rouleur-mbhc.c 36 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /* Copyright (c) 2020, The Linux Foundation. All rights reserved.
  3. */
  4. #include <linux/module.h>
  5. #include <linux/init.h>
  6. #include <linux/platform_device.h>
  7. #include <linux/device.h>
  8. #include <linux/printk.h>
  9. #include <linux/ratelimit.h>
  10. #include <linux/kernel.h>
  11. #include <linux/gpio.h>
  12. #include <linux/delay.h>
  13. #include <linux/regmap.h>
  14. #include <sound/pcm.h>
  15. #include <sound/pcm_params.h>
  16. #include <sound/soc.h>
  17. #include <sound/soc-dapm.h>
  18. #include "rouleur-registers.h"
  19. #include <asoc/wcdcal-hwdep.h>
  20. #include <asoc/wcd-mbhc-v2-api.h>
  21. #include "internal.h"
  22. #define ROULEUR_ZDET_SUPPORTED true
  23. /* Z value defined in milliohm */
  24. #define ROULEUR_ZDET_VAL_32 32000
  25. #define ROULEUR_ZDET_VAL_400 400000
  26. #define ROULEUR_ZDET_VAL_1200 1200000
  27. #define ROULEUR_ZDET_VAL_100K 100000000
  28. /* Z floating defined in ohms */
  29. #define ROULEUR_ZDET_FLOATING_IMPEDANCE 0x0FFFFFFE
  30. #define ROULEUR_ZDET_NUM_MEASUREMENTS 900
  31. #define ROULEUR_MBHC_GET_C1(c) ((c & 0xC000) >> 14)
  32. #define ROULEUR_MBHC_GET_X1(x) (x & 0x3FFF)
  33. /* Z value compared in milliOhm */
  34. #define ROULEUR_MBHC_IS_SECOND_RAMP_REQUIRED(z) ((z > 400000) || (z < 32000))
  35. #define ROULEUR_MBHC_ZDET_CONST (86 * 16384)
  36. #define ROULEUR_MBHC_MOISTURE_RREF R_24_KOHM
  37. /* Cross connection thresholds in mV */
  38. #define ROULEUR_HPHL_CROSS_CONN_THRESHOLD 200
  39. #define ROULEUR_HPHR_CROSS_CONN_THRESHOLD 200
  40. static struct wcd_mbhc_register
  41. wcd_mbhc_registers[WCD_MBHC_REG_FUNC_MAX] = {
  42. WCD_MBHC_REGISTER("WCD_MBHC_L_DET_EN",
  43. ROULEUR_ANA_MBHC_MECH, 0x80, 7, 0),
  44. WCD_MBHC_REGISTER("WCD_MBHC_GND_DET_EN",
  45. ROULEUR_ANA_MBHC_MECH, 0x40, 6, 0),
  46. WCD_MBHC_REGISTER("WCD_MBHC_MECH_DETECTION_TYPE",
  47. ROULEUR_ANA_MBHC_MECH, 0x20, 5, 0),
  48. WCD_MBHC_REGISTER("WCD_MBHC_MIC_CLAMP_CTL",
  49. ROULEUR_ANA_MBHC_PLUG_DETECT_CTL, 0x30, 4, 0),
  50. WCD_MBHC_REGISTER("WCD_MBHC_ELECT_DETECTION_TYPE",
  51. ROULEUR_ANA_MBHC_ELECT, 0x08, 3, 0),
  52. WCD_MBHC_REGISTER("WCD_MBHC_HS_L_DET_PULL_UP_CTRL",
  53. ROULEUR_ANA_MBHC_PLUG_DETECT_CTL, 0xC0, 6, 0),
  54. WCD_MBHC_REGISTER("WCD_MBHC_HS_L_DET_PULL_UP_COMP_CTRL",
  55. ROULEUR_ANA_MBHC_MECH, 0x04, 2, 0),
  56. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_PLUG_TYPE",
  57. ROULEUR_ANA_MBHC_MECH, 0x10, 4, 0),
  58. WCD_MBHC_REGISTER("WCD_MBHC_GND_PLUG_TYPE",
  59. ROULEUR_ANA_MBHC_MECH, 0x08, 3, 0),
  60. WCD_MBHC_REGISTER("WCD_MBHC_SW_HPH_LP_100K_TO_GND",
  61. ROULEUR_ANA_MBHC_MECH, 0x01, 0, 0),
  62. WCD_MBHC_REGISTER("WCD_MBHC_ELECT_SCHMT_ISRC",
  63. ROULEUR_ANA_MBHC_ELECT, 0x06, 1, 0),
  64. WCD_MBHC_REGISTER("WCD_MBHC_FSM_EN",
  65. ROULEUR_ANA_MBHC_ELECT, 0x80, 7, 0),
  66. WCD_MBHC_REGISTER("WCD_MBHC_INSREM_DBNC",
  67. ROULEUR_ANA_MBHC_PLUG_DETECT_CTL, 0x0F, 0, 0),
  68. WCD_MBHC_REGISTER("WCD_MBHC_BTN_DBNC",
  69. ROULEUR_ANA_MBHC_CTL_1, 0x03, 0, 0),
  70. WCD_MBHC_REGISTER("WCD_MBHC_HS_VREF",
  71. ROULEUR_ANA_MBHC_CTL_2, 0x03, 0, 0),
  72. WCD_MBHC_REGISTER("WCD_MBHC_HS_COMP_RESULT",
  73. ROULEUR_ANA_MBHC_RESULT_3, 0x08, 3, 0),
  74. WCD_MBHC_REGISTER("WCD_MBHC_IN2P_CLAMP_STATE",
  75. ROULEUR_ANA_MBHC_RESULT_3, 0x10, 4, 0),
  76. WCD_MBHC_REGISTER("WCD_MBHC_MIC_SCHMT_RESULT",
  77. ROULEUR_ANA_MBHC_RESULT_3, 0x20, 5, 0),
  78. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_SCHMT_RESULT",
  79. ROULEUR_ANA_MBHC_RESULT_3, 0x80, 7, 0),
  80. WCD_MBHC_REGISTER("WCD_MBHC_HPHR_SCHMT_RESULT",
  81. ROULEUR_ANA_MBHC_RESULT_3, 0x40, 6, 0),
  82. WCD_MBHC_REGISTER("WCD_MBHC_OCP_FSM_EN",
  83. SND_SOC_NOPM, 0x00, 0, 0),
  84. WCD_MBHC_REGISTER("WCD_MBHC_BTN_RESULT",
  85. ROULEUR_ANA_MBHC_RESULT_3, 0x07, 0, 0),
  86. WCD_MBHC_REGISTER("WCD_MBHC_BTN_ISRC_CTL",
  87. ROULEUR_ANA_MBHC_ELECT, 0x70, 4, 0),
  88. WCD_MBHC_REGISTER("WCD_MBHC_ELECT_RESULT",
  89. ROULEUR_ANA_MBHC_RESULT_3, 0xFF, 0, 0),
  90. WCD_MBHC_REGISTER("WCD_MBHC_MICB_CTRL",
  91. ROULEUR_ANA_MICBIAS_MICB_1_2_EN, 0x06, 1, 0),
  92. WCD_MBHC_REGISTER("WCD_MBHC_HPH_CNP_WG_TIME",
  93. SND_SOC_NOPM, 0x00, 0, 0),
  94. WCD_MBHC_REGISTER("WCD_MBHC_HPHR_PA_EN",
  95. ROULEUR_ANA_HPHPA_CNP_CTL_2, 0x40, 6, 0),
  96. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_PA_EN",
  97. ROULEUR_ANA_HPHPA_CNP_CTL_2, 0x80, 7, 0),
