cx88-tvaudio.c 27 KB

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  1. /*
  2. cx88x-audio.c - Conexant CX23880/23881 audio downstream driver driver
  3. (c) 2001 Michael Eskin, Tom Zakrajsek [Windows version]
  4. (c) 2002 Yurij Sysoev <yurij@naturesoft.net>
  5. (c) 2003 Gerd Knorr <kraxel@bytesex.org>
  6. -----------------------------------------------------------------------
  7. Lot of voodoo here. Even the data sheet doesn't help to
  8. understand what is going on here, the documentation for the audio
  9. part of the cx2388x chip is *very* bad.
  10. Some of this comes from party done linux driver sources I got from
  11. [undocumented].
  12. Some comes from the dscaler sources, one of the dscaler driver guy works
  13. for Conexant ...
  14. -----------------------------------------------------------------------
  15. This program is free software; you can redistribute it and/or modify
  16. it under the terms of the GNU General Public License as published by
  17. the Free Software Foundation; either version 2 of the License, or
  18. (at your option) any later version.
  19. This program is distributed in the hope that it will be useful,
  20. but WITHOUT ANY WARRANTY; without even the implied warranty of
  21. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  22. GNU General Public License for more details.
  23. You should have received a copy of the GNU General Public License
  24. along with this program; if not, write to the Free Software
  25. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  26. */
  27. #include <linux/module.h>
  28. #include <linux/errno.h>
  29. #include <linux/freezer.h>
  30. #include <linux/kernel.h>
  31. #include <linux/slab.h>
  32. #include <linux/mm.h>
  33. #include <linux/poll.h>
  34. #include <linux/signal.h>
  35. #include <linux/ioport.h>
  36. #include <linux/types.h>
  37. #include <linux/interrupt.h>
  38. #include <linux/vmalloc.h>
  39. #include <linux/init.h>
  40. #include <linux/delay.h>
  41. #include <linux/kthread.h>
  42. #include "cx88.h"
  43. static unsigned int audio_debug;
  44. module_param(audio_debug, int, 0644);
  45. MODULE_PARM_DESC(audio_debug, "enable debug messages [audio]");
  46. static unsigned int always_analog;
  47. module_param(always_analog,int,0644);
  48. MODULE_PARM_DESC(always_analog,"force analog audio out");
  49. static unsigned int radio_deemphasis;
  50. module_param(radio_deemphasis,int,0644);
  51. MODULE_PARM_DESC(radio_deemphasis, "Radio deemphasis time constant, "
  52. "0=None, 1=50us (elsewhere), 2=75us (USA)");
  53. #define dprintk(fmt, arg...) if (audio_debug) \
  54. printk(KERN_DEBUG "%s/0: " fmt, core->name , ## arg)
  55. /* ----------------------------------------------------------- */
  56. static char *aud_ctl_names[64] = {
  57. [EN_BTSC_FORCE_MONO] = "BTSC_FORCE_MONO",
  58. [EN_BTSC_FORCE_STEREO] = "BTSC_FORCE_STEREO",
  59. [EN_BTSC_FORCE_SAP] = "BTSC_FORCE_SAP",
  60. [EN_BTSC_AUTO_STEREO] = "BTSC_AUTO_STEREO",
  61. [EN_BTSC_AUTO_SAP] = "BTSC_AUTO_SAP",
  62. [EN_A2_FORCE_MONO1] = "A2_FORCE_MONO1",
  63. [EN_A2_FORCE_MONO2] = "A2_FORCE_MONO2",
  64. [EN_A2_FORCE_STEREO] = "A2_FORCE_STEREO",
  65. [EN_A2_AUTO_MONO2] = "A2_AUTO_MONO2",
  66. [EN_A2_AUTO_STEREO] = "A2_AUTO_STEREO",
  67. [EN_EIAJ_FORCE_MONO1] = "EIAJ_FORCE_MONO1",
  68. [EN_EIAJ_FORCE_MONO2] = "EIAJ_FORCE_MONO2",
  69. [EN_EIAJ_FORCE_STEREO] = "EIAJ_FORCE_STEREO",
  70. [EN_EIAJ_AUTO_MONO2] = "EIAJ_AUTO_MONO2",
  71. [EN_EIAJ_AUTO_STEREO] = "EIAJ_AUTO_STEREO",
  72. [EN_NICAM_FORCE_MONO1] = "NICAM_FORCE_MONO1",
  73. [EN_NICAM_FORCE_MONO2] = "NICAM_FORCE_MONO2",
  74. [EN_NICAM_FORCE_STEREO] = "NICAM_FORCE_STEREO",
  75. [EN_NICAM_AUTO_MONO2] = "NICAM_AUTO_MONO2",
  76. [EN_NICAM_AUTO_STEREO] = "NICAM_AUTO_STEREO",
  77. [EN_FMRADIO_FORCE_MONO] = "FMRADIO_FORCE_MONO",
  78. [EN_FMRADIO_FORCE_STEREO] = "FMRADIO_FORCE_STEREO",
  79. [EN_FMRADIO_AUTO_STEREO] = "FMRADIO_AUTO_STEREO",
