88_dsp_detect_stereo_sap);