  98. WCD_MBHC_REGISTER("WCD_MBHC_HPH_PA_EN",
  99. ROULEUR_ANA_HPHPA_CNP_CTL_2, 0xC0, 6, 0),
  100. WCD_MBHC_REGISTER("WCD_MBHC_SWCH_LEVEL_REMOVE",
  101. ROULEUR_ANA_MBHC_RESULT_3, 0x10, 4, 0),
  102. WCD_MBHC_REGISTER("WCD_MBHC_PULLDOWN_CTRL",
  103. 0, 0, 0, 0),
  104. WCD_MBHC_REGISTER("WCD_MBHC_ANC_DET_EN",
  105. SND_SOC_NOPM, 0x00, 0, 0),
  106. WCD_MBHC_REGISTER("WCD_MBHC_FSM_STATUS",
  107. ROULEUR_ANA_MBHC_FSM_STATUS, 0x01, 0, 0),
  108. WCD_MBHC_REGISTER("WCD_MBHC_MUX_CTL",
  109. ROULEUR_ANA_MBHC_CTL_2, 0x70, 4, 0),
  110. WCD_MBHC_REGISTER("WCD_MBHC_MOISTURE_STATUS",
  111. ROULEUR_ANA_MBHC_FSM_STATUS, 0x20, 5, 0),
  112. WCD_MBHC_REGISTER("WCD_MBHC_HPHR_GND",
  113. SND_SOC_NOPM, 0x00, 0, 0),
  114. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_GND",
  115. SND_SOC_NOPM, 0x00, 0, 0),
  116. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_OCP_DET_EN",
  117. ROULEUR_ANA_HPHPA_CNP_CTL_2, 0x02, 1, 0),
  118. WCD_MBHC_REGISTER("WCD_MBHC_HPHR_OCP_DET_EN",
  119. ROULEUR_ANA_HPHPA_CNP_CTL_2, 0x01, 0, 0),
  120. WCD_MBHC_REGISTER("WCD_MBHC_HPHL_OCP_STATUS",
  121. ROULEUR_DIG_SWR_INTR_STATUS_0, 0x80, 7, 0),
  122. WCD_MBHC_REGISTER("WCD_MBHC_HPHR_OCP_STATUS",
  123. ROULEUR_DIG_SWR_INTR_STATUS_0, 0x20, 5, 0),
  124. WCD_MBHC_REGISTER("WCD_MBHC_ADC_EN",
  125. ROULEUR_ANA_MBHC_CTL_1, 0x08, 3, 0),
  126. WCD_MBHC_REGISTER("WCD_MBHC_ADC_COMPLETE", ROULEUR_ANA_MBHC_FSM_STATUS,
  127. 0x40, 6, 0),
  128. WCD_MBHC_REGISTER("WCD_MBHC_ADC_TIMEOUT", ROULEUR_ANA_MBHC_FSM_STATUS,
  129. 0x80, 7, 0),
  130. WCD_MBHC_REGISTER("WCD_MBHC_ADC_RESULT", ROULEUR_ANA_MBHC_ADC_RESULT,
  131. 0xFF, 0, 0),
  132. WCD_MBHC_REGISTER("WCD_MBHC_MICB2_VOUT",
  133. ROULEUR_ANA_MICBIAS_LDO_1_SETTING, 0xF8, 3, 0),
  134. WCD_MBHC_REGISTER("WCD_MBHC_ADC_MODE",
  135. ROULEUR_ANA_MBHC_CTL_1, 0x10, 4, 0),
  136. WCD_MBHC_REGISTER("WCD_MBHC_DETECTION_DONE",
  137. ROULEUR_ANA_MBHC_CTL_1, 0x04, 2, 0),
  138. WCD_MBHC_REGISTER("WCD_MBHC_ELECT_ISRC_EN",
  139. ROULEUR_ANA_MBHC_ZDET, 0x02, 1, 0),
  140. };
  141. static const struct wcd_mbhc_intr intr_ids = {
  142. .mbhc_sw_intr = ROULEUR_IRQ_MBHC_SW_DET,
  143. .mbhc_btn_press_intr = ROULEUR_IRQ_MBHC_BUTTON_PRESS_DET,
  144. .mbhc_btn_release_intr = ROULEUR_IRQ_MBHC_BUTTON_RELEASE_DET,
  145. .mbhc_hs_ins_intr = ROULEUR_IRQ_MBHC_ELECT_INS_REM_LEG_DET,
  146. .mbhc_hs_rem_intr = ROULEUR_IRQ_MBHC_ELECT_INS_REM_DET,
  147. .hph_left_ocp = ROULEUR_IRQ_HPHL_OCP_INT,
  148. .hph_right_ocp = ROULEUR_IRQ_HPHR_OCP_INT,
  149. };
  150. struct rouleur_mbhc_zdet_param {
  151. u16 ldo_ctl;
  152. u16 noff;
  153. u16 nshift;
  154. u16 btn5;
  155. u16 btn6;
  156. u16 btn7;
  157. };
  158. static int rouleur_mbhc_request_irq(struct snd_soc_component *component,
  159. int irq, irq_handler_t handler,
  160. const char *name, void *data)
  161. {
  162. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  163. return wcd_request_irq(&rouleur->irq_info, irq, name, handler, data);
  164. }
  165. static void rouleur_mbhc_irq_control(struct snd_soc_component *component,
  166. int irq, bool enable)
  167. {
  168. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  169. if (enable)
  170. wcd_enable_irq(&rouleur->irq_info, irq);
  171. else
  172. wcd_disable_irq(&rouleur->irq_info, irq);
  173. }
  174. static int rouleur_mbhc_free_irq(struct snd_soc_component *component,
  175. int irq, void *data)
  176. {
  177. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  178. wcd_free_irq(&rouleur->irq_info, irq, data);
  179. return 0;
  180. }
  181. static void rouleur_mbhc_clk_setup(struct snd_soc_component *component,
  182. bool enable)
  183. {
  184. if (enable)
  185. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_1,
  186. 0x80, 0x80);
  187. else
  188. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_1,
  189. 0x80, 0x00);
  190. }
  191. static int rouleur_mbhc_btn_to_num(struct snd_soc_component *component)
  192. {
  193. return snd_soc_component_read32(component, ROULEUR_ANA_MBHC_RESULT_3) &
  194. 0x7;
  195. }
  196. static void rouleur_mbhc_mbhc_bias_control(struct snd_soc_component *component,
  197. bool enable)
  198. {
  199. if (enable)
  200. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_ELECT,
  201. 0x01, 0x01);
  202. else
  203. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_ELECT,
  204. 0x01, 0x00);
  205. }
  206. static void rouleur_mbhc_program_btn_thr(struct snd_soc_component *component,