  80. };
  81. struct rlist {
  82. u32 reg;
  83. u32 val;
  84. };
  85. static void set_audio_registers(struct cx88_core *core, const struct rlist *l)
  86. {
  87. int i;
  88. for (i = 0; l[i].reg; i++) {
  89. switch (l[i].reg) {
  90. case AUD_PDF_DDS_CNST_BYTE2:
  91. case AUD_PDF_DDS_CNST_BYTE1:
  92. case AUD_PDF_DDS_CNST_BYTE0:
  93. case AUD_QAM_MODE:
  94. case AUD_PHACC_FREQ_8MSB:
  95. case AUD_PHACC_FREQ_8LSB:
  96. cx_writeb(l[i].reg, l[i].val);
  97. break;
  98. default:
  99. cx_write(l[i].reg, l[i].val);
  100. break;
  101. }
  102. }
  103. }
  104. static void set_audio_start(struct cx88_core *core, u32 mode)
  105. {
  106. /* mute */
  107. cx_write(AUD_VOL_CTL, (1 << 6));
  108. /* start programming */
  109. cx_write(AUD_INIT, mode);
  110. cx_write(AUD_INIT_LD, 0x0001);
  111. cx_write(AUD_SOFT_RESET, 0x0001);
  112. }
  113. static void set_audio_finish(struct cx88_core *core, u32 ctl)
  114. {
  115. u32 volume;
  116. /* restart dma; This avoids buzz in NICAM and is good in others */
  117. cx88_stop_audio_dma(core);
  118. cx_write(AUD_RATE_THRES_DMD, 0x000000C0);
  119. cx88_start_audio_dma(core);
  120. if (core->board.mpeg & CX88_MPEG_BLACKBIRD) {
  121. cx_write(AUD_I2SINPUTCNTL, 4);
  122. cx_write(AUD_BAUDRATE, 1);
  123. /* 'pass-thru mode': this enables the i2s output to the mpeg encoder */
  124. cx_set(AUD_CTL, EN_I2SOUT_ENABLE);
  125. cx_write(AUD_I2SOUTPUTCNTL, 1);
  126. cx_write(AUD_I2SCNTL, 0);
  127. /* cx_write(AUD_APB_IN_RATE_ADJ, 0); */
  128. }
  129. if ((always_analog) || (!(core->board.mpeg & CX88_MPEG_BLACKBIRD))) {
  130. ctl |= EN_DAC_ENABLE;
  131. cx_write(AUD_CTL, ctl);
  132. }
  133. /* finish programming */
  134. cx_write(AUD_SOFT_RESET, 0x0000);
  135. /* unmute */
  136. volume = cx_sread(SHADOW_AUD_VOL_CTL);
  137. cx_swrite(SHADOW_AUD_VOL_CTL, AUD_VOL_CTL, volume);
  138. }
  139. /* ----------------------------------------------------------- */
  140. static void set_audio_standard_BTSC(struct cx88_core *core, unsigned int sap,
  141. u32 mode)
  142. {
  143. static const struct rlist btsc[] = {
  144. {AUD_AFE_12DB_EN, 0x00000001},
  145. {AUD_OUT1_SEL, 0x00000013},
  146. {AUD_OUT1_SHIFT, 0x00000000},
  147. {AUD_POLY0_DDS_CONSTANT, 0x0012010c},
  148. {AUD_DMD_RA_DDS, 0x00c3e7aa},
  149. {AUD_DBX_IN_GAIN, 0x00004734},
  150. {AUD_DBX_WBE_GAIN, 0x00004640},
  151. {AUD_DBX_SE_GAIN, 0x00008d31},
  152. {AUD_DCOC_0_SRC, 0x0000001a},
  153. {AUD_IIR1_4_SEL, 0x00000021},
  154. {AUD_DCOC_PASS_IN, 0x00000003},
  155. {AUD_DCOC_0_SHIFT_IN0, 0x0000000a},
  156. {AUD_DCOC_0_SHIFT_IN1, 0x00000008},
  157. {AUD_DCOC_1_SHIFT_IN0, 0x0000000a},
  158. {AUD_DCOC_1_SHIFT_IN1, 0x00000008},
  159. {AUD_DN0_FREQ, 0x0000283b},
  160. {AUD_DN2_SRC_SEL, 0x00000008},
  161. {AUD_DN2_FREQ, 0x00003000},
  162. {AUD_DN2_AFC, 0x00000002},
  163. {AUD_DN2_SHFT, 0x00000000},
  164. {AUD_IIR2_2_SEL, 0x00000020},
  165. {AUD_IIR2_2_SHIFT, 0x00000000},
  166. {AUD_IIR2_3_SEL, 0x0000001f},
  167. {AUD_IIR2_3_SHIFT, 0x00000000},
  168. {AUD_CRDC1_SRC_SEL, 0x000003ce},
  169. {AUD_CRDC1_SHIFT, 0x00000000},
  170. {AUD_CORDIC_SHIFT_1, 0x00000007},
  171. {AUD_DCOC_1_SRC, 0x0000001b},
  172. {AUD_DCOC1_SHIFT, 0x00000000},
  173. {AUD_RDSI_SEL, 0x00000008},
  174. {AUD_RDSQ_SEL, 0x00000008},
  175. {AUD_RDSI_SHIFT, 0x00000000},
  176. {AUD_RDSQ_SHIFT, 0x00000000},
  177. {AUD_POLYPH80SCALEFAC, 0x00000003},
  178. { /* end of list */ },
  179. };
  180. static const struct rlist btsc_sap[] = {
  181. {AUD_AFE_12DB_EN, 0x00000001},
  182. {AUD_DBX_IN_GAIN, 0x00007200},
  183. {AUD_DBX_WBE_GAIN, 0x00006200},
  184. {AUD_DBX_SE_GAIN, 0x00006200},
  185. {AUD_IIR1_1_SEL, 0x00000000},
  186. {AUD_IIR1_3_SEL, 0x00000001},
  187. {AUD_DN1_SRC_SEL, 0x00000007},
  188. {AUD_IIR1_4_SHIFT, 0x00000006},
  189. {AUD_IIR2_1_SHIFT, 0x00000000},
  190. {AUD_IIR2_2_SHIFT, 0x00000000},
  191. {AUD_IIR3_0_SHIFT, 0x00000000},
