virtuoso.c 18 KB

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  1. /*
  2. * C-Media CMI8788 driver for Asus Xonar cards
  3. *
  4. * Copyright (c) Clemens Ladisch <clemens@ladisch.de>
  5. *
  6. *
  7. * This driver is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License, version 2.
  9. *
  10. * This driver is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this driver; if not, write to the Free Software
  17. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  18. */
  19. /*
  20. * Xonar D2/D2X
  21. * ------------
  22. *
  23. * CMI8788:
  24. *
  25. * SPI 0 -> 1st PCM1796 (front)
  26. * SPI 1 -> 2nd PCM1796 (surround)
  27. * SPI 2 -> 3rd PCM1796 (center/LFE)
  28. * SPI 4 -> 4th PCM1796 (back)
  29. *
  30. * GPIO 2 -> M0 of CS5381
  31. * GPIO 3 -> M1 of CS5381
  32. * GPIO 5 <- external power present (D2X only)
  33. * GPIO 7 -> ALT
  34. * GPIO 8 -> enable output to speakers
  35. */
  36. /*
  37. * Xonar D1/DX
  38. * -----------
  39. *
  40. * CMI8788:
  41. *
  42. * I²C <-> CS4398 (front)
  43. * <-> CS4362A (surround, center/LFE, back)
  44. *
  45. * GPI 0 <- external power present (DX only)
  46. *
  47. * GPIO 0 -> enable output to speakers
  48. * GPIO 1 -> enable front panel I/O
  49. * GPIO 2 -> M0 of CS5361
  50. * GPIO 3 -> M1 of CS5361
  51. * GPIO 8 -> route input jack to line-in (0) or mic-in (1)
  52. *
  53. * CS4398:
  54. *
  55. * AD0 <- 1
  56. * AD1 <- 1
  57. *
  58. * CS4362A:
  59. *
  60. * AD0 <- 0
  61. */
  62. #include <linux/pci.h>
  63. #include <linux/delay.h>
  64. #include <linux/mutex.h>
  65. #include <sound/ac97_codec.h>
  66. #include <sound/control.h>
  67. #include <sound/core.h>
  68. #include <sound/initval.h>
  69. #include <sound/pcm.h>
  70. #include <sound/tlv.h>
  71. #include "oxygen.h"
  72. #include "cm9780.h"
  73. #include "pcm1796.h"
  74. #include "cs4398.h"
  75. #include "cs4362a.h"
  76. MODULE_AUTHOR("Clemens Ladisch <clemens@ladisch.de>");
  77. MODULE_DESCRIPTION("Asus AVx00 driver");
  78. MODULE_LICENSE("GPL v2");
  79. MODULE_SUPPORTED_DEVICE("{{Asus,AV100},{Asus,AV200}}");
  80. static int index[SNDRV_CARDS] = SNDRV_DEFAULT_IDX;
  81. static char *id[SNDRV_CARDS] = SNDRV_DEFAULT_STR;
  82. static int enable[SNDRV_CARDS] = SNDRV_DEFAULT_ENABLE_PNP;
  83. module_param_array(index, int, NULL, 0444);
  84. MODULE_PARM_DESC(index, "card index");
  85. module_param_array(id, charp, NULL, 0444);
  86. MODULE_PARM_DESC(id, "ID string");
  87. module_param_array(enable, bool, NULL, 0444);
  88. MODULE_PARM_DESC(enable, "enable card");
  89. enum {
  90. MODEL_D2,
  91. MODEL_D2X,
  92. MODEL_D1,
  93. MODEL_DX,
  94. };
  95. static struct pci_device_id xonar_ids[] __devinitdata = {
  96. { OXYGEN_PCI_SUBID(0x1043, 0x8269), .driver_data = MODEL_D2 },
  97. { OXYGEN_PCI_SUBID(0x1043, 0x8275), .driver_data = MODEL_DX },
  98. { OXYGEN_PCI_SUBID(0x1043, 0x82b7), .driver_data = MODEL_D2X },
  99. { OXYGEN_PCI_SUBID(0x1043, 0x834f), .driver_data = MODEL_D1 },
  100. { }
  101. };
  102. MODULE_DEVICE_TABLE(pci, xonar_ids);
  103. #define GPIO_CS53x1_M_MASK 0x000c
