patch_realtek.c 196 KB

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  1. /*
  2. * Universal Interface for Intel High Definition Audio Codec
  3. *
  4. * HD audio interface patch for Realtek ALC codecs
  5. *
  6. * Copyright (c) 2004 Kailang Yang <kailang@realtek.com.tw>
  7. * PeiSen Hou <pshou@realtek.com.tw>
  8. * Takashi Iwai <tiwai@suse.de>
  9. * Jonathan Woithe <jwoithe@just42.net>
  10. *
  11. * This driver is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2 of the License, or
  14. * (at your option) any later version.
  15. *
  16. * This driver is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; if not, write to the Free Software
  23. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  24. */
  25. #include <linux/init.h>
  26. #include <linux/delay.h>
  27. #include <linux/slab.h>
  28. #include <linux/pci.h>
  29. #include <linux/module.h>
  30. #include <sound/core.h>
  31. #include <sound/jack.h>
  32. #include "hda_codec.h"
  33. #include "hda_local.h"
  34. #include "hda_auto_parser.h"
  35. #include "hda_beep.h"
  36. #include "hda_jack.h"
  37. /* unsol event tags */
  38. #define ALC_FRONT_EVENT 0x01
  39. #define ALC_DCVOL_EVENT 0x02
  40. #define ALC_HP_EVENT 0x04
  41. #define ALC_MIC_EVENT 0x08
  42. /* for GPIO Poll */
  43. #define GPIO_MASK 0x03
  44. /* extra amp-initialization sequence types */
  45. enum {
  46. ALC_INIT_NONE,
  47. ALC_INIT_DEFAULT,
  48. ALC_INIT_GPIO1,
  49. ALC_INIT_GPIO2,
  50. ALC_INIT_GPIO3,
  51. };
  52. struct alc_customize_define {
  53. unsigned int sku_cfg;
  54. unsigned char port_connectivity;
  55. unsigned char check_sum;
  56. unsigned char customization;
  57. unsigned char external_amp;
  58. unsigned int enable_pcbeep:1;
  59. unsigned int platform_type:1;
  60. unsigned int swap:1;
  61. unsigned int override:1;
  62. unsigned int fixup:1; /* Means that this sku is set by driver, not read from hw */
  63. };
  64. struct alc_multi_io {
  65. hda_nid_t pin; /* multi-io widget pin NID */
  66. hda_nid_t dac; /* DAC to be connected */
  67. unsigned int ctl_in; /* cached input-pin control value */
  68. };
  69. enum {
  70. ALC_AUTOMUTE_PIN, /* change the pin control */
  71. ALC_AUTOMUTE_AMP, /* mute/unmute the pin AMP */
  72. ALC_AUTOMUTE_MIXER, /* mute/unmute mixer widget AMP */
  73. };
  74. #define MAX_VOL_NIDS 0x40
  75. /* make compatible with old code */
  76. #define alc_apply_pincfgs snd_hda_apply_pincfgs
  77. #define alc_apply_fixup snd_hda_apply_fixup
  78. #define alc_pick_fixup snd_hda_pick_fixup
  79. #define alc_fixup hda_fixup
  80. #define alc_pincfg hda_pintbl
  81. #define alc_model_fixup hda_model_fixup
  82. #define ALC_FIXUP_PINS HDA_FIXUP_PINS
  83. #define ALC_FIXUP_VERBS HDA_FIXUP_VERBS
  84. #define ALC_FIXUP_FUNC HDA_FIXUP_FUNC
  85. #define ALC_FIXUP_ACT_PRE_PROBE HDA_FIXUP_ACT_PRE_PROBE
  86. #define ALC_FIXUP_ACT_PROBE HDA_FIXUP_ACT_PROBE
  87. #define ALC_FIXUP_ACT_INIT HDA_FIXUP_ACT_INIT
  88. #define ALC_FIXUP_ACT_BUILD HDA_FIXUP_ACT_BUILD
  89. struct alc_spec {
  90. struct hda_gen_spec gen;
  91. /* codec parameterization */
  92. const struct snd_kcontrol_new *mixers[5]; /* mixer arrays */
  93. unsigned int num_mixers;
  94. const struct snd_kcontrol_new *cap_mixer; /* capture mixer */
  95. unsigned int beep_amp; /* beep amp value, set via set_beep_amp() */
  96. char stream_name_analog[32]; /* analog PCM stream */
  97. const struct hda_pcm_stream *stream_analog_playback;
  98. const struct hda_pcm_stream *stream_analog_capture;
  99. const struct hda_pcm_stream *stream_analog_alt_playback;
  100. const struct hda_pcm_stream *stream_analog_alt_capture;
  101. char stream_name_digital[32]; /* digital PCM stream */
  102. const struct hda_pcm_stream *stream_digital_playback;
  103. const struct hda_pcm_stream *stream_digital_capture;
  104. /* playback */
  105. struct hda_multi_out multiout; /* playback set-up
  106. * max_channels, dacs must be set
  107. * dig_out_nid and hp_nid are optional
  108. */
  109. hda_nid_t alt_dac_nid;
  110. hda_nid_t slave_dig_outs[3]; /* optional - for auto-parsing */
  111. int dig_out_type;
  112. /* capture */
  113. unsigned int num_adc_nids;
  114. const hda_nid_t *adc_nids;
  115. const hda_nid_t *capsrc_nids;
  116. hda_nid_t dig_in_nid; /* digital-in NID; optional */
  117. hda_nid_t mixer_nid; /* analog-mixer NID */
  118. DECLARE_BITMAP(vol_ctls, MAX_VOL_NIDS << 1);
  119. DECLARE_BITMAP(sw_ctls, MAX_VOL_NIDS << 1);
  120. /* capture setup for dynamic dual-adc switch */
  121. hda_nid_t cur_adc;
  122. unsigned int cur_adc_stream_tag;
  123. unsigned int cur_adc_format;
  124. /* capture source */
  125. unsigned int num_mux_defs;
  126. const struct hda_input_mux *input_mux;
  127. unsigned int cur_mux[3];
  128. hda_nid_t ext_mic_pin;
  129. hda_nid_t dock_mic_pin;
  130. hda_nid_t int_mic_pin;
  131. /* channel model */
  132. const struct hda_channel_mode *channel_mode;
  133. int num_channel_mode;
  134. int need_dac_fix;
  135. int const_channel_count;
  136. int ext_channel_count;
  137. /* PCM information */
  138. struct hda_pcm pcm_rec[3]; /* used in alc_build_pcms() */
  139. /* dynamic controls, init_verbs and input_mux */
  140. struct auto_pin_cfg autocfg;
  141. struct alc_customize_define cdefine;
  142. struct snd_array kctls;
  143. struct hda_input_mux private_imux[3];
  144. hda_nid_t private_dac_nids[AUTO_CFG_MAX_OUTS];
  145. hda_nid_t private_adc_nids[AUTO_CFG_MAX_OUTS];
  146. hda_nid_t private_capsrc_nids[AUTO_CFG_MAX_OUTS];
  147. hda_nid_t imux_pins[HDA_MAX_NUM_INPUTS];
  148. unsigned int dyn_adc_idx[HDA_MAX_NUM_INPUTS];
  149. int int_mic_idx, ext_mic_idx, dock_mic_idx; /* for auto-mic */
  150. hda_nid_t inv_dmic_pin;
  151. /* hooks */
  152. void (*init_hook)(struct hda_codec *codec);
  153. #ifdef CONFIG_SND_HDA_POWER_SAVE
  154. void (*power_hook)(struct hda_codec *codec);
  155. #endif
  156. void (*shutup)(struct hda_codec *codec);
  157. void (*automute_hook)(struct hda_codec *codec);
  158. /* for pin sensing */
  159. unsigned int hp_jack_present:1;
  160. unsigned int line_jack_present:1;
  161. unsigned int master_mute:1;
  162. unsigned int auto_mic:1;
  163. unsigned int auto_mic_valid_imux:1; /* valid imux for auto-mic */
  164. unsigned int automute_speaker:1; /* automute speaker outputs */
  165. unsigned int automute_lo:1; /* automute LO outputs */
  166. unsigned int detect_hp:1; /* Headphone detection enabled */
  167. unsigned int detect_lo:1; /* Line-out detection enabled */
  168. unsigned int automute_speaker_possible:1; /* there are speakers and either LO or HP */
  169. unsigned int automute_lo_possible:1; /* there are line outs and HP */
  170. unsigned int keep_vref_in_automute:1; /* Don't clear VREF in automute */
  171. /* other flags */
  172. unsigned int no_analog :1; /* digital I/O only */
  173. unsigned int dyn_adc_switch:1; /* switch ADCs (for ALC275) */
  174. unsigned int single_input_src:1;
  175. unsigned int vol_in_capsrc:1; /* use capsrc volume (ADC has no vol) */
  176. unsigned int parse_flags; /* passed to snd_hda_parse_pin_defcfg() */
  177. unsigned int shared_mic_hp:1; /* HP/Mic-in sharing */
  178. unsigned int inv_dmic_fixup:1; /* has inverted digital-mic workaround */
  179. unsigned int inv_dmic_muted:1; /* R-ch of inv d-mic is muted? */
  180. unsigned int no_primary_hp:1; /* Don't prefer HP pins to speaker pins */
  181. /* auto-mute control */
  182. int automute_mode;
  183. hda_nid_t automute_mixer_nid[AUTO_CFG_MAX_OUTS];
  184. int init_amp;
  185. int codec_variant; /* flag for other variants */
  186. /* for virtual master */
  187. hda_nid_t vmaster_nid;
  188. struct hda_vmaster_mute_hook vmaster_mute;
  189. #ifdef CONFIG_SND_HDA_POWER_SAVE
  190. struct hda_loopback_check loopback;
  191. int num_loopbacks;
  192. struct hda_amp_list loopback_list[8];
  193. #endif
  194. /* for PLL fix */
  195. hda_nid_t pll_nid;
  196. unsigned int pll_coef_idx, pll_coef_bit;
  197. unsigned int coef0;
  198. /* multi-io */
  199. int multi_ios;
  200. struct alc_multi_io multi_io[4];
  201. /* bind volumes */
  202. struct snd_array bind_ctls;
  203. };
  204. static bool check_amp_caps(struct hda_codec *codec, hda_nid_t nid,
  205. int dir, unsigned int bits)
  206. {
  207. if (!nid)
  208. return false;
  209. if (get_wcaps(codec, nid) & (1 << (dir + 1)))
  210. if (query_amp_caps(codec, nid, dir) & bits)
  211. return true;
  212. return false;
  213. }
  214. #define nid_has_mute(codec, nid, dir) \
  215. check_amp_caps(codec, nid, dir, AC_AMPCAP_MUTE)
  216. #define nid_has_volume(codec, nid, dir) \
  217. check_amp_caps(codec, nid, dir, AC_AMPCAP_NUM_STEPS)
  218. /*
  219. * input MUX handling
  220. */
  221. static int alc_mux_enum_info(struct snd_kcontrol *kcontrol,
  222. struct snd_ctl_elem_info *uinfo)
  223. {
  224. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  225. struct alc_spec *spec = codec->spec;
  226. unsigned int mux_idx = snd_ctl_get_ioffidx(kcontrol, &uinfo->id);
  227. if (mux_idx >= spec->num_mux_defs)
  228. mux_idx = 0;
  229. if (!spec->input_mux[mux_idx].num_items && mux_idx > 0)
  230. mux_idx = 0;
  231. return snd_hda_input_mux_info(&spec->input_mux[mux_idx], uinfo);
  232. }
  233. static int alc_mux_enum_get(struct snd_kcontrol *kcontrol,
  234. struct snd_ctl_elem_value *ucontrol)
  235. {
  236. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  237. struct alc_spec *spec = codec->spec;
  238. unsigned int adc_idx = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id);
  239. ucontrol->value.enumerated.item[0] = spec->cur_mux[adc_idx];
  240. return 0;
  241. }
  242. static bool alc_dyn_adc_pcm_resetup(struct hda_codec *codec, int cur)
  243. {
  244. struct alc_spec *spec = codec->spec;
  245. hda_nid_t new_adc = spec->adc_nids[spec->dyn_adc_idx[cur]];
  246. if (spec->cur_adc && spec->cur_adc != new_adc) {
  247. /* stream is running, let's swap the current ADC */
  248. __snd_hda_codec_cleanup_stream(codec, spec->cur_adc, 1);
  249. spec->cur_adc = new_adc;
  250. snd_hda_codec_setup_stream(codec, new_adc,
  251. spec->cur_adc_stream_tag, 0,
  252. spec->cur_adc_format);
  253. return true;
  254. }
  255. return false;
  256. }
  257. static inline hda_nid_t get_capsrc(struct alc_spec *spec, int idx)
  258. {
  259. return spec->capsrc_nids ?
  260. spec->capsrc_nids[idx] : spec->adc_nids[idx];
  261. }
  262. static void call_update_outputs(struct hda_codec *codec);
  263. static void alc_inv_dmic_sync(struct hda_codec *codec, bool force);
  264. /* for shared I/O, change the pin-control accordingly */
  265. static void update_shared_mic_hp(struct hda_codec *codec, bool set_as_mic)
  266. {
  267. struct alc_spec *spec = codec->spec;
  268. unsigned int val;
  269. hda_nid_t pin = spec->autocfg.inputs[1].pin;
  270. /* NOTE: this assumes that there are only two inputs, the
  271. * first is the real internal mic and the second is HP/mic jack.
  272. */
  273. val = snd_hda_get_default_vref(codec, pin);
  274. /* This pin does not have vref caps - let's enable vref on pin 0x18
  275. instead, as suggested by Realtek */
  276. if (val == AC_PINCTL_VREF_HIZ) {
  277. const hda_nid_t vref_pin = 0x18;
  278. /* Sanity check pin 0x18 */
  279. if (get_wcaps_type(get_wcaps(codec, vref_pin)) == AC_WID_PIN &&
  280. get_defcfg_connect(snd_hda_codec_get_pincfg(codec, vref_pin)) == AC_JACK_PORT_NONE) {
  281. unsigned int vref_val = snd_hda_get_default_vref(codec, vref_pin);
  282. if (vref_val != AC_PINCTL_VREF_HIZ)
  283. snd_hda_set_pin_ctl(codec, vref_pin, PIN_IN | (set_as_mic ? vref_val : 0));
  284. }
  285. }
  286. val = set_as_mic ? val | PIN_IN : PIN_HP;
  287. snd_hda_set_pin_ctl(codec, pin, val);
  288. spec->automute_speaker = !set_as_mic;
  289. call_update_outputs(codec);
  290. }
  291. /* select the given imux item; either unmute exclusively or select the route */
  292. static int alc_mux_select(struct hda_codec *codec, unsigned int adc_idx,
  293. unsigned int idx, bool force)
  294. {
  295. struct alc_spec *spec = codec->spec;
  296. const struct hda_input_mux *imux;
  297. unsigned int mux_idx;
  298. int i, type, num_conns;
  299. hda_nid_t nid;
  300. if (!spec->input_mux)
  301. return 0;
  302. mux_idx = adc_idx >= spec->num_mux_defs ? 0 : adc_idx;
  303. imux = &spec->input_mux[mux_idx];
  304. if (!imux->num_items && mux_idx > 0)
  305. imux = &spec->input_mux[0];
  306. if (!imux->num_items)
  307. return 0;
  308. if (idx >= imux->num_items)
  309. idx = imux->num_items - 1;
  310. if (spec->cur_mux[adc_idx] == idx && !force)
  311. return 0;
  312. spec->cur_mux[adc_idx] = idx;
  313. if (spec->shared_mic_hp)
  314. update_shared_mic_hp(codec, spec->cur_mux[adc_idx]);
  315. if (spec->dyn_adc_switch) {
  316. alc_dyn_adc_pcm_resetup(codec, idx);
  317. adc_idx = spec->dyn_adc_idx[idx];
  318. }
  319. nid = get_capsrc(spec, adc_idx);
  320. /* no selection? */
  321. num_conns = snd_hda_get_num_conns(codec, nid);
  322. if (num_conns <= 1)
  323. return 1;
  324. type = get_wcaps_type(get_wcaps(codec, nid));
  325. if (type == AC_WID_AUD_MIX) {
  326. /* Matrix-mixer style (e.g. ALC882) */
  327. int active = imux->items[idx].index;
  328. for (i = 0; i < num_conns; i++) {
  329. unsigned int v = (i == active) ? 0 : HDA_AMP_MUTE;
  330. snd_hda_codec_amp_stereo(codec, nid, HDA_INPUT, i,
  331. HDA_AMP_MUTE, v);
  332. }
  333. } else {
  334. /* MUX style (e.g. ALC880) */
  335. snd_hda_codec_write_cache(codec, nid, 0,
  336. AC_VERB_SET_CONNECT_SEL,
  337. imux->items[idx].index);
  338. }
  339. alc_inv_dmic_sync(codec, true);
  340. return 1;
  341. }
  342. static int alc_mux_enum_put(struct snd_kcontrol *kcontrol,
  343. struct snd_ctl_elem_value *ucontrol)
  344. {
  345. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  346. unsigned int adc_idx = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id);
  347. return alc_mux_select(codec, adc_idx,
  348. ucontrol->value.enumerated.item[0], false);
  349. }
  350. /*
  351. * set up the input pin config (depending on the given auto-pin type)
  352. */
  353. static void alc_set_input_pin(struct hda_codec *codec, hda_nid_t nid,
  354. int auto_pin_type)
  355. {
  356. unsigned int val = PIN_IN;
  357. if (auto_pin_type == AUTO_PIN_MIC)
  358. val |= snd_hda_get_default_vref(codec, nid);
  359. snd_hda_set_pin_ctl(codec, nid, val);
  360. }
  361. /*
  362. * Append the given mixer and verb elements for the later use
  363. * The mixer array is referred in build_controls(), and init_verbs are
  364. * called in init().
  365. */
  366. static void add_mixer(struct alc_spec *spec, const struct snd_kcontrol_new *mix)
  367. {
  368. if (snd_BUG_ON(spec->num_mixers >= ARRAY_SIZE(spec->mixers)))
  369. return;
  370. spec->mixers[spec->num_mixers++] = mix;
  371. }
  372. /*
  373. * GPIO setup tables, used in initialization
  374. */
  375. /* Enable GPIO mask and set output */
  376. static const struct hda_verb alc_gpio1_init_verbs[] = {
  377. {0x01, AC_VERB_SET_GPIO_MASK, 0x01},
  378. {0x01, AC_VERB_SET_GPIO_DIRECTION, 0x01},
  379. {0x01, AC_VERB_SET_GPIO_DATA, 0x01},
  380. { }
  381. };
  382. static const struct hda_verb alc_gpio2_init_verbs[] = {
  383. {0x01, AC_VERB_SET_GPIO_MASK, 0x02},
  384. {0x01, AC_VERB_SET_GPIO_DIRECTION, 0x02},
  385. {0x01, AC_VERB_SET_GPIO_DATA, 0x02},
  386. { }
  387. };
  388. static const struct hda_verb alc_gpio3_init_verbs[] = {
  389. {0x01, AC_VERB_SET_GPIO_MASK, 0x03},
  390. {0x01, AC_VERB_SET_GPIO_DIRECTION, 0x03},
  391. {0x01, AC_VERB_SET_GPIO_DATA, 0x03},
  392. { }
  393. };
  394. /*
  395. * Fix hardware PLL issue
  396. * On some codecs, the analog PLL gating control must be off while
  397. * the default value is 1.
  398. */
  399. static void alc_fix_pll(struct hda_codec *codec)
  400. {
  401. struct alc_spec *spec = codec->spec;
  402. unsigned int val;
  403. if (!spec->pll_nid)
  404. return;
  405. snd_hda_codec_write(codec, spec->pll_nid, 0, AC_VERB_SET_COEF_INDEX,
  406. spec->pll_coef_idx);
  407. val = snd_hda_codec_read(codec, spec->pll_nid, 0,
  408. AC_VERB_GET_PROC_COEF, 0);
  409. snd_hda_codec_write(codec, spec->pll_nid, 0, AC_VERB_SET_COEF_INDEX,
  410. spec->pll_coef_idx);
  411. snd_hda_codec_write(codec, spec->pll_nid, 0, AC_VERB_SET_PROC_COEF,
  412. val & ~(1 << spec->pll_coef_bit));
  413. }
  414. static void alc_fix_pll_init(struct hda_codec *codec, hda_nid_t nid,
  415. unsigned int coef_idx, unsigned int coef_bit)
  416. {
  417. struct alc_spec *spec = codec->spec;
  418. spec->pll_nid = nid;
  419. spec->pll_coef_idx = coef_idx;
  420. spec->pll_coef_bit = coef_bit;
  421. alc_fix_pll(codec);
  422. }
  423. /*
  424. * Jack detections for HP auto-mute and mic-switch
  425. */
  426. /* check each pin in the given array; returns true if any of them is plugged */
  427. static bool detect_jacks(struct hda_codec *codec, int num_pins, hda_nid_t *pins)
  428. {
  429. int i, present = 0;
  430. for (i = 0; i < num_pins; i++) {
  431. hda_nid_t nid = pins[i];
  432. if (!nid)
  433. break;
  434. present |= snd_hda_jack_detect(codec, nid);
  435. }
  436. return present;
  437. }
  438. /* standard HP/line-out auto-mute helper */
  439. static void do_automute(struct hda_codec *codec, int num_pins, hda_nid_t *pins,
  440. bool mute, bool hp_out)
  441. {
  442. struct alc_spec *spec = codec->spec;
  443. unsigned int mute_bits = mute ? HDA_AMP_MUTE : 0;
  444. unsigned int pin_bits = mute ? 0 : (hp_out ? PIN_HP : PIN_OUT);
  445. int i;
  446. for (i = 0; i < num_pins; i++) {
  447. hda_nid_t nid = pins[i];
  448. unsigned int val;
  449. if (!nid)
  450. break;
  451. switch (spec->automute_mode) {
  452. case ALC_AUTOMUTE_PIN:
  453. /* don't reset VREF value in case it's controlling
  454. * the amp (see alc861_fixup_asus_amp_vref_0f())
  455. */
  456. if (spec->keep_vref_in_automute) {
  457. val = snd_hda_codec_read(codec, nid, 0,
  458. AC_VERB_GET_PIN_WIDGET_CONTROL, 0);
  459. val &= ~PIN_HP;
  460. } else
  461. val = 0;
  462. val |= pin_bits;
  463. snd_hda_set_pin_ctl(codec, nid, val);
  464. break;
  465. case ALC_AUTOMUTE_AMP:
  466. snd_hda_codec_amp_stereo(codec, nid, HDA_OUTPUT, 0,
  467. HDA_AMP_MUTE, mute_bits);
  468. break;
  469. case ALC_AUTOMUTE_MIXER:
  470. nid = spec->automute_mixer_nid[i];
  471. if (!nid)
  472. break;
  473. snd_hda_codec_amp_stereo(codec, nid, HDA_INPUT, 0,
  474. HDA_AMP_MUTE, mute_bits);
  475. snd_hda_codec_amp_stereo(codec, nid, HDA_INPUT, 1,
  476. HDA_AMP_MUTE, mute_bits);
  477. break;
  478. }
  479. }
  480. }
  481. /* Toggle outputs muting */
  482. static void update_outputs(struct hda_codec *codec)
  483. {
  484. struct alc_spec *spec = codec->spec;
  485. int on;
  486. /* Control HP pins/amps depending on master_mute state;
  487. * in general, HP pins/amps control should be enabled in all cases,
  488. * but currently set only for master_mute, just to be safe
  489. */
  490. if (!spec->shared_mic_hp) /* don't change HP-pin when shared with mic */
  491. do_automute(codec, ARRAY_SIZE(spec->autocfg.hp_pins),
  492. spec->autocfg.hp_pins, spec->master_mute, true);
  493. if (!spec->automute_speaker)
  494. on = 0;
  495. else
  496. on = spec->hp_jack_present | spec->line_jack_present;
  497. on |= spec->master_mute;
  498. do_automute(codec, ARRAY_SIZE(spec->autocfg.speaker_pins),
  499. spec->autocfg.speaker_pins, on, false);
  500. /* toggle line-out mutes if needed, too */
  501. /* if LO is a copy of either HP or Speaker, don't need to handle it */
  502. if (spec->autocfg.line_out_pins[0] == spec->autocfg.hp_pins[0] ||
  503. spec->autocfg.line_out_pins[0] == spec->autocfg.speaker_pins[0])
  504. return;
  505. if (!spec->automute_lo)
  506. on = 0;
  507. else
  508. on = spec->hp_jack_present;
  509. on |= spec->master_mute;
  510. do_automute(codec, ARRAY_SIZE(spec->autocfg.line_out_pins),
  511. spec->autocfg.line_out_pins, on, false);
  512. }
  513. static void call_update_outputs(struct hda_codec *codec)
  514. {
  515. struct alc_spec *spec = codec->spec;
  516. if (spec->automute_hook)
  517. spec->automute_hook(codec);
  518. else
  519. update_outputs(codec);
  520. }
  521. /* standard HP-automute helper */
  522. static void alc_hp_automute(struct hda_codec *codec)
  523. {
  524. struct alc_spec *spec = codec->spec;
  525. spec->hp_jack_present =
  526. detect_jacks(codec, ARRAY_SIZE(spec->autocfg.hp_pins),
  527. spec->autocfg.hp_pins);
  528. if (!spec->detect_hp || (!spec->automute_speaker && !spec->automute_lo))
  529. return;
  530. call_update_outputs(codec);
  531. }
  532. /* standard line-out-automute helper */
  533. static void alc_line_automute(struct hda_codec *codec)
  534. {
  535. struct alc_spec *spec = codec->spec;
  536. /* check LO jack only when it's different from HP */
  537. if (spec->autocfg.line_out_pins[0] == spec->autocfg.hp_pins[0])
  538. return;
  539. spec->line_jack_present =
  540. detect_jacks(codec, ARRAY_SIZE(spec->autocfg.line_out_pins),
  541. spec->autocfg.line_out_pins);
  542. if (!spec->automute_speaker || !spec->detect_lo)
  543. return;
  544. call_update_outputs(codec);
  545. }
  546. #define get_connection_index(codec, mux, nid) \
  547. snd_hda_get_conn_index(codec, mux, nid, 0)
  548. /* standard mic auto-switch helper */
  549. static void alc_mic_automute(struct hda_codec *codec)
  550. {
  551. struct alc_spec *spec = codec->spec;
  552. hda_nid_t *pins = spec->imux_pins;
  553. if (!spec->auto_mic || !spec->auto_mic_valid_imux)
  554. return;
  555. if (snd_BUG_ON(!spec->adc_nids))
  556. return;
  557. if (snd_BUG_ON(spec->int_mic_idx < 0 || spec->ext_mic_idx < 0))
  558. return;
  559. if (snd_hda_jack_detect(codec, pins[spec->ext_mic_idx]))
  560. alc_mux_select(codec, 0, spec->ext_mic_idx, false);
  561. else if (spec->dock_mic_idx >= 0 &&
  562. snd_hda_jack_detect(codec, pins[spec->dock_mic_idx]))
  563. alc_mux_select(codec, 0, spec->dock_mic_idx, false);
  564. else
  565. alc_mux_select(codec, 0, spec->int_mic_idx, false);
  566. }
  567. /* handle the specified unsol action (ALC_XXX_EVENT) */
  568. static void alc_exec_unsol_event(struct hda_codec *codec, int action)
  569. {
  570. switch (action) {
  571. case ALC_HP_EVENT:
  572. alc_hp_automute(codec);
  573. break;
  574. case ALC_FRONT_EVENT:
  575. alc_line_automute(codec);
  576. break;
  577. case ALC_MIC_EVENT:
  578. alc_mic_automute(codec);
  579. break;
  580. }
  581. snd_hda_jack_report_sync(codec);
  582. }
  583. /* update the master volume per volume-knob's unsol event */
  584. static void alc_update_knob_master(struct hda_codec *codec, hda_nid_t nid)
  585. {
  586. unsigned int val;
  587. struct snd_kcontrol *kctl;
  588. struct snd_ctl_elem_value *uctl;
  589. kctl = snd_hda_find_mixer_ctl(codec, "Master Playback Volume");
  590. if (!kctl)
  591. return;
  592. uctl = kzalloc(sizeof(*uctl), GFP_KERNEL);
  593. if (!uctl)
  594. return;
  595. val = snd_hda_codec_read(codec, nid, 0,
  596. AC_VERB_GET_VOLUME_KNOB_CONTROL, 0);
  597. val &= HDA_AMP_VOLMASK;
  598. uctl->value.integer.value[0] = val;
  599. uctl->value.integer.value[1] = val;
  600. kctl->put(kctl, uctl);
  601. kfree(uctl);
  602. }
  603. /* unsolicited event for HP jack sensing */
  604. static void alc_unsol_event(struct hda_codec *codec, unsigned int res)
  605. {
  606. int action;
  607. if (codec->vendor_id == 0x10ec0880)
  608. res >>= 28;
  609. else
  610. res >>= 26;
  611. action = snd_hda_jack_get_action(codec, res);
  612. if (action == ALC_DCVOL_EVENT) {
  613. /* Execute the dc-vol event here as it requires the NID
  614. * but we don't pass NID to alc_exec_unsol_event().
  615. * Once when we convert all static quirks to the auto-parser,
  616. * this can be integerated into there.
  617. */
  618. struct hda_jack_tbl *jack;
  619. jack = snd_hda_jack_tbl_get_from_tag(codec, res);
  620. if (jack)
  621. alc_update_knob_master(codec, jack->nid);
  622. return;
  623. }
  624. alc_exec_unsol_event(codec, action);
  625. }
  626. /* call init functions of standard auto-mute helpers */
  627. static void alc_inithook(struct hda_codec *codec)
  628. {
  629. alc_hp_automute(codec);
  630. alc_line_automute(codec);
  631. alc_mic_automute(codec);
  632. }
  633. /* additional initialization for ALC888 variants */
  634. static void alc888_coef_init(struct hda_codec *codec)
  635. {
  636. unsigned int tmp;
  637. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX, 0);
  638. tmp = snd_hda_codec_read(codec, 0x20, 0, AC_VERB_GET_PROC_COEF, 0);
  639. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX, 7);
  640. if ((tmp & 0xf0) == 0x20)
  641. /* alc888S-VC */
  642. snd_hda_codec_read(codec, 0x20, 0,
  643. AC_VERB_SET_PROC_COEF, 0x830);
  644. else
  645. /* alc888-VB */
  646. snd_hda_codec_read(codec, 0x20, 0,
  647. AC_VERB_SET_PROC_COEF, 0x3030);
  648. }
  649. /* additional initialization for ALC889 variants */
  650. static void alc889_coef_init(struct hda_codec *codec)
  651. {
  652. unsigned int tmp;
  653. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX, 7);
  654. tmp = snd_hda_codec_read(codec, 0x20, 0, AC_VERB_GET_PROC_COEF, 0);
  655. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX, 7);
  656. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_PROC_COEF, tmp|0x2010);
  657. }
  658. /* turn on/off EAPD control (only if available) */
  659. static void set_eapd(struct hda_codec *codec, hda_nid_t nid, int on)
  660. {
  661. if (get_wcaps_type(get_wcaps(codec, nid)) != AC_WID_PIN)
  662. return;
  663. if (snd_hda_query_pin_caps(codec, nid) & AC_PINCAP_EAPD)
  664. snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_EAPD_BTLENABLE,
  665. on ? 2 : 0);
  666. }
  667. /* turn on/off EAPD controls of the codec */
  668. static void alc_auto_setup_eapd(struct hda_codec *codec, bool on)
  669. {
  670. /* We currently only handle front, HP */
  671. static hda_nid_t pins[] = {
  672. 0x0f, 0x10, 0x14, 0x15, 0
  673. };
  674. hda_nid_t *p;
  675. for (p = pins; *p; p++)
  676. set_eapd(codec, *p, on);
  677. }
  678. /* generic shutup callback;
  679. * just turning off EPAD and a little pause for avoiding pop-noise
  680. */
  681. static void alc_eapd_shutup(struct hda_codec *codec)
  682. {
  683. alc_auto_setup_eapd(codec, false);
  684. msleep(200);
  685. }
  686. /* generic EAPD initialization */
  687. static void alc_auto_init_amp(struct hda_codec *codec, int type)
  688. {
  689. unsigned int tmp;
  690. alc_auto_setup_eapd(codec, true);
  691. switch (type) {
  692. case ALC_INIT_GPIO1:
  693. snd_hda_sequence_write(codec, alc_gpio1_init_verbs);
  694. break;
  695. case ALC_INIT_GPIO2:
  696. snd_hda_sequence_write(codec, alc_gpio2_init_verbs);
  697. break;
  698. case ALC_INIT_GPIO3:
  699. snd_hda_sequence_write(codec, alc_gpio3_init_verbs);
  700. break;
  701. case ALC_INIT_DEFAULT:
  702. switch (codec->vendor_id) {
  703. case 0x10ec0260:
  704. snd_hda_codec_write(codec, 0x1a, 0,
  705. AC_VERB_SET_COEF_INDEX, 7);
  706. tmp = snd_hda_codec_read(codec, 0x1a, 0,
  707. AC_VERB_GET_PROC_COEF, 0);
  708. snd_hda_codec_write(codec, 0x1a, 0,
  709. AC_VERB_SET_COEF_INDEX, 7);
  710. snd_hda_codec_write(codec, 0x1a, 0,
  711. AC_VERB_SET_PROC_COEF,
  712. tmp | 0x2010);
  713. break;
  714. case 0x10ec0262:
  715. case 0x10ec0880:
  716. case 0x10ec0882:
  717. case 0x10ec0883:
  718. case 0x10ec0885:
  719. case 0x10ec0887:
  720. /*case 0x10ec0889:*/ /* this causes an SPDIF problem */
  721. alc889_coef_init(codec);
  722. break;
  723. case 0x10ec0888:
  724. alc888_coef_init(codec);
  725. break;
  726. #if 0 /* XXX: This may cause the silent output on speaker on some machines */
  727. case 0x10ec0267:
  728. case 0x10ec0268:
  729. snd_hda_codec_write(codec, 0x20, 0,
  730. AC_VERB_SET_COEF_INDEX, 7);
  731. tmp = snd_hda_codec_read(codec, 0x20, 0,
  732. AC_VERB_GET_PROC_COEF, 0);
  733. snd_hda_codec_write(codec, 0x20, 0,
  734. AC_VERB_SET_COEF_INDEX, 7);
  735. snd_hda_codec_write(codec, 0x20, 0,
  736. AC_VERB_SET_PROC_COEF,
  737. tmp | 0x3000);
  738. break;
  739. #endif /* XXX */
  740. }
  741. break;
  742. }
  743. }
  744. /*
  745. * Auto-Mute mode mixer enum support
  746. */
  747. static int alc_automute_mode_info(struct snd_kcontrol *kcontrol,
  748. struct snd_ctl_elem_info *uinfo)
  749. {
  750. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  751. struct alc_spec *spec = codec->spec;
  752. static const char * const texts2[] = {
  753. "Disabled", "Enabled"
  754. };
  755. static const char * const texts3[] = {
  756. "Disabled", "Speaker Only", "Line Out+Speaker"
  757. };
  758. const char * const *texts;
  759. uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
  760. uinfo->count = 1;
  761. if (spec->automute_speaker_possible && spec->automute_lo_possible) {
  762. uinfo->value.enumerated.items = 3;
  763. texts = texts3;
  764. } else {
  765. uinfo->value.enumerated.items = 2;
  766. texts = texts2;
  767. }
  768. if (uinfo->value.enumerated.item >= uinfo->value.enumerated.items)
  769. uinfo->value.enumerated.item = uinfo->value.enumerated.items - 1;
  770. strcpy(uinfo->value.enumerated.name,
  771. texts[uinfo->value.enumerated.item]);
  772. return 0;
  773. }
  774. static int alc_automute_mode_get(struct snd_kcontrol *kcontrol,
  775. struct snd_ctl_elem_value *ucontrol)
  776. {
  777. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  778. struct alc_spec *spec = codec->spec;
  779. unsigned int val = 0;
  780. if (spec->automute_speaker)
  781. val++;
  782. if (spec->automute_lo)
  783. val++;
  784. ucontrol->value.enumerated.item[0] = val;
  785. return 0;
  786. }
  787. static int alc_automute_mode_put(struct snd_kcontrol *kcontrol,
  788. struct snd_ctl_elem_value *ucontrol)
  789. {
  790. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  791. struct alc_spec *spec = codec->spec;
  792. switch (ucontrol->value.enumerated.item[0]) {
  793. case 0:
  794. if (!spec->automute_speaker && !spec->automute_lo)
  795. return 0;
  796. spec->automute_speaker = 0;
  797. spec->automute_lo = 0;
  798. break;
  799. case 1:
  800. if (spec->automute_speaker_possible) {
  801. if (!spec->automute_lo && spec->automute_speaker)
  802. return 0;
  803. spec->automute_speaker = 1;
  804. spec->automute_lo = 0;
  805. } else if (spec->automute_lo_possible) {
  806. if (spec->automute_lo)
  807. return 0;
  808. spec->automute_lo = 1;
  809. } else
  810. return -EINVAL;
  811. break;
  812. case 2:
  813. if (!spec->automute_lo_possible || !spec->automute_speaker_possible)
  814. return -EINVAL;
  815. if (spec->automute_speaker && spec->automute_lo)
  816. return 0;
  817. spec->automute_speaker = 1;
  818. spec->automute_lo = 1;
  819. break;
  820. default:
  821. return -EINVAL;
  822. }
  823. call_update_outputs(codec);
  824. return 1;
  825. }
  826. static const struct snd_kcontrol_new alc_automute_mode_enum = {
  827. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  828. .name = "Auto-Mute Mode",
  829. .info = alc_automute_mode_info,
  830. .get = alc_automute_mode_get,
  831. .put = alc_automute_mode_put,
  832. };
  833. static struct snd_kcontrol_new *alc_kcontrol_new(struct alc_spec *spec)
  834. {
  835. snd_array_init(&spec->kctls, sizeof(struct snd_kcontrol_new), 32);
  836. return snd_array_new(&spec->kctls);
  837. }
  838. static int alc_add_automute_mode_enum(struct hda_codec *codec)
  839. {
  840. struct alc_spec *spec = codec->spec;
  841. struct snd_kcontrol_new *knew;
  842. knew = alc_kcontrol_new(spec);
  843. if (!knew)
  844. return -ENOMEM;
  845. *knew = alc_automute_mode_enum;
  846. knew->name = kstrdup("Auto-Mute Mode", GFP_KERNEL);
  847. if (!knew->name)
  848. return -ENOMEM;
  849. return 0;
  850. }
  851. /*
  852. * Check the availability of HP/line-out auto-mute;
  853. * Set up appropriately if really supported
  854. */
  855. static void alc_init_automute(struct hda_codec *codec)
  856. {
  857. struct alc_spec *spec = codec->spec;
  858. struct auto_pin_cfg *cfg = &spec->autocfg;
  859. int present = 0;
  860. int i;
  861. if (cfg->hp_pins[0])
  862. present++;
  863. if (cfg->line_out_pins[0])
  864. present++;
  865. if (cfg->speaker_pins[0])
  866. present++;
  867. if (present < 2) /* need two different output types */
  868. return;
  869. if (!cfg->speaker_pins[0] &&
  870. cfg->line_out_type == AUTO_PIN_SPEAKER_OUT) {
  871. memcpy(cfg->speaker_pins, cfg->line_out_pins,
  872. sizeof(cfg->speaker_pins));
  873. cfg->speaker_outs = cfg->line_outs;
  874. }
  875. if (!cfg->hp_pins[0] &&
  876. cfg->line_out_type == AUTO_PIN_HP_OUT) {
  877. memcpy(cfg->hp_pins, cfg->line_out_pins,
  878. sizeof(cfg->hp_pins));
  879. cfg->hp_outs = cfg->line_outs;
  880. }
  881. spec->automute_mode = ALC_AUTOMUTE_PIN;
  882. for (i = 0; i < cfg->hp_outs; i++) {
  883. hda_nid_t nid = cfg->hp_pins[i];
  884. if (!is_jack_detectable(codec, nid))
  885. continue;
  886. snd_printdd("realtek: Enable HP auto-muting on NID 0x%x\n",
  887. nid);
  888. snd_hda_jack_detect_enable(codec, nid, ALC_HP_EVENT);
  889. spec->detect_hp = 1;
  890. }
  891. if (cfg->line_out_type == AUTO_PIN_LINE_OUT && cfg->line_outs) {
  892. if (cfg->speaker_outs)
  893. for (i = 0; i < cfg->line_outs; i++) {
  894. hda_nid_t nid = cfg->line_out_pins[i];
  895. if (!is_jack_detectable(codec, nid))
  896. continue;
  897. snd_printdd("realtek: Enable Line-Out "
  898. "auto-muting on NID 0x%x\n", nid);
  899. snd_hda_jack_detect_enable(codec, nid,
  900. ALC_FRONT_EVENT);
  901. spec->detect_lo = 1;
  902. }
  903. spec->automute_lo_possible = spec->detect_hp;
  904. }
  905. spec->automute_speaker_possible = cfg->speaker_outs &&
  906. (spec->detect_hp || spec->detect_lo);
  907. spec->automute_lo = spec->automute_lo_possible;
  908. spec->automute_speaker = spec->automute_speaker_possible;
  909. if (spec->automute_speaker_possible || spec->automute_lo_possible)
  910. /* create a control for automute mode */
  911. alc_add_automute_mode_enum(codec);
  912. }
  913. /* return the position of NID in the list, or -1 if not found */
  914. static int find_idx_in_nid_list(hda_nid_t nid, const hda_nid_t *list, int nums)
  915. {
  916. int i;
  917. for (i = 0; i < nums; i++)
  918. if (list[i] == nid)
  919. return i;
  920. return -1;
  921. }
  922. /* check whether dynamic ADC-switching is available */
  923. static bool alc_check_dyn_adc_switch(struct hda_codec *codec)
  924. {
  925. struct alc_spec *spec = codec->spec;
  926. struct hda_input_mux *imux = &spec->private_imux[0];
  927. int i, n, idx;
  928. hda_nid_t cap, pin;
  929. if (imux != spec->input_mux) /* no dynamic imux? */
  930. return false;
  931. for (n = 0; n < spec->num_adc_nids; n++) {
  932. cap = spec->private_capsrc_nids[n];
  933. for (i = 0; i < imux->num_items; i++) {
  934. pin = spec->imux_pins[i];
  935. if (!pin)
  936. return false;
  937. if (get_connection_index(codec, cap, pin) < 0)
  938. break;
  939. }
  940. if (i >= imux->num_items)
  941. return true; /* no ADC-switch is needed */
  942. }
  943. for (i = 0; i < imux->num_items; i++) {
  944. pin = spec->imux_pins[i];
  945. for (n = 0; n < spec->num_adc_nids; n++) {
  946. cap = spec->private_capsrc_nids[n];
  947. idx = get_connection_index(codec, cap, pin);
  948. if (idx >= 0) {
  949. imux->items[i].index = idx;
  950. spec->dyn_adc_idx[i] = n;
  951. break;
  952. }
  953. }
  954. }
  955. snd_printdd("realtek: enabling ADC switching\n");
  956. spec->dyn_adc_switch = 1;
  957. return true;
  958. }
  959. /* check whether all auto-mic pins are valid; setup indices if OK */
  960. static bool alc_auto_mic_check_imux(struct hda_codec *codec)
  961. {
  962. struct alc_spec *spec = codec->spec;
  963. const struct hda_input_mux *imux;
  964. if (!spec->auto_mic)
  965. return false;
  966. if (spec->auto_mic_valid_imux)
  967. return true; /* already checked */
  968. /* fill up imux indices */
  969. if (!alc_check_dyn_adc_switch(codec)) {
  970. spec->auto_mic = 0;
  971. return false;
  972. }
  973. imux = spec->input_mux;
  974. spec->ext_mic_idx = find_idx_in_nid_list(spec->ext_mic_pin,
  975. spec->imux_pins, imux->num_items);
  976. spec->int_mic_idx = find_idx_in_nid_list(spec->int_mic_pin,
  977. spec->imux_pins, imux->num_items);
  978. spec->dock_mic_idx = find_idx_in_nid_list(spec->dock_mic_pin,
  979. spec->imux_pins, imux->num_items);
  980. if (spec->ext_mic_idx < 0 || spec->int_mic_idx < 0) {
  981. spec->auto_mic = 0;
  982. return false; /* no corresponding imux */
  983. }
  984. snd_hda_jack_detect_enable(codec, spec->ext_mic_pin, ALC_MIC_EVENT);
  985. if (spec->dock_mic_pin)
  986. snd_hda_jack_detect_enable(codec, spec->dock_mic_pin,
  987. ALC_MIC_EVENT);
  988. spec->auto_mic_valid_imux = 1;
  989. spec->auto_mic = 1;
  990. return true;
  991. }
  992. /*
  993. * Check the availability of auto-mic switch;
  994. * Set up if really supported
  995. */
  996. static void alc_init_auto_mic(struct hda_codec *codec)
  997. {
  998. struct alc_spec *spec = codec->spec;
  999. struct auto_pin_cfg *cfg = &spec->autocfg;
  1000. hda_nid_t fixed, ext, dock;
  1001. int i;
  1002. if (spec->shared_mic_hp)
  1003. return; /* no auto-mic for the shared I/O */
  1004. spec->ext_mic_idx = spec->int_mic_idx = spec->dock_mic_idx = -1;
  1005. fixed = ext = dock = 0;
  1006. for (i = 0; i < cfg->num_inputs; i++) {
  1007. hda_nid_t nid = cfg->inputs[i].pin;
  1008. unsigned int defcfg;
  1009. defcfg = snd_hda_codec_get_pincfg(codec, nid);
  1010. switch (snd_hda_get_input_pin_attr(defcfg)) {
  1011. case INPUT_PIN_ATTR_INT:
  1012. if (fixed)
  1013. return; /* already occupied */
  1014. if (cfg->inputs[i].type != AUTO_PIN_MIC)
  1015. return; /* invalid type */
  1016. fixed = nid;
  1017. break;
  1018. case INPUT_PIN_ATTR_UNUSED:
  1019. return; /* invalid entry */
  1020. case INPUT_PIN_ATTR_DOCK:
  1021. if (dock)
  1022. return; /* already occupied */
  1023. if (cfg->inputs[i].type > AUTO_PIN_LINE_IN)
  1024. return; /* invalid type */
  1025. dock = nid;
  1026. break;
  1027. default:
  1028. if (ext)
  1029. return; /* already occupied */
  1030. if (cfg->inputs[i].type != AUTO_PIN_MIC)
  1031. return; /* invalid type */
  1032. ext = nid;
  1033. break;
  1034. }
  1035. }
  1036. if (!ext && dock) {
  1037. ext = dock;
  1038. dock = 0;
  1039. }
  1040. if (!ext || !fixed)
  1041. return;
  1042. if (!is_jack_detectable(codec, ext))
  1043. return; /* no unsol support */
  1044. if (dock && !is_jack_detectable(codec, dock))
  1045. return; /* no unsol support */
  1046. /* check imux indices */
  1047. spec->ext_mic_pin = ext;
  1048. spec->int_mic_pin = fixed;
  1049. spec->dock_mic_pin = dock;
  1050. spec->auto_mic = 1;
  1051. if (!alc_auto_mic_check_imux(codec))
  1052. return;
  1053. snd_printdd("realtek: Enable auto-mic switch on NID 0x%x/0x%x/0x%x\n",
  1054. ext, fixed, dock);
  1055. }
  1056. /* check the availabilities of auto-mute and auto-mic switches */
  1057. static void alc_auto_check_switches(struct hda_codec *codec)
  1058. {
  1059. alc_init_automute(codec);
  1060. alc_init_auto_mic(codec);
  1061. }
  1062. /*
  1063. * Realtek SSID verification
  1064. */
  1065. /* Could be any non-zero and even value. When used as fixup, tells
  1066. * the driver to ignore any present sku defines.