  192. {AUD_IIR3_1_SHIFT, 0x00000000},
  193. {AUD_IIR3_0_SEL, 0x0000000d},
  194. {AUD_IIR3_1_SEL, 0x0000000e},
  195. {AUD_DEEMPH1_SRC_SEL, 0x00000014},
  196. {AUD_DEEMPH1_SHIFT, 0x00000000},
  197. {AUD_DEEMPH1_G0, 0x00004000},
  198. {AUD_DEEMPH1_A0, 0x00000000},
  199. {AUD_DEEMPH1_B0, 0x00000000},
  200. {AUD_DEEMPH1_A1, 0x00000000},
  201. {AUD_DEEMPH1_B1, 0x00000000},
  202. {AUD_OUT0_SEL, 0x0000003f},
  203. {AUD_OUT1_SEL, 0x0000003f},
  204. {AUD_DN1_AFC, 0x00000002},
  205. {AUD_DCOC_0_SHIFT_IN0, 0x0000000a},
  206. {AUD_DCOC_0_SHIFT_IN1, 0x00000008},
  207. {AUD_DCOC_1_SHIFT_IN0, 0x0000000a},
  208. {AUD_DCOC_1_SHIFT_IN1, 0x00000008},
  209. {AUD_IIR1_0_SEL, 0x0000001d},
  210. {AUD_IIR1_2_SEL, 0x0000001e},
  211. {AUD_IIR2_1_SEL, 0x00000002},
  212. {AUD_IIR2_2_SEL, 0x00000004},
  213. {AUD_IIR3_2_SEL, 0x0000000f},
  214. {AUD_DCOC2_SHIFT, 0x00000001},
  215. {AUD_IIR3_2_SHIFT, 0x00000001},
  216. {AUD_DEEMPH0_SRC_SEL, 0x00000014},
  217. {AUD_CORDIC_SHIFT_1, 0x00000006},
  218. {AUD_POLY0_DDS_CONSTANT, 0x000e4db2},
  219. {AUD_DMD_RA_DDS, 0x00f696e6},
  220. {AUD_IIR2_3_SEL, 0x00000025},
  221. {AUD_IIR1_4_SEL, 0x00000021},
  222. {AUD_DN1_FREQ, 0x0000c965},
  223. {AUD_DCOC_PASS_IN, 0x00000003},
  224. {AUD_DCOC_0_SRC, 0x0000001a},
  225. {AUD_DCOC_1_SRC, 0x0000001b},
  226. {AUD_DCOC1_SHIFT, 0x00000000},
  227. {AUD_RDSI_SEL, 0x00000009},
  228. {AUD_RDSQ_SEL, 0x00000009},
  229. {AUD_RDSI_SHIFT, 0x00000000},
  230. {AUD_RDSQ_SHIFT, 0x00000000},
  231. {AUD_POLYPH80SCALEFAC, 0x00000003},
  232. { /* end of list */ },
  233. };
  234. mode |= EN_FMRADIO_EN_RDS;
  235. if (sap) {
  236. dprintk("%s SAP (status: unknown)\n", __func__);
  237. set_audio_start(core, SEL_SAP);
  238. set_audio_registers(core, btsc_sap);
  239. set_audio_finish(core, mode);
  240. } else {
  241. dprintk("%s (status: known-good)\n", __func__);
  242. set_audio_start(core, SEL_BTSC);
  243. set_audio_registers(core, btsc);
  244. set_audio_finish(core, mode);
  245. }
  246. }
  247. static void set_audio_standard_NICAM(struct cx88_core *core, u32 mode)
  248. {
  249. static const struct rlist nicam_l[] = {
  250. {AUD_AFE_12DB_EN, 0x00000001},
  251. {AUD_RATE_ADJ1, 0x00000060},
  252. {AUD_RATE_ADJ2, 0x000000F9},
  253. {AUD_RATE_ADJ3, 0x000001CC},
  254. {AUD_RATE_ADJ4, 0x000002B3},
  255. {AUD_RATE_ADJ5, 0x00000726},
  256. {AUD_DEEMPHDENOM1_R, 0x0000F3D0},
  257. {AUD_DEEMPHDENOM2_R, 0x00000000},
  258. {AUD_ERRLOGPERIOD_R, 0x00000064},
  259. {AUD_ERRINTRPTTHSHLD1_R, 0x00000FFF},
  260. {AUD_ERRINTRPTTHSHLD2_R, 0x0000001F},
  261. {AUD_ERRINTRPTTHSHLD3_R, 0x0000000F},
  262. {AUD_POLYPH80SCALEFAC, 0x00000003},
  263. {AUD_DMD_RA_DDS, 0x00C00000},
  264. {AUD_PLL_INT, 0x0000001E},
  265. {AUD_PLL_DDS, 0x00000000},
  266. {AUD_PLL_FRAC, 0x0000E542},
  267. {AUD_START_TIMER, 0x00000000},
  268. {AUD_DEEMPHNUMER1_R, 0x000353DE},
  269. {AUD_DEEMPHNUMER2_R, 0x000001B1},
  270. {AUD_PDF_DDS_CNST_BYTE2, 0x06},
  271. {AUD_PDF_DDS_CNST_BYTE1, 0x82},
  272. {AUD_PDF_DDS_CNST_BYTE0, 0x12},
  273. {AUD_QAM_MODE, 0x05},
  274. {AUD_PHACC_FREQ_8MSB, 0x34},
  275. {AUD_PHACC_FREQ_8LSB, 0x4C},
  276. {AUD_DEEMPHGAIN_R, 0x00006680},
  277. {AUD_RATE_THRES_DMD, 0x000000C0},
  278. { /* end of list */ },
  279. };
  280. static const struct rlist nicam_bgdki_common[] = {
  281. {AUD_AFE_12DB_EN, 0x00000001},
  282. {AUD_RATE_ADJ1, 0x00000010},
  283. {AUD_RATE_ADJ2, 0x00000040},
  284. {AUD_RATE_ADJ3, 0x00000100},
  285. {AUD_RATE_ADJ4, 0x00000400},
  286. {AUD_RATE_ADJ5, 0x00001000},
  287. {AUD_ERRLOGPERIOD_R, 0x00000fff},
  288. {AUD_ERRINTRPTTHSHLD1_R, 0x000003ff},
  289. {AUD_ERRINTRPTTHSHLD2_R, 0x000000ff},
  290. {AUD_ERRINTRPTTHSHLD3_R, 0x0000003f},
  291. {AUD_POLYPH80SCALEFAC, 0x00000003},
  292. {AUD_DEEMPHGAIN_R, 0x000023c2},
  293. {AUD_DEEMPHNUMER1_R, 0x0002a7bc},
  294. {AUD_DEEMPHNUMER2_R, 0x0003023e},
  295. {AUD_DEEMPHDENOM1_R, 0x0000f3d0},