  104. #define GPIO_CS53x1_M_SINGLE 0x0000
  105. #define GPIO_CS53x1_M_DOUBLE 0x0004
  106. #define GPIO_CS53x1_M_QUAD 0x0008
  107. #define GPIO_D2X_EXT_POWER 0x0020
  108. #define GPIO_D2_ALT 0x0080
  109. #define GPIO_D2_OUTPUT_ENABLE 0x0100
  110. #define GPI_DX_EXT_POWER 0x01
  111. #define GPIO_DX_OUTPUT_ENABLE 0x0001
  112. #define GPIO_DX_FRONT_PANEL 0x0002
  113. #define GPIO_DX_INPUT_ROUTE 0x0100
  114. #define I2C_DEVICE_CS4398 0x9e /* 10011, AD1=1, AD0=1, /W=0 */
  115. #define I2C_DEVICE_CS4362A 0x30 /* 001100, AD0=0, /W=0 */
  116. struct xonar_data {
  117. unsigned int model;
  118. unsigned int anti_pop_delay;
  119. u16 output_enable_bit;
  120. u8 ext_power_reg;
  121. u8 ext_power_int_reg;
  122. u8 ext_power_bit;
  123. u8 has_power;
  124. u8 pcm1796_oversampling;
  125. u8 cs4398_fm;
  126. u8 cs4362a_fm;
  127. };
  128. static void xonar_gpio_changed(struct oxygen *chip);
  129. static void pcm1796_write(struct oxygen *chip, unsigned int codec,
  130. u8 reg, u8 value)
  131. {
  132. /* maps ALSA channel pair number to SPI output */
  133. static const u8 codec_map[4] = {
  134. 0, 1, 2, 4
  135. };
  136. oxygen_write_spi(chip, OXYGEN_SPI_TRIGGER |
  137. OXYGEN_SPI_DATA_LENGTH_2 |
  138. OXYGEN_SPI_CLOCK_160 |
  139. (codec_map[codec] << OXYGEN_SPI_CODEC_SHIFT) |
  140. OXYGEN_SPI_CEN_LATCH_CLOCK_HI,
  141. (reg << 8) | value);
  142. }
  143. static void cs4398_write(struct oxygen *chip, u8 reg, u8 value)
  144. {
  145. oxygen_write_i2c(chip, I2C_DEVICE_CS4398, reg, value);
  146. }
  147. static void cs4362a_write(struct oxygen *chip, u8 reg, u8 value)
  148. {
  149. oxygen_write_i2c(chip, I2C_DEVICE_CS4362A, reg, value);
  150. }
  151. static void xonar_enable_output(struct oxygen *chip)
  152. {
  153. struct xonar_data *data = chip->model_data;
  154. msleep(data->anti_pop_delay);
  155. oxygen_set_bits16(chip, OXYGEN_GPIO_DATA, data->output_enable_bit);
  156. }
  157. static void xonar_common_init(struct oxygen *chip)
  158. {
  159. struct xonar_data *data = chip->model_data;
  160. if (data->ext_power_reg) {
  161. oxygen_set_bits8(chip, data->ext_power_int_reg,
  162. data->ext_power_bit);
  163. chip->interrupt_mask |= OXYGEN_INT_GPIO;
  164. chip->model.gpio_changed = xonar_gpio_changed;
  165. data->has_power = !!(oxygen_read8(chip, data->ext_power_reg)
  166. & data->ext_power_bit);
  167. }
  168. oxygen_set_bits16(chip, OXYGEN_GPIO_CONTROL,
  169. GPIO_CS53x1_M_MASK | data->output_enable_bit);
  170. oxygen_write16_masked(chip, OXYGEN_GPIO_DATA,
  171. GPIO_CS53x1_M_SINGLE, GPIO_CS53x1_M_MASK);
  172. oxygen_ac97_set_bits(chip, 0, CM9780_JACK, CM9780_FMIC2MIC);
  173. xonar_enable_output(chip);
  174. }
  175. static void update_pcm1796_volume(struct oxygen *chip)
  176. {
  177. unsigned int i;
  178. for (i = 0; i < 4; ++i) {
  179. pcm1796_write(chip, i, 16, chip->dac_volume[i * 2]);
  180. pcm1796_write(chip, i, 17, chip->dac_volume[i * 2 + 1]);
  181. }
  182. }
  183. static void update_pcm1796_mute(struct oxygen *chip)
  184. {
  185. unsigned int i;
  186. u8 value;