  207. s16 *btn_low, s16 *btn_high,
  208. int num_btn, bool is_micbias)
  209. {
  210. int i;
  211. int vth;
  212. if (num_btn > WCD_MBHC_DEF_BUTTONS) {
  213. dev_err(component->dev, "%s: invalid number of buttons: %d\n",
  214. __func__, num_btn);
  215. return;
  216. }
  217. for (i = 0; i < num_btn; i++) {
  218. vth = ((btn_high[i] * 2) / 25) & 0x3F;
  219. snd_soc_component_update_bits(component,
  220. ROULEUR_ANA_MBHC_BTN0_ZDET_VREF1 + i,
  221. 0xFC, vth << 2);
  222. dev_dbg(component->dev, "%s: btn_high[%d]: %d, vth: %d\n",
  223. __func__, i, btn_high[i], vth);
  224. }
  225. }
  226. static bool rouleur_mbhc_lock_sleep(struct wcd_mbhc *mbhc, bool lock)
  227. {
  228. struct snd_soc_component *component = mbhc->component;
  229. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  230. rouleur->wakeup((void *)rouleur, lock);
  231. return true;
  232. }
  233. static int rouleur_mbhc_register_notifier(struct wcd_mbhc *mbhc,
  234. struct notifier_block *nblock,
  235. bool enable)
  236. {
  237. struct rouleur_mbhc *rouleur_mbhc;
  238. rouleur_mbhc = container_of(mbhc, struct rouleur_mbhc, wcd_mbhc);
  239. if (enable)
  240. return blocking_notifier_chain_register(&rouleur_mbhc->notifier,
  241. nblock);
  242. else
  243. return blocking_notifier_chain_unregister(
  244. &rouleur_mbhc->notifier, nblock);
  245. }
  246. static bool rouleur_mbhc_micb_en_status(struct wcd_mbhc *mbhc, int micb_num)
  247. {
  248. u8 val = 0;
  249. if (micb_num == MIC_BIAS_2) {
  250. val = ((snd_soc_component_read32(mbhc->component,
  251. ROULEUR_ANA_MICBIAS_MICB_1_2_EN) & 0x04)
  252. >> 2);
  253. if (val == 0x01)
  254. return true;
  255. }
  256. return false;
  257. }
  258. static bool rouleur_mbhc_hph_pa_on_status(struct snd_soc_component *component)
  259. {
  260. return (snd_soc_component_read32(component, ROULEUR_ANA_HPHPA_PA_STATUS)
  261. & 0xFF) ? true : false;
  262. }
  263. static void rouleur_mbhc_hph_l_pull_up_control(
  264. struct snd_soc_component *component,
  265. int pull_up_cur)
  266. {
  267. /* Default pull up current to 2uA */
  268. if (pull_up_cur < I_OFF || pull_up_cur > I_3P0_UA ||
  269. pull_up_cur == I_DEFAULT)
  270. pull_up_cur = I_3P0_UA;
  271. dev_dbg(component->dev, "%s: HS pull up current:%d\n",
  272. __func__, pull_up_cur);
  273. snd_soc_component_update_bits(component,
  274. ROULEUR_ANA_MBHC_PLUG_DETECT_CTL,
  275. 0xC0, pull_up_cur << 6);
  276. }
  277. static int rouleur_mbhc_request_micbias(struct snd_soc_component *component,
  278. int micb_num, int req)
  279. {
  280. int ret = 0;
  281. ret = rouleur_micbias_control(component, micb_num, req, false);
  282. return ret;
  283. }
  284. static void rouleur_mbhc_micb_ramp_control(struct snd_soc_component *component,
  285. bool enable)
  286. {
  287. if (enable) {
  288. snd_soc_component_update_bits(component,
  289. ROULEUR_ANA_MBHC_MICB2_RAMP,
  290. 0x1C, 0x0C);
  291. snd_soc_component_update_bits(component,
  292. ROULEUR_ANA_MBHC_MICB2_RAMP,
  293. 0x80, 0x80);
  294. } else {
  295. snd_soc_component_update_bits(component,
  296. ROULEUR_ANA_MBHC_MICB2_RAMP,
  297. 0x80, 0x00);
  298. snd_soc_component_update_bits(component,
  299. ROULEUR_ANA_MBHC_MICB2_RAMP,
  300. 0x1C, 0x00);
  301. }
  302. }
  303. static struct firmware_cal *rouleur_get_hwdep_fw_cal(struct wcd_mbhc *mbhc,
  304. enum wcd_cal_type type)
  305. {
  306. struct rouleur_mbhc *rouleur_mbhc;
  307. struct firmware_cal *hwdep_cal;
  308. struct snd_soc_component *component = mbhc->component;
  309. rouleur_mbhc = container_of(mbhc, struct rouleur_mbhc, wcd_mbhc);
  310. if (!component) {
  311. pr_err("%s: NULL component pointer\n", __func__);
  312. return NULL;
  313. }
  314. hwdep_cal = wcdcal_get_fw_cal(rouleur_mbhc->fw_data, type);
  315. if (!hwdep_cal)
  316. dev_err(component->dev, "%s: cal not sent by %d\n",
  317. __func__, type);
  318. return hwdep_cal;
  319. }
  320. static int rouleur_mbhc_micb_ctrl_threshold_mic(
  321. struct snd_soc_component *component,
  322. int micb_num, bool req_en)
  323. {
  324. struct rouleur_pdata *pdata = dev_get_platdata(component->dev);
  325. int rc, micb_mv;
  326. if (micb_num != MIC_BIAS_2)
  327. return -EINVAL;
  328. /*
  329. * If device tree micbias level is already above the minimum
  330. * voltage needed to detect threshold microphone, then do
  331. * not change the micbias, just return.