  296. {AUD_DEEMPHDENOM2_R, 0x00000000},
  297. {AUD_PDF_DDS_CNST_BYTE2, 0x06},
  298. {AUD_PDF_DDS_CNST_BYTE1, 0x82},
  299. {AUD_QAM_MODE, 0x05},
  300. { /* end of list */ },
  301. };
  302. static const struct rlist nicam_i[] = {
  303. {AUD_PDF_DDS_CNST_BYTE0, 0x12},
  304. {AUD_PHACC_FREQ_8MSB, 0x3a},
  305. {AUD_PHACC_FREQ_8LSB, 0x93},
  306. { /* end of list */ },
  307. };
  308. static const struct rlist nicam_default[] = {
  309. {AUD_PDF_DDS_CNST_BYTE0, 0x16},
  310. {AUD_PHACC_FREQ_8MSB, 0x34},
  311. {AUD_PHACC_FREQ_8LSB, 0x4c},
  312. { /* end of list */ },
  313. };
  314. set_audio_start(core,SEL_NICAM);
  315. switch (core->tvaudio) {
  316. case WW_L:
  317. dprintk("%s SECAM-L NICAM (status: devel)\n", __func__);
  318. set_audio_registers(core, nicam_l);
  319. break;
  320. case WW_I:
  321. dprintk("%s PAL-I NICAM (status: known-good)\n", __func__);
  322. set_audio_registers(core, nicam_bgdki_common);
  323. set_audio_registers(core, nicam_i);
  324. break;
  325. default:
  326. dprintk("%s PAL-BGDK NICAM (status: known-good)\n", __func__);
  327. set_audio_registers(core, nicam_bgdki_common);
  328. set_audio_registers(core, nicam_default);
  329. break;
  330. };
  331. mode |= EN_DMTRX_LR | EN_DMTRX_BYPASS;
  332. set_audio_finish(core, mode);
  333. }
  334. static void set_audio_standard_A2(struct cx88_core *core, u32 mode)
  335. {
  336. static const struct rlist a2_bgdk_common[] = {
  337. {AUD_ERRLOGPERIOD_R, 0x00000064},
  338. {AUD_ERRINTRPTTHSHLD1_R, 0x00000fff},
  339. {AUD_ERRINTRPTTHSHLD2_R, 0x0000001f},
  340. {AUD_ERRINTRPTTHSHLD3_R, 0x0000000f},
  341. {AUD_PDF_DDS_CNST_BYTE2, 0x06},
  342. {AUD_PDF_DDS_CNST_BYTE1, 0x82},
  343. {AUD_PDF_DDS_CNST_BYTE0, 0x12},
  344. {AUD_QAM_MODE, 0x05},
  345. {AUD_PHACC_FREQ_8MSB, 0x34},
  346. {AUD_PHACC_FREQ_8LSB, 0x4c},
  347. {AUD_RATE_ADJ1, 0x00000100},
  348. {AUD_RATE_ADJ2, 0x00000200},
  349. {AUD_RATE_ADJ3, 0x00000300},
  350. {AUD_RATE_ADJ4, 0x00000400},
  351. {AUD_RATE_ADJ5, 0x00000500},
  352. {AUD_THR_FR, 0x00000000},
  353. {AAGC_HYST, 0x0000001a},
  354. {AUD_PILOT_BQD_1_K0, 0x0000755b},
  355. {AUD_PILOT_BQD_1_K1, 0x00551340},
  356. {AUD_PILOT_BQD_1_K2, 0x006d30be},
  357. {AUD_PILOT_BQD_1_K3, 0xffd394af},
  358. {AUD_PILOT_BQD_1_K4, 0x00400000},
  359. {AUD_PILOT_BQD_2_K0, 0x00040000},
  360. {AUD_PILOT_BQD_2_K1, 0x002a4841},
  361. {AUD_PILOT_BQD_2_K2, 0x00400000},
  362. {AUD_PILOT_BQD_2_K3, 0x00000000},
  363. {AUD_PILOT_BQD_2_K4, 0x00000000},
  364. {AUD_MODE_CHG_TIMER, 0x00000040},
  365. {AUD_AFE_12DB_EN, 0x00000001},
  366. {AUD_CORDIC_SHIFT_0, 0x00000007},
  367. {AUD_CORDIC_SHIFT_1, 0x00000007},
  368. {AUD_DEEMPH0_G0, 0x00000380},
  369. {AUD_DEEMPH1_G0, 0x00000380},
  370. {AUD_DCOC_0_SRC, 0x0000001a},
  371. {AUD_DCOC0_SHIFT, 0x00000000},
  372. {AUD_DCOC_0_SHIFT_IN0, 0x0000000a},
  373. {AUD_DCOC_0_SHIFT_IN1, 0x00000008},
  374. {AUD_DCOC_PASS_IN, 0x00000003},
  375. {AUD_IIR3_0_SEL, 0x00000021},
  376. {AUD_DN2_AFC, 0x00000002},
  377. {AUD_DCOC_1_SRC, 0x0000001b},
  378. {AUD_DCOC1_SHIFT, 0x00000000},
  379. {AUD_DCOC_1_SHIFT_IN0, 0x0000000a},
  380. {AUD_DCOC_1_SHIFT_IN1, 0x00000008},
  381. {AUD_IIR3_1_SEL, 0x00000023},
  382. {AUD_RDSI_SEL, 0x00000017},
  383. {AUD_RDSI_SHIFT, 0x00000000},
  384. {AUD_RDSQ_SEL, 0x00000017},
  385. {AUD_RDSQ_SHIFT, 0x00000000},
  386. {AUD_PLL_INT, 0x0000001e},
  387. {AUD_PLL_DDS, 0x00000000},
  388. {AUD_PLL_FRAC, 0x0000e542},
  389. {AUD_POLYPH80SCALEFAC, 0x00000001},
  390. {AUD_START_TIMER, 0x00000000},
  391. { /* end of list */ },
  392. };
  393. static const struct rlist a2_bg[] = {
  394. {AUD_DMD_RA_DDS, 0x002a4f2f},
  395. {AUD_C1_UP_THR, 0x00007000},
  396. {AUD_C1_LO_THR, 0x00005400},
  397. {AUD_C2_UP_THR, 0x00005400},
  398. {AUD_C2_LO_THR, 0x00003000},
  399. { /* end of list */ },
  400. };
  401. static const struct rlist a2_dk[] = {
  402. {AUD_DMD_RA_DDS, 0x002a4f2f},