  187. value = PCM1796_DMF_DISABLED | PCM1796_FMT_24_LJUST | PCM1796_ATLD;
  188. if (chip->dac_mute)
  189. value |= PCM1796_MUTE;
  190. for (i = 0; i < 4; ++i)
  191. pcm1796_write(chip, i, 18, value);
  192. }
  193. static void pcm1796_init(struct oxygen *chip)
  194. {
  195. struct xonar_data *data = chip->model_data;
  196. unsigned int i;
  197. for (i = 0; i < 4; ++i) {
  198. pcm1796_write(chip, i, 19, PCM1796_FLT_SHARP | PCM1796_ATS_1);
  199. pcm1796_write(chip, i, 20, data->pcm1796_oversampling);
  200. pcm1796_write(chip, i, 21, 0);
  201. }
  202. update_pcm1796_mute(chip); /* set ATLD before ATL/ATR */
  203. update_pcm1796_volume(chip);
  204. }
  205. static void xonar_d2_init(struct oxygen *chip)
  206. {
  207. struct xonar_data *data = chip->model_data;
  208. data->anti_pop_delay = 300;
  209. data->output_enable_bit = GPIO_D2_OUTPUT_ENABLE;
  210. data->pcm1796_oversampling = PCM1796_OS_64;
  211. if (data->model == MODEL_D2X) {
  212. data->ext_power_reg = OXYGEN_GPIO_DATA;
  213. data->ext_power_int_reg = OXYGEN_GPIO_INTERRUPT_MASK;
  214. data->ext_power_bit = GPIO_D2X_EXT_POWER;
  215. oxygen_clear_bits16(chip, OXYGEN_GPIO_CONTROL,
  216. GPIO_D2X_EXT_POWER);
  217. }
  218. pcm1796_init(chip);
  219. oxygen_set_bits16(chip, OXYGEN_GPIO_CONTROL, GPIO_D2_ALT);
  220. oxygen_clear_bits16(chip, OXYGEN_GPIO_DATA, GPIO_D2_ALT);
  221. xonar_common_init(chip);
  222. snd_component_add(chip->card, "PCM1796");
  223. snd_component_add(chip->card, "CS5381");
  224. }
  225. static void update_cs4362a_volumes(struct oxygen *chip)
  226. {
  227. u8 mute;
  228. mute = chip->dac_mute ? CS4362A_MUTE : 0;
  229. cs4362a_write(chip, 7, (127 - chip->dac_volume[2]) | mute);
  230. cs4362a_write(chip, 8, (127 - chip->dac_volume[3]) | mute);
  231. cs4362a_write(chip, 10, (127 - chip->dac_volume[4]) | mute);
  232. cs4362a_write(chip, 11, (127 - chip->dac_volume[5]) | mute);
  233. cs4362a_write(chip, 13, (127 - chip->dac_volume[6]) | mute);
  234. cs4362a_write(chip, 14, (127 - chip->dac_volume[7]) | mute);
  235. }
  236. static void update_cs43xx_volume(struct oxygen *chip)
  237. {
  238. cs4398_write(chip, 5, (127 - chip->dac_volume[0]) * 2);
  239. cs4398_write(chip, 6, (127 - chip->dac_volume[1]) * 2);
  240. update_cs4362a_volumes(chip);
  241. }
  242. static void update_cs43xx_mute(struct oxygen *chip)
  243. {
  244. u8 reg;
  245. reg = CS4398_MUTEP_LOW | CS4398_PAMUTE;
  246. if (chip->dac_mute)
  247. reg |= CS4398_MUTE_B | CS4398_MUTE_A;
  248. cs4398_write(chip, 4, reg);
  249. update_cs4362a_volumes(chip);
  250. }
  251. static void cs43xx_init(struct oxygen *chip)
  252. {
  253. struct xonar_data *data = chip->model_data;
  254. /* set CPEN (control port mode) and power down */
  255. cs4398_write(chip, 8, CS4398_CPEN | CS4398_PDN);
  256. cs4362a_write(chip, 0x01, CS4362A_PDN | CS4362A_CPEN);
  257. /* configure */
  258. cs4398_write(chip, 2, data->cs4398_fm);
  259. cs4398_write(chip, 3, CS4398_ATAPI_B_R | CS4398_ATAPI_A_L);
  260. cs4398_write(chip, 7, CS4398_RMP_DN | CS4398_RMP_UP |
  261. CS4398_ZERO_CROSS | CS4398_SOFT_RAMP);