  1067. */
  1068. #define ALC_FIXUP_SKU_IGNORE (2)
  1069. static void alc_fixup_sku_ignore(struct hda_codec *codec,
  1070. const struct hda_fixup *fix, int action)
  1071. {
  1072. struct alc_spec *spec = codec->spec;
  1073. if (action == HDA_FIXUP_ACT_PRE_PROBE) {
  1074. spec->cdefine.fixup = 1;
  1075. spec->cdefine.sku_cfg = ALC_FIXUP_SKU_IGNORE;
  1076. }
  1077. }
  1078. static int alc_auto_parse_customize_define(struct hda_codec *codec)
  1079. {
  1080. unsigned int ass, tmp, i;
  1081. unsigned nid = 0;
  1082. struct alc_spec *spec = codec->spec;
  1083. spec->cdefine.enable_pcbeep = 1; /* assume always enabled */
  1084. if (spec->cdefine.fixup) {
  1085. ass = spec->cdefine.sku_cfg;
  1086. if (ass == ALC_FIXUP_SKU_IGNORE)
  1087. return -1;
  1088. goto do_sku;
  1089. }
  1090. ass = codec->subsystem_id & 0xffff;
  1091. if (ass != codec->bus->pci->subsystem_device && (ass & 1))
  1092. goto do_sku;
  1093. nid = 0x1d;
  1094. if (codec->vendor_id == 0x10ec0260)
  1095. nid = 0x17;
  1096. ass = snd_hda_codec_get_pincfg(codec, nid);
  1097. if (!(ass & 1)) {
  1098. printk(KERN_INFO "hda_codec: %s: SKU not ready 0x%08x\n",
  1099. codec->chip_name, ass);
  1100. return -1;
  1101. }
  1102. /* check sum */
  1103. tmp = 0;
  1104. for (i = 1; i < 16; i++) {
  1105. if ((ass >> i) & 1)
  1106. tmp++;
  1107. }
  1108. if (((ass >> 16) & 0xf) != tmp)
  1109. return -1;
  1110. spec->cdefine.port_connectivity = ass >> 30;
  1111. spec->cdefine.enable_pcbeep = (ass & 0x100000) >> 20;
  1112. spec->cdefine.check_sum = (ass >> 16) & 0xf;
  1113. spec->cdefine.customization = ass >> 8;
  1114. do_sku:
  1115. spec->cdefine.sku_cfg = ass;
  1116. spec->cdefine.external_amp = (ass & 0x38) >> 3;
  1117. spec->cdefine.platform_type = (ass & 0x4) >> 2;
  1118. spec->cdefine.swap = (ass & 0x2) >> 1;
  1119. spec->cdefine.override = ass & 0x1;
  1120. snd_printd("SKU: Nid=0x%x sku_cfg=0x%08x\n",
  1121. nid, spec->cdefine.sku_cfg);
  1122. snd_printd("SKU: port_connectivity=0x%x\n",
  1123. spec->cdefine.port_connectivity);
  1124. snd_printd("SKU: enable_pcbeep=0x%x\n", spec->cdefine.enable_pcbeep);
  1125. snd_printd("SKU: check_sum=0x%08x\n", spec->cdefine.check_sum);
  1126. snd_printd("SKU: customization=0x%08x\n", spec->cdefine.customization);
  1127. snd_printd("SKU: external_amp=0x%x\n", spec->cdefine.external_amp);
  1128. snd_printd("SKU: platform_type=0x%x\n", spec->cdefine.platform_type);
  1129. snd_printd("SKU: swap=0x%x\n", spec->cdefine.swap);
  1130. snd_printd("SKU: override=0x%x\n", spec->cdefine.override);
  1131. return 0;
  1132. }
  1133. /* return true if the given NID is found in the list */
  1134. static bool found_in_nid_list(hda_nid_t nid, const hda_nid_t *list, int nums)
  1135. {
  1136. return find_idx_in_nid_list(nid, list, nums) >= 0;
  1137. }
  1138. /* check subsystem ID and set up device-specific initialization;
  1139. * return 1 if initialized, 0 if invalid SSID
  1140. */
  1141. /* 32-bit subsystem ID for BIOS loading in HD Audio codec.
  1142. * 31 ~ 16 : Manufacture ID
  1143. * 15 ~ 8 : SKU ID
  1144. * 7 ~ 0 : Assembly ID
  1145. * port-A --> pin 39/41, port-E --> pin 14/15, port-D --> pin 35/36
  1146. */
  1147. static int alc_subsystem_id(struct hda_codec *codec,
  1148. hda_nid_t porta, hda_nid_t porte,
  1149. hda_nid_t portd, hda_nid_t porti)
  1150. {
  1151. unsigned int ass, tmp, i;
  1152. unsigned nid;
  1153. struct alc_spec *spec = codec->spec;
  1154. if (spec->cdefine.fixup) {
  1155. ass = spec->cdefine.sku_cfg;
  1156. if (ass == ALC_FIXUP_SKU_IGNORE)
  1157. return 0;
  1158. goto do_sku;
  1159. }
  1160. ass = codec->subsystem_id & 0xffff;
  1161. if ((ass != codec->bus->pci->subsystem_device) && (ass & 1))
  1162. goto do_sku;
  1163. /* invalid SSID, check the special NID pin defcfg instead */
  1164. /*
  1165. * 31~30 : port connectivity
  1166. * 29~21 : reserve
  1167. * 20 : PCBEEP input
  1168. * 19~16 : Check sum (15:1)
  1169. * 15~1 : Custom
  1170. * 0 : override
  1171. */
  1172. nid = 0x1d;
  1173. if (codec->vendor_id == 0x10ec0260)
  1174. nid = 0x17;
  1175. ass = snd_hda_codec_get_pincfg(codec, nid);
  1176. snd_printd("realtek: No valid SSID, "
  1177. "checking pincfg 0x%08x for NID 0x%x\n",
  1178. ass, nid);
  1179. if (!(ass & 1))
  1180. return 0;
  1181. if ((ass >> 30) != 1) /* no physical connection */
  1182. return 0;
  1183. /* check sum */
  1184. tmp = 0;
  1185. for (i = 1; i < 16; i++) {
  1186. if ((ass >> i) & 1)
  1187. tmp++;
  1188. }
  1189. if (((ass >> 16) & 0xf) != tmp)
  1190. return 0;
  1191. do_sku:
  1192. snd_printd("realtek: Enabling init ASM_ID=0x%04x CODEC_ID=%08x\n",
  1193. ass & 0xffff, codec->vendor_id);
  1194. /*
  1195. * 0 : override
  1196. * 1 : Swap Jack
  1197. * 2 : 0 --> Desktop, 1 --> Laptop
  1198. * 3~5 : External Amplifier control
  1199. * 7~6 : Reserved
  1200. */
  1201. tmp = (ass & 0x38) >> 3; /* external Amp control */
  1202. switch (tmp) {
  1203. case 1:
  1204. spec->init_amp = ALC_INIT_GPIO1;
  1205. break;
  1206. case 3:
  1207. spec->init_amp = ALC_INIT_GPIO2;
  1208. break;
  1209. case 7:
  1210. spec->init_amp = ALC_INIT_GPIO3;
  1211. break;
  1212. case 5:
  1213. default:
  1214. spec->init_amp = ALC_INIT_DEFAULT;
  1215. break;
  1216. }
  1217. /* is laptop or Desktop and enable the function "Mute internal speaker
  1218. * when the external headphone out jack is plugged"
  1219. */
  1220. if (!(ass & 0x8000))
  1221. return 1;
  1222. /*
  1223. * 10~8 : Jack location
  1224. * 12~11: Headphone out -> 00: PortA, 01: PortE, 02: PortD, 03: Resvered
  1225. * 14~13: Resvered
  1226. * 15 : 1 --> enable the function "Mute internal speaker
  1227. * when the external headphone out jack is plugged"
  1228. */
  1229. if (!spec->autocfg.hp_pins[0] &&
  1230. !(spec->autocfg.line_out_pins[0] &&
  1231. spec->autocfg.line_out_type == AUTO_PIN_HP_OUT)) {
  1232. hda_nid_t nid;
  1233. tmp = (ass >> 11) & 0x3; /* HP to chassis */
  1234. if (tmp == 0)
  1235. nid = porta;
  1236. else if (tmp == 1)
  1237. nid = porte;
  1238. else if (tmp == 2)
  1239. nid = portd;
  1240. else if (tmp == 3)
  1241. nid = porti;
  1242. else
  1243. return 1;
  1244. if (found_in_nid_list(nid, spec->autocfg.line_out_pins,
  1245. spec->autocfg.line_outs))
  1246. return 1;
  1247. spec->autocfg.hp_pins[0] = nid;
  1248. }
  1249. return 1;
  1250. }
  1251. /* Check the validity of ALC subsystem-id
  1252. * ports contains an array of 4 pin NIDs for port-A, E, D and I */
  1253. static void alc_ssid_check(struct hda_codec *codec, const hda_nid_t *ports)
  1254. {
  1255. if (!alc_subsystem_id(codec, ports[0], ports[1], ports[2], ports[3])) {
  1256. struct alc_spec *spec = codec->spec;
  1257. snd_printd("realtek: "
  1258. "Enable default setup for auto mode as fallback\n");
  1259. spec->init_amp = ALC_INIT_DEFAULT;
  1260. }
  1261. }
  1262. /*
  1263. * COEF access helper functions
  1264. */
  1265. static int alc_read_coef_idx(struct hda_codec *codec,
  1266. unsigned int coef_idx)
  1267. {
  1268. unsigned int val;
  1269. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX,
  1270. coef_idx);
  1271. val = snd_hda_codec_read(codec, 0x20, 0,
  1272. AC_VERB_GET_PROC_COEF, 0);
  1273. return val;
  1274. }
  1275. static void alc_write_coef_idx(struct hda_codec *codec, unsigned int coef_idx,
  1276. unsigned int coef_val)
  1277. {
  1278. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_COEF_INDEX,
  1279. coef_idx);
  1280. snd_hda_codec_write(codec, 0x20, 0, AC_VERB_SET_PROC_COEF,
  1281. coef_val);
  1282. }
  1283. /* a special bypass for COEF 0; read the cached value at the second time */
  1284. static unsigned int alc_get_coef0(struct hda_codec *codec)
  1285. {
  1286. struct alc_spec *spec = codec->spec;
  1287. if (!spec->coef0)
  1288. spec->coef0 = alc_read_coef_idx(codec, 0);
  1289. return spec->coef0;
  1290. }
  1291. /*
  1292. * Digital I/O handling
  1293. */
  1294. /* set right pin controls for digital I/O */
  1295. static void alc_auto_init_digital(struct hda_codec *codec)
  1296. {
  1297. struct alc_spec *spec = codec->spec;
  1298. int i;
  1299. hda_nid_t pin, dac;
  1300. for (i = 0; i < spec->autocfg.dig_outs; i++) {
  1301. pin = spec->autocfg.dig_out_pins[i];
  1302. if (!pin)
  1303. continue;
  1304. snd_hda_set_pin_ctl(codec, pin, PIN_OUT);
  1305. if (!i)
  1306. dac = spec->multiout.dig_out_nid;
  1307. else
  1308. dac = spec->slave_dig_outs[i - 1];
  1309. if (!dac || !(get_wcaps(codec, dac) & AC_WCAP_OUT_AMP))
  1310. continue;
  1311. snd_hda_codec_write(codec, dac, 0,
  1312. AC_VERB_SET_AMP_GAIN_MUTE,
  1313. AMP_OUT_UNMUTE);
  1314. }
  1315. pin = spec->autocfg.dig_in_pin;
  1316. if (pin)
  1317. snd_hda_set_pin_ctl(codec, pin, PIN_IN);
  1318. }
  1319. /* parse digital I/Os and set up NIDs in BIOS auto-parse mode */
  1320. static void alc_auto_parse_digital(struct hda_codec *codec)
  1321. {
  1322. struct alc_spec *spec = codec->spec;
  1323. int i, err, nums;
  1324. hda_nid_t dig_nid;
  1325. /* support multiple SPDIFs; the secondary is set up as a slave */
  1326. nums = 0;
  1327. for (i = 0; i < spec->autocfg.dig_outs; i++) {
  1328. hda_nid_t conn[4];
  1329. err = snd_hda_get_connections(codec,
  1330. spec->autocfg.dig_out_pins[i],
  1331. conn, ARRAY_SIZE(conn));
  1332. if (err <= 0)
  1333. continue;
  1334. dig_nid = conn[0]; /* assume the first element is audio-out */
  1335. if (!nums) {
  1336. spec->multiout.dig_out_nid = dig_nid;
  1337. spec->dig_out_type = spec->autocfg.dig_out_type[0];
  1338. } else {
  1339. spec->multiout.slave_dig_outs = spec->slave_dig_outs;
  1340. if (nums >= ARRAY_SIZE(spec->slave_dig_outs) - 1)
  1341. break;
  1342. spec->slave_dig_outs[nums - 1] = dig_nid;
  1343. }
  1344. nums++;
  1345. }
  1346. if (spec->autocfg.dig_in_pin) {
  1347. dig_nid = codec->start_nid;
  1348. for (i = 0; i < codec->num_nodes; i++, dig_nid++) {
  1349. unsigned int wcaps = get_wcaps(codec, dig_nid);
  1350. if (get_wcaps_type(wcaps) != AC_WID_AUD_IN)
  1351. continue;
  1352. if (!(wcaps & AC_WCAP_DIGITAL))
  1353. continue;
  1354. if (!(wcaps & AC_WCAP_CONN_LIST))
  1355. continue;
  1356. err = get_connection_index(codec, dig_nid,
  1357. spec->autocfg.dig_in_pin);
  1358. if (err >= 0) {
  1359. spec->dig_in_nid = dig_nid;
  1360. break;
  1361. }
  1362. }
  1363. }
  1364. }
  1365. /*
  1366. * capture mixer elements
  1367. */
  1368. static int alc_cap_vol_info(struct snd_kcontrol *kcontrol,
  1369. struct snd_ctl_elem_info *uinfo)
  1370. {
  1371. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  1372. struct alc_spec *spec = codec->spec;
  1373. unsigned long val;
  1374. int err;
  1375. mutex_lock(&codec->control_mutex);
  1376. if (spec->vol_in_capsrc)
  1377. val = HDA_COMPOSE_AMP_VAL(spec->capsrc_nids[0], 3, 0, HDA_OUTPUT);
  1378. else
  1379. val = HDA_COMPOSE_AMP_VAL(spec->adc_nids[0], 3, 0, HDA_INPUT);
  1380. kcontrol->private_value = val;
  1381. err = snd_hda_mixer_amp_volume_info(kcontrol, uinfo);
  1382. mutex_unlock(&codec->control_mutex);
  1383. return err;
  1384. }
  1385. static int alc_cap_vol_tlv(struct snd_kcontrol *kcontrol, int op_flag,
  1386. unsigned int size, unsigned int __user *tlv)
  1387. {
  1388. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  1389. struct alc_spec *spec = codec->spec;
  1390. unsigned long val;
  1391. int err;
  1392. mutex_lock(&codec->control_mutex);
  1393. if (spec->vol_in_capsrc)
  1394. val = HDA_COMPOSE_AMP_VAL(spec->capsrc_nids[0], 3, 0, HDA_OUTPUT);
  1395. else
  1396. val = HDA_COMPOSE_AMP_VAL(spec->adc_nids[0], 3, 0, HDA_INPUT);
  1397. kcontrol->private_value = val;
  1398. err = snd_hda_mixer_amp_tlv(kcontrol, op_flag, size, tlv);
  1399. mutex_unlock(&codec->control_mutex);
  1400. return err;
  1401. }
  1402. typedef int (*getput_call_t)(struct snd_kcontrol *kcontrol,
  1403. struct snd_ctl_elem_value *ucontrol);
  1404. static int alc_cap_getput_caller(struct snd_kcontrol *kcontrol,
  1405. struct snd_ctl_elem_value *ucontrol,
  1406. getput_call_t func, bool is_put)
  1407. {
  1408. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  1409. struct alc_spec *spec = codec->spec;
  1410. int i, err = 0;
  1411. mutex_lock(&codec->control_mutex);
  1412. if (is_put && spec->dyn_adc_switch) {
  1413. for (i = 0; i < spec->num_adc_nids; i++) {
  1414. kcontrol->private_value =
  1415. HDA_COMPOSE_AMP_VAL(spec->adc_nids[i],
  1416. 3, 0, HDA_INPUT);
  1417. err = func(kcontrol, ucontrol);
  1418. if (err < 0)
  1419. goto error;
  1420. }
  1421. } else {
  1422. i = snd_ctl_get_ioffidx(kcontrol, &ucontrol->id);
  1423. if (spec->vol_in_capsrc)
  1424. kcontrol->private_value =
  1425. HDA_COMPOSE_AMP_VAL(spec->capsrc_nids[i],
  1426. 3, 0, HDA_OUTPUT);
  1427. else
  1428. kcontrol->private_value =
  1429. HDA_COMPOSE_AMP_VAL(spec->adc_nids[i],
  1430. 3, 0, HDA_INPUT);
  1431. err = func(kcontrol, ucontrol);
  1432. }
  1433. if (err >= 0 && is_put)
  1434. alc_inv_dmic_sync(codec, false);
  1435. error:
  1436. mutex_unlock(&codec->control_mutex);
  1437. return err;
  1438. }
  1439. static int alc_cap_vol_get(struct snd_kcontrol *kcontrol,
  1440. struct snd_ctl_elem_value *ucontrol)
  1441. {
  1442. return alc_cap_getput_caller(kcontrol, ucontrol,
  1443. snd_hda_mixer_amp_volume_get, false);
  1444. }
  1445. static int alc_cap_vol_put(struct snd_kcontrol *kcontrol,
  1446. struct snd_ctl_elem_value *ucontrol)
  1447. {
  1448. return alc_cap_getput_caller(kcontrol, ucontrol,
  1449. snd_hda_mixer_amp_volume_put, true);
  1450. }
  1451. /* capture mixer elements */
  1452. #define alc_cap_sw_info snd_ctl_boolean_stereo_info
  1453. static int alc_cap_sw_get(struct snd_kcontrol *kcontrol,
  1454. struct snd_ctl_elem_value *ucontrol)
  1455. {
  1456. return alc_cap_getput_caller(kcontrol, ucontrol,
  1457. snd_hda_mixer_amp_switch_get, false);
  1458. }
  1459. static int alc_cap_sw_put(struct snd_kcontrol *kcontrol,
  1460. struct snd_ctl_elem_value *ucontrol)
  1461. {
  1462. return alc_cap_getput_caller(kcontrol, ucontrol,
  1463. snd_hda_mixer_amp_switch_put, true);
  1464. }
  1465. #define _DEFINE_CAPMIX(num) \
  1466. { \
  1467. .iface = SNDRV_CTL_ELEM_IFACE_MIXER, \
  1468. .name = "Capture Switch", \
  1469. .access = SNDRV_CTL_ELEM_ACCESS_READWRITE, \
  1470. .count = num, \
  1471. .info = alc_cap_sw_info, \
  1472. .get = alc_cap_sw_get, \
  1473. .put = alc_cap_sw_put, \
  1474. }, \
  1475. { \
  1476. .iface = SNDRV_CTL_ELEM_IFACE_MIXER, \
  1477. .name = "Capture Volume", \
  1478. .access = (SNDRV_CTL_ELEM_ACCESS_READWRITE | \
  1479. SNDRV_CTL_ELEM_ACCESS_TLV_READ | \
  1480. SNDRV_CTL_ELEM_ACCESS_TLV_CALLBACK), \
  1481. .count = num, \
  1482. .info = alc_cap_vol_info, \
  1483. .get = alc_cap_vol_get, \
  1484. .put = alc_cap_vol_put, \
  1485. .tlv = { .c = alc_cap_vol_tlv }, \
  1486. }
  1487. #define _DEFINE_CAPSRC(num) \
  1488. { \
  1489. .iface = SNDRV_CTL_ELEM_IFACE_MIXER, \
  1490. /* .name = "Capture Source", */ \
  1491. .name = "Input Source", \
  1492. .count = num, \
  1493. .info = alc_mux_enum_info, \
  1494. .get = alc_mux_enum_get, \
  1495. .put = alc_mux_enum_put, \
  1496. }
  1497. #define DEFINE_CAPMIX(num) \
  1498. static const struct snd_kcontrol_new alc_capture_mixer ## num[] = { \
  1499. _DEFINE_CAPMIX(num), \
  1500. _DEFINE_CAPSRC(num), \
  1501. { } /* end */ \
  1502. }
  1503. #define DEFINE_CAPMIX_NOSRC(num) \
  1504. static const struct snd_kcontrol_new alc_capture_mixer_nosrc ## num[] = { \
  1505. _DEFINE_CAPMIX(num), \
  1506. { } /* end */ \
  1507. }
  1508. /* up to three ADCs */
  1509. DEFINE_CAPMIX(1);
  1510. DEFINE_CAPMIX(2);
  1511. DEFINE_CAPMIX(3);
  1512. DEFINE_CAPMIX_NOSRC(1);
  1513. DEFINE_CAPMIX_NOSRC(2);
  1514. DEFINE_CAPMIX_NOSRC(3);
  1515. /*
  1516. * Inverted digital-mic handling
  1517. *
  1518. * First off, it's a bit tricky. The "Inverted Internal Mic Capture Switch"
  1519. * gives the additional mute only to the right channel of the digital mic
  1520. * capture stream. This is a workaround for avoiding the almost silence
  1521. * by summing the stereo stream from some (known to be ForteMedia)
  1522. * digital mic unit.
  1523. *
  1524. * The logic is to call alc_inv_dmic_sync() after each action (possibly)
  1525. * modifying ADC amp. When the mute flag is set, it mutes the R-channel
  1526. * without caching so that the cache can still keep the original value.
  1527. * The cached value is then restored when the flag is set off or any other
  1528. * than d-mic is used as the current input source.