  403. {AUD_C1_UP_THR, 0x00007000},
  404. {AUD_C1_LO_THR, 0x00005400},
  405. {AUD_C2_UP_THR, 0x00005400},
  406. {AUD_C2_LO_THR, 0x00003000},
  407. {AUD_DN0_FREQ, 0x00003a1c},
  408. {AUD_DN2_FREQ, 0x0000d2e0},
  409. { /* end of list */ },
  410. };
  411. static const struct rlist a1_i[] = {
  412. {AUD_ERRLOGPERIOD_R, 0x00000064},
  413. {AUD_ERRINTRPTTHSHLD1_R, 0x00000fff},
  414. {AUD_ERRINTRPTTHSHLD2_R, 0x0000001f},
  415. {AUD_ERRINTRPTTHSHLD3_R, 0x0000000f},
  416. {AUD_PDF_DDS_CNST_BYTE2, 0x06},
  417. {AUD_PDF_DDS_CNST_BYTE1, 0x82},
  418. {AUD_PDF_DDS_CNST_BYTE0, 0x12},
  419. {AUD_QAM_MODE, 0x05},
  420. {AUD_PHACC_FREQ_8MSB, 0x3a},
  421. {AUD_PHACC_FREQ_8LSB, 0x93},
  422. {AUD_DMD_RA_DDS, 0x002a4f2f},
  423. {AUD_PLL_INT, 0x0000001e},
  424. {AUD_PLL_DDS, 0x00000004},
  425. {AUD_PLL_FRAC, 0x0000e542},
  426. {AUD_RATE_ADJ1, 0x00000100},
  427. {AUD_RATE_ADJ2, 0x00000200},
  428. {AUD_RATE_ADJ3, 0x00000300},
  429. {AUD_RATE_ADJ4, 0x00000400},
  430. {AUD_RATE_ADJ5, 0x00000500},
  431. {AUD_THR_FR, 0x00000000},
  432. {AUD_PILOT_BQD_1_K0, 0x0000755b},
  433. {AUD_PILOT_BQD_1_K1, 0x00551340},
  434. {AUD_PILOT_BQD_1_K2, 0x006d30be},
  435. {AUD_PILOT_BQD_1_K3, 0xffd394af},
  436. {AUD_PILOT_BQD_1_K4, 0x00400000},
  437. {AUD_PILOT_BQD_2_K0, 0x00040000},
  438. {AUD_PILOT_BQD_2_K1, 0x002a4841},
  439. {AUD_PILOT_BQD_2_K2, 0x00400000},
  440. {AUD_PILOT_BQD_2_K3, 0x00000000},
  441. {AUD_PILOT_BQD_2_K4, 0x00000000},
  442. {AUD_MODE_CHG_TIMER, 0x00000060},
  443. {AUD_AFE_12DB_EN, 0x00000001},
  444. {AAGC_HYST, 0x0000000a},
  445. {AUD_CORDIC_SHIFT_0, 0x00000007},
  446. {AUD_CORDIC_SHIFT_1, 0x00000007},
  447. {AUD_C1_UP_THR, 0x00007000},
  448. {AUD_C1_LO_THR, 0x00005400},
  449. {AUD_C2_UP_THR, 0x00005400},
  450. {AUD_C2_LO_THR, 0x00003000},
  451. {AUD_DCOC_0_SRC, 0x0000001a},
  452. {AUD_DCOC0_SHIFT, 0x00000000},
  453. {AUD_DCOC_0_SHIFT_IN0, 0x0000000a},
  454. {AUD_DCOC_0_SHIFT_IN1, 0x00000008},
  455. {AUD_DCOC_PASS_IN, 0x00000003},
  456. {AUD_IIR3_0_SEL, 0x00000021},
  457. {AUD_DN2_AFC, 0x00000002},
  458. {AUD_DCOC_1_SRC, 0x0000001b},
  459. {AUD_DCOC1_SHIFT, 0x00000000},
  460. {AUD_DCOC_1_SHIFT_IN0, 0x0000000a},
  461. {AUD_DCOC_1_SHIFT_IN1, 0x00000008},
  462. {AUD_IIR3_1_SEL, 0x00000023},
  463. {AUD_DN0_FREQ, 0x000035a3},
  464. {AUD_DN2_FREQ, 0x000029c7},
  465. {AUD_CRDC0_SRC_SEL, 0x00000511},
  466. {AUD_IIR1_0_SEL, 0x00000001},
  467. {AUD_IIR1_1_SEL, 0x00000000},
  468. {AUD_IIR3_2_SEL, 0x00000003},
  469. {AUD_IIR3_2_SHIFT, 0x00000000},
  470. {AUD_IIR3_0_SEL, 0x00000002},
  471. {AUD_IIR2_0_SEL, 0x00000021},
  472. {AUD_IIR2_0_SHIFT, 0x00000002},
  473. {AUD_DEEMPH0_SRC_SEL, 0x0000000b},
  474. {AUD_DEEMPH1_SRC_SEL, 0x0000000b},
  475. {AUD_POLYPH80SCALEFAC, 0x00000001},
  476. {AUD_START_TIMER, 0x00000000},
  477. { /* end of list */ },
  478. };
  479. static const struct rlist am_l[] = {
  480. {AUD_ERRLOGPERIOD_R, 0x00000064},
  481. {AUD_ERRINTRPTTHSHLD1_R, 0x00000FFF},
  482. {AUD_ERRINTRPTTHSHLD2_R, 0x0000001F},
  483. {AUD_ERRINTRPTTHSHLD3_R, 0x0000000F},
  484. {AUD_PDF_DDS_CNST_BYTE2, 0x48},
  485. {AUD_PDF_DDS_CNST_BYTE1, 0x3D},
  486. {AUD_QAM_MODE, 0x00},
  487. {AUD_PDF_DDS_CNST_BYTE0, 0xf5},
  488. {AUD_PHACC_FREQ_8MSB, 0x3a},
  489. {AUD_PHACC_FREQ_8LSB, 0x4a},
  490. {AUD_DEEMPHGAIN_R, 0x00006680},
  491. {AUD_DEEMPHNUMER1_R, 0x000353DE},
  492. {AUD_DEEMPHNUMER2_R, 0x000001B1},
  493. {AUD_DEEMPHDENOM1_R, 0x0000F3D0},
  494. {AUD_DEEMPHDENOM2_R, 0x00000000},
  495. {AUD_FM_MODE_ENABLE, 0x00000007},
  496. {AUD_POLYPH80SCALEFAC, 0x00000003},
  497. {AUD_AFE_12DB_EN, 0x00000001},
  498. {AAGC_GAIN, 0x00000000},
  499. {AAGC_HYST, 0x00000018},
  500. {AAGC_DEF, 0x00000020},
  501. {AUD_DN0_FREQ, 0x00000000},
  502. {AUD_POLY0_DDS_CONSTANT, 0x000E4DB2},
  503. {AUD_DCOC_0_SRC, 0x00000021},
  504. {AUD_IIR1_0_SEL, 0x00000000},
  505. {AUD_IIR1_0_SHIFT, 0x00000007},
  506. {AUD_IIR1_1_SEL, 0x00000002},