  332. */
  333. if (pdata->micbias.micb2_mv >= WCD_MBHC_THR_HS_MICB_MV)
  334. return 0;
  335. micb_mv = req_en ? WCD_MBHC_THR_HS_MICB_MV : pdata->micbias.micb2_mv;
  336. rc = rouleur_mbhc_micb_adjust_voltage(component, micb_mv, MIC_BIAS_2);
  337. return rc;
  338. }
  339. static inline void rouleur_mbhc_get_result_params(struct rouleur_priv *rouleur,
  340. s16 *d1_a, u16 noff,
  341. int32_t *zdet)
  342. {
  343. int i;
  344. int val = 0, val1 = 0;
  345. s16 c1 = 0;
  346. s32 x1 = 0, d1 = 0;
  347. int32_t denom;
  348. int minCode_param[] = {
  349. 3277, 1639, 820, 410, 205, 103, 52, 26
  350. };
  351. regmap_update_bits(rouleur->regmap, ROULEUR_ANA_MBHC_ZDET, 0x20, 0x20);
  352. for (i = 0; i < ROULEUR_ZDET_NUM_MEASUREMENTS; i++) {
  353. regmap_read(rouleur->regmap, ROULEUR_ANA_MBHC_RESULT_2, &val);
  354. if (val & 0x80)
  355. break;
  356. }
  357. val = val << 0x8;
  358. regmap_read(rouleur->regmap, ROULEUR_ANA_MBHC_RESULT_1, &val1);
  359. val |= val1;
  360. regmap_update_bits(rouleur->regmap, ROULEUR_ANA_MBHC_ZDET, 0x20, 0x00);
  361. x1 = ROULEUR_MBHC_GET_X1(val);
  362. c1 = ROULEUR_MBHC_GET_C1(val);
  363. /* If ramp is not complete, give additional 5ms */
  364. if ((c1 < 2) && x1)
  365. usleep_range(5000, 5050);
  366. if (!c1 || !x1) {
  367. dev_dbg(rouleur->dev,
  368. "%s: Impedance detect ramp error, c1=%d, x1=0x%x\n",
  369. __func__, c1, x1);
  370. goto ramp_down;
  371. }
  372. d1 = d1_a[c1];
  373. denom = (x1 * d1) - (1 << (14 - noff));
  374. if (denom > 0)
  375. *zdet = (ROULEUR_MBHC_ZDET_CONST * 1000) / denom;
  376. else if (x1 < minCode_param[noff])
  377. *zdet = ROULEUR_ZDET_FLOATING_IMPEDANCE;
  378. dev_dbg(rouleur->dev, "%s: d1=%d, c1=%d, x1=0x%x, z_val=%d(milliOhm)\n",
  379. __func__, d1, c1, x1, *zdet);
  380. ramp_down:
  381. i = 0;
  382. while (x1) {
  383. regmap_read(rouleur->regmap, ROULEUR_ANA_MBHC_RESULT_1, &val);
  384. regmap_read(rouleur->regmap, ROULEUR_ANA_MBHC_RESULT_2, &val1);
  385. val = val << 0x8;
  386. val |= val1;
  387. x1 = ROULEUR_MBHC_GET_X1(val);
  388. i++;
  389. if (i == ROULEUR_ZDET_NUM_MEASUREMENTS)
  390. break;
  391. }
  392. }
  393. #if 0
  394. static void rouleur_mbhc_zdet_ramp(struct snd_soc_component *component,
  395. struct rouleur_mbhc_zdet_param *zdet_param,
  396. int32_t *zl, int32_t *zr, s16 *d1_a)
  397. {
  398. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  399. int32_t zdet = 0;
  400. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_ZDET_ANA_CTL,
  401. 0x70, zdet_param->ldo_ctl << 4);
  402. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_BTN5, 0xFC,
  403. zdet_param->btn5);
  404. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_BTN6, 0xFC,
  405. zdet_param->btn6);
  406. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_BTN7, 0xFC,
  407. zdet_param->btn7);
  408. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_ZDET_ANA_CTL,
  409. 0x0F, zdet_param->noff);
  410. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_ZDET_RAMP_CTL,
  411. 0x0F, zdet_param->nshift);
  412. if (!zl)
  413. goto z_right;
  414. /* Start impedance measurement for HPH_L */
  415. regmap_update_bits(rouleur->regmap,
  416. ROULEUR_ANA_MBHC_ZDET, 0x80, 0x80);
  417. dev_dbg(rouleur->dev, "%s: ramp for HPH_L, noff = %d\n",
  418. __func__, zdet_param->noff);
  419. rouleur_mbhc_get_result_params(rouleur, d1_a, zdet_param->noff, &zdet);
  420. regmap_update_bits(rouleur->regmap,
  421. ROULEUR_ANA_MBHC_ZDET, 0x80, 0x00);
  422. *zl = zdet;
  423. z_right:
  424. if (!zr)
  425. return;
  426. /* Start impedance measurement for HPH_R */
  427. regmap_update_bits(rouleur->regmap,
  428. ROULEUR_ANA_MBHC_ZDET, 0x40, 0x40);
  429. dev_dbg(rouleur->dev, "%s: ramp for HPH_R, noff = %d\n",
  430. __func__, zdet_param->noff);
  431. rouleur_mbhc_get_result_params(rouleur, d1_a, zdet_param->noff, &zdet);
  432. regmap_update_bits(rouleur->regmap,
  433. ROULEUR_ANA_MBHC_ZDET, 0x40, 0x00);
  434. *zr = zdet;
  435. }
  436. static inline void rouleur_wcd_mbhc_qfuse_cal(
  437. struct snd_soc_component *component,
  438. int32_t *z_val, int flag_l_r)
  439. {
  440. s16 q1;
  441. int q1_cal;
  442. if (*z_val < (ROULEUR_ZDET_VAL_400/1000))
  443. q1 = snd_soc_component_read32(component,
  444. ROULEUR_DIGITAL_EFUSE_REG_23 + (2 * flag_l_r));
  445. else
  446. q1 = snd_soc_component_read32(component,
  447. ROULEUR_DIGITAL_EFUSE_REG_24 + (2 * flag_l_r));
  448. if (q1 & 0x80)
  449. q1_cal = (10000 - ((q1 & 0x7F) * 25));
  450. else
  451. q1_cal = (10000 + (q1 * 25));
  452. if (q1_cal > 0)
  453. *z_val = ((*z_val) * 10000) / q1_cal;
  454. }
  455. static void rouleur_wcd_mbhc_calc_impedance(struct wcd_mbhc *mbhc, uint32_t *zl,
  456. uint32_t *zr)
  457. {
  458. struct snd_soc_component *component = mbhc->component;
  459. struct rouleur_priv *rouleur = dev_get_drvdata(component->dev);
  460. s16 reg0, reg1, reg2, reg3, reg4;
  461. int32_t z1L, z1R, z1Ls;
  462. int zMono, z_diff1, z_diff2;
  463. bool is_fsm_disable = false;