  1529. */
  1530. static void alc_inv_dmic_sync(struct hda_codec *codec, bool force)
  1531. {
  1532. struct alc_spec *spec = codec->spec;
  1533. int i;
  1534. if (!spec->inv_dmic_fixup)
  1535. return;
  1536. if (!spec->inv_dmic_muted && !force)
  1537. return;
  1538. for (i = 0; i < spec->num_adc_nids; i++) {
  1539. int src = spec->dyn_adc_switch ? 0 : i;
  1540. bool dmic_fixup = false;
  1541. hda_nid_t nid;
  1542. int parm, dir, v;
  1543. if (spec->inv_dmic_muted &&
  1544. spec->imux_pins[spec->cur_mux[src]] == spec->inv_dmic_pin)
  1545. dmic_fixup = true;
  1546. if (!dmic_fixup && !force)
  1547. continue;
  1548. if (spec->vol_in_capsrc) {
  1549. nid = spec->capsrc_nids[i];
  1550. parm = AC_AMP_SET_RIGHT | AC_AMP_SET_OUTPUT;
  1551. dir = HDA_OUTPUT;
  1552. } else {
  1553. nid = spec->adc_nids[i];
  1554. parm = AC_AMP_SET_RIGHT | AC_AMP_SET_INPUT;
  1555. dir = HDA_INPUT;
  1556. }
  1557. /* we care only right channel */
  1558. v = snd_hda_codec_amp_read(codec, nid, 1, dir, 0);
  1559. if (v & 0x80) /* if already muted, we don't need to touch */
  1560. continue;
  1561. if (dmic_fixup) /* add mute for d-mic */
  1562. v |= 0x80;
  1563. snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  1564. parm | v);
  1565. }
  1566. }
  1567. static int alc_inv_dmic_sw_get(struct snd_kcontrol *kcontrol,
  1568. struct snd_ctl_elem_value *ucontrol)
  1569. {
  1570. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  1571. struct alc_spec *spec = codec->spec;
  1572. ucontrol->value.integer.value[0] = !spec->inv_dmic_muted;
  1573. return 0;
  1574. }
  1575. static int alc_inv_dmic_sw_put(struct snd_kcontrol *kcontrol,
  1576. struct snd_ctl_elem_value *ucontrol)
  1577. {
  1578. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  1579. struct alc_spec *spec = codec->spec;
  1580. unsigned int val = !ucontrol->value.integer.value[0];
  1581. if (val == spec->inv_dmic_muted)
  1582. return 0;
  1583. spec->inv_dmic_muted = val;
  1584. alc_inv_dmic_sync(codec, true);
  1585. return 0;
  1586. }
  1587. static const struct snd_kcontrol_new alc_inv_dmic_sw = {
  1588. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  1589. .info = snd_ctl_boolean_mono_info,
  1590. .get = alc_inv_dmic_sw_get,
  1591. .put = alc_inv_dmic_sw_put,
  1592. };
  1593. static int alc_add_inv_dmic_mixer(struct hda_codec *codec, hda_nid_t nid)
  1594. {
  1595. struct alc_spec *spec = codec->spec;
  1596. struct snd_kcontrol_new *knew = alc_kcontrol_new(spec);
  1597. if (!knew)
  1598. return -ENOMEM;
  1599. *knew = alc_inv_dmic_sw;
  1600. knew->name = kstrdup("Inverted Internal Mic Capture Switch", GFP_KERNEL);
  1601. if (!knew->name)
  1602. return -ENOMEM;
  1603. spec->inv_dmic_fixup = 1;
  1604. spec->inv_dmic_muted = 0;
  1605. spec->inv_dmic_pin = nid;
  1606. return 0;
  1607. }
  1608. /* typically the digital mic is put at node 0x12 */
  1609. static void alc_fixup_inv_dmic_0x12(struct hda_codec *codec,
  1610. const struct alc_fixup *fix, int action)
  1611. {
  1612. if (action == ALC_FIXUP_ACT_PROBE)
  1613. alc_add_inv_dmic_mixer(codec, 0x12);
  1614. }
  1615. /*
  1616. * virtual master controls
  1617. */
  1618. /*
  1619. * slave controls for virtual master
  1620. */
  1621. static const char * const alc_slave_pfxs[] = {
  1622. "Front", "Surround", "Center", "LFE", "Side",
  1623. "Headphone", "Speaker", "Mono", "Line Out",
  1624. "CLFE", "Bass Speaker", "PCM",
  1625. NULL,
  1626. };
  1627. /*
  1628. * build control elements
  1629. */
  1630. #define NID_MAPPING (-1)
  1631. #define SUBDEV_SPEAKER_ (0 << 6)
  1632. #define SUBDEV_HP_ (1 << 6)
  1633. #define SUBDEV_LINE_ (2 << 6)
  1634. #define SUBDEV_SPEAKER(x) (SUBDEV_SPEAKER_ | ((x) & 0x3f))
  1635. #define SUBDEV_HP(x) (SUBDEV_HP_ | ((x) & 0x3f))
  1636. #define SUBDEV_LINE(x) (SUBDEV_LINE_ | ((x) & 0x3f))
  1637. static void alc_free_kctls(struct hda_codec *codec);
  1638. #ifdef CONFIG_SND_HDA_INPUT_BEEP
  1639. /* additional beep mixers; the actual parameters are overwritten at build */
  1640. static const struct snd_kcontrol_new alc_beep_mixer[] = {
  1641. HDA_CODEC_VOLUME("Beep Playback Volume", 0, 0, HDA_INPUT),
  1642. HDA_CODEC_MUTE_BEEP("Beep Playback Switch", 0, 0, HDA_INPUT),
  1643. { } /* end */
  1644. };
  1645. #endif
  1646. static int __alc_build_controls(struct hda_codec *codec)
  1647. {
  1648. struct alc_spec *spec = codec->spec;
  1649. struct snd_kcontrol *kctl = NULL;
  1650. const struct snd_kcontrol_new *knew;
  1651. int i, j, err;
  1652. unsigned int u;
  1653. hda_nid_t nid;
  1654. for (i = 0; i < spec->num_mixers; i++) {
  1655. err = snd_hda_add_new_ctls(codec, spec->mixers[i]);
  1656. if (err < 0)
  1657. return err;
  1658. }
  1659. if (spec->cap_mixer) {
  1660. err = snd_hda_add_new_ctls(codec, spec->cap_mixer);
  1661. if (err < 0)
  1662. return err;
  1663. }
  1664. if (spec->multiout.dig_out_nid) {
  1665. err = snd_hda_create_spdif_out_ctls(codec,
  1666. spec->multiout.dig_out_nid,
  1667. spec->multiout.dig_out_nid);
  1668. if (err < 0)
  1669. return err;
  1670. if (!spec->no_analog) {
  1671. err = snd_hda_create_spdif_share_sw(codec,
  1672. &spec->multiout);
  1673. if (err < 0)
  1674. return err;
  1675. spec->multiout.share_spdif = 1;
  1676. }
  1677. }
  1678. if (spec->dig_in_nid) {
  1679. err = snd_hda_create_spdif_in_ctls(codec, spec->dig_in_nid);
  1680. if (err < 0)
  1681. return err;
  1682. }
  1683. #ifdef CONFIG_SND_HDA_INPUT_BEEP
  1684. /* create beep controls if needed */
  1685. if (spec->beep_amp) {
  1686. const struct snd_kcontrol_new *knew;
  1687. for (knew = alc_beep_mixer; knew->name; knew++) {
  1688. struct snd_kcontrol *kctl;
  1689. kctl = snd_ctl_new1(knew, codec);
  1690. if (!kctl)
  1691. return -ENOMEM;
  1692. kctl->private_value = spec->beep_amp;
  1693. err = snd_hda_ctl_add(codec, 0, kctl);
  1694. if (err < 0)
  1695. return err;
  1696. }
  1697. }
  1698. #endif
  1699. /* if we have no master control, let's create it */
  1700. if (!spec->no_analog &&
  1701. !snd_hda_find_mixer_ctl(codec, "Master Playback Volume")) {
  1702. unsigned int vmaster_tlv[4];
  1703. snd_hda_set_vmaster_tlv(codec, spec->vmaster_nid,
  1704. HDA_OUTPUT, vmaster_tlv);
  1705. err = snd_hda_add_vmaster(codec, "Master Playback Volume",
  1706. vmaster_tlv, alc_slave_pfxs,
  1707. "Playback Volume");
  1708. if (err < 0)
  1709. return err;
  1710. }
  1711. if (!spec->no_analog &&
  1712. !snd_hda_find_mixer_ctl(codec, "Master Playback Switch")) {
  1713. err = __snd_hda_add_vmaster(codec, "Master Playback Switch",
  1714. NULL, alc_slave_pfxs,
  1715. "Playback Switch",
  1716. true, &spec->vmaster_mute.sw_kctl);
  1717. if (err < 0)
  1718. return err;
  1719. }
  1720. /* assign Capture Source enums to NID */
  1721. if (spec->capsrc_nids || spec->adc_nids) {
  1722. kctl = snd_hda_find_mixer_ctl(codec, "Capture Source");
  1723. if (!kctl)
  1724. kctl = snd_hda_find_mixer_ctl(codec, "Input Source");
  1725. for (i = 0; kctl && i < kctl->count; i++) {
  1726. err = snd_hda_add_nid(codec, kctl, i,
  1727. get_capsrc(spec, i));
  1728. if (err < 0)
  1729. return err;
  1730. }
  1731. }
  1732. if (spec->cap_mixer && spec->adc_nids) {
  1733. const char *kname = kctl ? kctl->id.name : NULL;
  1734. for (knew = spec->cap_mixer; knew->name; knew++) {
  1735. if (kname && strcmp(knew->name, kname) == 0)
  1736. continue;
  1737. kctl = snd_hda_find_mixer_ctl(codec, knew->name);
  1738. for (i = 0; kctl && i < kctl->count; i++) {
  1739. err = snd_hda_add_nid(codec, kctl, i,
  1740. spec->adc_nids[i]);
  1741. if (err < 0)
  1742. return err;
  1743. }
  1744. }
  1745. }
  1746. /* other nid->control mapping */
  1747. for (i = 0; i < spec->num_mixers; i++) {
  1748. for (knew = spec->mixers[i]; knew->name; knew++) {
  1749. if (knew->iface != NID_MAPPING)
  1750. continue;
  1751. kctl = snd_hda_find_mixer_ctl(codec, knew->name);
  1752. if (kctl == NULL)
  1753. continue;
  1754. u = knew->subdevice;
  1755. for (j = 0; j < 4; j++, u >>= 8) {
  1756. nid = u & 0x3f;
  1757. if (nid == 0)
  1758. continue;
  1759. switch (u & 0xc0) {
  1760. case SUBDEV_SPEAKER_:
  1761. nid = spec->autocfg.speaker_pins[nid];
  1762. break;
  1763. case SUBDEV_LINE_:
  1764. nid = spec->autocfg.line_out_pins[nid];
  1765. break;
  1766. case SUBDEV_HP_:
  1767. nid = spec->autocfg.hp_pins[nid];
  1768. break;
  1769. default:
  1770. continue;
  1771. }
  1772. err = snd_hda_add_nid(codec, kctl, 0, nid);
  1773. if (err < 0)
  1774. return err;
  1775. }
  1776. u = knew->private_value;
  1777. for (j = 0; j < 4; j++, u >>= 8) {
  1778. nid = u & 0xff;
  1779. if (nid == 0)
  1780. continue;
  1781. err = snd_hda_add_nid(codec, kctl, 0, nid);
  1782. if (err < 0)
  1783. return err;
  1784. }
  1785. }
  1786. }
  1787. alc_free_kctls(codec); /* no longer needed */
  1788. return 0;
  1789. }
  1790. static int alc_build_jacks(struct hda_codec *codec)
  1791. {
  1792. struct alc_spec *spec = codec->spec;
  1793. if (spec->shared_mic_hp) {
  1794. int err;
  1795. int nid = spec->autocfg.inputs[1].pin;
  1796. err = snd_hda_jack_add_kctl(codec, nid, "Headphone Mic", 0);
  1797. if (err < 0)
  1798. return err;
  1799. err = snd_hda_jack_detect_enable(codec, nid, 0);
  1800. if (err < 0)
  1801. return err;
  1802. }
  1803. return snd_hda_jack_add_kctls(codec, &spec->autocfg);
  1804. }
  1805. static int alc_build_controls(struct hda_codec *codec)
  1806. {
  1807. int err = __alc_build_controls(codec);
  1808. if (err < 0)
  1809. return err;
  1810. err = alc_build_jacks(codec);
  1811. if (err < 0)
  1812. return err;
  1813. alc_apply_fixup(codec, ALC_FIXUP_ACT_BUILD);
  1814. return 0;
  1815. }
  1816. /*
  1817. * Common callbacks
  1818. */
  1819. static void alc_init_special_input_src(struct hda_codec *codec);
  1820. static void alc_auto_init_std(struct hda_codec *codec);
  1821. static int alc_init(struct hda_codec *codec)
  1822. {
  1823. struct alc_spec *spec = codec->spec;
  1824. if (spec->init_hook)
  1825. spec->init_hook(codec);
  1826. alc_fix_pll(codec);
  1827. alc_auto_init_amp(codec, spec->init_amp);
  1828. snd_hda_gen_apply_verbs(codec);
  1829. alc_init_special_input_src(codec);
  1830. alc_auto_init_std(codec);
  1831. alc_apply_fixup(codec, ALC_FIXUP_ACT_INIT);
  1832. snd_hda_jack_report_sync(codec);
  1833. hda_call_check_power_status(codec, 0x01);
  1834. return 0;
  1835. }
  1836. #ifdef CONFIG_SND_HDA_POWER_SAVE
  1837. static int alc_check_power_status(struct hda_codec *codec, hda_nid_t nid)
  1838. {
  1839. struct alc_spec *spec = codec->spec;
  1840. return snd_hda_check_amp_list_power(codec, &spec->loopback, nid);
  1841. }
  1842. #endif
  1843. /*
  1844. * Analog playback callbacks
  1845. */
  1846. static int alc_playback_pcm_open(struct hda_pcm_stream *hinfo,
  1847. struct hda_codec *codec,
  1848. struct snd_pcm_substream *substream)
  1849. {
  1850. struct alc_spec *spec = codec->spec;
  1851. return snd_hda_multi_out_analog_open(codec, &spec->multiout, substream,
  1852. hinfo);
  1853. }
  1854. static int alc_playback_pcm_prepare(struct hda_pcm_stream *hinfo,
  1855. struct hda_codec *codec,
  1856. unsigned int stream_tag,
  1857. unsigned int format,
  1858. struct snd_pcm_substream *substream)
  1859. {
  1860. struct alc_spec *spec = codec->spec;
  1861. return snd_hda_multi_out_analog_prepare(codec, &spec->multiout,
  1862. stream_tag, format, substream);
  1863. }
  1864. static int alc_playback_pcm_cleanup(struct hda_pcm_stream *hinfo,
  1865. struct hda_codec *codec,
  1866. struct snd_pcm_substream *substream)
  1867. {
  1868. struct alc_spec *spec = codec->spec;
  1869. return snd_hda_multi_out_analog_cleanup(codec, &spec->multiout);
  1870. }
  1871. /*
  1872. * Digital out
  1873. */
  1874. static int alc_dig_playback_pcm_open(struct hda_pcm_stream *hinfo,
  1875. struct hda_codec *codec,
  1876. struct snd_pcm_substream *substream)
  1877. {
  1878. struct alc_spec *spec = codec->spec;
  1879. return snd_hda_multi_out_dig_open(codec, &spec->multiout);
  1880. }
  1881. static int alc_dig_playback_pcm_prepare(struct hda_pcm_stream *hinfo,
  1882. struct hda_codec *codec,
  1883. unsigned int stream_tag,
  1884. unsigned int format,
  1885. struct snd_pcm_substream *substream)
  1886. {
  1887. struct alc_spec *spec = codec->spec;
  1888. return snd_hda_multi_out_dig_prepare(codec, &spec->multiout,
  1889. stream_tag, format, substream);
  1890. }
  1891. static int alc_dig_playback_pcm_cleanup(struct hda_pcm_stream *hinfo,
  1892. struct hda_codec *codec,
  1893. struct snd_pcm_substream *substream)
  1894. {
  1895. struct alc_spec *spec = codec->spec;
  1896. return snd_hda_multi_out_dig_cleanup(codec, &spec->multiout);
  1897. }
  1898. static int alc_dig_playback_pcm_close(struct hda_pcm_stream *hinfo,
  1899. struct hda_codec *codec,
  1900. struct snd_pcm_substream *substream)
  1901. {
  1902. struct alc_spec *spec = codec->spec;
  1903. return snd_hda_multi_out_dig_close(codec, &spec->multiout);
  1904. }
  1905. /*
  1906. * Analog capture
  1907. */
  1908. static int alc_alt_capture_pcm_prepare(struct hda_pcm_stream *hinfo,
  1909. struct hda_codec *codec,
  1910. unsigned int stream_tag,
  1911. unsigned int format,
  1912. struct snd_pcm_substream *substream)
  1913. {
  1914. struct alc_spec *spec = codec->spec;
  1915. snd_hda_codec_setup_stream(codec, spec->adc_nids[substream->number + 1],
  1916. stream_tag, 0, format);
  1917. return 0;
  1918. }
  1919. static int alc_alt_capture_pcm_cleanup(struct hda_pcm_stream *hinfo,
  1920. struct hda_codec *codec,
  1921. struct snd_pcm_substream *substream)
  1922. {
  1923. struct alc_spec *spec = codec->spec;
  1924. snd_hda_codec_cleanup_stream(codec,
  1925. spec->adc_nids[substream->number + 1]);
  1926. return 0;
  1927. }
  1928. /* analog capture with dynamic dual-adc changes */
  1929. static int dyn_adc_capture_pcm_prepare(struct hda_pcm_stream *hinfo,
  1930. struct hda_codec *codec,
  1931. unsigned int stream_tag,
  1932. unsigned int format,
  1933. struct snd_pcm_substream *substream)
  1934. {
  1935. struct alc_spec *spec = codec->spec;
  1936. spec->cur_adc = spec->adc_nids[spec->dyn_adc_idx[spec->cur_mux[0]]];
  1937. spec->cur_adc_stream_tag = stream_tag;
  1938. spec->cur_adc_format = format;
  1939. snd_hda_codec_setup_stream(codec, spec->cur_adc, stream_tag, 0, format);
  1940. return 0;
  1941. }
  1942. static int dyn_adc_capture_pcm_cleanup(struct hda_pcm_stream *hinfo,
  1943. struct hda_codec *codec,
  1944. struct snd_pcm_substream *substream)
  1945. {
  1946. struct alc_spec *spec = codec->spec;
  1947. snd_hda_codec_cleanup_stream(codec, spec->cur_adc);
  1948. spec->cur_adc = 0;
  1949. return 0;
  1950. }
  1951. static const struct hda_pcm_stream dyn_adc_pcm_analog_capture = {
  1952. .substreams = 1,
  1953. .channels_min = 2,
  1954. .channels_max = 2,
  1955. .nid = 0, /* fill later */
  1956. .ops = {
  1957. .prepare = dyn_adc_capture_pcm_prepare,
  1958. .cleanup = dyn_adc_capture_pcm_cleanup
  1959. },
  1960. };
  1961. /*
  1962. */
  1963. static const struct hda_pcm_stream alc_pcm_analog_playback = {
  1964. .substreams = 1,
  1965. .channels_min = 2,
  1966. .channels_max = 8,
  1967. /* NID is set in alc_build_pcms */
  1968. .ops = {
  1969. .open = alc_playback_pcm_open,
  1970. .prepare = alc_playback_pcm_prepare,
  1971. .cleanup = alc_playback_pcm_cleanup
  1972. },
  1973. };
  1974. static const struct hda_pcm_stream alc_pcm_analog_capture = {
  1975. .substreams = 1,
  1976. .channels_min = 2,
  1977. .channels_max = 2,
  1978. /* NID is set in alc_build_pcms */
  1979. };
  1980. static const struct hda_pcm_stream alc_pcm_analog_alt_playback = {
  1981. .substreams = 1,
  1982. .channels_min = 2,
  1983. .channels_max = 2,
  1984. /* NID is set in alc_build_pcms */
  1985. };
  1986. static const struct hda_pcm_stream alc_pcm_analog_alt_capture = {
  1987. .substreams = 2, /* can be overridden */
  1988. .channels_min = 2,
  1989. .channels_max = 2,
  1990. /* NID is set in alc_build_pcms */
  1991. .ops = {
  1992. .prepare = alc_alt_capture_pcm_prepare,
  1993. .cleanup = alc_alt_capture_pcm_cleanup
  1994. },
  1995. };
  1996. static const struct hda_pcm_stream alc_pcm_digital_playback = {
  1997. .substreams = 1,
  1998. .channels_min = 2,
  1999. .channels_max = 2,
  2000. /* NID is set in alc_build_pcms */
  2001. .ops = {
  2002. .open = alc_dig_playback_pcm_open,
  2003. .close = alc_dig_playback_pcm_close,
  2004. .prepare = alc_dig_playback_pcm_prepare,
  2005. .cleanup = alc_dig_playback_pcm_cleanup
  2006. },
  2007. };
  2008. static const struct hda_pcm_stream alc_pcm_digital_capture = {
  2009. .substreams = 1,
  2010. .channels_min = 2,
  2011. .channels_max = 2,
  2012. /* NID is set in alc_build_pcms */
  2013. };
  2014. /* Used by alc_build_pcms to flag that a PCM has no playback stream */
  2015. static const struct hda_pcm_stream alc_pcm_null_stream = {
  2016. .substreams = 0,
  2017. .channels_min = 0,
  2018. .channels_max = 0,
  2019. };
  2020. static int alc_build_pcms(struct hda_codec *codec)
  2021. {
  2022. struct alc_spec *spec = codec->spec;
  2023. struct hda_pcm *info = spec->pcm_rec;
  2024. const struct hda_pcm_stream *p;
  2025. bool have_multi_adcs;
  2026. int i;
  2027. codec->num_pcms = 1;
  2028. codec->pcm_info = info;
  2029. if (spec->no_analog)
  2030. goto skip_analog;
  2031. snprintf(spec->stream_name_analog, sizeof(spec->stream_name_analog),
  2032. "%s Analog", codec->chip_name);
  2033. info->name = spec->stream_name_analog;
  2034. if (spec->multiout.num_dacs > 0) {
  2035. p = spec->stream_analog_playback;
  2036. if (!p)
  2037. p = &alc_pcm_analog_playback;
  2038. info->stream[SNDRV_PCM_STREAM_PLAYBACK] = *p;
  2039. info->stream[SNDRV_PCM_STREAM_PLAYBACK].nid = spec->multiout.dac_nids[0];
  2040. }
  2041. if (spec->adc_nids) {
  2042. p = spec->stream_analog_capture;
  2043. if (!p) {
  2044. if (spec->dyn_adc_switch)
  2045. p = &dyn_adc_pcm_analog_capture;
  2046. else
  2047. p = &alc_pcm_analog_capture;
  2048. }
  2049. info->stream[SNDRV_PCM_STREAM_CAPTURE] = *p;
  2050. info->stream[SNDRV_PCM_STREAM_CAPTURE].nid = spec->adc_nids[0];
  2051. }
  2052. if (spec->channel_mode) {
  2053. info->stream[SNDRV_PCM_STREAM_PLAYBACK].channels_max = 0;
  2054. for (i = 0; i < spec->num_channel_mode; i++) {
  2055. if (spec->channel_mode[i].channels > info->stream[SNDRV_PCM_STREAM_PLAYBACK].channels_max) {
  2056. info->stream[SNDRV_PCM_STREAM_PLAYBACK].channels_max = spec->channel_mode[i].channels;
  2057. }
  2058. }
  2059. }
  2060. skip_analog:
  2061. /* SPDIF for stream index #1 */
  2062. if (spec->multiout.dig_out_nid || spec->dig_in_nid) {
  2063. snprintf(spec->stream_name_digital,
  2064. sizeof(spec->stream_name_digital),
  2065. "%s Digital", codec->chip_name);
  2066. codec->num_pcms = 2;
  2067. codec->slave_dig_outs = spec->multiout.slave_dig_outs;
  2068. info = spec->pcm_rec + 1;
  2069. info->name = spec->stream_name_digital;
  2070. if (spec->dig_out_type)
  2071. info->pcm_type = spec->dig_out_type;
  2072. else
  2073. info->pcm_type = HDA_PCM_TYPE_SPDIF;
  2074. if (spec->multiout.dig_out_nid) {
  2075. p = spec->stream_digital_playback;
  2076. if (!p)
  2077. p = &alc_pcm_digital_playback;
  2078. info->stream[SNDRV_PCM_STREAM_PLAYBACK] = *p;
  2079. info->stream[SNDRV_PCM_STREAM_PLAYBACK].nid = spec->multiout.dig_out_nid;
  2080. }
  2081. if (spec->dig_in_nid) {
  2082. p = spec->stream_digital_capture;
  2083. if (!p)
  2084. p = &alc_pcm_digital_capture;
  2085. info->stream[SNDRV_PCM_STREAM_CAPTURE] = *p;
  2086. info->stream[SNDRV_PCM_STREAM_CAPTURE].nid = spec->dig_in_nid;
  2087. }
  2088. /* FIXME: do we need this for all Realtek codec models? */
  2089. codec->spdif_status_reset = 1;
  2090. }
  2091. if (spec->no_analog)
  2092. return 0;
  2093. /* If the use of more than one ADC is requested for the current
  2094. * model, configure a second analog capture-only PCM.
  2095. */
  2096. have_multi_adcs = (spec->num_adc_nids > 1) &&
  2097. !spec->dyn_adc_switch && !spec->auto_mic &&
  2098. (!spec->input_mux || spec->input_mux->num_items > 1);
  2099. /* Additional Analaog capture for index #2 */
  2100. if (spec->alt_dac_nid || have_multi_adcs) {
  2101. codec->num_pcms = 3;
  2102. info = spec->pcm_rec + 2;
  2103. info->name = spec->stream_name_analog;
  2104. if (spec->alt_dac_nid) {
  2105. p = spec->stream_analog_alt_playback;
  2106. if (!p)
  2107. p = &alc_pcm_analog_alt_playback;
  2108. info->stream[SNDRV_PCM_STREAM_PLAYBACK] = *p;
  2109. info->stream[SNDRV_PCM_STREAM_PLAYBACK].nid =
  2110. spec->alt_dac_nid;
  2111. } else {
  2112. info->stream[SNDRV_PCM_STREAM_PLAYBACK] =
  2113. alc_pcm_null_stream;
  2114. info->stream[SNDRV_PCM_STREAM_PLAYBACK].nid = 0;
  2115. }
  2116. if (have_multi_adcs) {
  2117. p = spec->stream_analog_alt_capture;
  2118. if (!p)
  2119. p = &alc_pcm_analog_alt_capture;
  2120. info->stream[SNDRV_PCM_STREAM_CAPTURE] = *p;
  2121. info->stream[SNDRV_PCM_STREAM_CAPTURE].nid =
  2122. spec->adc_nids[1];
  2123. info->stream[SNDRV_PCM_STREAM_CAPTURE].substreams =
  2124. spec->num_adc_nids - 1;
  2125. } else {
  2126. info->stream[SNDRV_PCM_STREAM_CAPTURE] =
  2127. alc_pcm_null_stream;
  2128. info->stream[SNDRV_PCM_STREAM_CAPTURE].nid = 0;
  2129. }
  2130. }
  2131. return 0;
  2132. }
  2133. static inline void alc_shutup(struct hda_codec *codec)
  2134. {
  2135. struct alc_spec *spec = codec->spec;
  2136. if (spec && spec->shutup)
  2137. spec->shutup(codec);
  2138. snd_hda_shutup_pins(codec);
  2139. }
  2140. static void alc_free_kctls(struct hda_codec *codec)
  2141. {
  2142. struct alc_spec *spec = codec->spec;
  2143. if (spec->kctls.list) {
  2144. struct snd_kcontrol_new *kctl = spec->kctls.list;
  2145. int i;
  2146. for (i = 0; i < spec->kctls.used; i++)
  2147. kfree(kctl[i].name);
  2148. }
  2149. snd_array_free(&spec->kctls);
  2150. }
  2151. static void alc_free_bind_ctls(struct hda_codec *codec)
  2152. {
  2153. struct alc_spec *spec = codec->spec;
  2154. if (spec->bind_ctls.list) {
  2155. struct hda_bind_ctls **ctl = spec->bind_ctls.list;
  2156. int i;
  2157. for (i = 0; i < spec->bind_ctls.used; i++)
  2158. kfree(ctl[i]);
  2159. }
  2160. snd_array_free(&spec->bind_ctls);
  2161. }
  2162. static void alc_free(struct hda_codec *codec)
  2163. {
  2164. struct alc_spec *spec = codec->spec;
  2165. if (!spec)
  2166. return;
  2167. alc_shutup(codec);
  2168. alc_free_kctls(codec);
  2169. alc_free_bind_ctls(codec);
  2170. snd_hda_gen_free(&spec->gen);
  2171. kfree(spec);
  2172. snd_hda_detach_beep_device(codec);
  2173. }
  2174. #ifdef CONFIG_SND_HDA_POWER_SAVE
  2175. static void alc_power_eapd(struct hda_codec *codec)
  2176. {
  2177. alc_auto_setup_eapd(codec, false);
  2178. }
  2179. static int alc_suspend(struct hda_codec *codec)
  2180. {
  2181. struct alc_spec *spec = codec->spec;
  2182. alc_shutup(codec);
  2183. if (spec && spec->power_hook)
  2184. spec->power_hook(codec);
  2185. return 0;
  2186. }
  2187. #endif
  2188. #ifdef CONFIG_PM
  2189. static int alc_resume(struct hda_codec *codec)
  2190. {
  2191. msleep(150); /* to avoid pop noise */
  2192. codec->patch_ops.init(codec);
  2193. snd_hda_codec_resume_amp(codec);
  2194. snd_hda_codec_resume_cache(codec);
  2195. alc_inv_dmic_sync(codec, true);
  2196. hda_call_check_power_status(codec, 0x01);
  2197. return 0;
  2198. }
  2199. #endif
  2200. /*
  2201. */
  2202. static const struct hda_codec_ops alc_patch_ops = {
  2203. .build_controls = alc_build_controls,
  2204. .build_pcms = alc_build_pcms,
  2205. .init = alc_init,
  2206. .free = alc_free,
  2207. .unsol_event = alc_unsol_event,
  2208. #ifdef CONFIG_PM
  2209. .resume = alc_resume,
  2210. #endif
  2211. #ifdef CONFIG_SND_HDA_POWER_SAVE
  2212. .suspend = alc_suspend,
  2213. .check_power_status = alc_check_power_status,
  2214. #endif
  2215. .reboot_notify = alc_shutup,
  2216. };
  2217. /* replace the codec chip_name with the given string */
  2218. static int alc_codec_rename(struct hda_codec *codec, const char *name)
  2219. {
  2220. kfree(codec->chip_name);
  2221. codec->chip_name = kstrdup(name, GFP_KERNEL);
  2222. if (!codec->chip_name) {
  2223. alc_free(codec);
  2224. return -ENOMEM;
  2225. }
  2226. return 0;
  2227. }
  2228. /*
  2229. * Rename codecs appropriately from COEF value
  2230. */
  2231. struct alc_codec_rename_table {
  2232. unsigned int vendor_id;
  2233. unsigned short coef_mask;
  2234. unsigned short coef_bits;
  2235. const char *name;
  2236. };
  2237. static struct alc_codec_rename_table rename_tbl[] = {
  2238. { 0x10ec0269, 0xfff0, 0x3010, "ALC277" },
  2239. { 0x10ec0269, 0xf0f0, 0x2010, "ALC259" },
  2240. { 0x10ec0269, 0xf0f0, 0x3010, "ALC258" },
  2241. { 0x10ec0269, 0x00f0, 0x0010, "ALC269VB" },
  2242. { 0x10ec0269, 0xffff, 0xa023, "ALC259" },
  2243. { 0x10ec0269, 0xffff, 0x6023, "ALC281X" },
  2244. { 0x10ec0269, 0x00f0, 0x0020, "ALC269VC" },
  2245. { 0x10ec0269, 0x00f0, 0x0030, "ALC269VD" },
  2246. { 0x10ec0887, 0x00f0, 0x0030, "ALC887-VD" },
  2247. { 0x10ec0888, 0x00f0, 0x0030, "ALC888-VD" },
  2248. { 0x10ec0888, 0xf0f0, 0x3020, "ALC886" },
  2249. { 0x10ec0899, 0x2000, 0x2000, "ALC899" },
  2250. { 0x10ec0892, 0xffff, 0x8020, "ALC661" },
  2251. { 0x10ec0892, 0xffff, 0x8011, "ALC661" },
  2252. { 0x10ec0892, 0xffff, 0x4011, "ALC656" },
  2253. { } /* terminator */
  2254. };
  2255. static int alc_codec_rename_from_preset(struct hda_codec *codec)
  2256. {
  2257. const struct alc_codec_rename_table *p;
  2258. for (p = rename_tbl; p->vendor_id; p++) {
  2259. if (p->vendor_id != codec->vendor_id)
  2260. continue;
  2261. if ((alc_get_coef0(codec) & p->coef_mask) == p->coef_bits)
  2262. return alc_codec_rename(codec, p->name);
  2263. }
  2264. return 0;
  2265. }
  2266. /*
  2267. * Automatic parse of I/O pins from the BIOS configuration
  2268. */
  2269. enum {
  2270. ALC_CTL_WIDGET_VOL,
  2271. ALC_CTL_WIDGET_MUTE,
  2272. ALC_CTL_BIND_MUTE,
  2273. ALC_CTL_BIND_VOL,
  2274. ALC_CTL_BIND_SW,
  2275. };
  2276. static const struct snd_kcontrol_new alc_control_templates[] = {
  2277. HDA_CODEC_VOLUME(NULL, 0, 0, 0),
  2278. HDA_CODEC_MUTE(NULL, 0, 0, 0),
  2279. HDA_BIND_MUTE(NULL, 0, 0, 0),
  2280. HDA_BIND_VOL(NULL, 0),
  2281. HDA_BIND_SW(NULL, 0),
  2282. };
  2283. /* add dynamic controls */
  2284. static int add_control(struct alc_spec *spec, int type, const char *name,
  2285. int cidx, unsigned long val)
  2286. {
  2287. struct snd_kcontrol_new *knew;
  2288. knew = alc_kcontrol_new(spec);
  2289. if (!knew)
  2290. return -ENOMEM;
  2291. *knew = alc_control_templates[type];
  2292. knew->name = kstrdup(name, GFP_KERNEL);
  2293. if (!knew->name)
  2294. return -ENOMEM;
  2295. knew->index = cidx;
  2296. if (get_amp_nid_(val))
  2297. knew->subdevice = HDA_SUBDEV_AMP_FLAG;
  2298. knew->private_value = val;
  2299. return 0;
  2300. }
  2301. static int add_control_with_pfx(struct alc_spec *spec, int type,
  2302. const char *pfx, const char *dir,
  2303. const char *sfx, int cidx, unsigned long val)
  2304. {
  2305. char name[32];
  2306. snprintf(name, sizeof(name), "%s %s %s", pfx, dir, sfx);
  2307. return add_control(spec, type, name, cidx, val);
  2308. }
  2309. #define add_pb_vol_ctrl(spec, type, pfx, val) \
  2310. add_control_with_pfx(spec, type, pfx, "Playback", "Volume", 0, val)
  2311. #define add_pb_sw_ctrl(spec, type, pfx, val) \
  2312. add_control_with_pfx(spec, type, pfx, "Playback", "Switch", 0, val)
  2313. #define __add_pb_vol_ctrl(spec, type, pfx, cidx, val) \
  2314. add_control_with_pfx(spec, type, pfx, "Playback", "Volume", cidx, val)
  2315. #define __add_pb_sw_ctrl(spec, type, pfx, cidx, val) \
  2316. add_control_with_pfx(spec, type, pfx, "Playback", "Switch", cidx, val)
  2317. static const char * const channel_name[4] = {
  2318. "Front", "Surround", "CLFE", "Side"
  2319. };
  2320. static const char *alc_get_line_out_pfx(struct alc_spec *spec, int ch,
  2321. bool can_be_master, int *index)
  2322. {
  2323. struct auto_pin_cfg *cfg = &spec->autocfg;
  2324. *index = 0;
  2325. if (cfg->line_outs == 1 && !spec->multi_ios &&
  2326. !cfg->hp_outs && !cfg->speaker_outs && can_be_master)
  2327. return "Master";
  2328. switch (cfg->line_out_type) {
  2329. case AUTO_PIN_SPEAKER_OUT:
  2330. if (cfg->line_outs == 1)
  2331. return "Speaker";
  2332. if (cfg->line_outs == 2)
  2333. return ch ? "Bass Speaker" : "Speaker";
  2334. break;
  2335. case AUTO_PIN_HP_OUT:
  2336. /* for multi-io case, only the primary out */
  2337. if (ch && spec->multi_ios)
  2338. break;
  2339. *index = ch;
  2340. return "Headphone";
  2341. default:
  2342. if (cfg->line_outs == 1 && !spec->multi_ios)
  2343. return "PCM";
  2344. break;
  2345. }
  2346. if (snd_BUG_ON(ch >= ARRAY_SIZE(channel_name)))
  2347. return "PCM";
  2348. return channel_name[ch];
  2349. }
  2350. #ifdef CONFIG_SND_HDA_POWER_SAVE
  2351. /* add the powersave loopback-list entry */
  2352. static void add_loopback_list(struct alc_spec *spec, hda_nid_t mix, int idx)
  2353. {
  2354. struct hda_amp_list *list;
  2355. if (spec->num_loopbacks >= ARRAY_SIZE(spec->loopback_list) - 1)
  2356. return;
  2357. list = spec->loopback_list + spec->num_loopbacks;
  2358. list->nid = mix;
  2359. list->dir = HDA_INPUT;
  2360. list->idx = idx;
  2361. spec->num_loopbacks++;
  2362. spec->loopback.amplist = spec->loopback_list;
  2363. }
  2364. #else
  2365. #define add_loopback_list(spec, mix, idx) /* NOP */
  2366. #endif
  2367. /* create input playback/capture controls for the given pin */
  2368. static int new_analog_input(struct alc_spec *spec, hda_nid_t pin,
  2369. const char *ctlname, int ctlidx,
  2370. int idx, hda_nid_t mix_nid)
  2371. {
  2372. int err;
  2373. err = __add_pb_vol_ctrl(spec, ALC_CTL_WIDGET_VOL, ctlname, ctlidx,
  2374. HDA_COMPOSE_AMP_VAL(mix_nid, 3, idx, HDA_INPUT));
  2375. if (err < 0)
  2376. return err;
  2377. err = __add_pb_sw_ctrl(spec, ALC_CTL_WIDGET_MUTE, ctlname, ctlidx,
  2378. HDA_COMPOSE_AMP_VAL(mix_nid, 3, idx, HDA_INPUT));
  2379. if (err < 0)
  2380. return err;
  2381. add_loopback_list(spec, mix_nid, idx);
  2382. return 0;
  2383. }
  2384. static int alc_is_input_pin(struct hda_codec *codec, hda_nid_t nid)
  2385. {
  2386. unsigned int pincap = snd_hda_query_pin_caps(codec, nid);
  2387. return (pincap & AC_PINCAP_IN) != 0;
  2388. }
  2389. /* Parse the codec tree and retrieve ADCs and corresponding capsrc MUXs */
  2390. static int alc_auto_fill_adc_caps(struct hda_codec *codec)
  2391. {
  2392. struct alc_spec *spec = codec->spec;
  2393. hda_nid_t nid;
  2394. hda_nid_t *adc_nids = spec->private_adc_nids;
  2395. hda_nid_t *cap_nids = spec->private_capsrc_nids;
  2396. int max_nums = ARRAY_SIZE(spec->private_adc_nids);
  2397. int i, nums = 0;
  2398. nid = codec->start_nid;
  2399. for (i = 0; i < codec->num_nodes; i++, nid++) {
  2400. hda_nid_t src;
  2401. unsigned int caps = get_wcaps(codec, nid);
  2402. int type = get_wcaps_type(caps);
  2403. if (type != AC_WID_AUD_IN || (caps & AC_WCAP_DIGITAL))
  2404. continue;
  2405. adc_nids[nums] = nid;
  2406. cap_nids[nums] = nid;
  2407. src = nid;
  2408. for (;;) {
  2409. int n;
  2410. type = get_wcaps_type(get_wcaps(codec, src));
  2411. if (type == AC_WID_PIN)
  2412. break;
  2413. if (type == AC_WID_AUD_SEL) {
  2414. cap_nids[nums] = src;
  2415. break;
  2416. }
  2417. n = snd_hda_get_num_conns(codec, src);
  2418. if (n > 1) {
  2419. cap_nids[nums] = src;
  2420. break;
  2421. } else if (n != 1)
  2422. break;
  2423. if (snd_hda_get_connections(codec, src, &src, 1) != 1)
  2424. break;
  2425. }
  2426. if (++nums >= max_nums)
  2427. break;
  2428. }
  2429. spec->adc_nids = spec->private_adc_nids;
  2430. spec->capsrc_nids = spec->private_capsrc_nids;
  2431. spec->num_adc_nids = nums;
  2432. return nums;
  2433. }
  2434. /* create playback/capture controls for input pins */
  2435. static int alc_auto_create_input_ctls(struct hda_codec *codec)
  2436. {
  2437. struct alc_spec *spec = codec->spec;
  2438. const struct auto_pin_cfg *cfg = &spec->autocfg;
  2439. hda_nid_t mixer = spec->mixer_nid;
  2440. struct hda_input_mux *imux = &spec->private_imux[0];
  2441. int num_adcs;
  2442. int i, c, err, idx, type_idx = 0;
  2443. const char *prev_label = NULL;
  2444. num_adcs = alc_auto_fill_adc_caps(codec);
  2445. if (num_adcs < 0)
  2446. return 0;
  2447. for (i = 0; i < cfg->num_inputs; i++) {
  2448. hda_nid_t pin;
  2449. const char *label;
  2450. pin = cfg->inputs[i].pin;
  2451. if (!alc_is_input_pin(codec, pin))
  2452. continue;
  2453. label = hda_get_autocfg_input_label(codec, cfg, i);
  2454. if (spec->shared_mic_hp && !strcmp(label, "Misc"))
  2455. label = "Headphone Mic";
  2456. if (prev_label && !strcmp(label, prev_label))
  2457. type_idx++;
  2458. else
  2459. type_idx = 0;
  2460. prev_label = label;
  2461. if (mixer) {
  2462. idx = get_connection_index(codec, mixer, pin);
  2463. if (idx >= 0) {
  2464. err = new_analog_input(spec, pin,
  2465. label, type_idx,
  2466. idx, mixer);
  2467. if (err < 0)
  2468. return err;
  2469. }
  2470. }
  2471. for (c = 0; c < num_adcs; c++) {
  2472. hda_nid_t cap = get_capsrc(spec, c);
  2473. idx = get_connection_index(codec, cap, pin);
  2474. if (idx >= 0) {
  2475. spec->imux_pins[imux->num_items] = pin;
  2476. snd_hda_add_imux_item(imux, label, idx, NULL);
  2477. break;
  2478. }
  2479. }
  2480. }
  2481. spec->num_mux_defs = 1;
  2482. spec->input_mux = imux;
  2483. return 0;
  2484. }
  2485. /* create a shared input with the headphone out */
  2486. static int alc_auto_create_shared_input(struct hda_codec *codec)
  2487. {
  2488. struct alc_spec *spec = codec->spec;
  2489. struct auto_pin_cfg *cfg = &spec->autocfg;
  2490. unsigned int defcfg;
  2491. hda_nid_t nid;
  2492. /* only one internal input pin? */
  2493. if (cfg->num_inputs != 1)
  2494. return 0;
  2495. defcfg = snd_hda_codec_get_pincfg(codec, cfg->inputs[0].pin);
  2496. if (snd_hda_get_input_pin_attr(defcfg) != INPUT_PIN_ATTR_INT)
  2497. return 0;
  2498. if (cfg->hp_outs == 1 && cfg->line_out_type == AUTO_PIN_SPEAKER_OUT)
  2499. nid = cfg->hp_pins[0]; /* OK, we have a single HP-out */
  2500. else if (cfg->line_outs == 1 && cfg->line_out_type == AUTO_PIN_HP_OUT)
  2501. nid = cfg->line_out_pins[0]; /* OK, we have a single line-out */