  507. {AUD_IIR1_1_SHIFT, 0x00000000},
  508. {AUD_DCOC_1_SRC, 0x00000003},
  509. {AUD_DCOC1_SHIFT, 0x00000000},
  510. {AUD_DCOC_PASS_IN, 0x00000000},
  511. {AUD_IIR1_2_SEL, 0x00000023},
  512. {AUD_IIR1_2_SHIFT, 0x00000000},
  513. {AUD_IIR1_3_SEL, 0x00000004},
  514. {AUD_IIR1_3_SHIFT, 0x00000007},
  515. {AUD_IIR1_4_SEL, 0x00000005},
  516. {AUD_IIR1_4_SHIFT, 0x00000007},
  517. {AUD_IIR3_0_SEL, 0x00000007},
  518. {AUD_IIR3_0_SHIFT, 0x00000000},
  519. {AUD_DEEMPH0_SRC_SEL, 0x00000011},
  520. {AUD_DEEMPH0_SHIFT, 0x00000000},
  521. {AUD_DEEMPH0_G0, 0x00007000},
  522. {AUD_DEEMPH0_A0, 0x00000000},
  523. {AUD_DEEMPH0_B0, 0x00000000},
  524. {AUD_DEEMPH0_A1, 0x00000000},
  525. {AUD_DEEMPH0_B1, 0x00000000},
  526. {AUD_DEEMPH1_SRC_SEL, 0x00000011},
  527. {AUD_DEEMPH1_SHIFT, 0x00000000},
  528. {AUD_DEEMPH1_G0, 0x00007000},
  529. {AUD_DEEMPH1_A0, 0x00000000},
  530. {AUD_DEEMPH1_B0, 0x00000000},
  531. {AUD_DEEMPH1_A1, 0x00000000},
  532. {AUD_DEEMPH1_B1, 0x00000000},
  533. {AUD_OUT0_SEL, 0x0000003F},
  534. {AUD_OUT1_SEL, 0x0000003F},
  535. {AUD_DMD_RA_DDS, 0x00F5C285},
  536. {AUD_PLL_INT, 0x0000001E},
  537. {AUD_PLL_DDS, 0x00000000},
  538. {AUD_PLL_FRAC, 0x0000E542},
  539. {AUD_RATE_ADJ1, 0x00000100},
  540. {AUD_RATE_ADJ2, 0x00000200},
  541. {AUD_RATE_ADJ3, 0x00000300},
  542. {AUD_RATE_ADJ4, 0x00000400},
  543. {AUD_RATE_ADJ5, 0x00000500},
  544. {AUD_RATE_THRES_DMD, 0x000000C0},
  545. { /* end of list */ },
  546. };
  547. static const struct rlist a2_deemph50[] = {
  548. {AUD_DEEMPH0_G0, 0x00000380},
  549. {AUD_DEEMPH1_G0, 0x00000380},
  550. {AUD_DEEMPHGAIN_R, 0x000011e1},
  551. {AUD_DEEMPHNUMER1_R, 0x0002a7bc},
  552. {AUD_DEEMPHNUMER2_R, 0x0003023c},
  553. { /* end of list */ },
  554. };
  555. set_audio_start(core, SEL_A2);
  556. switch (core->tvaudio) {
  557. case WW_BG:
  558. dprintk("%s PAL-BG A1/2 (status: known-good)\n", __func__);
  559. set_audio_registers(core, a2_bgdk_common);
  560. set_audio_registers(core, a2_bg);
  561. set_audio_registers(core, a2_deemph50);
  562. break;
  563. case WW_DK:
  564. dprintk("%s PAL-DK A1/2 (status: known-good)\n", __func__);
  565. set_audio_registers(core, a2_bgdk_common);
  566. set_audio_registers(core, a2_dk);
  567. set_audio_registers(core, a2_deemph50);
  568. break;
  569. case WW_I:
  570. dprintk("%s PAL-I A1 (status: known-good)\n", __func__);
  571. set_audio_registers(core, a1_i);
  572. set_audio_registers(core, a2_deemph50);
  573. break;
  574. case WW_L:
  575. dprintk("%s AM-L (status: devel)\n", __func__);
  576. set_audio_registers(core, am_l);
  577. break;
  578. default:
  579. dprintk("%s Warning: wrong value\n", __func__);
  580. return;
  581. break;
  582. };
  583. mode |= EN_FMRADIO_EN_RDS | EN_DMTRX_SUMDIFF;
  584. set_audio_finish(core, mode);
  585. }
  586. static void set_audio_standard_EIAJ(struct cx88_core *core)
  587. {
  588. static const struct rlist eiaj[] = {
  589. /* TODO: eiaj register settings are not there yet ... */
  590. { /* end of list */ },
  591. };
  592. dprintk("%s (status: unknown)\n", __func__);
  593. set_audio_start(core, SEL_EIAJ);
  594. set_audio_registers(core, eiaj);
  595. set_audio_finish(core, EN_EIAJ_AUTO_STEREO);
  596. }
  597. static void set_audio_standard_FM(struct cx88_core *core,
  598. enum cx88_deemph_type deemph)
  599. {
  600. static const struct rlist fm_deemph_50[] = {
  601. {AUD_DEEMPH0_G0, 0x0C45},
  602. {AUD_DEEMPH0_A0, 0x6262},
  603. {AUD_DEEMPH0_B0, 0x1C29},
  604. {AUD_DEEMPH0_A1, 0x3FC66},
  605. {AUD_DEEMPH0_B1, 0x399A},
  606. {AUD_DEEMPH1_G0, 0x0D80},
  607. {AUD_DEEMPH1_A0, 0x6262},
  608. {AUD_DEEMPH1_B0, 0x1C29},
  609. {AUD_DEEMPH1_A1, 0x3FC66},
  610. {AUD_DEEMPH1_B1, 0x399A},
  611. {AUD_POLYPH80SCALEFAC, 0x0003},
  612. { /* end of list */ },
  613. };
  614. static const struct rlist fm_deemph_75[] = {
  615. {AUD_DEEMPH0_G0, 0x091B},
  616. {AUD_DEEMPH0_A0, 0x6B68},