  262. cs4362a_write(chip, 0x02, CS4362A_DIF_LJUST);
  263. cs4362a_write(chip, 0x03, CS4362A_MUTEC_6 | CS4362A_AMUTE |
  264. CS4362A_RMP_UP | CS4362A_ZERO_CROSS | CS4362A_SOFT_RAMP);
  265. cs4362a_write(chip, 0x04, CS4362A_RMP_DN | CS4362A_DEM_NONE);
  266. cs4362a_write(chip, 0x05, 0);
  267. cs4362a_write(chip, 0x06, data->cs4362a_fm);
  268. cs4362a_write(chip, 0x09, data->cs4362a_fm);
  269. cs4362a_write(chip, 0x0c, data->cs4362a_fm);
  270. update_cs43xx_volume(chip);
  271. update_cs43xx_mute(chip);
  272. /* clear power down */
  273. cs4398_write(chip, 8, CS4398_CPEN);
  274. cs4362a_write(chip, 0x01, CS4362A_CPEN);
  275. }
  276. static void xonar_d1_init(struct oxygen *chip)
  277. {
  278. struct xonar_data *data = chip->model_data;
  279. data->anti_pop_delay = 800;
  280. data->output_enable_bit = GPIO_DX_OUTPUT_ENABLE;
  281. data->cs4398_fm = CS4398_FM_SINGLE | CS4398_DEM_NONE | CS4398_DIF_LJUST;
  282. data->cs4362a_fm = CS4362A_FM_SINGLE |
  283. CS4362A_ATAPI_B_R | CS4362A_ATAPI_A_L;
  284. if (data->model == MODEL_DX) {
  285. data->ext_power_reg = OXYGEN_GPI_DATA;
  286. data->ext_power_int_reg = OXYGEN_GPI_INTERRUPT_MASK;
  287. data->ext_power_bit = GPI_DX_EXT_POWER;
  288. }
  289. oxygen_write16(chip, OXYGEN_2WIRE_BUS_STATUS,
  290. OXYGEN_2WIRE_LENGTH_8 |
  291. OXYGEN_2WIRE_INTERRUPT_MASK |
  292. OXYGEN_2WIRE_SPEED_FAST);
  293. cs43xx_init(chip);
  294. oxygen_set_bits16(chip, OXYGEN_GPIO_CONTROL,
  295. GPIO_DX_FRONT_PANEL | GPIO_DX_INPUT_ROUTE);
  296. oxygen_clear_bits16(chip, OXYGEN_GPIO_DATA,
  297. GPIO_DX_FRONT_PANEL | GPIO_DX_INPUT_ROUTE);
  298. xonar_common_init(chip);
  299. snd_component_add(chip->card, "CS4398");
  300. snd_component_add(chip->card, "CS4362A");
  301. snd_component_add(chip->card, "CS5361");
  302. }
  303. static void xonar_cleanup(struct oxygen *chip)
  304. {
  305. struct xonar_data *data = chip->model_data;
  306. oxygen_clear_bits16(chip, OXYGEN_GPIO_DATA, data->output_enable_bit);
  307. }
  308. static void xonar_d1_cleanup(struct oxygen *chip)
  309. {
  310. xonar_cleanup(chip);
  311. cs4362a_write(chip, 0x01, CS4362A_PDN | CS4362A_CPEN);
  312. oxygen_clear_bits8(chip, OXYGEN_FUNCTION, OXYGEN_FUNCTION_RESET_CODEC);
  313. }
  314. static void xonar_d2_resume(struct oxygen *chip)
  315. {
  316. pcm1796_init(chip);
  317. xonar_enable_output(chip);
  318. }
  319. static void xonar_d1_resume(struct oxygen *chip)
  320. {
  321. cs43xx_init(chip);
  322. xonar_enable_output(chip);
  323. }
  324. static void set_pcm1796_params(struct oxygen *chip,
  325. struct snd_pcm_hw_params *params)
  326. {
  327. struct xonar_data *data = chip->model_data;
  328. unsigned int i;
  329. data->pcm1796_oversampling =
  330. params_rate(params) >= 96000 ? PCM1796_OS_32 : PCM1796_OS_64;
  331. for (i = 0; i < 4; ++i)
  332. pcm1796_write(chip, i, 20, data->pcm1796_oversampling);
  333. }
  334. static void set_cs53x1_params(struct oxygen *chip,
  335. struct snd_pcm_hw_params *params)
  336. {
  337. unsigned int value;
  338. if (params_rate(params) <= 54000)
  339. value = GPIO_CS53x1_M_SINGLE;