  2502. else
  2503. return 0; /* both not available */
  2504. if (!(snd_hda_query_pin_caps(codec, nid) & AC_PINCAP_IN))
  2505. return 0; /* no input */
  2506. cfg->inputs[1].pin = nid;
  2507. cfg->inputs[1].type = AUTO_PIN_MIC;
  2508. cfg->num_inputs = 2;
  2509. spec->shared_mic_hp = 1;
  2510. snd_printdd("realtek: Enable shared I/O jack on NID 0x%x\n", nid);
  2511. return 0;
  2512. }
  2513. static void alc_set_pin_output(struct hda_codec *codec, hda_nid_t nid,
  2514. unsigned int pin_type)
  2515. {
  2516. snd_hda_set_pin_ctl(codec, nid, pin_type);
  2517. /* unmute pin */
  2518. if (nid_has_mute(codec, nid, HDA_OUTPUT))
  2519. snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  2520. AMP_OUT_UNMUTE);
  2521. }
  2522. static int get_pin_type(int line_out_type)
  2523. {
  2524. if (line_out_type == AUTO_PIN_HP_OUT)
  2525. return PIN_HP;
  2526. else
  2527. return PIN_OUT;
  2528. }
  2529. static void alc_auto_init_analog_input(struct hda_codec *codec)
  2530. {
  2531. struct alc_spec *spec = codec->spec;
  2532. struct auto_pin_cfg *cfg = &spec->autocfg;
  2533. int i;
  2534. for (i = 0; i < cfg->num_inputs; i++) {
  2535. hda_nid_t nid = cfg->inputs[i].pin;
  2536. if (alc_is_input_pin(codec, nid)) {
  2537. alc_set_input_pin(codec, nid, cfg->inputs[i].type);
  2538. if (get_wcaps(codec, nid) & AC_WCAP_OUT_AMP)
  2539. snd_hda_codec_write(codec, nid, 0,
  2540. AC_VERB_SET_AMP_GAIN_MUTE,
  2541. AMP_OUT_MUTE);
  2542. }
  2543. }
  2544. /* mute all loopback inputs */
  2545. if (spec->mixer_nid) {
  2546. int nums = snd_hda_get_num_conns(codec, spec->mixer_nid);
  2547. for (i = 0; i < nums; i++)
  2548. snd_hda_codec_write(codec, spec->mixer_nid, 0,
  2549. AC_VERB_SET_AMP_GAIN_MUTE,
  2550. AMP_IN_MUTE(i));
  2551. }
  2552. }
  2553. /* convert from MIX nid to DAC */
  2554. static hda_nid_t alc_auto_mix_to_dac(struct hda_codec *codec, hda_nid_t nid)
  2555. {
  2556. hda_nid_t list[5];
  2557. int i, num;
  2558. if (get_wcaps_type(get_wcaps(codec, nid)) == AC_WID_AUD_OUT)
  2559. return nid;
  2560. num = snd_hda_get_connections(codec, nid, list, ARRAY_SIZE(list));
  2561. for (i = 0; i < num; i++) {
  2562. if (get_wcaps_type(get_wcaps(codec, list[i])) == AC_WID_AUD_OUT)
  2563. return list[i];
  2564. }
  2565. return 0;
  2566. }
  2567. /* go down to the selector widget before the mixer */
  2568. static hda_nid_t alc_go_down_to_selector(struct hda_codec *codec, hda_nid_t pin)
  2569. {
  2570. hda_nid_t srcs[5];
  2571. int num = snd_hda_get_connections(codec, pin, srcs,
  2572. ARRAY_SIZE(srcs));
  2573. if (num != 1 ||
  2574. get_wcaps_type(get_wcaps(codec, srcs[0])) != AC_WID_AUD_SEL)
  2575. return pin;
  2576. return srcs[0];
  2577. }
  2578. /* get MIX nid connected to the given pin targeted to DAC */
  2579. static hda_nid_t alc_auto_dac_to_mix(struct hda_codec *codec, hda_nid_t pin,
  2580. hda_nid_t dac)
  2581. {
  2582. hda_nid_t mix[5];
  2583. int i, num;
  2584. pin = alc_go_down_to_selector(codec, pin);
  2585. num = snd_hda_get_connections(codec, pin, mix, ARRAY_SIZE(mix));
  2586. for (i = 0; i < num; i++) {
  2587. if (alc_auto_mix_to_dac(codec, mix[i]) == dac)
  2588. return mix[i];
  2589. }
  2590. return 0;
  2591. }
  2592. /* select the connection from pin to DAC if needed */
  2593. static int alc_auto_select_dac(struct hda_codec *codec, hda_nid_t pin,
  2594. hda_nid_t dac)
  2595. {
  2596. hda_nid_t mix[5];
  2597. int i, num;
  2598. pin = alc_go_down_to_selector(codec, pin);
  2599. num = snd_hda_get_connections(codec, pin, mix, ARRAY_SIZE(mix));
  2600. if (num < 2)
  2601. return 0;
  2602. for (i = 0; i < num; i++) {
  2603. if (alc_auto_mix_to_dac(codec, mix[i]) == dac) {
  2604. snd_hda_codec_update_cache(codec, pin, 0,
  2605. AC_VERB_SET_CONNECT_SEL, i);
  2606. return 0;
  2607. }
  2608. }
  2609. return 0;
  2610. }
  2611. static bool alc_is_dac_already_used(struct hda_codec *codec, hda_nid_t nid)
  2612. {
  2613. struct alc_spec *spec = codec->spec;
  2614. int i;
  2615. if (found_in_nid_list(nid, spec->multiout.dac_nids,
  2616. ARRAY_SIZE(spec->private_dac_nids)) ||
  2617. found_in_nid_list(nid, spec->multiout.hp_out_nid,
  2618. ARRAY_SIZE(spec->multiout.hp_out_nid)) ||
  2619. found_in_nid_list(nid, spec->multiout.extra_out_nid,
  2620. ARRAY_SIZE(spec->multiout.extra_out_nid)))
  2621. return true;
  2622. for (i = 0; i < spec->multi_ios; i++) {
  2623. if (spec->multi_io[i].dac == nid)
  2624. return true;
  2625. }
  2626. return false;
  2627. }
  2628. /* look for an empty DAC slot */
  2629. static hda_nid_t alc_auto_look_for_dac(struct hda_codec *codec, hda_nid_t pin)
  2630. {
  2631. hda_nid_t srcs[5];
  2632. int i, num;
  2633. pin = alc_go_down_to_selector(codec, pin);
  2634. num = snd_hda_get_connections(codec, pin, srcs, ARRAY_SIZE(srcs));
  2635. for (i = 0; i < num; i++) {
  2636. hda_nid_t nid = alc_auto_mix_to_dac(codec, srcs[i]);
  2637. if (!nid)
  2638. continue;
  2639. if (!alc_is_dac_already_used(codec, nid))
  2640. return nid;
  2641. }
  2642. return 0;
  2643. }
  2644. /* check whether the DAC is reachable from the pin */
  2645. static bool alc_auto_is_dac_reachable(struct hda_codec *codec,
  2646. hda_nid_t pin, hda_nid_t dac)
  2647. {
  2648. hda_nid_t srcs[5];
  2649. int i, num;
  2650. if (!pin || !dac)
  2651. return false;
  2652. pin = alc_go_down_to_selector(codec, pin);
  2653. num = snd_hda_get_connections(codec, pin, srcs, ARRAY_SIZE(srcs));
  2654. for (i = 0; i < num; i++) {
  2655. hda_nid_t nid = alc_auto_mix_to_dac(codec, srcs[i]);
  2656. if (nid == dac)
  2657. return true;
  2658. }
  2659. return false;
  2660. }
  2661. static hda_nid_t get_dac_if_single(struct hda_codec *codec, hda_nid_t pin)
  2662. {
  2663. struct alc_spec *spec = codec->spec;
  2664. hda_nid_t sel = alc_go_down_to_selector(codec, pin);
  2665. hda_nid_t nid, nid_found, srcs[5];
  2666. int i, num = snd_hda_get_connections(codec, sel, srcs,
  2667. ARRAY_SIZE(srcs));
  2668. if (num == 1)
  2669. return alc_auto_look_for_dac(codec, pin);
  2670. nid_found = 0;
  2671. for (i = 0; i < num; i++) {
  2672. if (srcs[i] == spec->mixer_nid)
  2673. continue;
  2674. nid = alc_auto_mix_to_dac(codec, srcs[i]);
  2675. if (nid && !alc_is_dac_already_used(codec, nid)) {
  2676. if (nid_found)
  2677. return 0;
  2678. nid_found = nid;
  2679. }
  2680. }
  2681. return nid_found;
  2682. }
  2683. /* mark up volume and mute control NIDs: used during badness parsing and
  2684. * at creating actual controls
  2685. */
  2686. static inline unsigned int get_ctl_pos(unsigned int data)
  2687. {
  2688. hda_nid_t nid = get_amp_nid_(data);
  2689. unsigned int dir;
  2690. if (snd_BUG_ON(nid >= MAX_VOL_NIDS))
  2691. return 0;
  2692. dir = get_amp_direction_(data);
  2693. return (nid << 1) | dir;
  2694. }
  2695. #define is_ctl_used(bits, data) \
  2696. test_bit(get_ctl_pos(data), bits)
  2697. #define mark_ctl_usage(bits, data) \
  2698. set_bit(get_ctl_pos(data), bits)
  2699. static void clear_vol_marks(struct hda_codec *codec)
  2700. {
  2701. struct alc_spec *spec = codec->spec;
  2702. memset(spec->vol_ctls, 0, sizeof(spec->vol_ctls));
  2703. memset(spec->sw_ctls, 0, sizeof(spec->sw_ctls));
  2704. }
  2705. /* badness definition */
  2706. enum {
  2707. /* No primary DAC is found for the main output */
  2708. BAD_NO_PRIMARY_DAC = 0x10000,
  2709. /* No DAC is found for the extra output */
  2710. BAD_NO_DAC = 0x4000,
  2711. /* No possible multi-ios */
  2712. BAD_MULTI_IO = 0x103,
  2713. /* No individual DAC for extra output */
  2714. BAD_NO_EXTRA_DAC = 0x102,
  2715. /* No individual DAC for extra surrounds */
  2716. BAD_NO_EXTRA_SURR_DAC = 0x101,
  2717. /* Primary DAC shared with main surrounds */
  2718. BAD_SHARED_SURROUND = 0x100,
  2719. /* Primary DAC shared with main CLFE */
  2720. BAD_SHARED_CLFE = 0x10,
  2721. /* Primary DAC shared with extra surrounds */
  2722. BAD_SHARED_EXTRA_SURROUND = 0x10,
  2723. /* Volume widget is shared */
  2724. BAD_SHARED_VOL = 0x10,
  2725. };
  2726. static hda_nid_t alc_look_for_out_mute_nid(struct hda_codec *codec,
  2727. hda_nid_t pin, hda_nid_t dac);
  2728. static hda_nid_t alc_look_for_out_vol_nid(struct hda_codec *codec,
  2729. hda_nid_t pin, hda_nid_t dac);
  2730. static int eval_shared_vol_badness(struct hda_codec *codec, hda_nid_t pin,
  2731. hda_nid_t dac)
  2732. {
  2733. struct alc_spec *spec = codec->spec;
  2734. hda_nid_t nid;
  2735. unsigned int val;
  2736. int badness = 0;
  2737. nid = alc_look_for_out_vol_nid(codec, pin, dac);
  2738. if (nid) {
  2739. val = HDA_COMPOSE_AMP_VAL(nid, 3, 0, HDA_OUTPUT);
  2740. if (is_ctl_used(spec->vol_ctls, nid))
  2741. badness += BAD_SHARED_VOL;
  2742. else
  2743. mark_ctl_usage(spec->vol_ctls, val);
  2744. } else
  2745. badness += BAD_SHARED_VOL;
  2746. nid = alc_look_for_out_mute_nid(codec, pin, dac);
  2747. if (nid) {
  2748. unsigned int wid_type = get_wcaps_type(get_wcaps(codec, nid));
  2749. if (wid_type == AC_WID_PIN || wid_type == AC_WID_AUD_OUT)
  2750. val = HDA_COMPOSE_AMP_VAL(nid, 3, 0, HDA_OUTPUT);
  2751. else
  2752. val = HDA_COMPOSE_AMP_VAL(nid, 3, 0, HDA_INPUT);
  2753. if (is_ctl_used(spec->sw_ctls, val))
  2754. badness += BAD_SHARED_VOL;
  2755. else
  2756. mark_ctl_usage(spec->sw_ctls, val);
  2757. } else
  2758. badness += BAD_SHARED_VOL;
  2759. return badness;
  2760. }
  2761. struct badness_table {
  2762. int no_primary_dac; /* no primary DAC */
  2763. int no_dac; /* no secondary DACs */
  2764. int shared_primary; /* primary DAC is shared with main output */
  2765. int shared_surr; /* secondary DAC shared with main or primary */
  2766. int shared_clfe; /* third DAC shared with main or primary */
  2767. int shared_surr_main; /* secondary DAC sahred with main/DAC0 */
  2768. };
  2769. static struct badness_table main_out_badness = {
  2770. .no_primary_dac = BAD_NO_PRIMARY_DAC,
  2771. .no_dac = BAD_NO_DAC,
  2772. .shared_primary = BAD_NO_PRIMARY_DAC,
  2773. .shared_surr = BAD_SHARED_SURROUND,
  2774. .shared_clfe = BAD_SHARED_CLFE,
  2775. .shared_surr_main = BAD_SHARED_SURROUND,
  2776. };
  2777. static struct badness_table extra_out_badness = {
  2778. .no_primary_dac = BAD_NO_DAC,
  2779. .no_dac = BAD_NO_DAC,
  2780. .shared_primary = BAD_NO_EXTRA_DAC,
  2781. .shared_surr = BAD_SHARED_EXTRA_SURROUND,
  2782. .shared_clfe = BAD_SHARED_EXTRA_SURROUND,
  2783. .shared_surr_main = BAD_NO_EXTRA_SURR_DAC,
  2784. };
  2785. /* try to assign DACs to pins and return the resultant badness */
  2786. static int alc_auto_fill_dacs(struct hda_codec *codec, int num_outs,
  2787. const hda_nid_t *pins, hda_nid_t *dacs,
  2788. const struct badness_table *bad)
  2789. {
  2790. struct alc_spec *spec = codec->spec;
  2791. struct auto_pin_cfg *cfg = &spec->autocfg;
  2792. int i, j;
  2793. int badness = 0;
  2794. hda_nid_t dac;
  2795. if (!num_outs)
  2796. return 0;
  2797. for (i = 0; i < num_outs; i++) {
  2798. hda_nid_t pin = pins[i];
  2799. if (!dacs[i])
  2800. dacs[i] = alc_auto_look_for_dac(codec, pin);
  2801. if (!dacs[i] && !i) {
  2802. for (j = 1; j < num_outs; j++) {
  2803. if (alc_auto_is_dac_reachable(codec, pin, dacs[j])) {
  2804. dacs[0] = dacs[j];
  2805. dacs[j] = 0;
  2806. break;
  2807. }
  2808. }
  2809. }
  2810. dac = dacs[i];
  2811. if (!dac) {
  2812. if (alc_auto_is_dac_reachable(codec, pin, dacs[0]))
  2813. dac = dacs[0];
  2814. else if (cfg->line_outs > i &&
  2815. alc_auto_is_dac_reachable(codec, pin,
  2816. spec->private_dac_nids[i]))
  2817. dac = spec->private_dac_nids[i];
  2818. if (dac) {
  2819. if (!i)
  2820. badness += bad->shared_primary;
  2821. else if (i == 1)
  2822. badness += bad->shared_surr;
  2823. else
  2824. badness += bad->shared_clfe;
  2825. } else if (alc_auto_is_dac_reachable(codec, pin,
  2826. spec->private_dac_nids[0])) {
  2827. dac = spec->private_dac_nids[0];
  2828. badness += bad->shared_surr_main;
  2829. } else if (!i)
  2830. badness += bad->no_primary_dac;
  2831. else
  2832. badness += bad->no_dac;
  2833. }
  2834. if (dac)
  2835. badness += eval_shared_vol_badness(codec, pin, dac);
  2836. }
  2837. return badness;
  2838. }
  2839. static int alc_auto_fill_multi_ios(struct hda_codec *codec,
  2840. hda_nid_t reference_pin,
  2841. bool hardwired, int offset);
  2842. static bool alc_map_singles(struct hda_codec *codec, int outs,
  2843. const hda_nid_t *pins, hda_nid_t *dacs)
  2844. {
  2845. int i;
  2846. bool found = false;
  2847. for (i = 0; i < outs; i++) {
  2848. if (dacs[i])
  2849. continue;
  2850. dacs[i] = get_dac_if_single(codec, pins[i]);
  2851. if (dacs[i])
  2852. found = true;
  2853. }
  2854. return found;
  2855. }
  2856. /* fill in the dac_nids table from the parsed pin configuration */
  2857. static int fill_and_eval_dacs(struct hda_codec *codec,
  2858. bool fill_hardwired,
  2859. bool fill_mio_first)
  2860. {
  2861. struct alc_spec *spec = codec->spec;
  2862. struct auto_pin_cfg *cfg = &spec->autocfg;
  2863. int i, err, badness;
  2864. /* set num_dacs once to full for alc_auto_look_for_dac() */
  2865. spec->multiout.num_dacs = cfg->line_outs;
  2866. spec->multiout.dac_nids = spec->private_dac_nids;
  2867. memset(spec->private_dac_nids, 0, sizeof(spec->private_dac_nids));
  2868. memset(spec->multiout.hp_out_nid, 0, sizeof(spec->multiout.hp_out_nid));
  2869. memset(spec->multiout.extra_out_nid, 0, sizeof(spec->multiout.extra_out_nid));
  2870. spec->multi_ios = 0;
  2871. clear_vol_marks(codec);
  2872. badness = 0;
  2873. /* fill hard-wired DACs first */
  2874. if (fill_hardwired) {
  2875. bool mapped;
  2876. do {
  2877. mapped = alc_map_singles(codec, cfg->line_outs,
  2878. cfg->line_out_pins,
  2879. spec->private_dac_nids);
  2880. mapped |= alc_map_singles(codec, cfg->hp_outs,
  2881. cfg->hp_pins,
  2882. spec->multiout.hp_out_nid);
  2883. mapped |= alc_map_singles(codec, cfg->speaker_outs,
  2884. cfg->speaker_pins,
  2885. spec->multiout.extra_out_nid);
  2886. if (fill_mio_first && cfg->line_outs == 1 &&
  2887. cfg->line_out_type != AUTO_PIN_SPEAKER_OUT) {
  2888. err = alc_auto_fill_multi_ios(codec, cfg->line_out_pins[0], true, 0);
  2889. if (!err)
  2890. mapped = true;
  2891. }
  2892. } while (mapped);
  2893. }
  2894. badness += alc_auto_fill_dacs(codec, cfg->line_outs, cfg->line_out_pins,
  2895. spec->private_dac_nids,
  2896. &main_out_badness);
  2897. /* re-count num_dacs and squash invalid entries */
  2898. spec->multiout.num_dacs = 0;
  2899. for (i = 0; i < cfg->line_outs; i++) {
  2900. if (spec->private_dac_nids[i])
  2901. spec->multiout.num_dacs++;
  2902. else {
  2903. memmove(spec->private_dac_nids + i,
  2904. spec->private_dac_nids + i + 1,
  2905. sizeof(hda_nid_t) * (cfg->line_outs - i - 1));
  2906. spec->private_dac_nids[cfg->line_outs - 1] = 0;
  2907. }
  2908. }
  2909. if (fill_mio_first &&
  2910. cfg->line_outs == 1 && cfg->line_out_type != AUTO_PIN_SPEAKER_OUT) {
  2911. /* try to fill multi-io first */
  2912. err = alc_auto_fill_multi_ios(codec, cfg->line_out_pins[0], false, 0);
  2913. if (err < 0)
  2914. return err;
  2915. /* we don't count badness at this stage yet */
  2916. }
  2917. if (cfg->line_out_type != AUTO_PIN_HP_OUT) {
  2918. err = alc_auto_fill_dacs(codec, cfg->hp_outs, cfg->hp_pins,
  2919. spec->multiout.hp_out_nid,
  2920. &extra_out_badness);
  2921. if (err < 0)
  2922. return err;
  2923. badness += err;
  2924. }
  2925. if (cfg->line_out_type != AUTO_PIN_SPEAKER_OUT) {
  2926. err = alc_auto_fill_dacs(codec, cfg->speaker_outs,
  2927. cfg->speaker_pins,
  2928. spec->multiout.extra_out_nid,
  2929. &extra_out_badness);
  2930. if (err < 0)
  2931. return err;
  2932. badness += err;
  2933. }
  2934. if (cfg->line_outs == 1 && cfg->line_out_type != AUTO_PIN_SPEAKER_OUT) {
  2935. err = alc_auto_fill_multi_ios(codec, cfg->line_out_pins[0], false, 0);
  2936. if (err < 0)
  2937. return err;
  2938. badness += err;
  2939. }
  2940. if (cfg->hp_outs && cfg->line_out_type == AUTO_PIN_SPEAKER_OUT) {
  2941. /* try multi-ios with HP + inputs */
  2942. int offset = 0;
  2943. if (cfg->line_outs >= 3)
  2944. offset = 1;
  2945. err = alc_auto_fill_multi_ios(codec, cfg->hp_pins[0], false,
  2946. offset);
  2947. if (err < 0)
  2948. return err;
  2949. badness += err;
  2950. }
  2951. if (spec->multi_ios == 2) {
  2952. for (i = 0; i < 2; i++)
  2953. spec->private_dac_nids[spec->multiout.num_dacs++] =
  2954. spec->multi_io[i].dac;
  2955. spec->ext_channel_count = 2;
  2956. } else if (spec->multi_ios) {
  2957. spec->multi_ios = 0;
  2958. badness += BAD_MULTI_IO;
  2959. }
  2960. return badness;
  2961. }
  2962. #define DEBUG_BADNESS
  2963. #ifdef DEBUG_BADNESS
  2964. #define debug_badness snd_printdd
  2965. #else
  2966. #define debug_badness(...)
  2967. #endif
  2968. static void debug_show_configs(struct alc_spec *spec, struct auto_pin_cfg *cfg)
  2969. {
  2970. debug_badness("multi_outs = %x/%x/%x/%x : %x/%x/%x/%x\n",
  2971. cfg->line_out_pins[0], cfg->line_out_pins[1],
  2972. cfg->line_out_pins[2], cfg->line_out_pins[2],
  2973. spec->multiout.dac_nids[0],
  2974. spec->multiout.dac_nids[1],
  2975. spec->multiout.dac_nids[2],
  2976. spec->multiout.dac_nids[3]);
  2977. if (spec->multi_ios > 0)
  2978. debug_badness("multi_ios(%d) = %x/%x : %x/%x\n",
  2979. spec->multi_ios,
  2980. spec->multi_io[0].pin, spec->multi_io[1].pin,
  2981. spec->multi_io[0].dac, spec->multi_io[1].dac);
  2982. debug_badness("hp_outs = %x/%x/%x/%x : %x/%x/%x/%x\n",
  2983. cfg->hp_pins[0], cfg->hp_pins[1],
  2984. cfg->hp_pins[2], cfg->hp_pins[2],
  2985. spec->multiout.hp_out_nid[0],
  2986. spec->multiout.hp_out_nid[1],
  2987. spec->multiout.hp_out_nid[2],
  2988. spec->multiout.hp_out_nid[3]);
  2989. debug_badness("spk_outs = %x/%x/%x/%x : %x/%x/%x/%x\n",
  2990. cfg->speaker_pins[0], cfg->speaker_pins[1],
  2991. cfg->speaker_pins[2], cfg->speaker_pins[3],
  2992. spec->multiout.extra_out_nid[0],
  2993. spec->multiout.extra_out_nid[1],
  2994. spec->multiout.extra_out_nid[2],
  2995. spec->multiout.extra_out_nid[3]);
  2996. }
  2997. static int alc_auto_fill_dac_nids(struct hda_codec *codec)
  2998. {
  2999. struct alc_spec *spec = codec->spec;
  3000. struct auto_pin_cfg *cfg = &spec->autocfg;
  3001. struct auto_pin_cfg *best_cfg;
  3002. int best_badness = INT_MAX;
  3003. int badness;
  3004. bool fill_hardwired = true, fill_mio_first = true;
  3005. bool best_wired = true, best_mio = true;
  3006. bool hp_spk_swapped = false;
  3007. best_cfg = kmalloc(sizeof(*best_cfg), GFP_KERNEL);
  3008. if (!best_cfg)
  3009. return -ENOMEM;
  3010. *best_cfg = *cfg;
  3011. for (;;) {
  3012. badness = fill_and_eval_dacs(codec, fill_hardwired,
  3013. fill_mio_first);
  3014. if (badness < 0) {
  3015. kfree(best_cfg);
  3016. return badness;
  3017. }
  3018. debug_badness("==> lo_type=%d, wired=%d, mio=%d, badness=0x%x\n",
  3019. cfg->line_out_type, fill_hardwired, fill_mio_first,
  3020. badness);
  3021. debug_show_configs(spec, cfg);
  3022. if (badness < best_badness) {
  3023. best_badness = badness;
  3024. *best_cfg = *cfg;
  3025. best_wired = fill_hardwired;
  3026. best_mio = fill_mio_first;
  3027. }
  3028. if (!badness)
  3029. break;
  3030. fill_mio_first = !fill_mio_first;
  3031. if (!fill_mio_first)
  3032. continue;
  3033. fill_hardwired = !fill_hardwired;
  3034. if (!fill_hardwired)
  3035. continue;
  3036. if (hp_spk_swapped)
  3037. break;
  3038. hp_spk_swapped = true;
  3039. if (cfg->speaker_outs > 0 &&
  3040. cfg->line_out_type == AUTO_PIN_HP_OUT) {
  3041. cfg->hp_outs = cfg->line_outs;
  3042. memcpy(cfg->hp_pins, cfg->line_out_pins,
  3043. sizeof(cfg->hp_pins));
  3044. cfg->line_outs = cfg->speaker_outs;
  3045. memcpy(cfg->line_out_pins, cfg->speaker_pins,
  3046. sizeof(cfg->speaker_pins));
  3047. cfg->speaker_outs = 0;
  3048. memset(cfg->speaker_pins, 0, sizeof(cfg->speaker_pins));
  3049. cfg->line_out_type = AUTO_PIN_SPEAKER_OUT;
  3050. fill_hardwired = true;
  3051. continue;
  3052. }
  3053. if (cfg->hp_outs > 0 &&
  3054. cfg->line_out_type == AUTO_PIN_SPEAKER_OUT) {
  3055. cfg->speaker_outs = cfg->line_outs;
  3056. memcpy(cfg->speaker_pins, cfg->line_out_pins,
  3057. sizeof(cfg->speaker_pins));
  3058. cfg->line_outs = cfg->hp_outs;
  3059. memcpy(cfg->line_out_pins, cfg->hp_pins,
  3060. sizeof(cfg->hp_pins));
  3061. cfg->hp_outs = 0;
  3062. memset(cfg->hp_pins, 0, sizeof(cfg->hp_pins));
  3063. cfg->line_out_type = AUTO_PIN_HP_OUT;
  3064. fill_hardwired = true;
  3065. continue;
  3066. }
  3067. break;
  3068. }
  3069. if (badness) {
  3070. *cfg = *best_cfg;
  3071. fill_and_eval_dacs(codec, best_wired, best_mio);
  3072. }
  3073. debug_badness("==> Best config: lo_type=%d, wired=%d, mio=%d\n",
  3074. cfg->line_out_type, best_wired, best_mio);
  3075. debug_show_configs(spec, cfg);
  3076. if (cfg->line_out_pins[0])
  3077. spec->vmaster_nid =
  3078. alc_look_for_out_vol_nid(codec, cfg->line_out_pins[0],
  3079. spec->multiout.dac_nids[0]);
  3080. /* clear the bitmap flags for creating controls */
  3081. clear_vol_marks(codec);
  3082. kfree(best_cfg);
  3083. return 0;
  3084. }
  3085. static int alc_auto_add_vol_ctl(struct hda_codec *codec,
  3086. const char *pfx, int cidx,
  3087. hda_nid_t nid, unsigned int chs)
  3088. {
  3089. struct alc_spec *spec = codec->spec;
  3090. unsigned int val;
  3091. if (!nid)
  3092. return 0;
  3093. val = HDA_COMPOSE_AMP_VAL(nid, chs, 0, HDA_OUTPUT);
  3094. if (is_ctl_used(spec->vol_ctls, val) && chs != 2) /* exclude LFE */
  3095. return 0;
  3096. mark_ctl_usage(spec->vol_ctls, val);
  3097. return __add_pb_vol_ctrl(codec->spec, ALC_CTL_WIDGET_VOL, pfx, cidx,
  3098. val);
  3099. }
  3100. static int alc_auto_add_stereo_vol(struct hda_codec *codec,
  3101. const char *pfx, int cidx,
  3102. hda_nid_t nid)
  3103. {
  3104. int chs = 1;
  3105. if (get_wcaps(codec, nid) & AC_WCAP_STEREO)
  3106. chs = 3;
  3107. return alc_auto_add_vol_ctl(codec, pfx, cidx, nid, chs);
  3108. }
  3109. /* create a mute-switch for the given mixer widget;
  3110. * if it has multiple sources (e.g. DAC and loopback), create a bind-mute
  3111. */
  3112. static int alc_auto_add_sw_ctl(struct hda_codec *codec,
  3113. const char *pfx, int cidx,
  3114. hda_nid_t nid, unsigned int chs)
  3115. {
  3116. struct alc_spec *spec = codec->spec;
  3117. int wid_type;
  3118. int type;
  3119. unsigned long val;
  3120. if (!nid)
  3121. return 0;
  3122. wid_type = get_wcaps_type(get_wcaps(codec, nid));
  3123. if (wid_type == AC_WID_PIN || wid_type == AC_WID_AUD_OUT) {
  3124. type = ALC_CTL_WIDGET_MUTE;
  3125. val = HDA_COMPOSE_AMP_VAL(nid, chs, 0, HDA_OUTPUT);
  3126. } else if (snd_hda_get_num_conns(codec, nid) == 1) {
  3127. type = ALC_CTL_WIDGET_MUTE;
  3128. val = HDA_COMPOSE_AMP_VAL(nid, chs, 0, HDA_INPUT);
  3129. } else {
  3130. type = ALC_CTL_BIND_MUTE;
  3131. val = HDA_COMPOSE_AMP_VAL(nid, chs, 2, HDA_INPUT);
  3132. }
  3133. if (is_ctl_used(spec->sw_ctls, val) && chs != 2) /* exclude LFE */
  3134. return 0;
  3135. mark_ctl_usage(spec->sw_ctls, val);
  3136. return __add_pb_sw_ctrl(codec->spec, type, pfx, cidx, val);
  3137. }
  3138. static int alc_auto_add_stereo_sw(struct hda_codec *codec, const char *pfx,
  3139. int cidx, hda_nid_t nid)
  3140. {
  3141. int chs = 1;
  3142. if (get_wcaps(codec, nid) & AC_WCAP_STEREO)
  3143. chs = 3;
  3144. return alc_auto_add_sw_ctl(codec, pfx, cidx, nid, chs);
  3145. }
  3146. static hda_nid_t alc_look_for_out_mute_nid(struct hda_codec *codec,
  3147. hda_nid_t pin, hda_nid_t dac)
  3148. {
  3149. hda_nid_t mix = alc_auto_dac_to_mix(codec, pin, dac);
  3150. if (nid_has_mute(codec, pin, HDA_OUTPUT))
  3151. return pin;
  3152. else if (mix && nid_has_mute(codec, mix, HDA_INPUT))
  3153. return mix;
  3154. else if (nid_has_mute(codec, dac, HDA_OUTPUT))
  3155. return dac;
  3156. return 0;
  3157. }
  3158. static hda_nid_t alc_look_for_out_vol_nid(struct hda_codec *codec,
  3159. hda_nid_t pin, hda_nid_t dac)
  3160. {
  3161. hda_nid_t mix = alc_auto_dac_to_mix(codec, pin, dac);
  3162. if (nid_has_volume(codec, dac, HDA_OUTPUT))
  3163. return dac;
  3164. else if (nid_has_volume(codec, mix, HDA_OUTPUT))
  3165. return mix;
  3166. else if (nid_has_volume(codec, pin, HDA_OUTPUT))
  3167. return pin;
  3168. return 0;
  3169. }
  3170. /* add playback controls from the parsed DAC table */
  3171. static int alc_auto_create_multi_out_ctls(struct hda_codec *codec,
  3172. const struct auto_pin_cfg *cfg)
  3173. {
  3174. struct alc_spec *spec = codec->spec;
  3175. int i, err, noutputs;
  3176. noutputs = cfg->line_outs;
  3177. if (spec->multi_ios > 0 && cfg->line_outs < 3)
  3178. noutputs += spec->multi_ios;
  3179. for (i = 0; i < noutputs; i++) {
  3180. const char *name;
  3181. int index;
  3182. hda_nid_t dac, pin;
  3183. hda_nid_t sw, vol;
  3184. dac = spec->multiout.dac_nids[i];
  3185. if (!dac)
  3186. continue;
  3187. if (i >= cfg->line_outs) {
  3188. pin = spec->multi_io[i - 1].pin;
  3189. index = 0;
  3190. name = channel_name[i];
  3191. } else {
  3192. pin = cfg->line_out_pins[i];
  3193. name = alc_get_line_out_pfx(spec, i, true, &index);
  3194. }
  3195. sw = alc_look_for_out_mute_nid(codec, pin, dac);
  3196. vol = alc_look_for_out_vol_nid(codec, pin, dac);
  3197. if (!name || !strcmp(name, "CLFE")) {
  3198. /* Center/LFE */
  3199. err = alc_auto_add_vol_ctl(codec, "Center", 0, vol, 1);
  3200. if (err < 0)
  3201. return err;
  3202. err = alc_auto_add_vol_ctl(codec, "LFE", 0, vol, 2);
  3203. if (err < 0)
  3204. return err;
  3205. err = alc_auto_add_sw_ctl(codec, "Center", 0, sw, 1);
  3206. if (err < 0)
  3207. return err;
  3208. err = alc_auto_add_sw_ctl(codec, "LFE", 0, sw, 2);
  3209. if (err < 0)
  3210. return err;
  3211. } else {
  3212. err = alc_auto_add_stereo_vol(codec, name, index, vol);
  3213. if (err < 0)
  3214. return err;
  3215. err = alc_auto_add_stereo_sw(codec, name, index, sw);
  3216. if (err < 0)
  3217. return err;
  3218. }
  3219. }
  3220. return 0;
  3221. }
  3222. static int alc_auto_create_extra_out(struct hda_codec *codec, hda_nid_t pin,
  3223. hda_nid_t dac, const char *pfx,
  3224. int cidx)
  3225. {
  3226. struct alc_spec *spec = codec->spec;
  3227. hda_nid_t sw, vol;
  3228. int err;
  3229. if (!dac) {
  3230. unsigned int val;
  3231. /* the corresponding DAC is already occupied */
  3232. if (!(get_wcaps(codec, pin) & AC_WCAP_OUT_AMP))
  3233. return 0; /* no way */
  3234. /* create a switch only */
  3235. val = HDA_COMPOSE_AMP_VAL(pin, 3, 0, HDA_OUTPUT);
  3236. if (is_ctl_used(spec->sw_ctls, val))
  3237. return 0; /* already created */
  3238. mark_ctl_usage(spec->sw_ctls, val);
  3239. return __add_pb_sw_ctrl(spec, ALC_CTL_WIDGET_MUTE, pfx, cidx, val);
  3240. }
  3241. sw = alc_look_for_out_mute_nid(codec, pin, dac);
  3242. vol = alc_look_for_out_vol_nid(codec, pin, dac);
  3243. err = alc_auto_add_stereo_vol(codec, pfx, cidx, vol);
  3244. if (err < 0)
  3245. return err;
  3246. err = alc_auto_add_stereo_sw(codec, pfx, cidx, sw);
  3247. if (err < 0)
  3248. return err;
  3249. return 0;
  3250. }
  3251. static struct hda_bind_ctls *new_bind_ctl(struct hda_codec *codec,
  3252. unsigned int nums,
  3253. struct hda_ctl_ops *ops)
  3254. {
  3255. struct alc_spec *spec = codec->spec;
  3256. struct hda_bind_ctls **ctlp, *ctl;
  3257. snd_array_init(&spec->bind_ctls, sizeof(ctl), 8);
  3258. ctlp = snd_array_new(&spec->bind_ctls);
  3259. if (!ctlp)
  3260. return NULL;
  3261. ctl = kzalloc(sizeof(*ctl) + sizeof(long) * (nums + 1), GFP_KERNEL);
  3262. *ctlp = ctl;
  3263. if (ctl)
  3264. ctl->ops = ops;
  3265. return ctl;
  3266. }
  3267. /* add playback controls for speaker and HP outputs */
  3268. static int alc_auto_create_extra_outs(struct hda_codec *codec, int num_pins,
  3269. const hda_nid_t *pins,
  3270. const hda_nid_t *dacs,
  3271. const char *pfx)
  3272. {
  3273. struct alc_spec *spec = codec->spec;
  3274. struct hda_bind_ctls *ctl;
  3275. char name[32];
  3276. int i, n, err;
  3277. if (!num_pins || !pins[0])
  3278. return 0;
  3279. if (num_pins == 1) {
  3280. hda_nid_t dac = *dacs;
  3281. if (!dac)
  3282. dac = spec->multiout.dac_nids[0];
  3283. return alc_auto_create_extra_out(codec, *pins, dac, pfx, 0);
  3284. }
  3285. for (i = 0; i < num_pins; i++) {
  3286. hda_nid_t dac;
  3287. if (dacs[num_pins - 1])
  3288. dac = dacs[i]; /* with individual volumes */
  3289. else
  3290. dac = 0;
  3291. if (num_pins == 2 && i == 1 && !strcmp(pfx, "Speaker")) {
  3292. err = alc_auto_create_extra_out(codec, pins[i], dac,
  3293. "Bass Speaker", 0);
  3294. } else if (num_pins >= 3) {
  3295. snprintf(name, sizeof(name), "%s %s",
  3296. pfx, channel_name[i]);
  3297. err = alc_auto_create_extra_out(codec, pins[i], dac,
  3298. name, 0);
  3299. } else {
  3300. err = alc_auto_create_extra_out(codec, pins[i], dac,
  3301. pfx, i);
  3302. }
  3303. if (err < 0)
  3304. return err;
  3305. }
  3306. if (dacs[num_pins - 1])
  3307. return 0;
  3308. /* Let's create a bind-controls for volumes */
  3309. ctl = new_bind_ctl(codec, num_pins, &snd_hda_bind_vol);
  3310. if (!ctl)
  3311. return -ENOMEM;
  3312. n = 0;
  3313. for (i = 0; i < num_pins; i++) {
  3314. hda_nid_t vol;
  3315. if (!pins[i] || !dacs[i])
  3316. continue;
  3317. vol = alc_look_for_out_vol_nid(codec, pins[i], dacs[i]);
  3318. if (vol)
  3319. ctl->values[n++] =
  3320. HDA_COMPOSE_AMP_VAL(vol, 3, 0, HDA_OUTPUT);
  3321. }
  3322. if (n) {
  3323. snprintf(name, sizeof(name), "%s Playback Volume", pfx);
  3324. err = add_control(spec, ALC_CTL_BIND_VOL, name, 0, (long)ctl);
  3325. if (err < 0)
  3326. return err;
  3327. }
  3328. return 0;
  3329. }
  3330. static int alc_auto_create_hp_out(struct hda_codec *codec)
  3331. {
  3332. struct alc_spec *spec = codec->spec;
  3333. return alc_auto_create_extra_outs(codec, spec->autocfg.hp_outs,
  3334. spec->autocfg.hp_pins,
  3335. spec->multiout.hp_out_nid,
  3336. "Headphone");
  3337. }
  3338. static int alc_auto_create_speaker_out(struct hda_codec *codec)
  3339. {
  3340. struct alc_spec *spec = codec->spec;
  3341. return alc_auto_create_extra_outs(codec, spec->autocfg.speaker_outs,
  3342. spec->autocfg.speaker_pins,
  3343. spec->multiout.extra_out_nid,
  3344. "Speaker");
  3345. }
  3346. static void alc_auto_set_output_and_unmute(struct hda_codec *codec,
  3347. hda_nid_t pin, int pin_type,
  3348. hda_nid_t dac)
  3349. {
  3350. int i, num;
  3351. hda_nid_t nid, mix = 0;
  3352. hda_nid_t srcs[HDA_MAX_CONNECTIONS];
  3353. alc_set_pin_output(codec, pin, pin_type);
  3354. nid = alc_go_down_to_selector(codec, pin);
  3355. num = snd_hda_get_connections(codec, nid, srcs, ARRAY_SIZE(srcs));
  3356. for (i = 0; i < num; i++) {
  3357. if (alc_auto_mix_to_dac(codec, srcs[i]) != dac)
  3358. continue;
  3359. mix = srcs[i];
  3360. break;
  3361. }
  3362. if (!mix)
  3363. return;
  3364. /* need the manual connection? */
  3365. if (num > 1)
  3366. snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_CONNECT_SEL, i);
  3367. /* unmute mixer widget inputs */
  3368. if (nid_has_mute(codec, mix, HDA_INPUT)) {
  3369. snd_hda_codec_write(codec, mix, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  3370. AMP_IN_UNMUTE(0));
  3371. snd_hda_codec_write(codec, mix, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  3372. AMP_IN_UNMUTE(1));
  3373. }
  3374. /* initialize volume */
  3375. nid = alc_look_for_out_vol_nid(codec, pin, dac);
  3376. if (nid)
  3377. snd_hda_codec_write(codec, nid, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  3378. AMP_OUT_ZERO);
  3379. /* unmute DAC if it's not assigned to a mixer */
  3380. nid = alc_look_for_out_mute_nid(codec, pin, dac);
  3381. if (nid == mix && nid_has_mute(codec, dac, HDA_OUTPUT))
  3382. snd_hda_codec_write(codec, dac, 0, AC_VERB_SET_AMP_GAIN_MUTE,
  3383. AMP_OUT_ZERO);
  3384. }
  3385. static void alc_auto_init_multi_out(struct hda_codec *codec)
  3386. {
  3387. struct alc_spec *spec = codec->spec;
  3388. int pin_type = get_pin_type(spec->autocfg.line_out_type);
  3389. int i;
  3390. for (i = 0; i <= HDA_SIDE; i++) {
  3391. hda_nid_t nid = spec->autocfg.line_out_pins[i];
  3392. if (nid)
  3393. alc_auto_set_output_and_unmute(codec, nid, pin_type,
  3394. spec->multiout.dac_nids[i]);
  3395. }
  3396. }
  3397. static void alc_auto_init_extra_out(struct hda_codec *codec)
  3398. {
  3399. struct alc_spec *spec = codec->spec;
  3400. int i;
  3401. hda_nid_t pin, dac;
  3402. for (i = 0; i < spec->autocfg.hp_outs; i++) {
  3403. if (spec->autocfg.line_out_type == AUTO_PIN_HP_OUT)
  3404. break;
  3405. pin = spec->autocfg.hp_pins[i];
  3406. if (!pin)
  3407. break;
  3408. dac = spec->multiout.hp_out_nid[i];
  3409. if (!dac) {
  3410. if (i > 0 && spec->multiout.hp_out_nid[0])
  3411. dac = spec->multiout.hp_out_nid[0];
  3412. else
  3413. dac = spec->multiout.dac_nids[0];
  3414. }
  3415. alc_auto_set_output_and_unmute(codec, pin, PIN_HP, dac);
  3416. }
  3417. for (i = 0; i < spec->autocfg.speaker_outs; i++) {
  3418. if (spec->autocfg.line_out_type == AUTO_PIN_SPEAKER_OUT)
  3419. break;
  3420. pin = spec->autocfg.speaker_pins[i];
  3421. if (!pin)
  3422. break;
  3423. dac = spec->multiout.extra_out_nid[i];
  3424. if (!dac) {
  3425. if (i > 0 && spec->multiout.extra_out_nid[0])
  3426. dac = spec->multiout.extra_out_nid[0];
  3427. else
  3428. dac = spec->multiout.dac_nids[0];
  3429. }
  3430. alc_auto_set_output_and_unmute(codec, pin, PIN_OUT, dac);
  3431. }
  3432. }
  3433. /* check whether the given pin can be a multi-io pin */
  3434. static bool can_be_multiio_pin(struct hda_codec *codec,
  3435. unsigned int location, hda_nid_t nid)
  3436. {
  3437. unsigned int defcfg, caps;
  3438. defcfg = snd_hda_codec_get_pincfg(codec, nid);
  3439. if (get_defcfg_connect(defcfg) != AC_JACK_PORT_COMPLEX)
  3440. return false;
  3441. if (location && get_defcfg_location(defcfg) != location)
  3442. return false;
  3443. caps = snd_hda_query_pin_caps(codec, nid);
  3444. if (!(caps & AC_PINCAP_OUT))
  3445. return false;
  3446. return true;
  3447. }
  3448. /*
  3449. * multi-io helper
  3450. *
  3451. * When hardwired is set, try to fill ony hardwired pins, and returns
  3452. * zero if any pins are filled, non-zero if nothing found.
  3453. * When hardwired is off, try to fill possible input pins, and returns
  3454. * the badness value.