  617. {AUD_DEEMPH0_B0, 0x11EC},
  618. {AUD_DEEMPH0_A1, 0x3FC66},
  619. {AUD_DEEMPH0_B1, 0x399A},
  620. {AUD_DEEMPH1_G0, 0x0AA0},
  621. {AUD_DEEMPH1_A0, 0x6B68},
  622. {AUD_DEEMPH1_B0, 0x11EC},
  623. {AUD_DEEMPH1_A1, 0x3FC66},
  624. {AUD_DEEMPH1_B1, 0x399A},
  625. {AUD_POLYPH80SCALEFAC, 0x0003},
  626. { /* end of list */ },
  627. };
  628. /* It is enough to leave default values? */
  629. /* No, it's not! The deemphasis registers are reset to the 75us
  630. * values by default. Analyzing the spectrum of the decoded audio
  631. * reveals that "no deemphasis" is the same as 75 us, while the 50 us
  632. * setting results in less deemphasis. */
  633. static const struct rlist fm_no_deemph[] = {
  634. {AUD_POLYPH80SCALEFAC, 0x0003},
  635. { /* end of list */ },
  636. };
  637. dprintk("%s (status: unknown)\n", __func__);
  638. set_audio_start(core, SEL_FMRADIO);
  639. switch (deemph) {
  640. default:
  641. case FM_NO_DEEMPH:
  642. set_audio_registers(core, fm_no_deemph);
  643. break;
  644. case FM_DEEMPH_50:
  645. set_audio_registers(core, fm_deemph_50);
  646. break;
  647. case FM_DEEMPH_75:
  648. set_audio_registers(core, fm_deemph_75);
  649. break;
  650. }
  651. set_audio_finish(core, EN_FMRADIO_AUTO_STEREO);
  652. }
  653. /* ----------------------------------------------------------- */
  654. static int cx88_detect_nicam(struct cx88_core *core)
  655. {
  656. int i, j = 0;
  657. dprintk("start nicam autodetect.\n");
  658. for (i = 0; i < 6; i++) {
  659. /* if bit1=1 then nicam is detected */
  660. j += ((cx_read(AUD_NICAM_STATUS2) & 0x02) >> 1);
  661. if (j == 1) {
  662. dprintk("nicam is detected.\n");
  663. return 1;
  664. }
  665. /* wait a little bit for next reading status */
  666. msleep(10);
  667. }
  668. dprintk("nicam is not detected.\n");
  669. return 0;
  670. }
  671. void cx88_set_tvaudio(struct cx88_core *core)
  672. {
  673. switch (core->tvaudio) {
  674. case WW_BTSC:
  675. set_audio_standard_BTSC(core, 0, EN_BTSC_AUTO_STEREO);
  676. break;
  677. case WW_BG:
  678. case WW_DK:
  679. case WW_I:
  680. case WW_L:
  681. /* prepare all dsp registers */
  682. set_audio_standard_A2(core, EN_A2_FORCE_MONO1);
  683. /* set nicam mode - otherwise
  684. AUD_NICAM_STATUS2 contains wrong values */
  685. set_audio_standard_NICAM(core, EN_NICAM_AUTO_STEREO);
  686. if (0 == cx88_detect_nicam(core)) {
  687. /* fall back to fm / am mono */
  688. set_audio_standard_A2(core, EN_A2_FORCE_MONO1);
  689. core->use_nicam = 0;
  690. } else {
  691. core->use_nicam = 1;
  692. }
  693. break;
  694. case WW_EIAJ:
  695. set_audio_standard_EIAJ(core);
  696. break;
  697. case WW_FM:
  698. set_audio_standard_FM(core, radio_deemphasis);
  699. break;
  700. case WW_I2SADC:
  701. set_audio_start(core, 0x01);
  702. /* Slave/Philips/Autobaud */
  703. cx_write(AUD_I2SINPUTCNTL, 0);
  704. /* Switch to "I2S ADC mode" */
  705. cx_write(AUD_I2SCNTL, 0x1);
  706. set_audio_finish(core, EN_I2SIN_ENABLE);
  707. break;
  708. case WW_NONE:
  709. default:
  710. printk("%s/0: unknown tv audio mode [%d]\n",
  711. core->name, core->tvaudio);
  712. break;
  713. }
  714. return;
  715. }
  716. void cx88_newstation(struct cx88_core *core)
  717. {
  718. core->audiomode_manual = UNSET;
  719. }
  720. void cx88_get_stereo(struct cx88_core *core, struct v4l2_tuner *t)
  721. {
  722. static char *m[] = { "stereo", "dual mono", "mono", "sap" };
  723. static char *p[] = { "no pilot", "pilot c1", "pilot c2", "?" };
  724. u32 reg, mode, pilot;
  725. reg = cx_read(AUD_STATUS);
  726. mode = reg & 0x03;
  727. pilot = (reg >> 2) & 0x03;
  728. if (core->astat != reg)
  729. dprintk("AUD_STATUS: 0x%x [%s/%s] ctl=%s\n",
  730. reg, m[mode], p[pilot],
  731. aud_ctl_names[cx_read(AUD_CTL) & 63]);
  732. core->astat = reg;
  733. /* TODO
  734. Reading from AUD_STATUS is not enough
  735. for auto-detecting sap/dual-fm/nicam.