  340. else if (params_rate(params) <= 108000)
  341. value = GPIO_CS53x1_M_DOUBLE;
  342. else
  343. value = GPIO_CS53x1_M_QUAD;
  344. oxygen_write16_masked(chip, OXYGEN_GPIO_DATA,
  345. value, GPIO_CS53x1_M_MASK);
  346. }
  347. static void set_cs43xx_params(struct oxygen *chip,
  348. struct snd_pcm_hw_params *params)
  349. {
  350. struct xonar_data *data = chip->model_data;
  351. data->cs4398_fm = CS4398_DEM_NONE | CS4398_DIF_LJUST;
  352. data->cs4362a_fm = CS4362A_ATAPI_B_R | CS4362A_ATAPI_A_L;
  353. if (params_rate(params) <= 50000) {
  354. data->cs4398_fm |= CS4398_FM_SINGLE;
  355. data->cs4362a_fm |= CS4362A_FM_SINGLE;
  356. } else if (params_rate(params) <= 100000) {
  357. data->cs4398_fm |= CS4398_FM_DOUBLE;
  358. data->cs4362a_fm |= CS4362A_FM_DOUBLE;
  359. } else {
  360. data->cs4398_fm |= CS4398_FM_QUAD;
  361. data->cs4362a_fm |= CS4362A_FM_QUAD;
  362. }
  363. cs4398_write(chip, 2, data->cs4398_fm);
  364. cs4362a_write(chip, 0x06, data->cs4362a_fm);
  365. cs4362a_write(chip, 0x09, data->cs4362a_fm);
  366. cs4362a_write(chip, 0x0c, data->cs4362a_fm);
  367. }
  368. static void xonar_gpio_changed(struct oxygen *chip)
  369. {
  370. struct xonar_data *data = chip->model_data;
  371. u8 has_power;
  372. has_power = !!(oxygen_read8(chip, data->ext_power_reg)
  373. & data->ext_power_bit);
  374. if (has_power != data->has_power) {
  375. data->has_power = has_power;
  376. if (has_power) {
  377. snd_printk(KERN_NOTICE "power restored\n");
  378. } else {
  379. snd_printk(KERN_CRIT
  380. "Hey! Don't unplug the power cable!\n");
  381. /* TODO: stop PCMs */
  382. }
  383. }
  384. }
  385. static int alt_switch_get(struct snd_kcontrol *ctl,
  386. struct snd_ctl_elem_value *value)
  387. {
  388. struct oxygen *chip = ctl->private_data;
  389. value->value.integer.value[0] =
  390. !!(oxygen_read16(chip, OXYGEN_GPIO_DATA) & GPIO_D2_ALT);
  391. return 0;
  392. }
  393. static int alt_switch_put(struct snd_kcontrol *ctl,
  394. struct snd_ctl_elem_value *value)
  395. {
  396. struct oxygen *chip = ctl->private_data;
  397. u16 old_bits, new_bits;
  398. int changed;
  399. spin_lock_irq(&chip->reg_lock);
  400. old_bits = oxygen_read16(chip, OXYGEN_GPIO_DATA);
  401. if (value->value.integer.value[0])
  402. new_bits = old_bits | GPIO_D2_ALT;
  403. else
  404. new_bits = old_bits & ~GPIO_D2_ALT;
  405. changed = new_bits != old_bits;
  406. if (changed)
  407. oxygen_write16(chip, OXYGEN_GPIO_DATA, new_bits);
  408. spin_unlock_irq(&chip->reg_lock);
  409. return changed;
  410. }
  411. static const struct snd_kcontrol_new alt_switch = {
  412. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  413. .name = "Analog Loopback Switch",
  414. .info = snd_ctl_boolean_mono_info,
  415. .get = alt_switch_get,
  416. .put = alt_switch_put,
  417. };
  418. static int front_panel_get(struct snd_kcontrol *ctl,
  419. struct snd_ctl_elem_value *value)
  420. {
  421. struct oxygen *chip = ctl->private_data;
  422. value->value.integer.value[0] =
  423. !!(oxygen_read16(chip, OXYGEN_GPIO_DATA) & GPIO_DX_FRONT_PANEL);