  3455. */
  3456. static int alc_auto_fill_multi_ios(struct hda_codec *codec,
  3457. hda_nid_t reference_pin,
  3458. bool hardwired, int offset)
  3459. {
  3460. struct alc_spec *spec = codec->spec;
  3461. struct auto_pin_cfg *cfg = &spec->autocfg;
  3462. int type, i, j, dacs, num_pins, old_pins;
  3463. unsigned int defcfg = snd_hda_codec_get_pincfg(codec, reference_pin);
  3464. unsigned int location = get_defcfg_location(defcfg);
  3465. int badness = 0;
  3466. old_pins = spec->multi_ios;
  3467. if (old_pins >= 2)
  3468. goto end_fill;
  3469. num_pins = 0;
  3470. for (type = AUTO_PIN_LINE_IN; type >= AUTO_PIN_MIC; type--) {
  3471. for (i = 0; i < cfg->num_inputs; i++) {
  3472. if (cfg->inputs[i].type != type)
  3473. continue;
  3474. if (can_be_multiio_pin(codec, location,
  3475. cfg->inputs[i].pin))
  3476. num_pins++;
  3477. }
  3478. }
  3479. if (num_pins < 2)
  3480. goto end_fill;
  3481. dacs = spec->multiout.num_dacs;
  3482. for (type = AUTO_PIN_LINE_IN; type >= AUTO_PIN_MIC; type--) {
  3483. for (i = 0; i < cfg->num_inputs; i++) {
  3484. hda_nid_t nid = cfg->inputs[i].pin;
  3485. hda_nid_t dac = 0;
  3486. if (cfg->inputs[i].type != type)
  3487. continue;
  3488. if (!can_be_multiio_pin(codec, location, nid))
  3489. continue;
  3490. for (j = 0; j < spec->multi_ios; j++) {
  3491. if (nid == spec->multi_io[j].pin)
  3492. break;
  3493. }
  3494. if (j < spec->multi_ios)
  3495. continue;
  3496. if (offset && offset + spec->multi_ios < dacs) {
  3497. dac = spec->private_dac_nids[offset + spec->multi_ios];
  3498. if (!alc_auto_is_dac_reachable(codec, nid, dac))
  3499. dac = 0;
  3500. }
  3501. if (hardwired)
  3502. dac = get_dac_if_single(codec, nid);
  3503. else if (!dac)
  3504. dac = alc_auto_look_for_dac(codec, nid);
  3505. if (!dac) {
  3506. badness++;
  3507. continue;
  3508. }
  3509. spec->multi_io[spec->multi_ios].pin = nid;
  3510. spec->multi_io[spec->multi_ios].dac = dac;
  3511. spec->multi_ios++;
  3512. if (spec->multi_ios >= 2)
  3513. break;
  3514. }
  3515. }
  3516. end_fill:
  3517. if (badness)
  3518. badness = BAD_MULTI_IO;
  3519. if (old_pins == spec->multi_ios) {
  3520. if (hardwired)
  3521. return 1; /* nothing found */
  3522. else
  3523. return badness; /* no badness if nothing found */
  3524. }
  3525. if (!hardwired && spec->multi_ios < 2) {
  3526. spec->multi_ios = old_pins;
  3527. return badness;
  3528. }
  3529. return 0;
  3530. }
  3531. static int alc_auto_ch_mode_info(struct snd_kcontrol *kcontrol,
  3532. struct snd_ctl_elem_info *uinfo)
  3533. {
  3534. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  3535. struct alc_spec *spec = codec->spec;
  3536. uinfo->type = SNDRV_CTL_ELEM_TYPE_ENUMERATED;
  3537. uinfo->count = 1;
  3538. uinfo->value.enumerated.items = spec->multi_ios + 1;
  3539. if (uinfo->value.enumerated.item > spec->multi_ios)
  3540. uinfo->value.enumerated.item = spec->multi_ios;
  3541. sprintf(uinfo->value.enumerated.name, "%dch",
  3542. (uinfo->value.enumerated.item + 1) * 2);
  3543. return 0;
  3544. }
  3545. static int alc_auto_ch_mode_get(struct snd_kcontrol *kcontrol,
  3546. struct snd_ctl_elem_value *ucontrol)
  3547. {
  3548. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  3549. struct alc_spec *spec = codec->spec;
  3550. ucontrol->value.enumerated.item[0] = (spec->ext_channel_count - 1) / 2;
  3551. return 0;
  3552. }
  3553. static int alc_set_multi_io(struct hda_codec *codec, int idx, bool output)
  3554. {
  3555. struct alc_spec *spec = codec->spec;
  3556. hda_nid_t nid = spec->multi_io[idx].pin;
  3557. if (!spec->multi_io[idx].ctl_in)
  3558. spec->multi_io[idx].ctl_in =
  3559. snd_hda_codec_read(codec, nid, 0,
  3560. AC_VERB_GET_PIN_WIDGET_CONTROL, 0);
  3561. if (output) {
  3562. snd_hda_set_pin_ctl_cache(codec, nid, PIN_OUT);
  3563. if (get_wcaps(codec, nid) & AC_WCAP_OUT_AMP)
  3564. snd_hda_codec_amp_stereo(codec, nid, HDA_OUTPUT, 0,
  3565. HDA_AMP_MUTE, 0);
  3566. alc_auto_select_dac(codec, nid, spec->multi_io[idx].dac);
  3567. } else {
  3568. if (get_wcaps(codec, nid) & AC_WCAP_OUT_AMP)
  3569. snd_hda_codec_amp_stereo(codec, nid, HDA_OUTPUT, 0,
  3570. HDA_AMP_MUTE, HDA_AMP_MUTE);
  3571. snd_hda_set_pin_ctl_cache(codec, nid,
  3572. spec->multi_io[idx].ctl_in);
  3573. }
  3574. return 0;
  3575. }
  3576. static int alc_auto_ch_mode_put(struct snd_kcontrol *kcontrol,
  3577. struct snd_ctl_elem_value *ucontrol)
  3578. {
  3579. struct hda_codec *codec = snd_kcontrol_chip(kcontrol);
  3580. struct alc_spec *spec = codec->spec;
  3581. int i, ch;
  3582. ch = ucontrol->value.enumerated.item[0];
  3583. if (ch < 0 || ch > spec->multi_ios)
  3584. return -EINVAL;
  3585. if (ch == (spec->ext_channel_count - 1) / 2)
  3586. return 0;
  3587. spec->ext_channel_count = (ch + 1) * 2;
  3588. for (i = 0; i < spec->multi_ios; i++)
  3589. alc_set_multi_io(codec, i, i < ch);
  3590. spec->multiout.max_channels = spec->ext_channel_count;
  3591. if (spec->need_dac_fix && !spec->const_channel_count)
  3592. spec->multiout.num_dacs = spec->multiout.max_channels / 2;
  3593. return 1;
  3594. }
  3595. static const struct snd_kcontrol_new alc_auto_channel_mode_enum = {
  3596. .iface = SNDRV_CTL_ELEM_IFACE_MIXER,
  3597. .name = "Channel Mode",
  3598. .info = alc_auto_ch_mode_info,
  3599. .get = alc_auto_ch_mode_get,
  3600. .put = alc_auto_ch_mode_put,
  3601. };
  3602. static int alc_auto_add_multi_channel_mode(struct hda_codec *codec)
  3603. {
  3604. struct alc_spec *spec = codec->spec;
  3605. if (spec->multi_ios > 0) {
  3606. struct snd_kcontrol_new *knew;
  3607. knew = alc_kcontrol_new(spec);
  3608. if (!knew)
  3609. return -ENOMEM;
  3610. *knew = alc_auto_channel_mode_enum;
  3611. knew->name = kstrdup("Channel Mode", GFP_KERNEL);
  3612. if (!knew->name)
  3613. return -ENOMEM;
  3614. }
  3615. return 0;
  3616. }
  3617. /* filter out invalid adc_nids (and capsrc_nids) that don't give all
  3618. * active input pins
  3619. */
  3620. static void alc_remove_invalid_adc_nids(struct hda_codec *codec)
  3621. {
  3622. struct alc_spec *spec = codec->spec;
  3623. const struct hda_input_mux *imux;
  3624. hda_nid_t adc_nids[ARRAY_SIZE(spec->private_adc_nids)];
  3625. hda_nid_t capsrc_nids[ARRAY_SIZE(spec->private_adc_nids)];
  3626. int i, n, nums;
  3627. imux = spec->input_mux;
  3628. if (!imux)
  3629. return;
  3630. if (spec->dyn_adc_switch)
  3631. return;
  3632. again:
  3633. nums = 0;
  3634. for (n = 0; n < spec->num_adc_nids; n++) {
  3635. hda_nid_t cap = spec->private_capsrc_nids[n];
  3636. int num_conns = snd_hda_get_num_conns(codec, cap);
  3637. for (i = 0; i < imux->num_items; i++) {
  3638. hda_nid_t pin = spec->imux_pins[i];
  3639. if (pin) {
  3640. if (get_connection_index(codec, cap, pin) < 0)
  3641. break;
  3642. } else if (num_conns <= imux->items[i].index)
  3643. break;
  3644. }
  3645. if (i >= imux->num_items) {
  3646. adc_nids[nums] = spec->private_adc_nids[n];
  3647. capsrc_nids[nums++] = cap;
  3648. }
  3649. }
  3650. if (!nums) {
  3651. /* check whether ADC-switch is possible */
  3652. if (!alc_check_dyn_adc_switch(codec)) {
  3653. if (spec->shared_mic_hp) {
  3654. spec->shared_mic_hp = 0;
  3655. spec->private_imux[0].num_items = 1;
  3656. goto again;
  3657. }
  3658. printk(KERN_WARNING "hda_codec: %s: no valid ADC found;"
  3659. " using fallback 0x%x\n",
  3660. codec->chip_name, spec->private_adc_nids[0]);
  3661. spec->num_adc_nids = 1;
  3662. spec->auto_mic = 0;
  3663. return;
  3664. }
  3665. } else if (nums != spec->num_adc_nids) {
  3666. memcpy(spec->private_adc_nids, adc_nids,
  3667. nums * sizeof(hda_nid_t));
  3668. memcpy(spec->private_capsrc_nids, capsrc_nids,
  3669. nums * sizeof(hda_nid_t));
  3670. spec->num_adc_nids = nums;
  3671. }
  3672. if (spec->auto_mic)
  3673. alc_auto_mic_check_imux(codec); /* check auto-mic setups */
  3674. else if (spec->input_mux->num_items == 1 || spec->shared_mic_hp)
  3675. spec->num_adc_nids = 1; /* reduce to a single ADC */
  3676. }
  3677. /*
  3678. * initialize ADC paths
  3679. */
  3680. static void alc_auto_init_adc(struct hda_codec *codec, int adc_idx)
  3681. {
  3682. struct alc_spec *spec = codec->spec;
  3683. hda_nid_t nid;
  3684. nid = spec->adc_nids[adc_idx];
  3685. /* mute ADC */
  3686. if (nid_has_mute(codec, nid, HDA_INPUT)) {
  3687. snd_hda_codec_write(codec, nid, 0,
  3688. AC_VERB_SET_AMP_GAIN_MUTE,
  3689. AMP_IN_MUTE(0));
  3690. return;
  3691. }
  3692. if (!spec->capsrc_nids)
  3693. return;
  3694. nid = spec->capsrc_nids[adc_idx];
  3695. if (nid_has_mute(codec, nid, HDA_OUTPUT))
  3696. snd_hda_codec_write(codec, nid, 0,
  3697. AC_VERB_SET_AMP_GAIN_MUTE,
  3698. AMP_OUT_MUTE);
  3699. }
  3700. static void alc_auto_init_input_src(struct hda_codec *codec)
  3701. {
  3702. struct alc_spec *spec = codec->spec;
  3703. int c, nums;
  3704. for (c = 0; c < spec->num_adc_nids; c++)
  3705. alc_auto_init_adc(codec, c);
  3706. if (spec->dyn_adc_switch)
  3707. nums = 1;
  3708. else
  3709. nums = spec->num_adc_nids;
  3710. for (c = 0; c < nums; c++)
  3711. alc_mux_select(codec, c, spec->cur_mux[c], true);
  3712. }
  3713. /* add mic boosts if needed */
  3714. static int alc_auto_add_mic_boost(struct hda_codec *codec)
  3715. {
  3716. struct alc_spec *spec = codec->spec;
  3717. struct auto_pin_cfg *cfg = &spec->autocfg;
  3718. int i, err;
  3719. int type_idx = 0;
  3720. hda_nid_t nid;
  3721. const char *prev_label = NULL;
  3722. for (i = 0; i < cfg->num_inputs; i++) {
  3723. if (cfg->inputs[i].type > AUTO_PIN_MIC)
  3724. break;
  3725. nid = cfg->inputs[i].pin;
  3726. if (get_wcaps(codec, nid) & AC_WCAP_IN_AMP) {
  3727. const char *label;
  3728. char boost_label[32];
  3729. label = hda_get_autocfg_input_label(codec, cfg, i);
  3730. if (spec->shared_mic_hp && !strcmp(label, "Misc"))
  3731. label = "Headphone Mic";
  3732. if (prev_label && !strcmp(label, prev_label))
  3733. type_idx++;
  3734. else
  3735. type_idx = 0;
  3736. prev_label = label;
  3737. snprintf(boost_label, sizeof(boost_label),
  3738. "%s Boost Volume", label);
  3739. err = add_control(spec, ALC_CTL_WIDGET_VOL,
  3740. boost_label, type_idx,
  3741. HDA_COMPOSE_AMP_VAL(nid, 3, 0, HDA_INPUT));
  3742. if (err < 0)
  3743. return err;
  3744. }
  3745. }
  3746. return 0;
  3747. }
  3748. /* select or unmute the given capsrc route */
  3749. static void select_or_unmute_capsrc(struct hda_codec *codec, hda_nid_t cap,
  3750. int idx)
  3751. {
  3752. if (get_wcaps_type(get_wcaps(codec, cap)) == AC_WID_AUD_MIX) {
  3753. snd_hda_codec_amp_stereo(codec, cap, HDA_INPUT, idx,
  3754. HDA_AMP_MUTE, 0);
  3755. } else if (snd_hda_get_num_conns(codec, cap) > 1) {
  3756. snd_hda_codec_write_cache(codec, cap, 0,
  3757. AC_VERB_SET_CONNECT_SEL, idx);
  3758. }
  3759. }
  3760. /* set the default connection to that pin */
  3761. static int init_capsrc_for_pin(struct hda_codec *codec, hda_nid_t pin)
  3762. {
  3763. struct alc_spec *spec = codec->spec;
  3764. int i;
  3765. if (!pin)
  3766. return 0;
  3767. for (i = 0; i < spec->num_adc_nids; i++) {
  3768. hda_nid_t cap = get_capsrc(spec, i);
  3769. int idx;
  3770. idx = get_connection_index(codec, cap, pin);
  3771. if (idx < 0)
  3772. continue;
  3773. select_or_unmute_capsrc(codec, cap, idx);
  3774. return i; /* return the found index */
  3775. }
  3776. return -1; /* not found */
  3777. }
  3778. /* initialize some special cases for input sources */
  3779. static void alc_init_special_input_src(struct hda_codec *codec)
  3780. {
  3781. struct alc_spec *spec = codec->spec;
  3782. int i;
  3783. for (i = 0; i < spec->autocfg.num_inputs; i++)
  3784. init_capsrc_for_pin(codec, spec->autocfg.inputs[i].pin);
  3785. }
  3786. /* assign appropriate capture mixers */
  3787. static void set_capture_mixer(struct hda_codec *codec)
  3788. {
  3789. struct alc_spec *spec = codec->spec;
  3790. static const struct snd_kcontrol_new *caps[2][3] = {
  3791. { alc_capture_mixer_nosrc1,
  3792. alc_capture_mixer_nosrc2,
  3793. alc_capture_mixer_nosrc3 },
  3794. { alc_capture_mixer1,
  3795. alc_capture_mixer2,
  3796. alc_capture_mixer3 },
  3797. };
  3798. /* check whether either of ADC or MUX has a volume control */
  3799. if (!nid_has_volume(codec, spec->adc_nids[0], HDA_INPUT)) {
  3800. if (!spec->capsrc_nids)
  3801. return; /* no volume */
  3802. if (!nid_has_volume(codec, spec->capsrc_nids[0], HDA_OUTPUT))
  3803. return; /* no volume in capsrc, too */
  3804. spec->vol_in_capsrc = 1;
  3805. }
  3806. if (spec->num_adc_nids > 0) {
  3807. int mux = 0;
  3808. int num_adcs = 0;
  3809. if (spec->input_mux && spec->input_mux->num_items > 1)
  3810. mux = 1;
  3811. if (spec->auto_mic) {
  3812. num_adcs = 1;
  3813. mux = 0;
  3814. } else if (spec->dyn_adc_switch)
  3815. num_adcs = 1;
  3816. if (!num_adcs) {
  3817. if (spec->num_adc_nids > 3)
  3818. spec->num_adc_nids = 3;
  3819. else if (!spec->num_adc_nids)
  3820. return;
  3821. num_adcs = spec->num_adc_nids;
  3822. }
  3823. spec->cap_mixer = caps[mux][num_adcs - 1];
  3824. }
  3825. }
  3826. /*
  3827. * standard auto-parser initializations
  3828. */
  3829. static void alc_auto_init_std(struct hda_codec *codec)
  3830. {
  3831. alc_auto_init_multi_out(codec);
  3832. alc_auto_init_extra_out(codec);
  3833. alc_auto_init_analog_input(codec);
  3834. alc_auto_init_input_src(codec);
  3835. alc_auto_init_digital(codec);
  3836. alc_inithook(codec);
  3837. }
  3838. /*
  3839. * Digital-beep handlers
  3840. */
  3841. #ifdef CONFIG_SND_HDA_INPUT_BEEP
  3842. #define set_beep_amp(spec, nid, idx, dir) \
  3843. ((spec)->beep_amp = HDA_COMPOSE_AMP_VAL(nid, 3, idx, dir))
  3844. static const struct snd_pci_quirk beep_white_list[] = {
  3845. SND_PCI_QUIRK(0x1043, 0x829f, "ASUS", 1),
  3846. SND_PCI_QUIRK(0x1043, 0x83ce, "EeePC", 1),
  3847. SND_PCI_QUIRK(0x1043, 0x831a, "EeePC", 1),
  3848. SND_PCI_QUIRK(0x1043, 0x834a, "EeePC", 1),
  3849. SND_PCI_QUIRK(0x1458, 0xa002, "GA-MA790X", 1),
  3850. SND_PCI_QUIRK(0x8086, 0xd613, "Intel", 1),
  3851. {}
  3852. };
  3853. static inline int has_cdefine_beep(struct hda_codec *codec)
  3854. {
  3855. struct alc_spec *spec = codec->spec;
  3856. const struct snd_pci_quirk *q;
  3857. q = snd_pci_quirk_lookup(codec->bus->pci, beep_white_list);
  3858. if (q)
  3859. return q->value;
  3860. return spec->cdefine.enable_pcbeep;
  3861. }
  3862. #else
  3863. #define set_beep_amp(spec, nid, idx, dir) /* NOP */
  3864. #define has_cdefine_beep(codec) 0
  3865. #endif
  3866. /* parse the BIOS configuration and set up the alc_spec */
  3867. /* return 1 if successful, 0 if the proper config is not found,
  3868. * or a negative error code
  3869. */
  3870. static int alc_parse_auto_config(struct hda_codec *codec,
  3871. const hda_nid_t *ignore_nids,
  3872. const hda_nid_t *ssid_nids)
  3873. {
  3874. struct alc_spec *spec = codec->spec;
  3875. struct auto_pin_cfg *cfg = &spec->autocfg;
  3876. int err;
  3877. err = snd_hda_parse_pin_defcfg(codec, cfg, ignore_nids,
  3878. spec->parse_flags);
  3879. if (err < 0)
  3880. return err;
  3881. if (!cfg->line_outs) {
  3882. if (cfg->dig_outs || cfg->dig_in_pin) {
  3883. spec->multiout.max_channels = 2;
  3884. spec->no_analog = 1;
  3885. goto dig_only;
  3886. }
  3887. return 0; /* can't find valid BIOS pin config */
  3888. }
  3889. if (!spec->no_primary_hp &&
  3890. cfg->line_out_type == AUTO_PIN_SPEAKER_OUT &&
  3891. cfg->line_outs <= cfg->hp_outs) {
  3892. /* use HP as primary out */
  3893. cfg->speaker_outs = cfg->line_outs;
  3894. memcpy(cfg->speaker_pins, cfg->line_out_pins,
  3895. sizeof(cfg->speaker_pins));
  3896. cfg->line_outs = cfg->hp_outs;
  3897. memcpy(cfg->line_out_pins, cfg->hp_pins, sizeof(cfg->hp_pins));
  3898. cfg->hp_outs = 0;
  3899. memset(cfg->hp_pins, 0, sizeof(cfg->hp_pins));
  3900. cfg->line_out_type = AUTO_PIN_HP_OUT;
  3901. }
  3902. err = alc_auto_fill_dac_nids(codec);
  3903. if (err < 0)
  3904. return err;
  3905. err = alc_auto_add_multi_channel_mode(codec);
  3906. if (err < 0)
  3907. return err;
  3908. err = alc_auto_create_multi_out_ctls(codec, cfg);
  3909. if (err < 0)
  3910. return err;
  3911. err = alc_auto_create_hp_out(codec);
  3912. if (err < 0)
  3913. return err;
  3914. err = alc_auto_create_speaker_out(codec);
  3915. if (err < 0)
  3916. return err;
  3917. err = alc_auto_create_shared_input(codec);
  3918. if (err < 0)
  3919. return err;
  3920. err = alc_auto_create_input_ctls(codec);
  3921. if (err < 0)
  3922. return err;
  3923. spec->multiout.max_channels = spec->multiout.num_dacs * 2;
  3924. dig_only:
  3925. alc_auto_parse_digital(codec);
  3926. if (!spec->no_analog)
  3927. alc_remove_invalid_adc_nids(codec);
  3928. if (ssid_nids)
  3929. alc_ssid_check(codec, ssid_nids);
  3930. if (!spec->no_analog) {
  3931. alc_auto_check_switches(codec);
  3932. err = alc_auto_add_mic_boost(codec);
  3933. if (err < 0)
  3934. return err;
  3935. }
  3936. if (spec->kctls.list)
  3937. add_mixer(spec, spec->kctls.list);
  3938. if (!spec->no_analog && !spec->cap_mixer)
  3939. set_capture_mixer(codec);
  3940. return 1;
  3941. }
  3942. /* common preparation job for alc_spec */
  3943. static int alc_alloc_spec(struct hda_codec *codec, hda_nid_t mixer_nid)
  3944. {
  3945. struct alc_spec *spec = kzalloc(sizeof(*spec), GFP_KERNEL);
  3946. int err;
  3947. if (!spec)
  3948. return -ENOMEM;
  3949. codec->spec = spec;
  3950. spec->mixer_nid = mixer_nid;
  3951. snd_hda_gen_init(&spec->gen);
  3952. err = alc_codec_rename_from_preset(codec);
  3953. if (err < 0) {
  3954. kfree(spec);
  3955. return err;
  3956. }
  3957. return 0;
  3958. }
  3959. static int alc880_parse_auto_config(struct hda_codec *codec)
  3960. {
  3961. static const hda_nid_t alc880_ignore[] = { 0x1d, 0 };
  3962. static const hda_nid_t alc880_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  3963. return alc_parse_auto_config(codec, alc880_ignore, alc880_ssids);
  3964. }
  3965. /*
  3966. * ALC880 fix-ups
  3967. */
  3968. enum {
  3969. ALC880_FIXUP_GPIO1,
  3970. ALC880_FIXUP_GPIO2,
  3971. ALC880_FIXUP_MEDION_RIM,
  3972. ALC880_FIXUP_LG,
  3973. ALC880_FIXUP_W810,
  3974. ALC880_FIXUP_EAPD_COEF,
  3975. ALC880_FIXUP_TCL_S700,
  3976. ALC880_FIXUP_VOL_KNOB,
  3977. ALC880_FIXUP_FUJITSU,
  3978. ALC880_FIXUP_F1734,
  3979. ALC880_FIXUP_UNIWILL,
  3980. ALC880_FIXUP_UNIWILL_DIG,
  3981. ALC880_FIXUP_Z71V,
  3982. ALC880_FIXUP_3ST_BASE,
  3983. ALC880_FIXUP_3ST,
  3984. ALC880_FIXUP_3ST_DIG,
  3985. ALC880_FIXUP_5ST_BASE,
  3986. ALC880_FIXUP_5ST,
  3987. ALC880_FIXUP_5ST_DIG,
  3988. ALC880_FIXUP_6ST_BASE,
  3989. ALC880_FIXUP_6ST,
  3990. ALC880_FIXUP_6ST_DIG,
  3991. };
  3992. /* enable the volume-knob widget support on NID 0x21 */
  3993. static void alc880_fixup_vol_knob(struct hda_codec *codec,
  3994. const struct alc_fixup *fix, int action)
  3995. {
  3996. if (action == ALC_FIXUP_ACT_PROBE)
  3997. snd_hda_jack_detect_enable(codec, 0x21, ALC_DCVOL_EVENT);
  3998. }
  3999. static const struct alc_fixup alc880_fixups[] = {
  4000. [ALC880_FIXUP_GPIO1] = {
  4001. .type = ALC_FIXUP_VERBS,
  4002. .v.verbs = alc_gpio1_init_verbs,
  4003. },
  4004. [ALC880_FIXUP_GPIO2] = {
  4005. .type = ALC_FIXUP_VERBS,
  4006. .v.verbs = alc_gpio2_init_verbs,
  4007. },
  4008. [ALC880_FIXUP_MEDION_RIM] = {
  4009. .type = ALC_FIXUP_VERBS,
  4010. .v.verbs = (const struct hda_verb[]) {
  4011. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4012. { 0x20, AC_VERB_SET_PROC_COEF, 0x3060 },
  4013. { }
  4014. },
  4015. .chained = true,
  4016. .chain_id = ALC880_FIXUP_GPIO2,
  4017. },
  4018. [ALC880_FIXUP_LG] = {
  4019. .type = ALC_FIXUP_PINS,
  4020. .v.pins = (const struct alc_pincfg[]) {
  4021. /* disable bogus unused pins */
  4022. { 0x16, 0x411111f0 },
  4023. { 0x18, 0x411111f0 },
  4024. { 0x1a, 0x411111f0 },
  4025. { }
  4026. }
  4027. },
  4028. [ALC880_FIXUP_W810] = {
  4029. .type = ALC_FIXUP_PINS,
  4030. .v.pins = (const struct alc_pincfg[]) {
  4031. /* disable bogus unused pins */
  4032. { 0x17, 0x411111f0 },
  4033. { }
  4034. },
  4035. .chained = true,
  4036. .chain_id = ALC880_FIXUP_GPIO2,
  4037. },
  4038. [ALC880_FIXUP_EAPD_COEF] = {
  4039. .type = ALC_FIXUP_VERBS,
  4040. .v.verbs = (const struct hda_verb[]) {
  4041. /* change to EAPD mode */
  4042. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4043. { 0x20, AC_VERB_SET_PROC_COEF, 0x3060 },
  4044. {}
  4045. },
  4046. },
  4047. [ALC880_FIXUP_TCL_S700] = {
  4048. .type = ALC_FIXUP_VERBS,
  4049. .v.verbs = (const struct hda_verb[]) {
  4050. /* change to EAPD mode */
  4051. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4052. { 0x20, AC_VERB_SET_PROC_COEF, 0x3070 },
  4053. {}
  4054. },
  4055. .chained = true,
  4056. .chain_id = ALC880_FIXUP_GPIO2,
  4057. },
  4058. [ALC880_FIXUP_VOL_KNOB] = {
  4059. .type = ALC_FIXUP_FUNC,
  4060. .v.func = alc880_fixup_vol_knob,
  4061. },
  4062. [ALC880_FIXUP_FUJITSU] = {
  4063. /* override all pins as BIOS on old Amilo is broken */
  4064. .type = ALC_FIXUP_PINS,
  4065. .v.pins = (const struct alc_pincfg[]) {
  4066. { 0x14, 0x0121411f }, /* HP */
  4067. { 0x15, 0x99030120 }, /* speaker */
  4068. { 0x16, 0x99030130 }, /* bass speaker */
  4069. { 0x17, 0x411111f0 }, /* N/A */
  4070. { 0x18, 0x411111f0 }, /* N/A */
  4071. { 0x19, 0x01a19950 }, /* mic-in */
  4072. { 0x1a, 0x411111f0 }, /* N/A */
  4073. { 0x1b, 0x411111f0 }, /* N/A */
  4074. { 0x1c, 0x411111f0 }, /* N/A */
  4075. { 0x1d, 0x411111f0 }, /* N/A */
  4076. { 0x1e, 0x01454140 }, /* SPDIF out */
  4077. { }
  4078. },
  4079. .chained = true,
  4080. .chain_id = ALC880_FIXUP_VOL_KNOB,
  4081. },
  4082. [ALC880_FIXUP_F1734] = {
  4083. /* almost compatible with FUJITSU, but no bass and SPDIF */
  4084. .type = ALC_FIXUP_PINS,
  4085. .v.pins = (const struct alc_pincfg[]) {
  4086. { 0x14, 0x0121411f }, /* HP */
  4087. { 0x15, 0x99030120 }, /* speaker */
  4088. { 0x16, 0x411111f0 }, /* N/A */
  4089. { 0x17, 0x411111f0 }, /* N/A */
  4090. { 0x18, 0x411111f0 }, /* N/A */
  4091. { 0x19, 0x01a19950 }, /* mic-in */
  4092. { 0x1a, 0x411111f0 }, /* N/A */
  4093. { 0x1b, 0x411111f0 }, /* N/A */
  4094. { 0x1c, 0x411111f0 }, /* N/A */
  4095. { 0x1d, 0x411111f0 }, /* N/A */
  4096. { 0x1e, 0x411111f0 }, /* N/A */
  4097. { }
  4098. },
  4099. .chained = true,
  4100. .chain_id = ALC880_FIXUP_VOL_KNOB,
  4101. },
  4102. [ALC880_FIXUP_UNIWILL] = {
  4103. /* need to fix HP and speaker pins to be parsed correctly */
  4104. .type = ALC_FIXUP_PINS,
  4105. .v.pins = (const struct alc_pincfg[]) {
  4106. { 0x14, 0x0121411f }, /* HP */
  4107. { 0x15, 0x99030120 }, /* speaker */
  4108. { 0x16, 0x99030130 }, /* bass speaker */
  4109. { }
  4110. },
  4111. },
  4112. [ALC880_FIXUP_UNIWILL_DIG] = {
  4113. .type = ALC_FIXUP_PINS,
  4114. .v.pins = (const struct alc_pincfg[]) {
  4115. /* disable bogus unused pins */
  4116. { 0x17, 0x411111f0 },
  4117. { 0x19, 0x411111f0 },
  4118. { 0x1b, 0x411111f0 },
  4119. { 0x1f, 0x411111f0 },
  4120. { }
  4121. }
  4122. },
  4123. [ALC880_FIXUP_Z71V] = {
  4124. .type = ALC_FIXUP_PINS,
  4125. .v.pins = (const struct alc_pincfg[]) {
  4126. /* set up the whole pins as BIOS is utterly broken */
  4127. { 0x14, 0x99030120 }, /* speaker */
  4128. { 0x15, 0x0121411f }, /* HP */
  4129. { 0x16, 0x411111f0 }, /* N/A */
  4130. { 0x17, 0x411111f0 }, /* N/A */
  4131. { 0x18, 0x01a19950 }, /* mic-in */
  4132. { 0x19, 0x411111f0 }, /* N/A */
  4133. { 0x1a, 0x01813031 }, /* line-in */
  4134. { 0x1b, 0x411111f0 }, /* N/A */
  4135. { 0x1c, 0x411111f0 }, /* N/A */
  4136. { 0x1d, 0x411111f0 }, /* N/A */
  4137. { 0x1e, 0x0144111e }, /* SPDIF */
  4138. { }
  4139. }
  4140. },
  4141. [ALC880_FIXUP_3ST_BASE] = {
  4142. .type = ALC_FIXUP_PINS,
  4143. .v.pins = (const struct alc_pincfg[]) {
  4144. { 0x14, 0x01014010 }, /* line-out */
  4145. { 0x15, 0x411111f0 }, /* N/A */
  4146. { 0x16, 0x411111f0 }, /* N/A */
  4147. { 0x17, 0x411111f0 }, /* N/A */
  4148. { 0x18, 0x01a19c30 }, /* mic-in */
  4149. { 0x19, 0x0121411f }, /* HP */
  4150. { 0x1a, 0x01813031 }, /* line-in */
  4151. { 0x1b, 0x02a19c40 }, /* front-mic */
  4152. { 0x1c, 0x411111f0 }, /* N/A */
  4153. { 0x1d, 0x411111f0 }, /* N/A */
  4154. /* 0x1e is filled in below */
  4155. { 0x1f, 0x411111f0 }, /* N/A */
  4156. { }
  4157. }
  4158. },
  4159. [ALC880_FIXUP_3ST] = {
  4160. .type = ALC_FIXUP_PINS,
  4161. .v.pins = (const struct alc_pincfg[]) {
  4162. { 0x1e, 0x411111f0 }, /* N/A */
  4163. { }
  4164. },
  4165. .chained = true,
  4166. .chain_id = ALC880_FIXUP_3ST_BASE,
  4167. },
  4168. [ALC880_FIXUP_3ST_DIG] = {
  4169. .type = ALC_FIXUP_PINS,
  4170. .v.pins = (const struct alc_pincfg[]) {
  4171. { 0x1e, 0x0144111e }, /* SPDIF */
  4172. { }
  4173. },
  4174. .chained = true,
  4175. .chain_id = ALC880_FIXUP_3ST_BASE,
  4176. },
  4177. [ALC880_FIXUP_5ST_BASE] = {
  4178. .type = ALC_FIXUP_PINS,
  4179. .v.pins = (const struct alc_pincfg[]) {
  4180. { 0x14, 0x01014010 }, /* front */
  4181. { 0x15, 0x411111f0 }, /* N/A */
  4182. { 0x16, 0x01011411 }, /* CLFE */
  4183. { 0x17, 0x01016412 }, /* surr */
  4184. { 0x18, 0x01a19c30 }, /* mic-in */
  4185. { 0x19, 0x0121411f }, /* HP */
  4186. { 0x1a, 0x01813031 }, /* line-in */
  4187. { 0x1b, 0x02a19c40 }, /* front-mic */
  4188. { 0x1c, 0x411111f0 }, /* N/A */
  4189. { 0x1d, 0x411111f0 }, /* N/A */
  4190. /* 0x1e is filled in below */
  4191. { 0x1f, 0x411111f0 }, /* N/A */
  4192. { }
  4193. }
  4194. },
  4195. [ALC880_FIXUP_5ST] = {
  4196. .type = ALC_FIXUP_PINS,
  4197. .v.pins = (const struct alc_pincfg[]) {
  4198. { 0x1e, 0x411111f0 }, /* N/A */
  4199. { }
  4200. },
  4201. .chained = true,
  4202. .chain_id = ALC880_FIXUP_5ST_BASE,
  4203. },
  4204. [ALC880_FIXUP_5ST_DIG] = {
  4205. .type = ALC_FIXUP_PINS,
  4206. .v.pins = (const struct alc_pincfg[]) {
  4207. { 0x1e, 0x0144111e }, /* SPDIF */
  4208. { }
  4209. },
  4210. .chained = true,
  4211. .chain_id = ALC880_FIXUP_5ST_BASE,
  4212. },
  4213. [ALC880_FIXUP_6ST_BASE] = {
  4214. .type = ALC_FIXUP_PINS,
  4215. .v.pins = (const struct alc_pincfg[]) {
  4216. { 0x14, 0x01014010 }, /* front */
  4217. { 0x15, 0x01016412 }, /* surr */
  4218. { 0x16, 0x01011411 }, /* CLFE */
  4219. { 0x17, 0x01012414 }, /* side */
  4220. { 0x18, 0x01a19c30 }, /* mic-in */
  4221. { 0x19, 0x02a19c40 }, /* front-mic */
  4222. { 0x1a, 0x01813031 }, /* line-in */
  4223. { 0x1b, 0x0121411f }, /* HP */
  4224. { 0x1c, 0x411111f0 }, /* N/A */
  4225. { 0x1d, 0x411111f0 }, /* N/A */
  4226. /* 0x1e is filled in below */
  4227. { 0x1f, 0x411111f0 }, /* N/A */
  4228. { }
  4229. }
  4230. },
  4231. [ALC880_FIXUP_6ST] = {
  4232. .type = ALC_FIXUP_PINS,
  4233. .v.pins = (const struct alc_pincfg[]) {
  4234. { 0x1e, 0x411111f0 }, /* N/A */
  4235. { }
  4236. },
  4237. .chained = true,
  4238. .chain_id = ALC880_FIXUP_6ST_BASE,
  4239. },
  4240. [ALC880_FIXUP_6ST_DIG] = {
  4241. .type = ALC_FIXUP_PINS,
  4242. .v.pins = (const struct alc_pincfg[]) {
  4243. { 0x1e, 0x0144111e }, /* SPDIF */
  4244. { }
  4245. },
  4246. .chained = true,
  4247. .chain_id = ALC880_FIXUP_6ST_BASE,
  4248. },
  4249. };
  4250. static const struct snd_pci_quirk alc880_fixup_tbl[] = {
  4251. SND_PCI_QUIRK(0x1019, 0x0f69, "Coeus G610P", ALC880_FIXUP_W810),
  4252. SND_PCI_QUIRK(0x1043, 0x1964, "ASUS Z71V", ALC880_FIXUP_Z71V),
  4253. SND_PCI_QUIRK_VENDOR(0x1043, "ASUS", ALC880_FIXUP_GPIO1),
  4254. SND_PCI_QUIRK(0x1558, 0x5401, "Clevo GPIO2", ALC880_FIXUP_GPIO2),
  4255. SND_PCI_QUIRK_VENDOR(0x1558, "Clevo", ALC880_FIXUP_EAPD_COEF),
  4256. SND_PCI_QUIRK(0x1584, 0x9050, "Uniwill", ALC880_FIXUP_UNIWILL_DIG),
  4257. SND_PCI_QUIRK(0x1584, 0x9054, "Uniwill", ALC880_FIXUP_F1734),
  4258. SND_PCI_QUIRK(0x1584, 0x9070, "Uniwill", ALC880_FIXUP_UNIWILL),
  4259. SND_PCI_QUIRK(0x1584, 0x9077, "Uniwill P53", ALC880_FIXUP_VOL_KNOB),
  4260. SND_PCI_QUIRK(0x161f, 0x203d, "W810", ALC880_FIXUP_W810),
  4261. SND_PCI_QUIRK(0x161f, 0x205d, "Medion Rim 2150", ALC880_FIXUP_MEDION_RIM),
  4262. SND_PCI_QUIRK(0x1734, 0x107c, "FSC F1734", ALC880_FIXUP_F1734),
  4263. SND_PCI_QUIRK(0x1734, 0x1094, "FSC Amilo M1451G", ALC880_FIXUP_FUJITSU),
  4264. SND_PCI_QUIRK(0x1734, 0x10ac, "FSC AMILO Xi 1526", ALC880_FIXUP_F1734),
  4265. SND_PCI_QUIRK(0x1734, 0x10b0, "FSC Amilo Pi1556", ALC880_FIXUP_FUJITSU),
  4266. SND_PCI_QUIRK(0x1854, 0x003b, "LG", ALC880_FIXUP_LG),
  4267. SND_PCI_QUIRK(0x1854, 0x005f, "LG P1 Express", ALC880_FIXUP_LG),
  4268. SND_PCI_QUIRK(0x1854, 0x0068, "LG w1", ALC880_FIXUP_LG),
  4269. SND_PCI_QUIRK(0x19db, 0x4188, "TCL S700", ALC880_FIXUP_TCL_S700),
  4270. /* Below is the copied entries from alc880_quirks.c.
  4271. * It's not quite sure whether BIOS sets the correct pin-config table
  4272. * on these machines, thus they are kept to be compatible with
  4273. * the old static quirks. Once when it's confirmed to work without
  4274. * these overrides, it'd be better to remove.