  736. Add some code here later.
  737. */
  738. return;
  739. }
  740. void cx88_set_stereo(struct cx88_core *core, u32 mode, int manual)
  741. {
  742. u32 ctl = UNSET;
  743. u32 mask = UNSET;
  744. if (manual) {
  745. core->audiomode_manual = mode;
  746. } else {
  747. if (UNSET != core->audiomode_manual)
  748. return;
  749. }
  750. core->audiomode_current = mode;
  751. switch (core->tvaudio) {
  752. case WW_BTSC:
  753. switch (mode) {
  754. case V4L2_TUNER_MODE_MONO:
  755. set_audio_standard_BTSC(core, 0, EN_BTSC_FORCE_MONO);
  756. break;
  757. case V4L2_TUNER_MODE_LANG1:
  758. set_audio_standard_BTSC(core, 0, EN_BTSC_AUTO_STEREO);
  759. break;
  760. case V4L2_TUNER_MODE_LANG2:
  761. set_audio_standard_BTSC(core, 1, EN_BTSC_FORCE_SAP);
  762. break;
  763. case V4L2_TUNER_MODE_STEREO:
  764. case V4L2_TUNER_MODE_LANG1_LANG2:
  765. set_audio_standard_BTSC(core, 0, EN_BTSC_FORCE_STEREO);
  766. break;
  767. }
  768. break;
  769. case WW_BG:
  770. case WW_DK:
  771. case WW_I:
  772. case WW_L:
  773. if (1 == core->use_nicam) {
  774. switch (mode) {
  775. case V4L2_TUNER_MODE_MONO:
  776. case V4L2_TUNER_MODE_LANG1:
  777. set_audio_standard_NICAM(core,
  778. EN_NICAM_FORCE_MONO1);
  779. break;
  780. case V4L2_TUNER_MODE_LANG2:
  781. set_audio_standard_NICAM(core,
  782. EN_NICAM_FORCE_MONO2);
  783. break;
  784. case V4L2_TUNER_MODE_STEREO:
  785. case V4L2_TUNER_MODE_LANG1_LANG2:
  786. set_audio_standard_NICAM(core,
  787. EN_NICAM_FORCE_STEREO);
  788. break;
  789. }
  790. } else {
  791. if ((core->tvaudio == WW_I) || (core->tvaudio == WW_L)) {
  792. /* fall back to fm / am mono */
  793. set_audio_standard_A2(core, EN_A2_FORCE_MONO1);
  794. } else {
  795. /* TODO: Add A2 autodection */
  796. switch (mode) {
  797. case V4L2_TUNER_MODE_MONO:
  798. case V4L2_TUNER_MODE_LANG1:
  799. set_audio_standard_A2(core,
  800. EN_A2_FORCE_MONO1);
  801. break;
  802. case V4L2_TUNER_MODE_LANG2:
  803. set_audio_standard_A2(core,
  804. EN_A2_FORCE_MONO2);
  805. break;
  806. case V4L2_TUNER_MODE_STEREO:
  807. case V4L2_TUNER_MODE_LANG1_LANG2:
  808. set_audio_standard_A2(core,
  809. EN_A2_FORCE_STEREO);
  810. break;
  811. }
  812. }
  813. }
  814. break;
  815. case WW_FM:
  816. switch (mode) {
  817. case V4L2_TUNER_MODE_MONO:
  818. ctl = EN_FMRADIO_FORCE_MONO;
  819. mask = 0x3f;
  820. break;
  821. case V4L2_TUNER_MODE_STEREO:
  822. ctl = EN_FMRADIO_AUTO_STEREO;
  823. mask = 0x3f;
  824. break;
  825. }
  826. break;
  827. case WW_I2SADC:
  828. /* DO NOTHING */
  829. break;
  830. }
  831. if (UNSET != ctl) {
  832. dprintk("cx88_set_stereo: mask 0x%x, ctl 0x%x "
  833. "[status=0x%x,ctl=0x%x,vol=0x%x]\n",
  834. mask, ctl, cx_read(AUD_STATUS),
  835. cx_read(AUD_CTL), cx_sread(SHADOW_AUD_VOL_CTL));
  836. cx_andor(AUD_CTL, mask, ctl);
  837. }
  838. return;
  839. }
  840. int cx88_audio_thread(void *data)
  841. {
  842. struct cx88_core *core = data;
  843. struct v4l2_tuner t;
  844. u32 mode = 0;
  845. dprintk("cx88: tvaudio thread started\n");
  846. set_freezable();
  847. for (;;) {
  848. msleep_interruptible(1000);
  849. if (kthread_should_stop())
  850. break;
  851. try_to_freeze();
  852. /* just monitor the audio status for now ... */
  853. memset(&t, 0, sizeof(t));
  854. cx88_get_stereo(core, &t);
  855. if (UNSET != core->audiomode_manual)
  856. /* manually set, don't do anything. */
  857. continue;
  858. /* monitor signal */
  859. if (t.rxsubchans & V4L2_TUNER_SUB_STEREO)
  860. mode = V4L2_TUNER_MODE_STEREO;
  861. else
  862. mode = V4L2_TUNER_MODE_MONO;
  863. if (mode == core->audiomode_current)
  864. continue;
  865. /* automatically switch to best available mode */
  866. cx88_set_stereo(core, mode, 0);
  867. }
  868. dprintk("cx88: tvaudio thread exiting\n");
  869. return 0;
  870. }
  871. /* ----------------------------------------------------------- */
  872. EXPORT_SYMBOL(cx88_set_tvaudio);
  873. EXPORT_SYMBOL(cx88_newstation);
  874. EXPORT_SYMBOL(cx88_set_stereo);
  875. EXPORT_SYMBOL(cx88_get_stereo);
  876. EXPORT_SYMBOL(cx88_audio_thread);
  877. /*
  878. * Local variables:
  879. * c-basic-offset: 8
  880. * End:
  881. * kate: eol "unix"; indent-width 3; remove-trailing-space on; replace-trailing-space-save on; tab-width 8; replace-tabs off; space-indent off; mixed-indent off
  882. */