  464. struct rouleur_mbhc_zdet_param zdet_param[] = {
  465. {4, 0, 4, 0x08, 0x14, 0x18}, /* < 32ohm */
  466. {2, 0, 3, 0x18, 0x7C, 0x90}, /* 32ohm < Z < 400ohm */
  467. {1, 4, 5, 0x18, 0x7C, 0x90}, /* 400ohm < Z < 1200ohm */
  468. {1, 6, 7, 0x18, 0x7C, 0x90}, /* >1200ohm */
  469. };
  470. struct rouleur_mbhc_zdet_param *zdet_param_ptr = NULL;
  471. s16 d1_a[][4] = {
  472. {0, 30, 90, 30},
  473. {0, 30, 30, 5},
  474. {0, 30, 30, 5},
  475. {0, 30, 30, 5},
  476. };
  477. s16 *d1 = NULL;
  478. WCD_MBHC_RSC_ASSERT_LOCKED(mbhc);
  479. reg0 = snd_soc_component_read32(component, ROULEUR_ANA_MBHC_BTN5);
  480. reg1 = snd_soc_component_read32(component, ROULEUR_ANA_MBHC_BTN6);
  481. reg2 = snd_soc_component_read32(component, ROULEUR_ANA_MBHC_BTN7);
  482. reg3 = snd_soc_component_read32(component, ROULEUR_MBHC_CTL_CLK);
  483. reg4 = snd_soc_component_read32(component,
  484. ROULEUR_ANA_MBHC_ZDET_ANA_CTL);
  485. if (snd_soc_component_read32(component, ROULEUR_ANA_MBHC_ELECT) &
  486. 0x80) {
  487. is_fsm_disable = true;
  488. regmap_update_bits(rouleur->regmap,
  489. ROULEUR_ANA_MBHC_ELECT, 0x80, 0x00);
  490. }
  491. /* For NO-jack, disable L_DET_EN before Z-det measurements */
  492. if (mbhc->hphl_swh)
  493. regmap_update_bits(rouleur->regmap,
  494. ROULEUR_ANA_MBHC_MECH, 0x80, 0x00);
  495. /* Turn off 100k pull down on HPHL */
  496. regmap_update_bits(rouleur->regmap,
  497. ROULEUR_ANA_MBHC_MECH, 0x01, 0x00);
  498. /* Disable surge protection before impedance detection.
  499. * This is done to give correct value for high impedance.
  500. */
  501. regmap_update_bits(rouleur->regmap,
  502. ROULEUR_HPH_SURGE_HPHLR_SURGE_EN, 0xC0, 0x00);
  503. /* 1ms delay needed after disable surge protection */
  504. usleep_range(1000, 1010);
  505. /* First get impedance on Left */
  506. d1 = d1_a[1];
  507. zdet_param_ptr = &zdet_param[1];
  508. rouleur_mbhc_zdet_ramp(component, zdet_param_ptr, &z1L, NULL, d1);
  509. if (!ROULEUR_MBHC_IS_SECOND_RAMP_REQUIRED(z1L))
  510. goto left_ch_impedance;
  511. /* Second ramp for left ch */
  512. if (z1L < ROULEUR_ZDET_VAL_32) {
  513. zdet_param_ptr = &zdet_param[0];
  514. d1 = d1_a[0];
  515. } else if ((z1L > ROULEUR_ZDET_VAL_400) &&
  516. (z1L <= ROULEUR_ZDET_VAL_1200)) {
  517. zdet_param_ptr = &zdet_param[2];
  518. d1 = d1_a[2];
  519. } else if (z1L > ROULEUR_ZDET_VAL_1200) {
  520. zdet_param_ptr = &zdet_param[3];
  521. d1 = d1_a[3];
  522. }
  523. rouleur_mbhc_zdet_ramp(component, zdet_param_ptr, &z1L, NULL, d1);
  524. left_ch_impedance:
  525. if ((z1L == ROULEUR_ZDET_FLOATING_IMPEDANCE) ||
  526. (z1L > ROULEUR_ZDET_VAL_100K)) {
  527. *zl = ROULEUR_ZDET_FLOATING_IMPEDANCE;
  528. zdet_param_ptr = &zdet_param[1];
  529. d1 = d1_a[1];
  530. } else {
  531. *zl = z1L/1000;
  532. rouleur_wcd_mbhc_qfuse_cal(component, zl, 0);
  533. }
  534. dev_dbg(component->dev, "%s: impedance on HPH_L = %d(ohms)\n",
  535. __func__, *zl);
  536. /* Start of right impedance ramp and calculation */
  537. rouleur_mbhc_zdet_ramp(component, zdet_param_ptr, NULL, &z1R, d1);
  538. if (ROULEUR_MBHC_IS_SECOND_RAMP_REQUIRED(z1R)) {
  539. if (((z1R > ROULEUR_ZDET_VAL_1200) &&
  540. (zdet_param_ptr->noff == 0x6)) ||
  541. ((*zl) != ROULEUR_ZDET_FLOATING_IMPEDANCE))
  542. goto right_ch_impedance;
  543. /* Second ramp for right ch */
  544. if (z1R < ROULEUR_ZDET_VAL_32) {
  545. zdet_param_ptr = &zdet_param[0];
  546. d1 = d1_a[0];
  547. } else if ((z1R > ROULEUR_ZDET_VAL_400) &&
  548. (z1R <= ROULEUR_ZDET_VAL_1200)) {
  549. zdet_param_ptr = &zdet_param[2];
  550. d1 = d1_a[2];
  551. } else if (z1R > ROULEUR_ZDET_VAL_1200) {
  552. zdet_param_ptr = &zdet_param[3];
  553. d1 = d1_a[3];
  554. }
  555. rouleur_mbhc_zdet_ramp(component, zdet_param_ptr, NULL,
  556. &z1R, d1);
  557. }
  558. right_ch_impedance:
  559. if ((z1R == ROULEUR_ZDET_FLOATING_IMPEDANCE) ||
  560. (z1R > ROULEUR_ZDET_VAL_100K)) {
  561. *zr = ROULEUR_ZDET_FLOATING_IMPEDANCE;
  562. } else {
  563. *zr = z1R/1000;
  564. rouleur_wcd_mbhc_qfuse_cal(component, zr, 1);
  565. }
  566. dev_dbg(component->dev, "%s: impedance on HPH_R = %d(ohms)\n",
  567. __func__, *zr);
  568. /* Mono/stereo detection */
  569. if ((*zl == ROULEUR_ZDET_FLOATING_IMPEDANCE) &&
  570. (*zr == ROULEUR_ZDET_FLOATING_IMPEDANCE)) {
  571. dev_dbg(component->dev,
  572. "%s: plug type is invalid or extension cable\n",
  573. __func__);
  574. goto zdet_complete;
  575. }
  576. if ((*zl == ROULEUR_ZDET_FLOATING_IMPEDANCE) ||
  577. (*zr == ROULEUR_ZDET_FLOATING_IMPEDANCE) ||
  578. ((*zl < WCD_MONO_HS_MIN_THR) && (*zr > WCD_MONO_HS_MIN_THR)) ||
  579. ((*zl > WCD_MONO_HS_MIN_THR) && (*zr < WCD_MONO_HS_MIN_THR))) {
  580. dev_dbg(component->dev,
  581. "%s: Mono plug type with one ch floating or shorted to GND\n",
  582. __func__);
  583. mbhc->hph_type = WCD_MBHC_HPH_MONO;
  584. goto zdet_complete;
  585. }
  586. snd_soc_component_update_bits(component, ROULEUR_HPH_R_ATEST,
  587. 0x02, 0x02);
  588. snd_soc_component_update_bits(component, ROULEUR_HPH_PA_CTL2,
  589. 0x40, 0x01);