  4275. */
  4276. SND_PCI_QUIRK(0x1019, 0xa880, "ECS", ALC880_FIXUP_5ST_DIG),
  4277. SND_PCI_QUIRK(0x1019, 0xa884, "Acer APFV", ALC880_FIXUP_6ST),
  4278. SND_PCI_QUIRK(0x1025, 0x0070, "ULI", ALC880_FIXUP_3ST_DIG),
  4279. SND_PCI_QUIRK(0x1025, 0x0077, "ULI", ALC880_FIXUP_6ST_DIG),
  4280. SND_PCI_QUIRK(0x1025, 0x0078, "ULI", ALC880_FIXUP_6ST_DIG),
  4281. SND_PCI_QUIRK(0x1025, 0x0087, "ULI", ALC880_FIXUP_6ST_DIG),
  4282. SND_PCI_QUIRK(0x1025, 0xe309, "ULI", ALC880_FIXUP_3ST_DIG),
  4283. SND_PCI_QUIRK(0x1025, 0xe310, "ULI", ALC880_FIXUP_3ST),
  4284. SND_PCI_QUIRK(0x1039, 0x1234, NULL, ALC880_FIXUP_6ST_DIG),
  4285. SND_PCI_QUIRK(0x104d, 0x81a0, "Sony", ALC880_FIXUP_3ST),
  4286. SND_PCI_QUIRK(0x104d, 0x81d6, "Sony", ALC880_FIXUP_3ST),
  4287. SND_PCI_QUIRK(0x107b, 0x3032, "Gateway", ALC880_FIXUP_5ST),
  4288. SND_PCI_QUIRK(0x107b, 0x3033, "Gateway", ALC880_FIXUP_5ST),
  4289. SND_PCI_QUIRK(0x107b, 0x4039, "Gateway", ALC880_FIXUP_5ST),
  4290. SND_PCI_QUIRK(0x1297, 0xc790, "Shuttle ST20G5", ALC880_FIXUP_6ST_DIG),
  4291. SND_PCI_QUIRK(0x1458, 0xa102, "Gigabyte K8", ALC880_FIXUP_6ST_DIG),
  4292. SND_PCI_QUIRK(0x1462, 0x1150, "MSI", ALC880_FIXUP_6ST_DIG),
  4293. SND_PCI_QUIRK(0x1509, 0x925d, "FIC P4M", ALC880_FIXUP_6ST_DIG),
  4294. SND_PCI_QUIRK(0x1565, 0x8202, "Biostar", ALC880_FIXUP_5ST_DIG),
  4295. SND_PCI_QUIRK(0x1695, 0x400d, "EPoX", ALC880_FIXUP_5ST_DIG),
  4296. SND_PCI_QUIRK(0x1695, 0x4012, "EPox EP-5LDA", ALC880_FIXUP_5ST_DIG),
  4297. SND_PCI_QUIRK(0x2668, 0x8086, NULL, ALC880_FIXUP_6ST_DIG), /* broken BIOS */
  4298. SND_PCI_QUIRK(0x8086, 0x2668, NULL, ALC880_FIXUP_6ST_DIG),
  4299. SND_PCI_QUIRK(0x8086, 0xa100, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4300. SND_PCI_QUIRK(0x8086, 0xd400, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4301. SND_PCI_QUIRK(0x8086, 0xd401, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4302. SND_PCI_QUIRK(0x8086, 0xd402, "Intel mobo", ALC880_FIXUP_3ST_DIG),
  4303. SND_PCI_QUIRK(0x8086, 0xe224, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4304. SND_PCI_QUIRK(0x8086, 0xe305, "Intel mobo", ALC880_FIXUP_3ST_DIG),
  4305. SND_PCI_QUIRK(0x8086, 0xe308, "Intel mobo", ALC880_FIXUP_3ST_DIG),
  4306. SND_PCI_QUIRK(0x8086, 0xe400, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4307. SND_PCI_QUIRK(0x8086, 0xe401, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4308. SND_PCI_QUIRK(0x8086, 0xe402, "Intel mobo", ALC880_FIXUP_5ST_DIG),
  4309. /* default Intel */
  4310. SND_PCI_QUIRK_VENDOR(0x8086, "Intel mobo", ALC880_FIXUP_3ST),
  4311. SND_PCI_QUIRK(0xa0a0, 0x0560, "AOpen i915GMm-HFS", ALC880_FIXUP_5ST_DIG),
  4312. SND_PCI_QUIRK(0xe803, 0x1019, NULL, ALC880_FIXUP_6ST_DIG),
  4313. {}
  4314. };
  4315. static const struct alc_model_fixup alc880_fixup_models[] = {
  4316. {.id = ALC880_FIXUP_3ST, .name = "3stack"},
  4317. {.id = ALC880_FIXUP_3ST_DIG, .name = "3stack-digout"},
  4318. {.id = ALC880_FIXUP_5ST, .name = "5stack"},
  4319. {.id = ALC880_FIXUP_5ST_DIG, .name = "5stack-digout"},
  4320. {.id = ALC880_FIXUP_6ST, .name = "6stack"},
  4321. {.id = ALC880_FIXUP_6ST_DIG, .name = "6stack-digout"},
  4322. {}
  4323. };
  4324. /*
  4325. * OK, here we have finally the patch for ALC880
  4326. */
  4327. static int patch_alc880(struct hda_codec *codec)
  4328. {
  4329. struct alc_spec *spec;
  4330. int err;
  4331. err = alc_alloc_spec(codec, 0x0b);
  4332. if (err < 0)
  4333. return err;
  4334. spec = codec->spec;
  4335. spec->need_dac_fix = 1;
  4336. alc_pick_fixup(codec, alc880_fixup_models, alc880_fixup_tbl,
  4337. alc880_fixups);
  4338. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  4339. /* automatic parse from the BIOS config */
  4340. err = alc880_parse_auto_config(codec);
  4341. if (err < 0)
  4342. goto error;
  4343. if (!spec->no_analog) {
  4344. err = snd_hda_attach_beep_device(codec, 0x1);
  4345. if (err < 0)
  4346. goto error;
  4347. set_beep_amp(spec, 0x0b, 0x05, HDA_INPUT);
  4348. }
  4349. codec->patch_ops = alc_patch_ops;
  4350. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  4351. return 0;
  4352. error:
  4353. alc_free(codec);
  4354. return err;
  4355. }
  4356. /*
  4357. * ALC260 support
  4358. */
  4359. static int alc260_parse_auto_config(struct hda_codec *codec)
  4360. {
  4361. static const hda_nid_t alc260_ignore[] = { 0x17, 0 };
  4362. static const hda_nid_t alc260_ssids[] = { 0x10, 0x15, 0x0f, 0 };
  4363. return alc_parse_auto_config(codec, alc260_ignore, alc260_ssids);
  4364. }
  4365. /*
  4366. * Pin config fixes
  4367. */
  4368. enum {
  4369. ALC260_FIXUP_HP_DC5750,
  4370. ALC260_FIXUP_HP_PIN_0F,
  4371. ALC260_FIXUP_COEF,
  4372. ALC260_FIXUP_GPIO1,
  4373. ALC260_FIXUP_GPIO1_TOGGLE,
  4374. ALC260_FIXUP_REPLACER,
  4375. ALC260_FIXUP_HP_B1900,
  4376. ALC260_FIXUP_KN1,
  4377. };
  4378. static void alc260_gpio1_automute(struct hda_codec *codec)
  4379. {
  4380. struct alc_spec *spec = codec->spec;
  4381. snd_hda_codec_write(codec, 0x01, 0, AC_VERB_SET_GPIO_DATA,
  4382. spec->hp_jack_present);
  4383. }
  4384. static void alc260_fixup_gpio1_toggle(struct hda_codec *codec,
  4385. const struct alc_fixup *fix, int action)
  4386. {
  4387. struct alc_spec *spec = codec->spec;
  4388. if (action == ALC_FIXUP_ACT_PROBE) {
  4389. /* although the machine has only one output pin, we need to
  4390. * toggle GPIO1 according to the jack state
  4391. */
  4392. spec->automute_hook = alc260_gpio1_automute;
  4393. spec->detect_hp = 1;
  4394. spec->automute_speaker = 1;
  4395. spec->autocfg.hp_pins[0] = 0x0f; /* copy it for automute */
  4396. snd_hda_jack_detect_enable(codec, 0x0f, ALC_HP_EVENT);
  4397. snd_hda_gen_add_verbs(&spec->gen, alc_gpio1_init_verbs);
  4398. }
  4399. }
  4400. static void alc260_fixup_kn1(struct hda_codec *codec,
  4401. const struct alc_fixup *fix, int action)
  4402. {
  4403. struct alc_spec *spec = codec->spec;
  4404. static const struct alc_pincfg pincfgs[] = {
  4405. { 0x0f, 0x02214000 }, /* HP/speaker */
  4406. { 0x12, 0x90a60160 }, /* int mic */
  4407. { 0x13, 0x02a19000 }, /* ext mic */
  4408. { 0x18, 0x01446000 }, /* SPDIF out */
  4409. /* disable bogus I/O pins */
  4410. { 0x10, 0x411111f0 },
  4411. { 0x11, 0x411111f0 },
  4412. { 0x14, 0x411111f0 },
  4413. { 0x15, 0x411111f0 },
  4414. { 0x16, 0x411111f0 },
  4415. { 0x17, 0x411111f0 },
  4416. { 0x19, 0x411111f0 },
  4417. { }
  4418. };
  4419. switch (action) {
  4420. case ALC_FIXUP_ACT_PRE_PROBE:
  4421. alc_apply_pincfgs(codec, pincfgs);
  4422. break;
  4423. case ALC_FIXUP_ACT_PROBE:
  4424. spec->init_amp = ALC_INIT_NONE;
  4425. break;
  4426. }
  4427. }
  4428. static const struct alc_fixup alc260_fixups[] = {
  4429. [ALC260_FIXUP_HP_DC5750] = {
  4430. .type = ALC_FIXUP_PINS,
  4431. .v.pins = (const struct alc_pincfg[]) {
  4432. { 0x11, 0x90130110 }, /* speaker */
  4433. { }
  4434. }
  4435. },
  4436. [ALC260_FIXUP_HP_PIN_0F] = {
  4437. .type = ALC_FIXUP_PINS,
  4438. .v.pins = (const struct alc_pincfg[]) {
  4439. { 0x0f, 0x01214000 }, /* HP */
  4440. { }
  4441. }
  4442. },
  4443. [ALC260_FIXUP_COEF] = {
  4444. .type = ALC_FIXUP_VERBS,
  4445. .v.verbs = (const struct hda_verb[]) {
  4446. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4447. { 0x20, AC_VERB_SET_PROC_COEF, 0x3040 },
  4448. { }
  4449. },
  4450. .chained = true,
  4451. .chain_id = ALC260_FIXUP_HP_PIN_0F,
  4452. },
  4453. [ALC260_FIXUP_GPIO1] = {
  4454. .type = ALC_FIXUP_VERBS,
  4455. .v.verbs = alc_gpio1_init_verbs,
  4456. },
  4457. [ALC260_FIXUP_GPIO1_TOGGLE] = {
  4458. .type = ALC_FIXUP_FUNC,
  4459. .v.func = alc260_fixup_gpio1_toggle,
  4460. .chained = true,
  4461. .chain_id = ALC260_FIXUP_HP_PIN_0F,
  4462. },
  4463. [ALC260_FIXUP_REPLACER] = {
  4464. .type = ALC_FIXUP_VERBS,
  4465. .v.verbs = (const struct hda_verb[]) {
  4466. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4467. { 0x20, AC_VERB_SET_PROC_COEF, 0x3050 },
  4468. { }
  4469. },
  4470. .chained = true,
  4471. .chain_id = ALC260_FIXUP_GPIO1_TOGGLE,
  4472. },
  4473. [ALC260_FIXUP_HP_B1900] = {
  4474. .type = ALC_FIXUP_FUNC,
  4475. .v.func = alc260_fixup_gpio1_toggle,
  4476. .chained = true,
  4477. .chain_id = ALC260_FIXUP_COEF,
  4478. },
  4479. [ALC260_FIXUP_KN1] = {
  4480. .type = ALC_FIXUP_FUNC,
  4481. .v.func = alc260_fixup_kn1,
  4482. },
  4483. };
  4484. static const struct snd_pci_quirk alc260_fixup_tbl[] = {
  4485. SND_PCI_QUIRK(0x1025, 0x007b, "Acer C20x", ALC260_FIXUP_GPIO1),
  4486. SND_PCI_QUIRK(0x1025, 0x007f, "Acer Aspire 9500", ALC260_FIXUP_COEF),
  4487. SND_PCI_QUIRK(0x1025, 0x008f, "Acer", ALC260_FIXUP_GPIO1),
  4488. SND_PCI_QUIRK(0x103c, 0x280a, "HP dc5750", ALC260_FIXUP_HP_DC5750),
  4489. SND_PCI_QUIRK(0x103c, 0x30ba, "HP Presario B1900", ALC260_FIXUP_HP_B1900),
  4490. SND_PCI_QUIRK(0x1509, 0x4540, "Favorit 100XS", ALC260_FIXUP_GPIO1),
  4491. SND_PCI_QUIRK(0x152d, 0x0729, "Quanta KN1", ALC260_FIXUP_KN1),
  4492. SND_PCI_QUIRK(0x161f, 0x2057, "Replacer 672V", ALC260_FIXUP_REPLACER),
  4493. SND_PCI_QUIRK(0x1631, 0xc017, "PB V7900", ALC260_FIXUP_COEF),
  4494. {}
  4495. };
  4496. /*
  4497. */
  4498. static int patch_alc260(struct hda_codec *codec)
  4499. {
  4500. struct alc_spec *spec;
  4501. int err;
  4502. err = alc_alloc_spec(codec, 0x07);
  4503. if (err < 0)
  4504. return err;
  4505. spec = codec->spec;
  4506. alc_pick_fixup(codec, NULL, alc260_fixup_tbl, alc260_fixups);
  4507. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  4508. /* automatic parse from the BIOS config */
  4509. err = alc260_parse_auto_config(codec);
  4510. if (err < 0)
  4511. goto error;
  4512. if (!spec->no_analog) {
  4513. err = snd_hda_attach_beep_device(codec, 0x1);
  4514. if (err < 0)
  4515. goto error;
  4516. set_beep_amp(spec, 0x07, 0x05, HDA_INPUT);
  4517. }
  4518. codec->patch_ops = alc_patch_ops;
  4519. spec->shutup = alc_eapd_shutup;
  4520. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  4521. return 0;
  4522. error:
  4523. alc_free(codec);
  4524. return err;
  4525. }
  4526. /*
  4527. * ALC882/883/885/888/889 support
  4528. *
  4529. * ALC882 is almost identical with ALC880 but has cleaner and more flexible
  4530. * configuration. Each pin widget can choose any input DACs and a mixer.
  4531. * Each ADC is connected from a mixer of all inputs. This makes possible
  4532. * 6-channel independent captures.
  4533. *
  4534. * In addition, an independent DAC for the multi-playback (not used in this
  4535. * driver yet).
  4536. */
  4537. /*
  4538. * Pin config fixes
  4539. */
  4540. enum {
  4541. ALC882_FIXUP_ABIT_AW9D_MAX,
  4542. ALC882_FIXUP_LENOVO_Y530,
  4543. ALC882_FIXUP_PB_M5210,
  4544. ALC882_FIXUP_ACER_ASPIRE_7736,
  4545. ALC882_FIXUP_ASUS_W90V,
  4546. ALC889_FIXUP_CD,
  4547. ALC889_FIXUP_VAIO_TT,
  4548. ALC888_FIXUP_EEE1601,
  4549. ALC882_FIXUP_EAPD,
  4550. ALC883_FIXUP_EAPD,
  4551. ALC883_FIXUP_ACER_EAPD,
  4552. ALC882_FIXUP_GPIO1,
  4553. ALC882_FIXUP_GPIO2,
  4554. ALC882_FIXUP_GPIO3,
  4555. ALC889_FIXUP_COEF,
  4556. ALC882_FIXUP_ASUS_W2JC,
  4557. ALC882_FIXUP_ACER_ASPIRE_4930G,
  4558. ALC882_FIXUP_ACER_ASPIRE_8930G,
  4559. ALC882_FIXUP_ASPIRE_8930G_VERBS,
  4560. ALC885_FIXUP_MACPRO_GPIO,
  4561. ALC889_FIXUP_DAC_ROUTE,
  4562. ALC889_FIXUP_MBP_VREF,
  4563. ALC889_FIXUP_IMAC91_VREF,
  4564. ALC882_FIXUP_INV_DMIC,
  4565. ALC882_FIXUP_NO_PRIMARY_HP,
  4566. };
  4567. static void alc889_fixup_coef(struct hda_codec *codec,
  4568. const struct alc_fixup *fix, int action)
  4569. {
  4570. if (action != ALC_FIXUP_ACT_INIT)
  4571. return;
  4572. alc889_coef_init(codec);
  4573. }
  4574. /* toggle speaker-output according to the hp-jack state */
  4575. static void alc882_gpio_mute(struct hda_codec *codec, int pin, int muted)
  4576. {
  4577. unsigned int gpiostate, gpiomask, gpiodir;
  4578. gpiostate = snd_hda_codec_read(codec, codec->afg, 0,
  4579. AC_VERB_GET_GPIO_DATA, 0);
  4580. if (!muted)
  4581. gpiostate |= (1 << pin);
  4582. else
  4583. gpiostate &= ~(1 << pin);
  4584. gpiomask = snd_hda_codec_read(codec, codec->afg, 0,
  4585. AC_VERB_GET_GPIO_MASK, 0);
  4586. gpiomask |= (1 << pin);
  4587. gpiodir = snd_hda_codec_read(codec, codec->afg, 0,
  4588. AC_VERB_GET_GPIO_DIRECTION, 0);
  4589. gpiodir |= (1 << pin);
  4590. snd_hda_codec_write(codec, codec->afg, 0,
  4591. AC_VERB_SET_GPIO_MASK, gpiomask);
  4592. snd_hda_codec_write(codec, codec->afg, 0,
  4593. AC_VERB_SET_GPIO_DIRECTION, gpiodir);
  4594. msleep(1);
  4595. snd_hda_codec_write(codec, codec->afg, 0,
  4596. AC_VERB_SET_GPIO_DATA, gpiostate);
  4597. }
  4598. /* set up GPIO at initialization */
  4599. static void alc885_fixup_macpro_gpio(struct hda_codec *codec,
  4600. const struct alc_fixup *fix, int action)
  4601. {
  4602. if (action != ALC_FIXUP_ACT_INIT)
  4603. return;
  4604. alc882_gpio_mute(codec, 0, 0);
  4605. alc882_gpio_mute(codec, 1, 0);
  4606. }
  4607. /* Fix the connection of some pins for ALC889:
  4608. * At least, Acer Aspire 5935 shows the connections to DAC3/4 don't
  4609. * work correctly (bko#42740)
  4610. */
  4611. static void alc889_fixup_dac_route(struct hda_codec *codec,
  4612. const struct alc_fixup *fix, int action)
  4613. {
  4614. if (action == ALC_FIXUP_ACT_PRE_PROBE) {
  4615. /* fake the connections during parsing the tree */
  4616. hda_nid_t conn1[2] = { 0x0c, 0x0d };
  4617. hda_nid_t conn2[2] = { 0x0e, 0x0f };
  4618. snd_hda_override_conn_list(codec, 0x14, 2, conn1);
  4619. snd_hda_override_conn_list(codec, 0x15, 2, conn1);
  4620. snd_hda_override_conn_list(codec, 0x18, 2, conn2);
  4621. snd_hda_override_conn_list(codec, 0x1a, 2, conn2);
  4622. } else if (action == ALC_FIXUP_ACT_PROBE) {
  4623. /* restore the connections */
  4624. hda_nid_t conn[5] = { 0x0c, 0x0d, 0x0e, 0x0f, 0x26 };
  4625. snd_hda_override_conn_list(codec, 0x14, 5, conn);
  4626. snd_hda_override_conn_list(codec, 0x15, 5, conn);
  4627. snd_hda_override_conn_list(codec, 0x18, 5, conn);
  4628. snd_hda_override_conn_list(codec, 0x1a, 5, conn);
  4629. }
  4630. }
  4631. /* Set VREF on HP pin */
  4632. static void alc889_fixup_mbp_vref(struct hda_codec *codec,
  4633. const struct alc_fixup *fix, int action)
  4634. {
  4635. struct alc_spec *spec = codec->spec;
  4636. static hda_nid_t nids[2] = { 0x14, 0x15 };
  4637. int i;
  4638. if (action != ALC_FIXUP_ACT_INIT)
  4639. return;
  4640. for (i = 0; i < ARRAY_SIZE(nids); i++) {
  4641. unsigned int val = snd_hda_codec_get_pincfg(codec, nids[i]);
  4642. if (get_defcfg_device(val) != AC_JACK_HP_OUT)
  4643. continue;
  4644. val = snd_hda_codec_read(codec, nids[i], 0,
  4645. AC_VERB_GET_PIN_WIDGET_CONTROL, 0);
  4646. val |= AC_PINCTL_VREF_80;
  4647. snd_hda_set_pin_ctl(codec, nids[i], val);
  4648. spec->keep_vref_in_automute = 1;
  4649. break;
  4650. }
  4651. }
  4652. /* Set VREF on speaker pins on imac91 */
  4653. static void alc889_fixup_imac91_vref(struct hda_codec *codec,
  4654. const struct alc_fixup *fix, int action)
  4655. {
  4656. struct alc_spec *spec = codec->spec;
  4657. static hda_nid_t nids[2] = { 0x18, 0x1a };
  4658. int i;
  4659. if (action != ALC_FIXUP_ACT_INIT)
  4660. return;
  4661. for (i = 0; i < ARRAY_SIZE(nids); i++) {
  4662. unsigned int val;
  4663. val = snd_hda_codec_read(codec, nids[i], 0,
  4664. AC_VERB_GET_PIN_WIDGET_CONTROL, 0);
  4665. val |= AC_PINCTL_VREF_50;
  4666. snd_hda_set_pin_ctl(codec, nids[i], val);
  4667. }
  4668. spec->keep_vref_in_automute = 1;
  4669. }
  4670. /* Don't take HP output as primary
  4671. * strangely, the speaker output doesn't work on VAIO Z through DAC 0x05
  4672. */
  4673. static void alc882_fixup_no_primary_hp(struct hda_codec *codec,
  4674. const struct alc_fixup *fix, int action)
  4675. {
  4676. struct alc_spec *spec = codec->spec;
  4677. if (action == ALC_FIXUP_ACT_PRE_PROBE)
  4678. spec->no_primary_hp = 1;
  4679. }
  4680. static const struct alc_fixup alc882_fixups[] = {
  4681. [ALC882_FIXUP_ABIT_AW9D_MAX] = {
  4682. .type = ALC_FIXUP_PINS,
  4683. .v.pins = (const struct alc_pincfg[]) {
  4684. { 0x15, 0x01080104 }, /* side */
  4685. { 0x16, 0x01011012 }, /* rear */
  4686. { 0x17, 0x01016011 }, /* clfe */
  4687. { }
  4688. }
  4689. },
  4690. [ALC882_FIXUP_LENOVO_Y530] = {
  4691. .type = ALC_FIXUP_PINS,
  4692. .v.pins = (const struct alc_pincfg[]) {
  4693. { 0x15, 0x99130112 }, /* rear int speakers */
  4694. { 0x16, 0x99130111 }, /* subwoofer */
  4695. { }
  4696. }
  4697. },
  4698. [ALC882_FIXUP_PB_M5210] = {
  4699. .type = ALC_FIXUP_VERBS,
  4700. .v.verbs = (const struct hda_verb[]) {
  4701. { 0x19, AC_VERB_SET_PIN_WIDGET_CONTROL, PIN_VREF50 },
  4702. {}
  4703. }
  4704. },
  4705. [ALC882_FIXUP_ACER_ASPIRE_7736] = {
  4706. .type = ALC_FIXUP_FUNC,
  4707. .v.func = alc_fixup_sku_ignore,
  4708. },
  4709. [ALC882_FIXUP_ASUS_W90V] = {
  4710. .type = ALC_FIXUP_PINS,
  4711. .v.pins = (const struct alc_pincfg[]) {
  4712. { 0x16, 0x99130110 }, /* fix sequence for CLFE */
  4713. { }
  4714. }
  4715. },
  4716. [ALC889_FIXUP_CD] = {
  4717. .type = ALC_FIXUP_PINS,
  4718. .v.pins = (const struct alc_pincfg[]) {
  4719. { 0x1c, 0x993301f0 }, /* CD */
  4720. { }
  4721. }
  4722. },
  4723. [ALC889_FIXUP_VAIO_TT] = {
  4724. .type = ALC_FIXUP_PINS,
  4725. .v.pins = (const struct alc_pincfg[]) {
  4726. { 0x17, 0x90170111 }, /* hidden surround speaker */
  4727. { }
  4728. }
  4729. },
  4730. [ALC888_FIXUP_EEE1601] = {
  4731. .type = ALC_FIXUP_VERBS,
  4732. .v.verbs = (const struct hda_verb[]) {
  4733. { 0x20, AC_VERB_SET_COEF_INDEX, 0x0b },
  4734. { 0x20, AC_VERB_SET_PROC_COEF, 0x0838 },
  4735. { }
  4736. }
  4737. },
  4738. [ALC882_FIXUP_EAPD] = {
  4739. .type = ALC_FIXUP_VERBS,
  4740. .v.verbs = (const struct hda_verb[]) {
  4741. /* change to EAPD mode */
  4742. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4743. { 0x20, AC_VERB_SET_PROC_COEF, 0x3060 },
  4744. { }
  4745. }
  4746. },
  4747. [ALC883_FIXUP_EAPD] = {
  4748. .type = ALC_FIXUP_VERBS,
  4749. .v.verbs = (const struct hda_verb[]) {
  4750. /* change to EAPD mode */
  4751. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4752. { 0x20, AC_VERB_SET_PROC_COEF, 0x3070 },
  4753. { }
  4754. }
  4755. },
  4756. [ALC883_FIXUP_ACER_EAPD] = {
  4757. .type = ALC_FIXUP_VERBS,
  4758. .v.verbs = (const struct hda_verb[]) {
  4759. /* eanable EAPD on Acer laptops */
  4760. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4761. { 0x20, AC_VERB_SET_PROC_COEF, 0x3050 },
  4762. { }
  4763. }
  4764. },
  4765. [ALC882_FIXUP_GPIO1] = {
  4766. .type = ALC_FIXUP_VERBS,
  4767. .v.verbs = alc_gpio1_init_verbs,
  4768. },
  4769. [ALC882_FIXUP_GPIO2] = {
  4770. .type = ALC_FIXUP_VERBS,
  4771. .v.verbs = alc_gpio2_init_verbs,
  4772. },
  4773. [ALC882_FIXUP_GPIO3] = {
  4774. .type = ALC_FIXUP_VERBS,
  4775. .v.verbs = alc_gpio3_init_verbs,
  4776. },
  4777. [ALC882_FIXUP_ASUS_W2JC] = {
  4778. .type = ALC_FIXUP_VERBS,
  4779. .v.verbs = alc_gpio1_init_verbs,
  4780. .chained = true,
  4781. .chain_id = ALC882_FIXUP_EAPD,
  4782. },
  4783. [ALC889_FIXUP_COEF] = {
  4784. .type = ALC_FIXUP_FUNC,
  4785. .v.func = alc889_fixup_coef,
  4786. },
  4787. [ALC882_FIXUP_ACER_ASPIRE_4930G] = {
  4788. .type = ALC_FIXUP_PINS,
  4789. .v.pins = (const struct alc_pincfg[]) {
  4790. { 0x16, 0x99130111 }, /* CLFE speaker */
  4791. { 0x17, 0x99130112 }, /* surround speaker */
  4792. { }
  4793. },
  4794. .chained = true,
  4795. .chain_id = ALC882_FIXUP_GPIO1,
  4796. },
  4797. [ALC882_FIXUP_ACER_ASPIRE_8930G] = {
  4798. .type = ALC_FIXUP_PINS,
  4799. .v.pins = (const struct alc_pincfg[]) {
  4800. { 0x16, 0x99130111 }, /* CLFE speaker */
  4801. { 0x1b, 0x99130112 }, /* surround speaker */
  4802. { }
  4803. },
  4804. .chained = true,
  4805. .chain_id = ALC882_FIXUP_ASPIRE_8930G_VERBS,
  4806. },
  4807. [ALC882_FIXUP_ASPIRE_8930G_VERBS] = {
  4808. /* additional init verbs for Acer Aspire 8930G */
  4809. .type = ALC_FIXUP_VERBS,
  4810. .v.verbs = (const struct hda_verb[]) {
  4811. /* Enable all DACs */
  4812. /* DAC DISABLE/MUTE 1? */
  4813. /* setting bits 1-5 disables DAC nids 0x02-0x06
  4814. * apparently. Init=0x38 */
  4815. { 0x20, AC_VERB_SET_COEF_INDEX, 0x03 },
  4816. { 0x20, AC_VERB_SET_PROC_COEF, 0x0000 },
  4817. /* DAC DISABLE/MUTE 2? */
  4818. /* some bit here disables the other DACs.
  4819. * Init=0x4900 */
  4820. { 0x20, AC_VERB_SET_COEF_INDEX, 0x08 },
  4821. { 0x20, AC_VERB_SET_PROC_COEF, 0x0000 },
  4822. /* DMIC fix
  4823. * This laptop has a stereo digital microphone.
  4824. * The mics are only 1cm apart which makes the stereo
  4825. * useless. However, either the mic or the ALC889
  4826. * makes the signal become a difference/sum signal
  4827. * instead of standard stereo, which is annoying.
  4828. * So instead we flip this bit which makes the
  4829. * codec replicate the sum signal to both channels,
  4830. * turning it into a normal mono mic.
  4831. */
  4832. /* DMIC_CONTROL? Init value = 0x0001 */
  4833. { 0x20, AC_VERB_SET_COEF_INDEX, 0x0b },
  4834. { 0x20, AC_VERB_SET_PROC_COEF, 0x0003 },
  4835. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  4836. { 0x20, AC_VERB_SET_PROC_COEF, 0x3050 },
  4837. { }
  4838. },
  4839. .chained = true,
  4840. .chain_id = ALC882_FIXUP_GPIO1,
  4841. },
  4842. [ALC885_FIXUP_MACPRO_GPIO] = {
  4843. .type = ALC_FIXUP_FUNC,
  4844. .v.func = alc885_fixup_macpro_gpio,
  4845. },
  4846. [ALC889_FIXUP_DAC_ROUTE] = {
  4847. .type = ALC_FIXUP_FUNC,
  4848. .v.func = alc889_fixup_dac_route,
  4849. },
  4850. [ALC889_FIXUP_MBP_VREF] = {
  4851. .type = ALC_FIXUP_FUNC,
  4852. .v.func = alc889_fixup_mbp_vref,
  4853. .chained = true,
  4854. .chain_id = ALC882_FIXUP_GPIO1,
  4855. },
  4856. [ALC889_FIXUP_IMAC91_VREF] = {
  4857. .type = ALC_FIXUP_FUNC,
  4858. .v.func = alc889_fixup_imac91_vref,
  4859. .chained = true,
  4860. .chain_id = ALC882_FIXUP_GPIO1,
  4861. },
  4862. [ALC882_FIXUP_INV_DMIC] = {
  4863. .type = ALC_FIXUP_FUNC,
  4864. .v.func = alc_fixup_inv_dmic_0x12,
  4865. },
  4866. [ALC882_FIXUP_NO_PRIMARY_HP] = {
  4867. .type = ALC_FIXUP_FUNC,
  4868. .v.func = alc882_fixup_no_primary_hp,
  4869. },
  4870. };
  4871. static const struct snd_pci_quirk alc882_fixup_tbl[] = {
  4872. SND_PCI_QUIRK(0x1025, 0x006c, "Acer Aspire 9810", ALC883_FIXUP_ACER_EAPD),
  4873. SND_PCI_QUIRK(0x1025, 0x0090, "Acer Aspire", ALC883_FIXUP_ACER_EAPD),
  4874. SND_PCI_QUIRK(0x1025, 0x010a, "Acer Ferrari 5000", ALC883_FIXUP_ACER_EAPD),
  4875. SND_PCI_QUIRK(0x1025, 0x0110, "Acer Aspire", ALC883_FIXUP_ACER_EAPD),
  4876. SND_PCI_QUIRK(0x1025, 0x0112, "Acer Aspire 9303", ALC883_FIXUP_ACER_EAPD),
  4877. SND_PCI_QUIRK(0x1025, 0x0121, "Acer Aspire 5920G", ALC883_FIXUP_ACER_EAPD),
  4878. SND_PCI_QUIRK(0x1025, 0x013e, "Acer Aspire 4930G",
  4879. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4880. SND_PCI_QUIRK(0x1025, 0x013f, "Acer Aspire 5930G",
  4881. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4882. SND_PCI_QUIRK(0x1025, 0x0145, "Acer Aspire 8930G",
  4883. ALC882_FIXUP_ACER_ASPIRE_8930G),
  4884. SND_PCI_QUIRK(0x1025, 0x0146, "Acer Aspire 6935G",
  4885. ALC882_FIXUP_ACER_ASPIRE_8930G),
  4886. SND_PCI_QUIRK(0x1025, 0x015e, "Acer Aspire 6930G",
  4887. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4888. SND_PCI_QUIRK(0x1025, 0x0166, "Acer Aspire 6530G",
  4889. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4890. SND_PCI_QUIRK(0x1025, 0x0142, "Acer Aspire 7730G",
  4891. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4892. SND_PCI_QUIRK(0x1025, 0x0155, "Packard-Bell M5120", ALC882_FIXUP_PB_M5210),
  4893. SND_PCI_QUIRK(0x1025, 0x021e, "Acer Aspire 5739G",
  4894. ALC882_FIXUP_ACER_ASPIRE_4930G),
  4895. SND_PCI_QUIRK(0x1025, 0x0259, "Acer Aspire 5935", ALC889_FIXUP_DAC_ROUTE),
  4896. SND_PCI_QUIRK(0x1025, 0x026b, "Acer Aspire 8940G", ALC882_FIXUP_ACER_ASPIRE_8930G),
  4897. SND_PCI_QUIRK(0x1025, 0x0296, "Acer Aspire 7736z", ALC882_FIXUP_ACER_ASPIRE_7736),
  4898. SND_PCI_QUIRK(0x1043, 0x13c2, "Asus A7M", ALC882_FIXUP_EAPD),
  4899. SND_PCI_QUIRK(0x1043, 0x1873, "ASUS W90V", ALC882_FIXUP_ASUS_W90V),
  4900. SND_PCI_QUIRK(0x1043, 0x1971, "Asus W2JC", ALC882_FIXUP_ASUS_W2JC),
  4901. SND_PCI_QUIRK(0x1043, 0x835f, "Asus Eee 1601", ALC888_FIXUP_EEE1601),
  4902. SND_PCI_QUIRK(0x104d, 0x9047, "Sony Vaio TT", ALC889_FIXUP_VAIO_TT),
  4903. SND_PCI_QUIRK(0x104d, 0x905a, "Sony Vaio Z", ALC882_FIXUP_NO_PRIMARY_HP),
  4904. /* All Apple entries are in codec SSIDs */
  4905. SND_PCI_QUIRK(0x106b, 0x00a0, "MacBookPro 3,1", ALC889_FIXUP_MBP_VREF),
  4906. SND_PCI_QUIRK(0x106b, 0x00a1, "Macbook", ALC889_FIXUP_MBP_VREF),
  4907. SND_PCI_QUIRK(0x106b, 0x00a4, "MacbookPro 4,1", ALC889_FIXUP_MBP_VREF),
  4908. SND_PCI_QUIRK(0x106b, 0x0c00, "Mac Pro", ALC885_FIXUP_MACPRO_GPIO),
  4909. SND_PCI_QUIRK(0x106b, 0x1000, "iMac 24", ALC885_FIXUP_MACPRO_GPIO),
  4910. SND_PCI_QUIRK(0x106b, 0x2800, "AppleTV", ALC885_FIXUP_MACPRO_GPIO),
  4911. SND_PCI_QUIRK(0x106b, 0x2c00, "MacbookPro rev3", ALC889_FIXUP_MBP_VREF),
  4912. SND_PCI_QUIRK(0x106b, 0x3000, "iMac", ALC889_FIXUP_MBP_VREF),
  4913. SND_PCI_QUIRK(0x106b, 0x3200, "iMac 7,1 Aluminum", ALC882_FIXUP_EAPD),
  4914. SND_PCI_QUIRK(0x106b, 0x3400, "MacBookAir 1,1", ALC889_FIXUP_MBP_VREF),
  4915. SND_PCI_QUIRK(0x106b, 0x3500, "MacBookAir 2,1", ALC889_FIXUP_MBP_VREF),
  4916. SND_PCI_QUIRK(0x106b, 0x3600, "Macbook 3,1", ALC889_FIXUP_MBP_VREF),
  4917. SND_PCI_QUIRK(0x106b, 0x3800, "MacbookPro 4,1", ALC889_FIXUP_MBP_VREF),
  4918. SND_PCI_QUIRK(0x106b, 0x3e00, "iMac 24 Aluminum", ALC885_FIXUP_MACPRO_GPIO),
  4919. SND_PCI_QUIRK(0x106b, 0x3f00, "Macbook 5,1", ALC889_FIXUP_IMAC91_VREF),
  4920. SND_PCI_QUIRK(0x106b, 0x4000, "MacbookPro 5,1", ALC889_FIXUP_IMAC91_VREF),
  4921. SND_PCI_QUIRK(0x106b, 0x4100, "Macmini 3,1", ALC889_FIXUP_IMAC91_VREF),
  4922. SND_PCI_QUIRK(0x106b, 0x4200, "Mac Pro 5,1", ALC885_FIXUP_MACPRO_GPIO),
  4923. SND_PCI_QUIRK(0x106b, 0x4600, "MacbookPro 5,2", ALC889_FIXUP_IMAC91_VREF),