  424. return 0;
  425. }
  426. static int front_panel_put(struct snd_kcontrol *ctl,
  427. struct snd_ctl_elem_value *value)
  428. {
  429. struct oxygen *chip = ctl->private_data;
  430. u16 old_reg, new_reg;
  431. spin_lock_irq(&chip->reg_lock);
  432. old_reg = oxygen_read16(chip, OXYGEN_GPIO_DATA);
  433. if (value->value.integer.value[0])
  434. new_reg = old_reg | GPIO_DX_FRONT_PANEL;
  435. else
  436. new_reg = old_reg & ~GPIO_DX_FRONT_PANEL;
  437. oxygen_write16(chip, OXYGEN_GPIO_DATA, new_reg);
  438. spin_unlock_irq(&chip->reg_lock);
  439. return old_reg != new_reg;
  440. }
  441. static const struct snd_kcontrol_new front_panel_switch = {
  442. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  443. .name = "Front Panel Switch",
  444. .info = snd_ctl_boolean_mono_info,
  445. .get = front_panel_get,
  446. .put = front_panel_put,
  447. };
  448. static void xonar_d1_ac97_switch(struct oxygen *chip,
  449. unsigned int reg, unsigned int mute)
  450. {
  451. if (reg == AC97_LINE) {
  452. spin_lock_irq(&chip->reg_lock);
  453. oxygen_write16_masked(chip, OXYGEN_GPIO_DATA,
  454. mute ? GPIO_DX_INPUT_ROUTE : 0,
  455. GPIO_DX_INPUT_ROUTE);
  456. spin_unlock_irq(&chip->reg_lock);
  457. }
  458. }
  459. static const DECLARE_TLV_DB_SCALE(pcm1796_db_scale, -12000, 50, 0);
  460. static const DECLARE_TLV_DB_SCALE(cs4362a_db_scale, -12700, 100, 0);
  461. static int xonar_d2_control_filter(struct snd_kcontrol_new *template)
  462. {
  463. if (!strncmp(template->name, "CD Capture ", 11))
  464. /* CD in is actually connected to the video in pin */
  465. template->private_value ^= AC97_CD ^ AC97_VIDEO;
  466. return 0;
  467. }
  468. static int xonar_d1_control_filter(struct snd_kcontrol_new *template)
  469. {
  470. if (!strncmp(template->name, "CD Capture ", 11))
  471. return 1; /* no CD input */
  472. return 0;
  473. }
  474. static int xonar_d2_mixer_init(struct oxygen *chip)
  475. {
  476. return snd_ctl_add(chip->card, snd_ctl_new1(&alt_switch, chip));
  477. }
  478. static int xonar_d1_mixer_init(struct oxygen *chip)
  479. {
  480. return snd_ctl_add(chip->card, snd_ctl_new1(&front_panel_switch, chip));
  481. }
  482. static int xonar_model_probe(struct oxygen *chip, unsigned long driver_data)
  483. {
  484. static const char *const names[] = {
  485. [MODEL_D1] = "Xonar D1",
  486. [MODEL_DX] = "Xonar DX",
  487. [MODEL_D2] = "Xonar D2",
  488. [MODEL_D2X] = "Xonar D2X",
  489. };
  490. struct xonar_data *data = chip->model_data;
  491. data->model = driver_data;
  492. chip->model.shortname = names[data->model];
  493. return 0;
  494. }
  495. static const struct oxygen_model model_xonar_d2 = {
  496. .longname = "Asus Virtuoso 200",
  497. .chip = "AV200",
  498. .owner = THIS_MODULE,
  499. .probe = xonar_model_probe,
  500. .init = xonar_d2_init,
  501. .control_filter = xonar_d2_control_filter,
  502. .mixer_init = xonar_d2_mixer_init,
  503. .cleanup = xonar_cleanup,
  504. .suspend = xonar_cleanup,
  505. .resume = xonar_d2_resume,
  506. .set_dac_params = set_pcm1796_params,