  590. if (*zl < (ROULEUR_ZDET_VAL_32/1000))
  591. rouleur_mbhc_zdet_ramp(component, &zdet_param[0], &z1Ls,
  592. NULL, d1);
  593. else
  594. rouleur_mbhc_zdet_ramp(component, &zdet_param[1], &z1Ls,
  595. NULL, d1);
  596. snd_soc_component_update_bits(component, ROULEUR_HPH_PA_CTL2,
  597. 0x40, 0x00);
  598. snd_soc_component_update_bits(component, ROULEUR_HPH_R_ATEST,
  599. 0x02, 0x00);
  600. z1Ls /= 1000;
  601. rouleur_wcd_mbhc_qfuse_cal(component, &z1Ls, 0);
  602. /* Parallel of left Z and 9 ohm pull down resistor */
  603. zMono = ((*zl) * 9) / ((*zl) + 9);
  604. z_diff1 = (z1Ls > zMono) ? (z1Ls - zMono) : (zMono - z1Ls);
  605. z_diff2 = ((*zl) > z1Ls) ? ((*zl) - z1Ls) : (z1Ls - (*zl));
  606. if ((z_diff1 * (*zl + z1Ls)) > (z_diff2 * (z1Ls + zMono))) {
  607. dev_dbg(component->dev, "%s: stereo plug type detected\n",
  608. __func__);
  609. mbhc->hph_type = WCD_MBHC_HPH_STEREO;
  610. } else {
  611. dev_dbg(component->dev, "%s: MONO plug type detected\n",
  612. __func__);
  613. mbhc->hph_type = WCD_MBHC_HPH_MONO;
  614. }
  615. /* Enable surge protection again after impedance detection */
  616. regmap_update_bits(rouleur->regmap,
  617. ROULEUR_HPH_SURGE_HPHLR_SURGE_EN, 0xC0, 0xC0);
  618. zdet_complete:
  619. snd_soc_component_write(component, ROULEUR_ANA_MBHC_BTN5, reg0);
  620. snd_soc_component_write(component, ROULEUR_ANA_MBHC_BTN6, reg1);
  621. snd_soc_component_write(component, ROULEUR_ANA_MBHC_BTN7, reg2);
  622. /* Turn on 100k pull down on HPHL */
  623. regmap_update_bits(rouleur->regmap,
  624. ROULEUR_ANA_MBHC_MECH, 0x01, 0x01);
  625. /* For NO-jack, re-enable L_DET_EN after Z-det measurements */
  626. if (mbhc->hphl_swh)
  627. regmap_update_bits(rouleur->regmap,
  628. ROULEUR_ANA_MBHC_MECH, 0x80, 0x80);
  629. snd_soc_component_write(component, ROULEUR_ANA_MBHC_ZDET_ANA_CTL, reg4);
  630. snd_soc_component_write(component, ROULEUR_MBHC_CTL_CLK, reg3);
  631. if (is_fsm_disable)
  632. regmap_update_bits(rouleur->regmap,
  633. ROULEUR_ANA_MBHC_ELECT, 0x80, 0x80);
  634. }
  635. #endif
  636. static void rouleur_mbhc_gnd_det_ctrl(struct snd_soc_component *component,
  637. bool enable)
  638. {
  639. if (enable) {
  640. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_MECH,
  641. 0x02, 0x02);
  642. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_MECH,
  643. 0x40, 0x40);
  644. } else {
  645. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_MECH,
  646. 0x40, 0x00);
  647. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_MECH,
  648. 0x02, 0x00);
  649. }
  650. }
  651. static void rouleur_mbhc_hph_pull_down_ctrl(struct snd_soc_component *component,
  652. bool enable)
  653. {
  654. if (enable) {
  655. snd_soc_component_update_bits(component,
  656. ROULEUR_ANA_HPHPA_CNP_CTL_2,
  657. 0x30, 0x10);
  658. snd_soc_component_update_bits(component,
  659. ROULEUR_ANA_HPHPA_CNP_CTL_2,
  660. 0x0C, 0x04);
  661. } else {
  662. snd_soc_component_update_bits(component,
  663. ROULEUR_ANA_HPHPA_CNP_CTL_2,
  664. 0x30, 0x00);
  665. snd_soc_component_update_bits(component,
  666. ROULEUR_ANA_HPHPA_CNP_CTL_2,
  667. 0x0C, 0x00);
  668. }
  669. }
  670. static void rouleur_mbhc_moisture_config(struct wcd_mbhc *mbhc)
  671. {
  672. struct snd_soc_component *component = mbhc->component;
  673. if ((mbhc->moist_rref == R_OFF) ||
  674. (mbhc->mbhc_cfg->enable_usbc_analog)) {
  675. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  676. 0x0C, R_OFF << 2);
  677. return;
  678. }
  679. /* Do not enable moisture detection if jack type is NC */
  680. if (!mbhc->hphl_swh) {
  681. dev_dbg(component->dev, "%s: disable moisture detection for NC\n",
  682. __func__);
  683. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  684. 0x0C, R_OFF << 2);
  685. return;
  686. }
  687. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  688. 0x0C, mbhc->moist_rref << 2);
  689. }
  690. static void rouleur_mbhc_moisture_detect_en(struct wcd_mbhc *mbhc, bool enable)
  691. {
  692. struct snd_soc_component *component = mbhc->component;
  693. if (enable)
  694. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  695. 0x0C, mbhc->moist_rref << 2);
  696. else
  697. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  698. 0x0C, R_OFF << 2);
  699. }
  700. static bool rouleur_mbhc_get_moisture_status(struct wcd_mbhc *mbhc)
  701. {
  702. struct snd_soc_component *component = mbhc->component;
  703. bool ret = false;
  704. if ((mbhc->moist_rref == R_OFF) ||
  705. (mbhc->mbhc_cfg->enable_usbc_analog)) {
  706. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  707. 0x0C, R_OFF << 2);
  708. goto done;
  709. }
  710. /* Do not enable moisture detection if jack type is NC */
  711. if (!mbhc->hphl_swh) {
  712. dev_dbg(component->dev, "%s: disable moisture detection for NC\n",
  713. __func__);
  714. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_CTL_2,
  715. 0x0C, R_OFF << 2);
  716. goto done;
  717. }
  718. /* If moisture_en is already enabled, then skip to plug type
  719. * detection.