  4924. SND_PCI_QUIRK(0x106b, 0x4900, "iMac 9,1 Aluminum", ALC889_FIXUP_IMAC91_VREF),
  4925. SND_PCI_QUIRK(0x106b, 0x4a00, "Macbook 5,2", ALC889_FIXUP_IMAC91_VREF),
  4926. SND_PCI_QUIRK(0x1071, 0x8258, "Evesham Voyaeger", ALC882_FIXUP_EAPD),
  4927. SND_PCI_QUIRK(0x1462, 0x7350, "MSI-7350", ALC889_FIXUP_CD),
  4928. SND_PCI_QUIRK_VENDOR(0x1462, "MSI", ALC882_FIXUP_GPIO3),
  4929. SND_PCI_QUIRK(0x1458, 0xa002, "Gigabyte EP45-DS3", ALC889_FIXUP_CD),
  4930. SND_PCI_QUIRK(0x147b, 0x107a, "Abit AW9D-MAX", ALC882_FIXUP_ABIT_AW9D_MAX),
  4931. SND_PCI_QUIRK_VENDOR(0x1558, "Clevo laptop", ALC882_FIXUP_EAPD),
  4932. SND_PCI_QUIRK(0x161f, 0x2054, "Medion laptop", ALC883_FIXUP_EAPD),
  4933. SND_PCI_QUIRK(0x17aa, 0x3a0d, "Lenovo Y530", ALC882_FIXUP_LENOVO_Y530),
  4934. SND_PCI_QUIRK(0x8086, 0x0022, "DX58SO", ALC889_FIXUP_COEF),
  4935. {}
  4936. };
  4937. static const struct alc_model_fixup alc882_fixup_models[] = {
  4938. {.id = ALC882_FIXUP_ACER_ASPIRE_4930G, .name = "acer-aspire-4930g"},
  4939. {.id = ALC882_FIXUP_ACER_ASPIRE_8930G, .name = "acer-aspire-8930g"},
  4940. {.id = ALC883_FIXUP_ACER_EAPD, .name = "acer-aspire"},
  4941. {.id = ALC882_FIXUP_INV_DMIC, .name = "inv-dmic"},
  4942. {.id = ALC882_FIXUP_NO_PRIMARY_HP, .name = "no-primary-hp"},
  4943. {}
  4944. };
  4945. /*
  4946. * BIOS auto configuration
  4947. */
  4948. /* almost identical with ALC880 parser... */
  4949. static int alc882_parse_auto_config(struct hda_codec *codec)
  4950. {
  4951. static const hda_nid_t alc882_ignore[] = { 0x1d, 0 };
  4952. static const hda_nid_t alc882_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  4953. return alc_parse_auto_config(codec, alc882_ignore, alc882_ssids);
  4954. }
  4955. /*
  4956. */
  4957. static int patch_alc882(struct hda_codec *codec)
  4958. {
  4959. struct alc_spec *spec;
  4960. int err;
  4961. err = alc_alloc_spec(codec, 0x0b);
  4962. if (err < 0)
  4963. return err;
  4964. spec = codec->spec;
  4965. switch (codec->vendor_id) {
  4966. case 0x10ec0882:
  4967. case 0x10ec0885:
  4968. break;
  4969. default:
  4970. /* ALC883 and variants */
  4971. alc_fix_pll_init(codec, 0x20, 0x0a, 10);
  4972. break;
  4973. }
  4974. alc_pick_fixup(codec, alc882_fixup_models, alc882_fixup_tbl,
  4975. alc882_fixups);
  4976. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  4977. alc_auto_parse_customize_define(codec);
  4978. /* automatic parse from the BIOS config */
  4979. err = alc882_parse_auto_config(codec);
  4980. if (err < 0)
  4981. goto error;
  4982. if (!spec->no_analog && has_cdefine_beep(codec)) {
  4983. err = snd_hda_attach_beep_device(codec, 0x1);
  4984. if (err < 0)
  4985. goto error;
  4986. set_beep_amp(spec, 0x0b, 0x05, HDA_INPUT);
  4987. }
  4988. codec->patch_ops = alc_patch_ops;
  4989. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  4990. return 0;
  4991. error:
  4992. alc_free(codec);
  4993. return err;
  4994. }
  4995. /*
  4996. * ALC262 support
  4997. */
  4998. static int alc262_parse_auto_config(struct hda_codec *codec)
  4999. {
  5000. static const hda_nid_t alc262_ignore[] = { 0x1d, 0 };
  5001. static const hda_nid_t alc262_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  5002. return alc_parse_auto_config(codec, alc262_ignore, alc262_ssids);
  5003. }
  5004. /*
  5005. * Pin config fixes
  5006. */
  5007. enum {
  5008. ALC262_FIXUP_FSC_H270,
  5009. ALC262_FIXUP_HP_Z200,
  5010. ALC262_FIXUP_TYAN,
  5011. ALC262_FIXUP_LENOVO_3000,
  5012. ALC262_FIXUP_BENQ,
  5013. ALC262_FIXUP_BENQ_T31,
  5014. ALC262_FIXUP_INV_DMIC,
  5015. };
  5016. static const struct alc_fixup alc262_fixups[] = {
  5017. [ALC262_FIXUP_FSC_H270] = {
  5018. .type = ALC_FIXUP_PINS,
  5019. .v.pins = (const struct alc_pincfg[]) {
  5020. { 0x14, 0x99130110 }, /* speaker */
  5021. { 0x15, 0x0221142f }, /* front HP */
  5022. { 0x1b, 0x0121141f }, /* rear HP */
  5023. { }
  5024. }
  5025. },
  5026. [ALC262_FIXUP_HP_Z200] = {
  5027. .type = ALC_FIXUP_PINS,
  5028. .v.pins = (const struct alc_pincfg[]) {
  5029. { 0x16, 0x99130120 }, /* internal speaker */
  5030. { }
  5031. }
  5032. },
  5033. [ALC262_FIXUP_TYAN] = {
  5034. .type = ALC_FIXUP_PINS,
  5035. .v.pins = (const struct alc_pincfg[]) {
  5036. { 0x14, 0x1993e1f0 }, /* int AUX */
  5037. { }
  5038. }
  5039. },
  5040. [ALC262_FIXUP_LENOVO_3000] = {
  5041. .type = ALC_FIXUP_VERBS,
  5042. .v.verbs = (const struct hda_verb[]) {
  5043. { 0x19, AC_VERB_SET_PIN_WIDGET_CONTROL, PIN_VREF50 },
  5044. {}
  5045. },
  5046. .chained = true,
  5047. .chain_id = ALC262_FIXUP_BENQ,
  5048. },
  5049. [ALC262_FIXUP_BENQ] = {
  5050. .type = ALC_FIXUP_VERBS,
  5051. .v.verbs = (const struct hda_verb[]) {
  5052. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  5053. { 0x20, AC_VERB_SET_PROC_COEF, 0x3070 },
  5054. {}
  5055. }
  5056. },
  5057. [ALC262_FIXUP_BENQ_T31] = {
  5058. .type = ALC_FIXUP_VERBS,
  5059. .v.verbs = (const struct hda_verb[]) {
  5060. { 0x20, AC_VERB_SET_COEF_INDEX, 0x07 },
  5061. { 0x20, AC_VERB_SET_PROC_COEF, 0x3050 },
  5062. {}
  5063. }
  5064. },
  5065. [ALC262_FIXUP_INV_DMIC] = {
  5066. .type = ALC_FIXUP_FUNC,
  5067. .v.func = alc_fixup_inv_dmic_0x12,
  5068. },
  5069. };
  5070. static const struct snd_pci_quirk alc262_fixup_tbl[] = {
  5071. SND_PCI_QUIRK(0x103c, 0x170b, "HP Z200", ALC262_FIXUP_HP_Z200),
  5072. SND_PCI_QUIRK(0x10cf, 0x1397, "Fujitsu", ALC262_FIXUP_BENQ),
  5073. SND_PCI_QUIRK(0x10cf, 0x142d, "Fujitsu Lifebook E8410", ALC262_FIXUP_BENQ),
  5074. SND_PCI_QUIRK(0x10f1, 0x2915, "Tyan Thunder n6650W", ALC262_FIXUP_TYAN),
  5075. SND_PCI_QUIRK(0x1734, 0x1147, "FSC Celsius H270", ALC262_FIXUP_FSC_H270),
  5076. SND_PCI_QUIRK(0x17aa, 0x384e, "Lenovo 3000", ALC262_FIXUP_LENOVO_3000),
  5077. SND_PCI_QUIRK(0x17ff, 0x0560, "Benq ED8", ALC262_FIXUP_BENQ),
  5078. SND_PCI_QUIRK(0x17ff, 0x058d, "Benq T31-16", ALC262_FIXUP_BENQ_T31),
  5079. {}
  5080. };
  5081. static const struct alc_model_fixup alc262_fixup_models[] = {
  5082. {.id = ALC262_FIXUP_INV_DMIC, .name = "inv-dmic"},
  5083. {}
  5084. };
  5085. /*
  5086. */
  5087. static int patch_alc262(struct hda_codec *codec)
  5088. {
  5089. struct alc_spec *spec;
  5090. int err;
  5091. err = alc_alloc_spec(codec, 0x0b);
  5092. if (err < 0)
  5093. return err;
  5094. spec = codec->spec;
  5095. #if 0
  5096. /* pshou 07/11/05 set a zero PCM sample to DAC when FIFO is
  5097. * under-run
  5098. */
  5099. {
  5100. int tmp;
  5101. snd_hda_codec_write(codec, 0x1a, 0, AC_VERB_SET_COEF_INDEX, 7);
  5102. tmp = snd_hda_codec_read(codec, 0x20, 0, AC_VERB_GET_PROC_COEF, 0);
  5103. snd_hda_codec_write(codec, 0x1a, 0, AC_VERB_SET_COEF_INDEX, 7);
  5104. snd_hda_codec_write(codec, 0x1a, 0, AC_VERB_SET_PROC_COEF, tmp | 0x80);
  5105. }
  5106. #endif
  5107. alc_fix_pll_init(codec, 0x20, 0x0a, 10);
  5108. alc_pick_fixup(codec, alc262_fixup_models, alc262_fixup_tbl,
  5109. alc262_fixups);
  5110. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  5111. alc_auto_parse_customize_define(codec);
  5112. /* automatic parse from the BIOS config */
  5113. err = alc262_parse_auto_config(codec);
  5114. if (err < 0)
  5115. goto error;
  5116. if (!spec->no_analog && has_cdefine_beep(codec)) {
  5117. err = snd_hda_attach_beep_device(codec, 0x1);
  5118. if (err < 0)
  5119. goto error;
  5120. set_beep_amp(spec, 0x0b, 0x05, HDA_INPUT);
  5121. }
  5122. codec->patch_ops = alc_patch_ops;
  5123. spec->shutup = alc_eapd_shutup;
  5124. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  5125. return 0;
  5126. error:
  5127. alc_free(codec);
  5128. return err;
  5129. }
  5130. /*
  5131. * ALC268
  5132. */
  5133. /* bind Beep switches of both NID 0x0f and 0x10 */
  5134. static const struct hda_bind_ctls alc268_bind_beep_sw = {
  5135. .ops = &snd_hda_bind_sw,
  5136. .values = {
  5137. HDA_COMPOSE_AMP_VAL(0x0f, 3, 1, HDA_INPUT),
  5138. HDA_COMPOSE_AMP_VAL(0x10, 3, 1, HDA_INPUT),
  5139. 0
  5140. },
  5141. };
  5142. static const struct snd_kcontrol_new alc268_beep_mixer[] = {
  5143. HDA_CODEC_VOLUME("Beep Playback Volume", 0x1d, 0x0, HDA_INPUT),
  5144. HDA_BIND_SW("Beep Playback Switch", &alc268_bind_beep_sw),
  5145. { }
  5146. };
  5147. /* set PCBEEP vol = 0, mute connections */
  5148. static const struct hda_verb alc268_beep_init_verbs[] = {
  5149. {0x1d, AC_VERB_SET_AMP_GAIN_MUTE, AMP_IN_UNMUTE(0)},
  5150. {0x0f, AC_VERB_SET_AMP_GAIN_MUTE, AMP_IN_MUTE(1)},
  5151. {0x10, AC_VERB_SET_AMP_GAIN_MUTE, AMP_IN_MUTE(1)},
  5152. { }
  5153. };
  5154. enum {
  5155. ALC268_FIXUP_INV_DMIC,
  5156. };
  5157. static const struct alc_fixup alc268_fixups[] = {
  5158. [ALC268_FIXUP_INV_DMIC] = {
  5159. .type = ALC_FIXUP_FUNC,
  5160. .v.func = alc_fixup_inv_dmic_0x12,
  5161. },
  5162. };
  5163. static const struct alc_model_fixup alc268_fixup_models[] = {
  5164. {.id = ALC268_FIXUP_INV_DMIC, .name = "inv-dmic"},
  5165. {}
  5166. };
  5167. /*
  5168. * BIOS auto configuration
  5169. */
  5170. static int alc268_parse_auto_config(struct hda_codec *codec)
  5171. {
  5172. static const hda_nid_t alc268_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  5173. struct alc_spec *spec = codec->spec;
  5174. int err = alc_parse_auto_config(codec, NULL, alc268_ssids);
  5175. if (err > 0) {
  5176. if (!spec->no_analog && spec->autocfg.speaker_pins[0] != 0x1d) {
  5177. add_mixer(spec, alc268_beep_mixer);
  5178. snd_hda_gen_add_verbs(&spec->gen, alc268_beep_init_verbs);
  5179. }
  5180. }
  5181. return err;
  5182. }
  5183. /*
  5184. */
  5185. static int patch_alc268(struct hda_codec *codec)
  5186. {
  5187. struct alc_spec *spec;
  5188. int i, has_beep, err;
  5189. /* ALC268 has no aa-loopback mixer */
  5190. err = alc_alloc_spec(codec, 0);
  5191. if (err < 0)
  5192. return err;
  5193. spec = codec->spec;
  5194. alc_pick_fixup(codec, alc268_fixup_models, NULL, alc268_fixups);
  5195. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  5196. /* automatic parse from the BIOS config */
  5197. err = alc268_parse_auto_config(codec);
  5198. if (err < 0)
  5199. goto error;
  5200. has_beep = 0;
  5201. for (i = 0; i < spec->num_mixers; i++) {
  5202. if (spec->mixers[i] == alc268_beep_mixer) {
  5203. has_beep = 1;
  5204. break;
  5205. }
  5206. }
  5207. if (has_beep) {
  5208. err = snd_hda_attach_beep_device(codec, 0x1);
  5209. if (err < 0)
  5210. goto error;
  5211. if (!query_amp_caps(codec, 0x1d, HDA_INPUT))
  5212. /* override the amp caps for beep generator */
  5213. snd_hda_override_amp_caps(codec, 0x1d, HDA_INPUT,
  5214. (0x0c << AC_AMPCAP_OFFSET_SHIFT) |
  5215. (0x0c << AC_AMPCAP_NUM_STEPS_SHIFT) |
  5216. (0x07 << AC_AMPCAP_STEP_SIZE_SHIFT) |
  5217. (0 << AC_AMPCAP_MUTE_SHIFT));
  5218. }
  5219. codec->patch_ops = alc_patch_ops;
  5220. spec->shutup = alc_eapd_shutup;
  5221. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  5222. return 0;
  5223. error:
  5224. alc_free(codec);
  5225. return err;
  5226. }
  5227. /*
  5228. * ALC269
  5229. */
  5230. static const struct hda_pcm_stream alc269_44k_pcm_analog_playback = {
  5231. .substreams = 1,
  5232. .channels_min = 2,
  5233. .channels_max = 8,
  5234. .rates = SNDRV_PCM_RATE_44100, /* fixed rate */
  5235. /* NID is set in alc_build_pcms */
  5236. .ops = {
  5237. .open = alc_playback_pcm_open,
  5238. .prepare = alc_playback_pcm_prepare,
  5239. .cleanup = alc_playback_pcm_cleanup
  5240. },
  5241. };
  5242. static const struct hda_pcm_stream alc269_44k_pcm_analog_capture = {
  5243. .substreams = 1,
  5244. .channels_min = 2,
  5245. .channels_max = 2,
  5246. .rates = SNDRV_PCM_RATE_44100, /* fixed rate */
  5247. /* NID is set in alc_build_pcms */
  5248. };
  5249. /* different alc269-variants */
  5250. enum {
  5251. ALC269_TYPE_ALC269VA,
  5252. ALC269_TYPE_ALC269VB,
  5253. ALC269_TYPE_ALC269VC,
  5254. ALC269_TYPE_ALC269VD,
  5255. };
  5256. /*
  5257. * BIOS auto configuration
  5258. */
  5259. static int alc269_parse_auto_config(struct hda_codec *codec)
  5260. {
  5261. static const hda_nid_t alc269_ignore[] = { 0x1d, 0 };
  5262. static const hda_nid_t alc269_ssids[] = { 0, 0x1b, 0x14, 0x21 };
  5263. static const hda_nid_t alc269va_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  5264. struct alc_spec *spec = codec->spec;
  5265. const hda_nid_t *ssids;
  5266. switch (spec->codec_variant) {
  5267. case ALC269_TYPE_ALC269VA:
  5268. case ALC269_TYPE_ALC269VC:
  5269. ssids = alc269va_ssids;
  5270. break;
  5271. case ALC269_TYPE_ALC269VB:
  5272. case ALC269_TYPE_ALC269VD:
  5273. ssids = alc269_ssids;
  5274. break;
  5275. default:
  5276. ssids = alc269_ssids;
  5277. break;
  5278. }
  5279. return alc_parse_auto_config(codec, alc269_ignore, ssids);
  5280. }
  5281. static void alc269_toggle_power_output(struct hda_codec *codec, int power_up)
  5282. {
  5283. int val = alc_read_coef_idx(codec, 0x04);
  5284. if (power_up)
  5285. val |= 1 << 11;
  5286. else
  5287. val &= ~(1 << 11);
  5288. alc_write_coef_idx(codec, 0x04, val);
  5289. }
  5290. static void alc269_shutup(struct hda_codec *codec)
  5291. {
  5292. struct alc_spec *spec = codec->spec;
  5293. if (spec->codec_variant != ALC269_TYPE_ALC269VB)
  5294. return;
  5295. if ((alc_get_coef0(codec) & 0x00ff) == 0x017)
  5296. alc269_toggle_power_output(codec, 0);
  5297. if ((alc_get_coef0(codec) & 0x00ff) == 0x018) {
  5298. alc269_toggle_power_output(codec, 0);
  5299. msleep(150);
  5300. }
  5301. }
  5302. #ifdef CONFIG_PM
  5303. static int alc269_resume(struct hda_codec *codec)
  5304. {
  5305. struct alc_spec *spec = codec->spec;
  5306. if (spec->codec_variant == ALC269_TYPE_ALC269VB ||
  5307. (alc_get_coef0(codec) & 0x00ff) == 0x018) {
  5308. alc269_toggle_power_output(codec, 0);
  5309. msleep(150);
  5310. }
  5311. codec->patch_ops.init(codec);
  5312. if (spec->codec_variant == ALC269_TYPE_ALC269VB ||
  5313. (alc_get_coef0(codec) & 0x00ff) == 0x017) {
  5314. alc269_toggle_power_output(codec, 1);
  5315. msleep(200);
  5316. }
  5317. if (spec->codec_variant == ALC269_TYPE_ALC269VB ||
  5318. (alc_get_coef0(codec) & 0x00ff) == 0x018)
  5319. alc269_toggle_power_output(codec, 1);
  5320. snd_hda_codec_resume_amp(codec);
  5321. snd_hda_codec_resume_cache(codec);
  5322. hda_call_check_power_status(codec, 0x01);
  5323. return 0;
  5324. }
  5325. #endif /* CONFIG_PM */
  5326. static void alc269_fixup_pincfg_no_hp_to_lineout(struct hda_codec *codec,
  5327. const struct alc_fixup *fix, int action)
  5328. {
  5329. struct alc_spec *spec = codec->spec;
  5330. if (action == ALC_FIXUP_ACT_PRE_PROBE)
  5331. spec->parse_flags = HDA_PINCFG_NO_HP_FIXUP;
  5332. }
  5333. static void alc269_fixup_hweq(struct hda_codec *codec,
  5334. const struct alc_fixup *fix, int action)
  5335. {
  5336. int coef;
  5337. if (action != ALC_FIXUP_ACT_INIT)
  5338. return;
  5339. coef = alc_read_coef_idx(codec, 0x1e);
  5340. alc_write_coef_idx(codec, 0x1e, coef | 0x80);
  5341. }
  5342. static void alc271_fixup_dmic(struct hda_codec *codec,
  5343. const struct alc_fixup *fix, int action)
  5344. {
  5345. static const struct hda_verb verbs[] = {
  5346. {0x20, AC_VERB_SET_COEF_INDEX, 0x0d},
  5347. {0x20, AC_VERB_SET_PROC_COEF, 0x4000},
  5348. {}
  5349. };
  5350. unsigned int cfg;
  5351. if (strcmp(codec->chip_name, "ALC271X"))
  5352. return;
  5353. cfg = snd_hda_codec_get_pincfg(codec, 0x12);
  5354. if (get_defcfg_connect(cfg) == AC_JACK_PORT_FIXED)
  5355. snd_hda_sequence_write(codec, verbs);
  5356. }
  5357. static void alc269_fixup_pcm_44k(struct hda_codec *codec,
  5358. const struct alc_fixup *fix, int action)
  5359. {
  5360. struct alc_spec *spec = codec->spec;
  5361. if (action != ALC_FIXUP_ACT_PROBE)
  5362. return;
  5363. /* Due to a hardware problem on Lenovo Ideadpad, we need to
  5364. * fix the sample rate of analog I/O to 44.1kHz
  5365. */
  5366. spec->stream_analog_playback = &alc269_44k_pcm_analog_playback;
  5367. spec->stream_analog_capture = &alc269_44k_pcm_analog_capture;
  5368. }
  5369. static void alc269_fixup_stereo_dmic(struct hda_codec *codec,
  5370. const struct alc_fixup *fix, int action)
  5371. {
  5372. int coef;
  5373. if (action != ALC_FIXUP_ACT_INIT)
  5374. return;
  5375. /* The digital-mic unit sends PDM (differential signal) instead of
  5376. * the standard PCM, thus you can't record a valid mono stream as is.
  5377. * Below is a workaround specific to ALC269 to control the dmic
  5378. * signal source as mono.
  5379. */
  5380. coef = alc_read_coef_idx(codec, 0x07);
  5381. alc_write_coef_idx(codec, 0x07, coef | 0x80);
  5382. }
  5383. static void alc269_quanta_automute(struct hda_codec *codec)
  5384. {
  5385. update_outputs(codec);
  5386. snd_hda_codec_write(codec, 0x20, 0,
  5387. AC_VERB_SET_COEF_INDEX, 0x0c);
  5388. snd_hda_codec_write(codec, 0x20, 0,
  5389. AC_VERB_SET_PROC_COEF, 0x680);
  5390. snd_hda_codec_write(codec, 0x20, 0,
  5391. AC_VERB_SET_COEF_INDEX, 0x0c);
  5392. snd_hda_codec_write(codec, 0x20, 0,
  5393. AC_VERB_SET_PROC_COEF, 0x480);
  5394. }
  5395. static void alc269_fixup_quanta_mute(struct hda_codec *codec,
  5396. const struct alc_fixup *fix, int action)
  5397. {
  5398. struct alc_spec *spec = codec->spec;
  5399. if (action != ALC_FIXUP_ACT_PROBE)
  5400. return;
  5401. spec->automute_hook = alc269_quanta_automute;
  5402. }
  5403. /* update mute-LED according to the speaker mute state via mic2 VREF pin */
  5404. static void alc269_fixup_mic2_mute_hook(void *private_data, int enabled)
  5405. {
  5406. struct hda_codec *codec = private_data;
  5407. unsigned int pinval = enabled ? 0x20 : 0x24;
  5408. snd_hda_set_pin_ctl_cache(codec, 0x19, pinval);
  5409. }
  5410. static void alc269_fixup_mic2_mute(struct hda_codec *codec,
  5411. const struct alc_fixup *fix, int action)
  5412. {
  5413. struct alc_spec *spec = codec->spec;
  5414. switch (action) {
  5415. case ALC_FIXUP_ACT_BUILD:
  5416. spec->vmaster_mute.hook = alc269_fixup_mic2_mute_hook;
  5417. snd_hda_add_vmaster_hook(codec, &spec->vmaster_mute, true);
  5418. /* fallthru */
  5419. case ALC_FIXUP_ACT_INIT:
  5420. snd_hda_sync_vmaster_hook(&spec->vmaster_mute);
  5421. break;
  5422. }
  5423. }
  5424. enum {
  5425. ALC269_FIXUP_SONY_VAIO,
  5426. ALC275_FIXUP_SONY_VAIO_GPIO2,
  5427. ALC269_FIXUP_DELL_M101Z,
  5428. ALC269_FIXUP_SKU_IGNORE,
  5429. ALC269_FIXUP_ASUS_G73JW,
  5430. ALC269_FIXUP_LENOVO_EAPD,
  5431. ALC275_FIXUP_SONY_HWEQ,
  5432. ALC271_FIXUP_DMIC,
  5433. ALC269_FIXUP_PCM_44K,
  5434. ALC269_FIXUP_STEREO_DMIC,
  5435. ALC269_FIXUP_QUANTA_MUTE,
  5436. ALC269_FIXUP_LIFEBOOK,
  5437. ALC269_FIXUP_AMIC,
  5438. ALC269_FIXUP_DMIC,
  5439. ALC269VB_FIXUP_AMIC,
  5440. ALC269VB_FIXUP_DMIC,
  5441. ALC269_FIXUP_MIC2_MUTE_LED,
  5442. ALC269_FIXUP_INV_DMIC,
  5443. ALC269_FIXUP_LENOVO_DOCK,
  5444. ALC269_FIXUP_PINCFG_NO_HP_TO_LINEOUT,
  5445. };
  5446. static const struct alc_fixup alc269_fixups[] = {
  5447. [ALC269_FIXUP_SONY_VAIO] = {
  5448. .type = ALC_FIXUP_VERBS,
  5449. .v.verbs = (const struct hda_verb[]) {
  5450. {0x19, AC_VERB_SET_PIN_WIDGET_CONTROL, PIN_VREFGRD},
  5451. {}
  5452. }
  5453. },
  5454. [ALC275_FIXUP_SONY_VAIO_GPIO2] = {
  5455. .type = ALC_FIXUP_VERBS,
  5456. .v.verbs = (const struct hda_verb[]) {
  5457. {0x01, AC_VERB_SET_GPIO_MASK, 0x04},
  5458. {0x01, AC_VERB_SET_GPIO_DIRECTION, 0x04},
  5459. {0x01, AC_VERB_SET_GPIO_DATA, 0x00},
  5460. { }
  5461. },
  5462. .chained = true,
  5463. .chain_id = ALC269_FIXUP_SONY_VAIO
  5464. },
  5465. [ALC269_FIXUP_DELL_M101Z] = {
  5466. .type = ALC_FIXUP_VERBS,
  5467. .v.verbs = (const struct hda_verb[]) {
  5468. /* Enables internal speaker */
  5469. {0x20, AC_VERB_SET_COEF_INDEX, 13},
  5470. {0x20, AC_VERB_SET_PROC_COEF, 0x4040},
  5471. {}
  5472. }
  5473. },
  5474. [ALC269_FIXUP_SKU_IGNORE] = {
  5475. .type = ALC_FIXUP_FUNC,
  5476. .v.func = alc_fixup_sku_ignore,
  5477. },
  5478. [ALC269_FIXUP_ASUS_G73JW] = {
  5479. .type = ALC_FIXUP_PINS,
  5480. .v.pins = (const struct alc_pincfg[]) {
  5481. { 0x17, 0x99130111 }, /* subwoofer */
  5482. { }
  5483. }
  5484. },
  5485. [ALC269_FIXUP_LENOVO_EAPD] = {
  5486. .type = ALC_FIXUP_VERBS,
  5487. .v.verbs = (const struct hda_verb[]) {
  5488. {0x14, AC_VERB_SET_EAPD_BTLENABLE, 0},
  5489. {}
  5490. }
  5491. },
  5492. [ALC275_FIXUP_SONY_HWEQ] = {
  5493. .type = ALC_FIXUP_FUNC,
  5494. .v.func = alc269_fixup_hweq,
  5495. .chained = true,
  5496. .chain_id = ALC275_FIXUP_SONY_VAIO_GPIO2
  5497. },
  5498. [ALC271_FIXUP_DMIC] = {
  5499. .type = ALC_FIXUP_FUNC,
  5500. .v.func = alc271_fixup_dmic,
  5501. },
  5502. [ALC269_FIXUP_PCM_44K] = {
  5503. .type = ALC_FIXUP_FUNC,
  5504. .v.func = alc269_fixup_pcm_44k,
  5505. .chained = true,
  5506. .chain_id = ALC269_FIXUP_QUANTA_MUTE
  5507. },
  5508. [ALC269_FIXUP_STEREO_DMIC] = {
  5509. .type = ALC_FIXUP_FUNC,
  5510. .v.func = alc269_fixup_stereo_dmic,
  5511. },
  5512. [ALC269_FIXUP_QUANTA_MUTE] = {
  5513. .type = ALC_FIXUP_FUNC,
  5514. .v.func = alc269_fixup_quanta_mute,
  5515. },
  5516. [ALC269_FIXUP_LIFEBOOK] = {
  5517. .type = ALC_FIXUP_PINS,
  5518. .v.pins = (const struct alc_pincfg[]) {
  5519. { 0x1a, 0x2101103f }, /* dock line-out */
  5520. { 0x1b, 0x23a11040 }, /* dock mic-in */
  5521. { }
  5522. },
  5523. .chained = true,
  5524. .chain_id = ALC269_FIXUP_QUANTA_MUTE
  5525. },
  5526. [ALC269_FIXUP_AMIC] = {
  5527. .type = ALC_FIXUP_PINS,
  5528. .v.pins = (const struct alc_pincfg[]) {
  5529. { 0x14, 0x99130110 }, /* speaker */
  5530. { 0x15, 0x0121401f }, /* HP out */
  5531. { 0x18, 0x01a19c20 }, /* mic */
  5532. { 0x19, 0x99a3092f }, /* int-mic */
  5533. { }
  5534. },
  5535. },
  5536. [ALC269_FIXUP_DMIC] = {
  5537. .type = ALC_FIXUP_PINS,
  5538. .v.pins = (const struct alc_pincfg[]) {
  5539. { 0x12, 0x99a3092f }, /* int-mic */
  5540. { 0x14, 0x99130110 }, /* speaker */
  5541. { 0x15, 0x0121401f }, /* HP out */
  5542. { 0x18, 0x01a19c20 }, /* mic */
  5543. { }
  5544. },
  5545. },
  5546. [ALC269VB_FIXUP_AMIC] = {
  5547. .type = ALC_FIXUP_PINS,
  5548. .v.pins = (const struct alc_pincfg[]) {
  5549. { 0x14, 0x99130110 }, /* speaker */
  5550. { 0x18, 0x01a19c20 }, /* mic */
  5551. { 0x19, 0x99a3092f }, /* int-mic */
  5552. { 0x21, 0x0121401f }, /* HP out */
  5553. { }
  5554. },
  5555. },
  5556. [ALC269VB_FIXUP_DMIC] = {
  5557. .type = ALC_FIXUP_PINS,
  5558. .v.pins = (const struct alc_pincfg[]) {
  5559. { 0x12, 0x99a3092f }, /* int-mic */
  5560. { 0x14, 0x99130110 }, /* speaker */
  5561. { 0x18, 0x01a19c20 }, /* mic */
  5562. { 0x21, 0x0121401f }, /* HP out */
  5563. { }
  5564. },
  5565. },
  5566. [ALC269_FIXUP_MIC2_MUTE_LED] = {
  5567. .type = ALC_FIXUP_FUNC,
  5568. .v.func = alc269_fixup_mic2_mute,
  5569. },
  5570. [ALC269_FIXUP_INV_DMIC] = {
  5571. .type = ALC_FIXUP_FUNC,
  5572. .v.func = alc_fixup_inv_dmic_0x12,
  5573. },
  5574. [ALC269_FIXUP_LENOVO_DOCK] = {
  5575. .type = ALC_FIXUP_PINS,
  5576. .v.pins = (const struct alc_pincfg[]) {
  5577. { 0x19, 0x23a11040 }, /* dock mic */
  5578. { 0x1b, 0x2121103f }, /* dock headphone */
  5579. { }
  5580. },
  5581. .chained = true,
  5582. .chain_id = ALC269_FIXUP_PINCFG_NO_HP_TO_LINEOUT
  5583. },
  5584. [ALC269_FIXUP_PINCFG_NO_HP_TO_LINEOUT] = {
  5585. .type = ALC_FIXUP_FUNC,
  5586. .v.func = alc269_fixup_pincfg_no_hp_to_lineout,
  5587. },
  5588. };
  5589. static const struct snd_pci_quirk alc269_fixup_tbl[] = {
  5590. SND_PCI_QUIRK(0x1025, 0x029b, "Acer 1810TZ", ALC269_FIXUP_INV_DMIC),
  5591. SND_PCI_QUIRK(0x1025, 0x0349, "Acer AOD260", ALC269_FIXUP_INV_DMIC),
  5592. SND_PCI_QUIRK(0x103c, 0x1586, "HP", ALC269_FIXUP_MIC2_MUTE_LED),
  5593. SND_PCI_QUIRK(0x1043, 0x1427, "Asus Zenbook UX31E", ALC269VB_FIXUP_DMIC),
  5594. SND_PCI_QUIRK(0x1043, 0x1a13, "Asus G73Jw", ALC269_FIXUP_ASUS_G73JW),
  5595. SND_PCI_QUIRK(0x1043, 0x1b13, "Asus U41SV", ALC269_FIXUP_INV_DMIC),
  5596. SND_PCI_QUIRK(0x1043, 0x16e3, "ASUS UX50", ALC269_FIXUP_STEREO_DMIC),
  5597. SND_PCI_QUIRK(0x1043, 0x831a, "ASUS P901", ALC269_FIXUP_STEREO_DMIC),
  5598. SND_PCI_QUIRK(0x1043, 0x834a, "ASUS S101", ALC269_FIXUP_STEREO_DMIC),
  5599. SND_PCI_QUIRK(0x1043, 0x8398, "ASUS P1005", ALC269_FIXUP_STEREO_DMIC),
  5600. SND_PCI_QUIRK(0x1043, 0x83ce, "ASUS P1005", ALC269_FIXUP_STEREO_DMIC),
  5601. SND_PCI_QUIRK(0x104d, 0x9073, "Sony VAIO", ALC275_FIXUP_SONY_VAIO_GPIO2),
  5602. SND_PCI_QUIRK(0x104d, 0x907b, "Sony VAIO", ALC275_FIXUP_SONY_HWEQ),
  5603. SND_PCI_QUIRK(0x104d, 0x9084, "Sony VAIO", ALC275_FIXUP_SONY_HWEQ),
  5604. SND_PCI_QUIRK_VENDOR(0x104d, "Sony VAIO", ALC269_FIXUP_SONY_VAIO),
  5605. SND_PCI_QUIRK(0x1028, 0x0470, "Dell M101z", ALC269_FIXUP_DELL_M101Z),
  5606. SND_PCI_QUIRK_VENDOR(0x1025, "Acer Aspire", ALC271_FIXUP_DMIC),
  5607. SND_PCI_QUIRK(0x10cf, 0x1475, "Lifebook", ALC269_FIXUP_LIFEBOOK),
  5608. SND_PCI_QUIRK(0x17aa, 0x20f2, "Thinkpad SL410/510", ALC269_FIXUP_SKU_IGNORE),
  5609. SND_PCI_QUIRK(0x17aa, 0x215e, "Thinkpad L512", ALC269_FIXUP_SKU_IGNORE),
  5610. SND_PCI_QUIRK(0x17aa, 0x21b8, "Thinkpad Edge 14", ALC269_FIXUP_SKU_IGNORE),
  5611. SND_PCI_QUIRK(0x17aa, 0x21ca, "Thinkpad L412", ALC269_FIXUP_SKU_IGNORE),
  5612. SND_PCI_QUIRK(0x17aa, 0x21e9, "Thinkpad Edge 15", ALC269_FIXUP_SKU_IGNORE),
  5613. SND_PCI_QUIRK(0x17aa, 0x21f6, "Thinkpad T530", ALC269_FIXUP_LENOVO_DOCK),
  5614. SND_PCI_QUIRK(0x17aa, 0x21fa, "Thinkpad X230", ALC269_FIXUP_LENOVO_DOCK),
  5615. SND_PCI_QUIRK(0x17aa, 0x21fb, "Thinkpad T430s", ALC269_FIXUP_LENOVO_DOCK),
  5616. SND_PCI_QUIRK(0x17aa, 0x2203, "Thinkpad X230 Tablet", ALC269_FIXUP_LENOVO_DOCK),
  5617. SND_PCI_QUIRK(0x17aa, 0x3bf8, "Quanta FL1", ALC269_FIXUP_PCM_44K),
  5618. SND_PCI_QUIRK(0x17aa, 0x9e54, "LENOVO NB", ALC269_FIXUP_LENOVO_EAPD),
  5619. #if 0
  5620. /* Below is a quirk table taken from the old code.
  5621. * Basically the device should work as is without the fixup table.
  5622. * If BIOS doesn't give a proper info, enable the corresponding
  5623. * fixup entry.