  507. .set_adc_params = set_cs53x1_params,
  508. .update_dac_volume = update_pcm1796_volume,
  509. .update_dac_mute = update_pcm1796_mute,
  510. .dac_tlv = pcm1796_db_scale,
  511. .model_data_size = sizeof(struct xonar_data),
  512. .pcm_dev_cfg = PLAYBACK_0_TO_I2S |
  513. PLAYBACK_1_TO_SPDIF |
  514. CAPTURE_0_FROM_I2S_2 |
  515. CAPTURE_1_FROM_SPDIF,
  516. .dac_channels = 8,
  517. .dac_volume_min = 0x0f,
  518. .dac_volume_max = 0xff,
  519. .misc_flags = OXYGEN_MISC_MIDI,
  520. .function_flags = OXYGEN_FUNCTION_SPI |
  521. OXYGEN_FUNCTION_ENABLE_SPI_4_5,
  522. .dac_i2s_format = OXYGEN_I2S_FORMAT_LJUST,
  523. .adc_i2s_format = OXYGEN_I2S_FORMAT_LJUST,
  524. };
  525. static const struct oxygen_model model_xonar_d1 = {
  526. .longname = "Asus Virtuoso 100",
  527. .chip = "AV200",
  528. .owner = THIS_MODULE,
  529. .probe = xonar_model_probe,
  530. .init = xonar_d1_init,
  531. .control_filter = xonar_d1_control_filter,
  532. .mixer_init = xonar_d1_mixer_init,
  533. .cleanup = xonar_d1_cleanup,
  534. .suspend = xonar_d1_cleanup,
  535. .resume = xonar_d1_resume,
  536. .set_dac_params = set_cs43xx_params,
  537. .set_adc_params = set_cs53x1_params,
  538. .update_dac_volume = update_cs43xx_volume,
  539. .update_dac_mute = update_cs43xx_mute,
  540. .ac97_switch = xonar_d1_ac97_switch,
  541. .dac_tlv = cs4362a_db_scale,
  542. .model_data_size = sizeof(struct xonar_data),
  543. .pcm_dev_cfg = PLAYBACK_0_TO_I2S |
  544. PLAYBACK_1_TO_SPDIF |
  545. CAPTURE_0_FROM_I2S_2,
  546. .dac_channels = 8,
  547. .dac_volume_min = 0,
  548. .dac_volume_max = 127,
  549. .function_flags = OXYGEN_FUNCTION_2WIRE,
  550. .dac_i2s_format = OXYGEN_I2S_FORMAT_LJUST,
  551. .adc_i2s_format = OXYGEN_I2S_FORMAT_LJUST,
  552. };
  553. static int __devinit xonar_probe(struct pci_dev *pci,
  554. const struct pci_device_id *pci_id)
  555. {
  556. static const struct oxygen_model *const models[] = {
  557. [MODEL_D1] = &model_xonar_d1,
  558. [MODEL_DX] = &model_xonar_d1,
  559. [MODEL_D2] = &model_xonar_d2,
  560. [MODEL_D2X] = &model_xonar_d2,
  561. };
  562. static int dev;
  563. int err;
  564. if (dev >= SNDRV_CARDS)
  565. return -ENODEV;
  566. if (!enable[dev]) {
  567. ++dev;
  568. return -ENOENT;
  569. }
  570. BUG_ON(pci_id->driver_data >= ARRAY_SIZE(models));
  571. err = oxygen_pci_probe(pci, index[dev], id[dev],
  572. models[pci_id->driver_data],
  573. pci_id->driver_data);
  574. if (err >= 0)
  575. ++dev;
  576. return err;
  577. }
  578. static struct pci_driver xonar_driver = {
  579. .name = "AV200",
  580. .id_table = xonar_ids,
  581. .probe = xonar_probe,
  582. .remove = __devexit_p(oxygen_pci_remove),
  583. #ifdef CONFIG_PM
  584. .suspend = oxygen_pci_suspend,
  585. .resume = oxygen_pci_resume,
  586. #endif
  587. };
  588. static int __init alsa_card_xonar_init(void)
  589. {
  590. return pci_register_driver(&xonar_driver);
  591. }
  592. static void __exit alsa_card_xonar_exit(void)
  593. {
  594. pci_unregister_driver(&xonar_driver);
  595. }
  596. module_init(alsa_card_xonar_init)
  597. module_exit(alsa_card_xonar_exit)