  720. */
  721. if ((snd_soc_component_read32(component, ROULEUR_ANA_MBHC_CTL_2) &
  722. 0x0C))
  723. goto done;
  724. rouleur_mbhc_moisture_detect_en(mbhc, true);
  725. /* Read moisture comparator status */
  726. ret = ((snd_soc_component_read32(component, ROULEUR_ANA_MBHC_FSM_STATUS)
  727. & 0x20) ? 0 : 1);
  728. done:
  729. return ret;
  730. }
  731. static void rouleur_mbhc_bcs_enable(struct wcd_mbhc *mbhc,
  732. bool bcs_enable)
  733. {
  734. if (bcs_enable)
  735. rouleur_disable_bcs_before_slow_insert(mbhc->component, false);
  736. else
  737. rouleur_disable_bcs_before_slow_insert(mbhc->component, true);
  738. }
  739. static void rouleur_mbhc_get_micbias_val(struct wcd_mbhc *mbhc, int *mb)
  740. {
  741. u8 vout_ctl = 0;
  742. /* Read MBHC Micbias (Mic Bias2) voltage */
  743. WCD_MBHC_REG_READ(WCD_MBHC_MICB2_VOUT, vout_ctl);
  744. /* Formula for getting micbias from vout
  745. * micbias = 1.6V + VOUT_CTL * 50mV
  746. */
  747. *mb = 1600 + (vout_ctl * 50);
  748. pr_debug("%s: vout_ctl: %d, micbias: %d\n", __func__, vout_ctl, *mb);
  749. }
  750. static void rouleur_mbhc_comp_autozero_control(struct wcd_mbhc *mbhc,
  751. bool az_enable)
  752. {
  753. if (az_enable)
  754. snd_soc_component_update_bits(mbhc->component,
  755. ROULEUR_ANA_MBHC_MCLK, 0x08, 0x08);
  756. else
  757. snd_soc_component_update_bits(mbhc->component,
  758. ROULEUR_ANA_MBHC_MCLK, 0x08, 0x00);
  759. }
  760. static void rouleur_mbhc_surge_control(struct wcd_mbhc *mbhc,
  761. bool surge_enable)
  762. {
  763. if (surge_enable)
  764. snd_soc_component_update_bits(mbhc->component,
  765. ROULEUR_ANA_SURGE_EN, 0xC0, 0xC0);
  766. else
  767. snd_soc_component_update_bits(mbhc->component,
  768. ROULEUR_ANA_SURGE_EN, 0xC0, 0x00);
  769. }
  770. static void rouleur_mbhc_update_cross_conn_thr(struct wcd_mbhc *mbhc)
  771. {
  772. mbhc->hphl_cross_conn_thr = ROULEUR_HPHL_CROSS_CONN_THRESHOLD;
  773. mbhc->hphr_cross_conn_thr = ROULEUR_HPHR_CROSS_CONN_THRESHOLD;
  774. pr_debug("%s: Cross connection threshold for hphl: %d, hphr: %d\n",
  775. __func__, mbhc->hphl_cross_conn_thr,
  776. mbhc->hphr_cross_conn_thr);
  777. }
  778. static const struct wcd_mbhc_cb mbhc_cb = {
  779. .request_irq = rouleur_mbhc_request_irq,
  780. .irq_control = rouleur_mbhc_irq_control,
  781. .free_irq = rouleur_mbhc_free_irq,
  782. .clk_setup = rouleur_mbhc_clk_setup,
  783. .map_btn_code_to_num = rouleur_mbhc_btn_to_num,
  784. .mbhc_bias = rouleur_mbhc_mbhc_bias_control,
  785. .set_btn_thr = rouleur_mbhc_program_btn_thr,
  786. .lock_sleep = rouleur_mbhc_lock_sleep,
  787. .register_notifier = rouleur_mbhc_register_notifier,
  788. .micbias_enable_status = rouleur_mbhc_micb_en_status,
  789. .hph_pa_on_status = rouleur_mbhc_hph_pa_on_status,
  790. .hph_pull_up_control = rouleur_mbhc_hph_l_pull_up_control,
  791. .mbhc_micbias_control = rouleur_mbhc_request_micbias,
  792. .mbhc_micb_ramp_control = rouleur_mbhc_micb_ramp_control,
  793. .get_hwdep_fw_cal = rouleur_get_hwdep_fw_cal,
  794. .mbhc_micb_ctrl_thr_mic = rouleur_mbhc_micb_ctrl_threshold_mic,
  795. //.compute_impedance = rouleur_wcd_mbhc_calc_impedance,
  796. .mbhc_gnd_det_ctrl = rouleur_mbhc_gnd_det_ctrl,
  797. .hph_pull_down_ctrl = rouleur_mbhc_hph_pull_down_ctrl,
  798. .mbhc_moisture_config = rouleur_mbhc_moisture_config,
  799. .mbhc_get_moisture_status = rouleur_mbhc_get_moisture_status,
  800. .mbhc_moisture_detect_en = rouleur_mbhc_moisture_detect_en,
  801. .bcs_enable = rouleur_mbhc_bcs_enable,
  802. .get_micbias_val = rouleur_mbhc_get_micbias_val,
  803. .mbhc_comp_autozero_control = rouleur_mbhc_comp_autozero_control,
  804. .mbhc_surge_ctl = rouleur_mbhc_surge_control,
  805. .update_cross_conn_thr = rouleur_mbhc_update_cross_conn_thr,
  806. };
  807. static int rouleur_get_hph_type(struct snd_kcontrol *kcontrol,
  808. struct snd_ctl_elem_value *ucontrol)
  809. {
  810. struct snd_soc_component *component =
  811. snd_soc_kcontrol_component(kcontrol);
  812. struct rouleur_mbhc *rouleur_mbhc = rouleur_soc_get_mbhc(component);
  813. struct wcd_mbhc *mbhc;
  814. if (!rouleur_mbhc) {
  815. dev_err(component->dev, "%s: mbhc not initialized!\n",
  816. __func__);
  817. return -EINVAL;