  5624. */
  5625. SND_PCI_QUIRK(0x1043, 0x8330, "ASUS Eeepc P703 P900A",
  5626. ALC269_FIXUP_AMIC),
  5627. SND_PCI_QUIRK(0x1043, 0x1013, "ASUS N61Da", ALC269_FIXUP_AMIC),
  5628. SND_PCI_QUIRK(0x1043, 0x1143, "ASUS B53f", ALC269_FIXUP_AMIC),
  5629. SND_PCI_QUIRK(0x1043, 0x1133, "ASUS UJ20ft", ALC269_FIXUP_AMIC),
  5630. SND_PCI_QUIRK(0x1043, 0x1183, "ASUS K72DR", ALC269_FIXUP_AMIC),
  5631. SND_PCI_QUIRK(0x1043, 0x11b3, "ASUS K52DR", ALC269_FIXUP_AMIC),
  5632. SND_PCI_QUIRK(0x1043, 0x11e3, "ASUS U33Jc", ALC269_FIXUP_AMIC),
  5633. SND_PCI_QUIRK(0x1043, 0x1273, "ASUS UL80Jt", ALC269_FIXUP_AMIC),
  5634. SND_PCI_QUIRK(0x1043, 0x1283, "ASUS U53Jc", ALC269_FIXUP_AMIC),
  5635. SND_PCI_QUIRK(0x1043, 0x12b3, "ASUS N82JV", ALC269_FIXUP_AMIC),
  5636. SND_PCI_QUIRK(0x1043, 0x12d3, "ASUS N61Jv", ALC269_FIXUP_AMIC),
  5637. SND_PCI_QUIRK(0x1043, 0x13a3, "ASUS UL30Vt", ALC269_FIXUP_AMIC),
  5638. SND_PCI_QUIRK(0x1043, 0x1373, "ASUS G73JX", ALC269_FIXUP_AMIC),
  5639. SND_PCI_QUIRK(0x1043, 0x1383, "ASUS UJ30Jc", ALC269_FIXUP_AMIC),
  5640. SND_PCI_QUIRK(0x1043, 0x13d3, "ASUS N61JA", ALC269_FIXUP_AMIC),
  5641. SND_PCI_QUIRK(0x1043, 0x1413, "ASUS UL50", ALC269_FIXUP_AMIC),
  5642. SND_PCI_QUIRK(0x1043, 0x1443, "ASUS UL30", ALC269_FIXUP_AMIC),
  5643. SND_PCI_QUIRK(0x1043, 0x1453, "ASUS M60Jv", ALC269_FIXUP_AMIC),
  5644. SND_PCI_QUIRK(0x1043, 0x1483, "ASUS UL80", ALC269_FIXUP_AMIC),
  5645. SND_PCI_QUIRK(0x1043, 0x14f3, "ASUS F83Vf", ALC269_FIXUP_AMIC),
  5646. SND_PCI_QUIRK(0x1043, 0x14e3, "ASUS UL20", ALC269_FIXUP_AMIC),
  5647. SND_PCI_QUIRK(0x1043, 0x1513, "ASUS UX30", ALC269_FIXUP_AMIC),
  5648. SND_PCI_QUIRK(0x1043, 0x1593, "ASUS N51Vn", ALC269_FIXUP_AMIC),
  5649. SND_PCI_QUIRK(0x1043, 0x15a3, "ASUS N60Jv", ALC269_FIXUP_AMIC),
  5650. SND_PCI_QUIRK(0x1043, 0x15b3, "ASUS N60Dp", ALC269_FIXUP_AMIC),
  5651. SND_PCI_QUIRK(0x1043, 0x15c3, "ASUS N70De", ALC269_FIXUP_AMIC),
  5652. SND_PCI_QUIRK(0x1043, 0x15e3, "ASUS F83T", ALC269_FIXUP_AMIC),
  5653. SND_PCI_QUIRK(0x1043, 0x1643, "ASUS M60J", ALC269_FIXUP_AMIC),
  5654. SND_PCI_QUIRK(0x1043, 0x1653, "ASUS U50", ALC269_FIXUP_AMIC),
  5655. SND_PCI_QUIRK(0x1043, 0x1693, "ASUS F50N", ALC269_FIXUP_AMIC),
  5656. SND_PCI_QUIRK(0x1043, 0x16a3, "ASUS F5Q", ALC269_FIXUP_AMIC),
  5657. SND_PCI_QUIRK(0x1043, 0x1723, "ASUS P80", ALC269_FIXUP_AMIC),
  5658. SND_PCI_QUIRK(0x1043, 0x1743, "ASUS U80", ALC269_FIXUP_AMIC),
  5659. SND_PCI_QUIRK(0x1043, 0x1773, "ASUS U20A", ALC269_FIXUP_AMIC),
  5660. SND_PCI_QUIRK(0x1043, 0x1883, "ASUS F81Se", ALC269_FIXUP_AMIC),
  5661. SND_PCI_QUIRK(0x152d, 0x1778, "Quanta ON1", ALC269_FIXUP_DMIC),
  5662. SND_PCI_QUIRK(0x17aa, 0x3be9, "Quanta Wistron", ALC269_FIXUP_AMIC),
  5663. SND_PCI_QUIRK(0x17aa, 0x3bf8, "Quanta FL1", ALC269_FIXUP_AMIC),
  5664. SND_PCI_QUIRK(0x17ff, 0x059a, "Quanta EL3", ALC269_FIXUP_DMIC),
  5665. SND_PCI_QUIRK(0x17ff, 0x059b, "Quanta JR1", ALC269_FIXUP_DMIC),
  5666. #endif
  5667. {}
  5668. };
  5669. static const struct alc_model_fixup alc269_fixup_models[] = {
  5670. {.id = ALC269_FIXUP_AMIC, .name = "laptop-amic"},
  5671. {.id = ALC269_FIXUP_DMIC, .name = "laptop-dmic"},
  5672. {.id = ALC269_FIXUP_STEREO_DMIC, .name = "alc269-dmic"},
  5673. {.id = ALC271_FIXUP_DMIC, .name = "alc271-dmic"},
  5674. {.id = ALC269_FIXUP_INV_DMIC, .name = "inv-dmic"},
  5675. {.id = ALC269_FIXUP_LENOVO_DOCK, .name = "lenovo-dock"},
  5676. {}
  5677. };
  5678. static void alc269_fill_coef(struct hda_codec *codec)
  5679. {
  5680. struct alc_spec *spec = codec->spec;
  5681. int val;
  5682. if (spec->codec_variant != ALC269_TYPE_ALC269VB)
  5683. return;
  5684. if ((alc_get_coef0(codec) & 0x00ff) < 0x015) {
  5685. alc_write_coef_idx(codec, 0xf, 0x960b);
  5686. alc_write_coef_idx(codec, 0xe, 0x8817);
  5687. }
  5688. if ((alc_get_coef0(codec) & 0x00ff) == 0x016) {
  5689. alc_write_coef_idx(codec, 0xf, 0x960b);
  5690. alc_write_coef_idx(codec, 0xe, 0x8814);
  5691. }
  5692. if ((alc_get_coef0(codec) & 0x00ff) == 0x017) {
  5693. val = alc_read_coef_idx(codec, 0x04);
  5694. /* Power up output pin */
  5695. alc_write_coef_idx(codec, 0x04, val | (1<<11));
  5696. }
  5697. if ((alc_get_coef0(codec) & 0x00ff) == 0x018) {
  5698. val = alc_read_coef_idx(codec, 0xd);
  5699. if ((val & 0x0c00) >> 10 != 0x1) {
  5700. /* Capless ramp up clock control */
  5701. alc_write_coef_idx(codec, 0xd, val | (1<<10));
  5702. }
  5703. val = alc_read_coef_idx(codec, 0x17);
  5704. if ((val & 0x01c0) >> 6 != 0x4) {
  5705. /* Class D power on reset */
  5706. alc_write_coef_idx(codec, 0x17, val | (1<<7));
  5707. }
  5708. }
  5709. val = alc_read_coef_idx(codec, 0xd); /* Class D */
  5710. alc_write_coef_idx(codec, 0xd, val | (1<<14));
  5711. val = alc_read_coef_idx(codec, 0x4); /* HP */
  5712. alc_write_coef_idx(codec, 0x4, val | (1<<11));
  5713. }
  5714. /*
  5715. */
  5716. static int patch_alc269(struct hda_codec *codec)
  5717. {
  5718. struct alc_spec *spec;
  5719. int err;
  5720. err = alc_alloc_spec(codec, 0x0b);
  5721. if (err < 0)
  5722. return err;
  5723. spec = codec->spec;
  5724. if (codec->vendor_id == 0x10ec0269) {
  5725. spec->codec_variant = ALC269_TYPE_ALC269VA;
  5726. switch (alc_get_coef0(codec) & 0x00f0) {
  5727. case 0x0010:
  5728. if (codec->bus->pci->subsystem_vendor == 0x1025 &&
  5729. spec->cdefine.platform_type == 1)
  5730. err = alc_codec_rename(codec, "ALC271X");
  5731. spec->codec_variant = ALC269_TYPE_ALC269VB;
  5732. break;
  5733. case 0x0020:
  5734. if (codec->bus->pci->subsystem_vendor == 0x17aa &&
  5735. codec->bus->pci->subsystem_device == 0x21f3)
  5736. err = alc_codec_rename(codec, "ALC3202");
  5737. spec->codec_variant = ALC269_TYPE_ALC269VC;
  5738. break;
  5739. case 0x0030:
  5740. spec->codec_variant = ALC269_TYPE_ALC269VD;
  5741. break;
  5742. default:
  5743. alc_fix_pll_init(codec, 0x20, 0x04, 15);
  5744. }
  5745. if (err < 0)
  5746. goto error;
  5747. spec->init_hook = alc269_fill_coef;
  5748. alc269_fill_coef(codec);
  5749. }
  5750. alc_pick_fixup(codec, alc269_fixup_models,
  5751. alc269_fixup_tbl, alc269_fixups);
  5752. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  5753. alc_auto_parse_customize_define(codec);
  5754. /* automatic parse from the BIOS config */
  5755. err = alc269_parse_auto_config(codec);
  5756. if (err < 0)
  5757. goto error;
  5758. if (!spec->no_analog && has_cdefine_beep(codec)) {
  5759. err = snd_hda_attach_beep_device(codec, 0x1);
  5760. if (err < 0)
  5761. goto error;
  5762. set_beep_amp(spec, 0x0b, 0x04, HDA_INPUT);
  5763. }
  5764. codec->patch_ops = alc_patch_ops;
  5765. #ifdef CONFIG_PM
  5766. codec->patch_ops.resume = alc269_resume;
  5767. #endif
  5768. spec->shutup = alc269_shutup;
  5769. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  5770. return 0;
  5771. error:
  5772. alc_free(codec);
  5773. return err;
  5774. }
  5775. /*
  5776. * ALC861
  5777. */
  5778. static int alc861_parse_auto_config(struct hda_codec *codec)
  5779. {
  5780. static const hda_nid_t alc861_ignore[] = { 0x1d, 0 };
  5781. static const hda_nid_t alc861_ssids[] = { 0x0e, 0x0f, 0x0b, 0 };
  5782. return alc_parse_auto_config(codec, alc861_ignore, alc861_ssids);
  5783. }
  5784. /* Pin config fixes */
  5785. enum {
  5786. ALC861_FIXUP_FSC_AMILO_PI1505,
  5787. ALC861_FIXUP_AMP_VREF_0F,
  5788. ALC861_FIXUP_NO_JACK_DETECT,
  5789. ALC861_FIXUP_ASUS_A6RP,
  5790. };
  5791. /* On some laptops, VREF of pin 0x0f is abused for controlling the main amp */
  5792. static void alc861_fixup_asus_amp_vref_0f(struct hda_codec *codec,
  5793. const struct alc_fixup *fix, int action)
  5794. {
  5795. struct alc_spec *spec = codec->spec;
  5796. unsigned int val;
  5797. if (action != ALC_FIXUP_ACT_INIT)
  5798. return;
  5799. val = snd_hda_codec_read(codec, 0x0f, 0,
  5800. AC_VERB_GET_PIN_WIDGET_CONTROL, 0);
  5801. if (!(val & (AC_PINCTL_IN_EN | AC_PINCTL_OUT_EN)))
  5802. val |= AC_PINCTL_IN_EN;
  5803. val |= AC_PINCTL_VREF_50;
  5804. snd_hda_set_pin_ctl(codec, 0x0f, val);
  5805. spec->keep_vref_in_automute = 1;
  5806. }
  5807. /* suppress the jack-detection */
  5808. static void alc_fixup_no_jack_detect(struct hda_codec *codec,
  5809. const struct alc_fixup *fix, int action)
  5810. {
  5811. if (action == ALC_FIXUP_ACT_PRE_PROBE)
  5812. codec->no_jack_detect = 1;
  5813. }
  5814. static const struct alc_fixup alc861_fixups[] = {
  5815. [ALC861_FIXUP_FSC_AMILO_PI1505] = {
  5816. .type = ALC_FIXUP_PINS,
  5817. .v.pins = (const struct alc_pincfg[]) {
  5818. { 0x0b, 0x0221101f }, /* HP */
  5819. { 0x0f, 0x90170310 }, /* speaker */
  5820. { }
  5821. }
  5822. },
  5823. [ALC861_FIXUP_AMP_VREF_0F] = {
  5824. .type = ALC_FIXUP_FUNC,
  5825. .v.func = alc861_fixup_asus_amp_vref_0f,
  5826. },
  5827. [ALC861_FIXUP_NO_JACK_DETECT] = {
  5828. .type = ALC_FIXUP_FUNC,
  5829. .v.func = alc_fixup_no_jack_detect,
  5830. },
  5831. [ALC861_FIXUP_ASUS_A6RP] = {
  5832. .type = ALC_FIXUP_FUNC,
  5833. .v.func = alc861_fixup_asus_amp_vref_0f,
  5834. .chained = true,
  5835. .chain_id = ALC861_FIXUP_NO_JACK_DETECT,
  5836. }
  5837. };
  5838. static const struct snd_pci_quirk alc861_fixup_tbl[] = {
  5839. SND_PCI_QUIRK(0x1043, 0x1393, "ASUS A6Rp", ALC861_FIXUP_ASUS_A6RP),
  5840. SND_PCI_QUIRK_VENDOR(0x1043, "ASUS laptop", ALC861_FIXUP_AMP_VREF_0F),
  5841. SND_PCI_QUIRK(0x1462, 0x7254, "HP DX2200", ALC861_FIXUP_NO_JACK_DETECT),
  5842. SND_PCI_QUIRK(0x1584, 0x2b01, "Haier W18", ALC861_FIXUP_AMP_VREF_0F),
  5843. SND_PCI_QUIRK(0x1584, 0x0000, "Uniwill ECS M31EI", ALC861_FIXUP_AMP_VREF_0F),
  5844. SND_PCI_QUIRK(0x1734, 0x10c7, "FSC Amilo Pi1505", ALC861_FIXUP_FSC_AMILO_PI1505),
  5845. {}
  5846. };
  5847. /*
  5848. */
  5849. static int patch_alc861(struct hda_codec *codec)
  5850. {
  5851. struct alc_spec *spec;
  5852. int err;
  5853. err = alc_alloc_spec(codec, 0x15);
  5854. if (err < 0)
  5855. return err;
  5856. spec = codec->spec;
  5857. alc_pick_fixup(codec, NULL, alc861_fixup_tbl, alc861_fixups);
  5858. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  5859. /* automatic parse from the BIOS config */
  5860. err = alc861_parse_auto_config(codec);
  5861. if (err < 0)
  5862. goto error;
  5863. if (!spec->no_analog) {
  5864. err = snd_hda_attach_beep_device(codec, 0x23);
  5865. if (err < 0)
  5866. goto error;
  5867. set_beep_amp(spec, 0x23, 0, HDA_OUTPUT);
  5868. }
  5869. codec->patch_ops = alc_patch_ops;
  5870. #ifdef CONFIG_SND_HDA_POWER_SAVE
  5871. spec->power_hook = alc_power_eapd;
  5872. #endif
  5873. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  5874. return 0;
  5875. error:
  5876. alc_free(codec);
  5877. return err;
  5878. }
  5879. /*
  5880. * ALC861-VD support
  5881. *
  5882. * Based on ALC882
  5883. *
  5884. * In addition, an independent DAC
  5885. */
  5886. static int alc861vd_parse_auto_config(struct hda_codec *codec)
  5887. {
  5888. static const hda_nid_t alc861vd_ignore[] = { 0x1d, 0 };
  5889. static const hda_nid_t alc861vd_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  5890. return alc_parse_auto_config(codec, alc861vd_ignore, alc861vd_ssids);
  5891. }
  5892. enum {
  5893. ALC660VD_FIX_ASUS_GPIO1,
  5894. ALC861VD_FIX_DALLAS,
  5895. };
  5896. /* exclude VREF80 */
  5897. static void alc861vd_fixup_dallas(struct hda_codec *codec,
  5898. const struct alc_fixup *fix, int action)
  5899. {
  5900. if (action == ALC_FIXUP_ACT_PRE_PROBE) {
  5901. snd_hda_override_pin_caps(codec, 0x18, 0x00001714);
  5902. snd_hda_override_pin_caps(codec, 0x19, 0x0000171c);
  5903. }
  5904. }
  5905. static const struct alc_fixup alc861vd_fixups[] = {
  5906. [ALC660VD_FIX_ASUS_GPIO1] = {
  5907. .type = ALC_FIXUP_VERBS,
  5908. .v.verbs = (const struct hda_verb[]) {
  5909. /* reset GPIO1 */
  5910. {0x01, AC_VERB_SET_GPIO_MASK, 0x03},
  5911. {0x01, AC_VERB_SET_GPIO_DIRECTION, 0x01},
  5912. {0x01, AC_VERB_SET_GPIO_DATA, 0x01},
  5913. { }
  5914. }
  5915. },
  5916. [ALC861VD_FIX_DALLAS] = {
  5917. .type = ALC_FIXUP_FUNC,
  5918. .v.func = alc861vd_fixup_dallas,
  5919. },
  5920. };
  5921. static const struct snd_pci_quirk alc861vd_fixup_tbl[] = {
  5922. SND_PCI_QUIRK(0x103c, 0x30bf, "HP TX1000", ALC861VD_FIX_DALLAS),
  5923. SND_PCI_QUIRK(0x1043, 0x1339, "ASUS A7-K", ALC660VD_FIX_ASUS_GPIO1),
  5924. SND_PCI_QUIRK(0x1179, 0xff31, "Toshiba L30-149", ALC861VD_FIX_DALLAS),
  5925. {}
  5926. };
  5927. /*
  5928. */
  5929. static int patch_alc861vd(struct hda_codec *codec)
  5930. {
  5931. struct alc_spec *spec;
  5932. int err;
  5933. err = alc_alloc_spec(codec, 0x0b);
  5934. if (err < 0)
  5935. return err;
  5936. spec = codec->spec;
  5937. alc_pick_fixup(codec, NULL, alc861vd_fixup_tbl, alc861vd_fixups);
  5938. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  5939. /* automatic parse from the BIOS config */
  5940. err = alc861vd_parse_auto_config(codec);
  5941. if (err < 0)
  5942. goto error;
  5943. if (!spec->no_analog) {
  5944. err = snd_hda_attach_beep_device(codec, 0x23);
  5945. if (err < 0)
  5946. goto error;
  5947. set_beep_amp(spec, 0x0b, 0x05, HDA_INPUT);
  5948. }
  5949. codec->patch_ops = alc_patch_ops;
  5950. spec->shutup = alc_eapd_shutup;
  5951. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  5952. return 0;
  5953. error:
  5954. alc_free(codec);
  5955. return err;
  5956. }
  5957. /*
  5958. * ALC662 support
  5959. *
  5960. * ALC662 is almost identical with ALC880 but has cleaner and more flexible
  5961. * configuration. Each pin widget can choose any input DACs and a mixer.
  5962. * Each ADC is connected from a mixer of all inputs. This makes possible
  5963. * 6-channel independent captures.
  5964. *
  5965. * In addition, an independent DAC for the multi-playback (not used in this
  5966. * driver yet).
  5967. */
  5968. /*
  5969. * BIOS auto configuration
  5970. */
  5971. static int alc662_parse_auto_config(struct hda_codec *codec)
  5972. {
  5973. static const hda_nid_t alc662_ignore[] = { 0x1d, 0 };
  5974. static const hda_nid_t alc663_ssids[] = { 0x15, 0x1b, 0x14, 0x21 };
  5975. static const hda_nid_t alc662_ssids[] = { 0x15, 0x1b, 0x14, 0 };
  5976. const hda_nid_t *ssids;
  5977. if (codec->vendor_id == 0x10ec0272 || codec->vendor_id == 0x10ec0663 ||
  5978. codec->vendor_id == 0x10ec0665 || codec->vendor_id == 0x10ec0670)
  5979. ssids = alc663_ssids;
  5980. else
  5981. ssids = alc662_ssids;
  5982. return alc_parse_auto_config(codec, alc662_ignore, ssids);
  5983. }
  5984. static void alc272_fixup_mario(struct hda_codec *codec,
  5985. const struct alc_fixup *fix, int action)
  5986. {
  5987. if (action != ALC_FIXUP_ACT_PROBE)
  5988. return;
  5989. if (snd_hda_override_amp_caps(codec, 0x2, HDA_OUTPUT,
  5990. (0x3b << AC_AMPCAP_OFFSET_SHIFT) |
  5991. (0x3b << AC_AMPCAP_NUM_STEPS_SHIFT) |
  5992. (0x03 << AC_AMPCAP_STEP_SIZE_SHIFT) |
  5993. (0 << AC_AMPCAP_MUTE_SHIFT)))
  5994. printk(KERN_WARNING
  5995. "hda_codec: failed to override amp caps for NID 0x2\n");
  5996. }
  5997. enum {
  5998. ALC662_FIXUP_ASPIRE,
  5999. ALC662_FIXUP_IDEAPAD,
  6000. ALC272_FIXUP_MARIO,
  6001. ALC662_FIXUP_CZC_P10T,
  6002. ALC662_FIXUP_SKU_IGNORE,
  6003. ALC662_FIXUP_HP_RP5800,
  6004. ALC662_FIXUP_ASUS_MODE1,
  6005. ALC662_FIXUP_ASUS_MODE2,
  6006. ALC662_FIXUP_ASUS_MODE3,
  6007. ALC662_FIXUP_ASUS_MODE4,
  6008. ALC662_FIXUP_ASUS_MODE5,
  6009. ALC662_FIXUP_ASUS_MODE6,
  6010. ALC662_FIXUP_ASUS_MODE7,
  6011. ALC662_FIXUP_ASUS_MODE8,
  6012. ALC662_FIXUP_NO_JACK_DETECT,
  6013. ALC662_FIXUP_ZOTAC_Z68,
  6014. ALC662_FIXUP_INV_DMIC,
  6015. };
  6016. static const struct alc_fixup alc662_fixups[] = {
  6017. [ALC662_FIXUP_ASPIRE] = {
  6018. .type = ALC_FIXUP_PINS,
  6019. .v.pins = (const struct alc_pincfg[]) {
  6020. { 0x15, 0x99130112 }, /* subwoofer */
  6021. { }
  6022. }
  6023. },
  6024. [ALC662_FIXUP_IDEAPAD] = {
  6025. .type = ALC_FIXUP_PINS,
  6026. .v.pins = (const struct alc_pincfg[]) {
  6027. { 0x17, 0x99130112 }, /* subwoofer */
  6028. { }
  6029. }
  6030. },
  6031. [ALC272_FIXUP_MARIO] = {
  6032. .type = ALC_FIXUP_FUNC,
  6033. .v.func = alc272_fixup_mario,
  6034. },
  6035. [ALC662_FIXUP_CZC_P10T] = {
  6036. .type = ALC_FIXUP_VERBS,
  6037. .v.verbs = (const struct hda_verb[]) {
  6038. {0x14, AC_VERB_SET_EAPD_BTLENABLE, 0},
  6039. {}
  6040. }
  6041. },
  6042. [ALC662_FIXUP_SKU_IGNORE] = {
  6043. .type = ALC_FIXUP_FUNC,
  6044. .v.func = alc_fixup_sku_ignore,
  6045. },
  6046. [ALC662_FIXUP_HP_RP5800] = {
  6047. .type = ALC_FIXUP_PINS,
  6048. .v.pins = (const struct alc_pincfg[]) {
  6049. { 0x14, 0x0221201f }, /* HP out */
  6050. { }
  6051. },
  6052. .chained = true,
  6053. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6054. },
  6055. [ALC662_FIXUP_ASUS_MODE1] = {
  6056. .type = ALC_FIXUP_PINS,
  6057. .v.pins = (const struct alc_pincfg[]) {
  6058. { 0x14, 0x99130110 }, /* speaker */
  6059. { 0x18, 0x01a19c20 }, /* mic */
  6060. { 0x19, 0x99a3092f }, /* int-mic */
  6061. { 0x21, 0x0121401f }, /* HP out */
  6062. { }
  6063. },
  6064. .chained = true,
  6065. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6066. },
  6067. [ALC662_FIXUP_ASUS_MODE2] = {
  6068. .type = ALC_FIXUP_PINS,
  6069. .v.pins = (const struct alc_pincfg[]) {
  6070. { 0x14, 0x99130110 }, /* speaker */
  6071. { 0x18, 0x01a19820 }, /* mic */
  6072. { 0x19, 0x99a3092f }, /* int-mic */
  6073. { 0x1b, 0x0121401f }, /* HP out */
  6074. { }
  6075. },
  6076. .chained = true,
  6077. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6078. },
  6079. [ALC662_FIXUP_ASUS_MODE3] = {
  6080. .type = ALC_FIXUP_PINS,
  6081. .v.pins = (const struct alc_pincfg[]) {
  6082. { 0x14, 0x99130110 }, /* speaker */
  6083. { 0x15, 0x0121441f }, /* HP */
  6084. { 0x18, 0x01a19840 }, /* mic */
  6085. { 0x19, 0x99a3094f }, /* int-mic */
  6086. { 0x21, 0x01211420 }, /* HP2 */
  6087. { }
  6088. },
  6089. .chained = true,
  6090. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6091. },
  6092. [ALC662_FIXUP_ASUS_MODE4] = {
  6093. .type = ALC_FIXUP_PINS,
  6094. .v.pins = (const struct alc_pincfg[]) {
  6095. { 0x14, 0x99130110 }, /* speaker */
  6096. { 0x16, 0x99130111 }, /* speaker */
  6097. { 0x18, 0x01a19840 }, /* mic */
  6098. { 0x19, 0x99a3094f }, /* int-mic */
  6099. { 0x21, 0x0121441f }, /* HP */
  6100. { }
  6101. },
  6102. .chained = true,
  6103. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6104. },
  6105. [ALC662_FIXUP_ASUS_MODE5] = {
  6106. .type = ALC_FIXUP_PINS,
  6107. .v.pins = (const struct alc_pincfg[]) {
  6108. { 0x14, 0x99130110 }, /* speaker */
  6109. { 0x15, 0x0121441f }, /* HP */
  6110. { 0x16, 0x99130111 }, /* speaker */
  6111. { 0x18, 0x01a19840 }, /* mic */
  6112. { 0x19, 0x99a3094f }, /* int-mic */
  6113. { }
  6114. },
  6115. .chained = true,
  6116. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6117. },
  6118. [ALC662_FIXUP_ASUS_MODE6] = {
  6119. .type = ALC_FIXUP_PINS,
  6120. .v.pins = (const struct alc_pincfg[]) {
  6121. { 0x14, 0x99130110 }, /* speaker */
  6122. { 0x15, 0x01211420 }, /* HP2 */
  6123. { 0x18, 0x01a19840 }, /* mic */
  6124. { 0x19, 0x99a3094f }, /* int-mic */
  6125. { 0x1b, 0x0121441f }, /* HP */
  6126. { }
  6127. },
  6128. .chained = true,
  6129. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6130. },
  6131. [ALC662_FIXUP_ASUS_MODE7] = {
  6132. .type = ALC_FIXUP_PINS,
  6133. .v.pins = (const struct alc_pincfg[]) {
  6134. { 0x14, 0x99130110 }, /* speaker */
  6135. { 0x17, 0x99130111 }, /* speaker */
  6136. { 0x18, 0x01a19840 }, /* mic */
  6137. { 0x19, 0x99a3094f }, /* int-mic */
  6138. { 0x1b, 0x01214020 }, /* HP */
  6139. { 0x21, 0x0121401f }, /* HP */
  6140. { }
  6141. },
  6142. .chained = true,
  6143. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6144. },
  6145. [ALC662_FIXUP_ASUS_MODE8] = {
  6146. .type = ALC_FIXUP_PINS,
  6147. .v.pins = (const struct alc_pincfg[]) {
  6148. { 0x14, 0x99130110 }, /* speaker */
  6149. { 0x12, 0x99a30970 }, /* int-mic */
  6150. { 0x15, 0x01214020 }, /* HP */
  6151. { 0x17, 0x99130111 }, /* speaker */
  6152. { 0x18, 0x01a19840 }, /* mic */
  6153. { 0x21, 0x0121401f }, /* HP */
  6154. { }
  6155. },
  6156. .chained = true,
  6157. .chain_id = ALC662_FIXUP_SKU_IGNORE
  6158. },
  6159. [ALC662_FIXUP_NO_JACK_DETECT] = {
  6160. .type = ALC_FIXUP_FUNC,
  6161. .v.func = alc_fixup_no_jack_detect,
  6162. },
  6163. [ALC662_FIXUP_ZOTAC_Z68] = {
  6164. .type = ALC_FIXUP_PINS,
  6165. .v.pins = (const struct alc_pincfg[]) {
  6166. { 0x1b, 0x02214020 }, /* Front HP */
  6167. { }
  6168. }
  6169. },
  6170. [ALC662_FIXUP_INV_DMIC] = {
  6171. .type = ALC_FIXUP_FUNC,
  6172. .v.func = alc_fixup_inv_dmic_0x12,
  6173. },
  6174. };
  6175. static const struct snd_pci_quirk alc662_fixup_tbl[] = {
  6176. SND_PCI_QUIRK(0x1019, 0x9087, "ECS", ALC662_FIXUP_ASUS_MODE2),
  6177. SND_PCI_QUIRK(0x1025, 0x0308, "Acer Aspire 8942G", ALC662_FIXUP_ASPIRE),
  6178. SND_PCI_QUIRK(0x1025, 0x031c, "Gateway NV79", ALC662_FIXUP_SKU_IGNORE),
  6179. SND_PCI_QUIRK(0x1025, 0x0349, "eMachines eM250", ALC662_FIXUP_INV_DMIC),
  6180. SND_PCI_QUIRK(0x1025, 0x038b, "Acer Aspire 8943G", ALC662_FIXUP_ASPIRE),
  6181. SND_PCI_QUIRK(0x103c, 0x1632, "HP RP5800", ALC662_FIXUP_HP_RP5800),
  6182. SND_PCI_QUIRK(0x1043, 0x8469, "ASUS mobo", ALC662_FIXUP_NO_JACK_DETECT),
  6183. SND_PCI_QUIRK(0x105b, 0x0cd6, "Foxconn", ALC662_FIXUP_ASUS_MODE2),
  6184. SND_PCI_QUIRK(0x144d, 0xc051, "Samsung R720", ALC662_FIXUP_IDEAPAD),
  6185. SND_PCI_QUIRK(0x17aa, 0x38af, "Lenovo Ideapad Y550P", ALC662_FIXUP_IDEAPAD),
  6186. SND_PCI_QUIRK(0x17aa, 0x3a0d, "Lenovo Ideapad Y550", ALC662_FIXUP_IDEAPAD),
  6187. SND_PCI_QUIRK(0x19da, 0xa130, "Zotac Z68", ALC662_FIXUP_ZOTAC_Z68),
  6188. SND_PCI_QUIRK(0x1b35, 0x2206, "CZC P10T", ALC662_FIXUP_CZC_P10T),
  6189. #if 0
  6190. /* Below is a quirk table taken from the old code.
  6191. * Basically the device should work as is without the fixup table.
  6192. * If BIOS doesn't give a proper info, enable the corresponding
  6193. * fixup entry.
  6194. */
  6195. SND_PCI_QUIRK(0x1043, 0x1000, "ASUS N50Vm", ALC662_FIXUP_ASUS_MODE1),
  6196. SND_PCI_QUIRK(0x1043, 0x1092, "ASUS NB", ALC662_FIXUP_ASUS_MODE3),
  6197. SND_PCI_QUIRK(0x1043, 0x1173, "ASUS K73Jn", ALC662_FIXUP_ASUS_MODE1),
  6198. SND_PCI_QUIRK(0x1043, 0x11c3, "ASUS M70V", ALC662_FIXUP_ASUS_MODE3),
  6199. SND_PCI_QUIRK(0x1043, 0x11d3, "ASUS NB", ALC662_FIXUP_ASUS_MODE1),
  6200. SND_PCI_QUIRK(0x1043, 0x11f3, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6201. SND_PCI_QUIRK(0x1043, 0x1203, "ASUS NB", ALC662_FIXUP_ASUS_MODE1),
  6202. SND_PCI_QUIRK(0x1043, 0x1303, "ASUS G60J", ALC662_FIXUP_ASUS_MODE1),
  6203. SND_PCI_QUIRK(0x1043, 0x1333, "ASUS G60Jx", ALC662_FIXUP_ASUS_MODE1),
  6204. SND_PCI_QUIRK(0x1043, 0x1339, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6205. SND_PCI_QUIRK(0x1043, 0x13e3, "ASUS N71JA", ALC662_FIXUP_ASUS_MODE7),
  6206. SND_PCI_QUIRK(0x1043, 0x1463, "ASUS N71", ALC662_FIXUP_ASUS_MODE7),
  6207. SND_PCI_QUIRK(0x1043, 0x14d3, "ASUS G72", ALC662_FIXUP_ASUS_MODE8),
  6208. SND_PCI_QUIRK(0x1043, 0x1563, "ASUS N90", ALC662_FIXUP_ASUS_MODE3),
  6209. SND_PCI_QUIRK(0x1043, 0x15d3, "ASUS N50SF F50SF", ALC662_FIXUP_ASUS_MODE1),
  6210. SND_PCI_QUIRK(0x1043, 0x16c3, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6211. SND_PCI_QUIRK(0x1043, 0x16f3, "ASUS K40C K50C", ALC662_FIXUP_ASUS_MODE2),
  6212. SND_PCI_QUIRK(0x1043, 0x1733, "ASUS N81De", ALC662_FIXUP_ASUS_MODE1),
  6213. SND_PCI_QUIRK(0x1043, 0x1753, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6214. SND_PCI_QUIRK(0x1043, 0x1763, "ASUS NB", ALC662_FIXUP_ASUS_MODE6),
  6215. SND_PCI_QUIRK(0x1043, 0x1765, "ASUS NB", ALC662_FIXUP_ASUS_MODE6),
  6216. SND_PCI_QUIRK(0x1043, 0x1783, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6217. SND_PCI_QUIRK(0x1043, 0x1793, "ASUS F50GX", ALC662_FIXUP_ASUS_MODE1),
  6218. SND_PCI_QUIRK(0x1043, 0x17b3, "ASUS F70SL", ALC662_FIXUP_ASUS_MODE3),
  6219. SND_PCI_QUIRK(0x1043, 0x17f3, "ASUS X58LE", ALC662_FIXUP_ASUS_MODE2),
  6220. SND_PCI_QUIRK(0x1043, 0x1813, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6221. SND_PCI_QUIRK(0x1043, 0x1823, "ASUS NB", ALC662_FIXUP_ASUS_MODE5),
  6222. SND_PCI_QUIRK(0x1043, 0x1833, "ASUS NB", ALC662_FIXUP_ASUS_MODE6),
  6223. SND_PCI_QUIRK(0x1043, 0x1843, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6224. SND_PCI_QUIRK(0x1043, 0x1853, "ASUS F50Z", ALC662_FIXUP_ASUS_MODE1),
  6225. SND_PCI_QUIRK(0x1043, 0x1864, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6226. SND_PCI_QUIRK(0x1043, 0x1876, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6227. SND_PCI_QUIRK(0x1043, 0x1893, "ASUS M50Vm", ALC662_FIXUP_ASUS_MODE3),
  6228. SND_PCI_QUIRK(0x1043, 0x1894, "ASUS X55", ALC662_FIXUP_ASUS_MODE3),
  6229. SND_PCI_QUIRK(0x1043, 0x18b3, "ASUS N80Vc", ALC662_FIXUP_ASUS_MODE1),
  6230. SND_PCI_QUIRK(0x1043, 0x18c3, "ASUS VX5", ALC662_FIXUP_ASUS_MODE1),
  6231. SND_PCI_QUIRK(0x1043, 0x18d3, "ASUS N81Te", ALC662_FIXUP_ASUS_MODE1),
  6232. SND_PCI_QUIRK(0x1043, 0x18f3, "ASUS N505Tp", ALC662_FIXUP_ASUS_MODE1),
  6233. SND_PCI_QUIRK(0x1043, 0x1903, "ASUS F5GL", ALC662_FIXUP_ASUS_MODE1),
  6234. SND_PCI_QUIRK(0x1043, 0x1913, "ASUS NB", ALC662_FIXUP_ASUS_MODE2),
  6235. SND_PCI_QUIRK(0x1043, 0x1933, "ASUS F80Q", ALC662_FIXUP_ASUS_MODE2),
  6236. SND_PCI_QUIRK(0x1043, 0x1943, "ASUS Vx3V", ALC662_FIXUP_ASUS_MODE1),
  6237. SND_PCI_QUIRK(0x1043, 0x1953, "ASUS NB", ALC662_FIXUP_ASUS_MODE1),
  6238. SND_PCI_QUIRK(0x1043, 0x1963, "ASUS X71C", ALC662_FIXUP_ASUS_MODE3),
  6239. SND_PCI_QUIRK(0x1043, 0x1983, "ASUS N5051A", ALC662_FIXUP_ASUS_MODE1),
  6240. SND_PCI_QUIRK(0x1043, 0x1993, "ASUS N20", ALC662_FIXUP_ASUS_MODE1),
  6241. SND_PCI_QUIRK(0x1043, 0x19b3, "ASUS F7Z", ALC662_FIXUP_ASUS_MODE1),
  6242. SND_PCI_QUIRK(0x1043, 0x19c3, "ASUS F5Z/F6x", ALC662_FIXUP_ASUS_MODE2),
  6243. SND_PCI_QUIRK(0x1043, 0x19e3, "ASUS NB", ALC662_FIXUP_ASUS_MODE1),
  6244. SND_PCI_QUIRK(0x1043, 0x19f3, "ASUS NB", ALC662_FIXUP_ASUS_MODE4),
  6245. #endif
  6246. {}
  6247. };
  6248. static const struct alc_model_fixup alc662_fixup_models[] = {
  6249. {.id = ALC272_FIXUP_MARIO, .name = "mario"},
  6250. {.id = ALC662_FIXUP_ASUS_MODE1, .name = "asus-mode1"},
  6251. {.id = ALC662_FIXUP_ASUS_MODE2, .name = "asus-mode2"},
  6252. {.id = ALC662_FIXUP_ASUS_MODE3, .name = "asus-mode3"},
  6253. {.id = ALC662_FIXUP_ASUS_MODE4, .name = "asus-mode4"},
  6254. {.id = ALC662_FIXUP_ASUS_MODE5, .name = "asus-mode5"},
  6255. {.id = ALC662_FIXUP_ASUS_MODE6, .name = "asus-mode6"},
  6256. {.id = ALC662_FIXUP_ASUS_MODE7, .name = "asus-mode7"},
  6257. {.id = ALC662_FIXUP_ASUS_MODE8, .name = "asus-mode8"},
  6258. {.id = ALC662_FIXUP_INV_DMIC, .name = "inv-dmic"},
  6259. {}
  6260. };
  6261. static void alc662_fill_coef(struct hda_codec *codec)
  6262. {
  6263. int val, coef;
  6264. coef = alc_get_coef0(codec);
  6265. switch (codec->vendor_id) {
  6266. case 0x10ec0662:
  6267. if ((coef & 0x00f0) == 0x0030) {
  6268. val = alc_read_coef_idx(codec, 0x4); /* EAPD Ctrl */
  6269. alc_write_coef_idx(codec, 0x4, val & ~(1<<10));
  6270. }
  6271. break;
  6272. case 0x10ec0272:
  6273. case 0x10ec0273:
  6274. case 0x10ec0663:
  6275. case 0x10ec0665:
  6276. case 0x10ec0670:
  6277. case 0x10ec0671:
  6278. case 0x10ec0672:
  6279. val = alc_read_coef_idx(codec, 0xd); /* EAPD Ctrl */
  6280. alc_write_coef_idx(codec, 0xd, val | (1<<14));
  6281. break;
  6282. }
  6283. }
  6284. /*
  6285. */
  6286. static int patch_alc662(struct hda_codec *codec)
  6287. {
  6288. struct alc_spec *spec;
  6289. int err;
  6290. err = alc_alloc_spec(codec, 0x0b);
  6291. if (err < 0)
  6292. return err;
  6293. spec = codec->spec;
  6294. /* handle multiple HPs as is */
  6295. spec->parse_flags = HDA_PINCFG_NO_HP_FIXUP;
  6296. alc_fix_pll_init(codec, 0x20, 0x04, 15);
  6297. spec->init_hook = alc662_fill_coef;
  6298. alc662_fill_coef(codec);
  6299. alc_pick_fixup(codec, alc662_fixup_models,
  6300. alc662_fixup_tbl, alc662_fixups);
  6301. alc_apply_fixup(codec, ALC_FIXUP_ACT_PRE_PROBE);
  6302. alc_auto_parse_customize_define(codec);
  6303. if ((alc_get_coef0(codec) & (1 << 14)) &&
  6304. codec->bus->pci->subsystem_vendor == 0x1025 &&
  6305. spec->cdefine.platform_type == 1) {
  6306. if (alc_codec_rename(codec, "ALC272X") < 0)
  6307. goto error;
  6308. }
  6309. /* automatic parse from the BIOS config */
  6310. err = alc662_parse_auto_config(codec);
  6311. if (err < 0)
  6312. goto error;
  6313. if (!spec->no_analog && has_cdefine_beep(codec)) {
  6314. err = snd_hda_attach_beep_device(codec, 0x1);
  6315. if (err < 0)
  6316. goto error;
  6317. switch (codec->vendor_id) {
  6318. case 0x10ec0662:
  6319. set_beep_amp(spec, 0x0b, 0x05, HDA_INPUT);
  6320. break;
  6321. case 0x10ec0272:
  6322. case 0x10ec0663:
  6323. case 0x10ec0665:
  6324. set_beep_amp(spec, 0x0b, 0x04, HDA_INPUT);
  6325. break;
  6326. case 0x10ec0273:
  6327. set_beep_amp(spec, 0x0b, 0x03, HDA_INPUT);
  6328. break;
  6329. }
  6330. }
  6331. codec->patch_ops = alc_patch_ops;
  6332. spec->shutup = alc_eapd_shutup;
  6333. alc_apply_fixup(codec, ALC_FIXUP_ACT_PROBE);
  6334. return 0;
  6335. error:
  6336. alc_free(codec);
  6337. return err;
  6338. }
  6339. /*
  6340. * ALC680 support
  6341. */
  6342. static int alc680_parse_auto_config(struct hda_codec *codec)
  6343. {
  6344. return alc_parse_auto_config(codec, NULL, NULL);
  6345. }
  6346. /*
  6347. */
  6348. static int patch_alc680(struct hda_codec *codec)
  6349. {
  6350. int err;
  6351. /* ALC680 has no aa-loopback mixer */
  6352. err = alc_alloc_spec(codec, 0);
  6353. if (err < 0)
  6354. return err;
  6355. /* automatic parse from the BIOS config */
  6356. err = alc680_parse_auto_config(codec);
  6357. if (err < 0) {
  6358. alc_free(codec);
  6359. return err;
  6360. }
  6361. codec->patch_ops = alc_patch_ops;
  6362. return 0;
  6363. }
  6364. /*
  6365. * patch entries
  6366. */
  6367. static const struct hda_codec_preset snd_hda_preset_realtek[] = {
  6368. { .id = 0x10ec0221, .name = "ALC221", .patch = patch_alc269 },
  6369. { .id = 0x10ec0260, .name = "ALC260", .patch = patch_alc260 },
  6370. { .id = 0x10ec0262, .name = "ALC262", .patch = patch_alc262 },
  6371. { .id = 0x10ec0267, .name = "ALC267", .patch = patch_alc268 },
  6372. { .id = 0x10ec0268, .name = "ALC268", .patch = patch_alc268 },
  6373. { .id = 0x10ec0269, .name = "ALC269", .patch = patch_alc269 },
  6374. { .id = 0x10ec0270, .name = "ALC270", .patch = patch_alc269 },
  6375. { .id = 0x10ec0272, .name = "ALC272", .patch = patch_alc662 },
  6376. { .id = 0x10ec0275, .name = "ALC275", .patch = patch_alc269 },
  6377. { .id = 0x10ec0276, .name = "ALC276", .patch = patch_alc269 },
  6378. { .id = 0x10ec0280, .name = "ALC280", .patch = patch_alc269 },
  6379. { .id = 0x10ec0282, .name = "ALC282", .patch = patch_alc269 },
  6380. { .id = 0x10ec0861, .rev = 0x100340, .name = "ALC660",
  6381. .patch = patch_alc861 },
  6382. { .id = 0x10ec0660, .name = "ALC660-VD", .patch = patch_alc861vd },
  6383. { .id = 0x10ec0861, .name = "ALC861", .patch = patch_alc861 },
  6384. { .id = 0x10ec0862, .name = "ALC861-VD", .patch = patch_alc861vd },
  6385. { .id = 0x10ec0662, .rev = 0x100002, .name = "ALC662 rev2",
  6386. .patch = patch_alc882 },
  6387. { .id = 0x10ec0662, .rev = 0x100101, .name = "ALC662 rev1",
  6388. .patch = patch_alc662 },
  6389. { .id = 0x10ec0662, .rev = 0x100300, .name = "ALC662 rev3",
  6390. .patch = patch_alc662 },
  6391. { .id = 0x10ec0663, .name = "ALC663", .patch = patch_alc662 },
  6392. { .id = 0x10ec0665, .name = "ALC665", .patch = patch_alc662 },
  6393. { .id = 0x10ec0670, .name = "ALC670", .patch = patch_alc662 },
  6394. { .id = 0x10ec0680, .name = "ALC680", .patch = patch_alc680 },
  6395. { .id = 0x10ec0880, .name = "ALC880", .patch = patch_alc880 },
  6396. { .id = 0x10ec0882, .name = "ALC882", .patch = patch_alc882 },
  6397. { .id = 0x10ec0883, .name = "ALC883", .patch = patch_alc882 },
  6398. { .id = 0x10ec0885, .rev = 0x100101, .name = "ALC889A",
  6399. .patch = patch_alc882 },
  6400. { .id = 0x10ec0885, .rev = 0x100103, .name = "ALC889A",
  6401. .patch = patch_alc882 },
  6402. { .id = 0x10ec0885, .name = "ALC885", .patch = patch_alc882 },
  6403. { .id = 0x10ec0887, .name = "ALC887", .patch = patch_alc882 },
  6404. { .id = 0x10ec0888, .rev = 0x100101, .name = "ALC1200",
  6405. .patch = patch_alc882 },
  6406. { .id = 0x10ec0888, .name = "ALC888", .patch = patch_alc882 },
  6407. { .id = 0x10ec0889, .name = "ALC889", .patch = patch_alc882 },
  6408. { .id = 0x10ec0892, .name = "ALC892", .patch = patch_alc662 },
  6409. { .id = 0x10ec0899, .name = "ALC898", .patch = patch_alc882 },
  6410. {} /* terminator */
  6411. };
  6412. MODULE_ALIAS("snd-hda-codec-id:10ec*");
  6413. MODULE_LICENSE("GPL");
  6414. MODULE_DESCRIPTION("Realtek HD-audio codec");
  6415. static struct hda_codec_preset_list realtek_list = {
  6416. .preset = snd_hda_preset_realtek,
  6417. .owner = THIS_MODULE,
  6418. };
  6419. static int __init patch_realtek_init(void)
  6420. {
  6421. return snd_hda_add_codec_preset(&realtek_list);
  6422. }
  6423. static void __exit patch_realtek_exit(void)
  6424. {
  6425. snd_hda_delete_codec_preset(&realtek_list);
  6426. }
  6427. module_init(patch_realtek_init)
  6428. module_exit(patch_realtek_exit)