  818. }
  819. mbhc = &rouleur_mbhc->wcd_mbhc;
  820. ucontrol->value.integer.value[0] = (u32) mbhc->hph_type;
  821. dev_dbg(component->dev, "%s: hph_type = %u\n", __func__,
  822. mbhc->hph_type);
  823. return 0;
  824. }
  825. static int rouleur_hph_impedance_get(struct snd_kcontrol *kcontrol,
  826. struct snd_ctl_elem_value *ucontrol)
  827. {
  828. uint32_t zl = 0, zr = 0;
  829. bool hphr;
  830. struct soc_multi_mixer_control *mc;
  831. struct snd_soc_component *component =
  832. snd_soc_kcontrol_component(kcontrol);
  833. struct rouleur_mbhc *rouleur_mbhc = rouleur_soc_get_mbhc(component);
  834. if (!rouleur_mbhc) {
  835. dev_err(component->dev, "%s: mbhc not initialized!\n",
  836. __func__);
  837. return -EINVAL;
  838. }
  839. mc = (struct soc_multi_mixer_control *)(kcontrol->private_value);
  840. hphr = mc->shift;
  841. wcd_mbhc_get_impedance(&rouleur_mbhc->wcd_mbhc, &zl, &zr);
  842. dev_dbg(component->dev, "%s: zl=%u(ohms), zr=%u(ohms)\n", __func__,
  843. zl, zr);
  844. ucontrol->value.integer.value[0] = hphr ? zr : zl;
  845. return 0;
  846. }
  847. static const struct snd_kcontrol_new hph_type_detect_controls[] = {
  848. SOC_SINGLE_EXT("HPH Type", 0, 0, UINT_MAX, 0,
  849. rouleur_get_hph_type, NULL),
  850. };
  851. static const struct snd_kcontrol_new impedance_detect_controls[] = {
  852. SOC_SINGLE_EXT("HPHL Impedance", 0, 0, UINT_MAX, 0,
  853. rouleur_hph_impedance_get, NULL),
  854. SOC_SINGLE_EXT("HPHR Impedance", 0, 1, UINT_MAX, 0,
  855. rouleur_hph_impedance_get, NULL),
  856. };
  857. /*
  858. * rouleur_mbhc_get_impedance: get impedance of headphone
  859. * left and right channels
  860. * @rouleur_mbhc: handle to struct rouleur_mbhc *
  861. * @zl: handle to left-ch impedance
  862. * @zr: handle to right-ch impedance
  863. * return 0 for success or error code in case of failure
  864. */
  865. int rouleur_mbhc_get_impedance(struct rouleur_mbhc *rouleur_mbhc,
  866. uint32_t *zl, uint32_t *zr)
  867. {
  868. if (!rouleur_mbhc) {
  869. pr_err("%s: mbhc not initialized!\n", __func__);
  870. return -EINVAL;
  871. }
  872. if (!zl || !zr) {
  873. pr_err("%s: zl or zr null!\n", __func__);
  874. return -EINVAL;
  875. }
  876. return wcd_mbhc_get_impedance(&rouleur_mbhc->wcd_mbhc, zl, zr);
  877. }
  878. EXPORT_SYMBOL(rouleur_mbhc_get_impedance);
  879. /*
  880. * rouleur_mbhc_hs_detect: starts mbhc insertion/removal functionality
  881. * @component: handle to snd_soc_component *
  882. * @mbhc_cfg: handle to mbhc configuration structure
  883. * return 0 if mbhc_start is success or error code in case of failure
  884. */
  885. int rouleur_mbhc_hs_detect(struct snd_soc_component *component,
  886. struct wcd_mbhc_config *mbhc_cfg)
  887. {
  888. struct rouleur_priv *rouleur = NULL;
  889. struct rouleur_mbhc *rouleur_mbhc = NULL;
  890. if (!component) {
  891. pr_err("%s: component is NULL\n", __func__);
  892. return -EINVAL;
  893. }
  894. rouleur = snd_soc_component_get_drvdata(component);
  895. if (!rouleur) {
  896. pr_err("%s: rouleur is NULL\n", __func__);
  897. return -EINVAL;
  898. }
  899. rouleur_mbhc = rouleur->mbhc;
  900. if (!rouleur_mbhc) {
  901. dev_err(component->dev, "%s: mbhc not initialized!\n",
  902. __func__);
  903. return -EINVAL;
  904. }
  905. return wcd_mbhc_start(&rouleur_mbhc->wcd_mbhc, mbhc_cfg);
  906. }
  907. EXPORT_SYMBOL(rouleur_mbhc_hs_detect);
  908. /*
  909. * rouleur_mbhc_hs_detect_exit: stop mbhc insertion/removal functionality
  910. * @component: handle to snd_soc_component *
  911. */
  912. void rouleur_mbhc_hs_detect_exit(struct snd_soc_component *component)
  913. {
  914. struct rouleur_priv *rouleur = NULL;
  915. struct rouleur_mbhc *rouleur_mbhc = NULL;
  916. if (!component) {
  917. pr_err("%s: component is NULL\n", __func__);
  918. return;
  919. }
  920. rouleur = snd_soc_component_get_drvdata(component);
  921. if (!rouleur) {
  922. pr_err("%s: rouleur is NULL\n", __func__);
  923. return;
  924. }
  925. rouleur_mbhc = rouleur->mbhc;
  926. if (!rouleur_mbhc) {
  927. dev_err(component->dev, "%s: mbhc not initialized!\n",
  928. __func__);
  929. return;
  930. }
  931. wcd_mbhc_stop(&rouleur_mbhc->wcd_mbhc);
  932. }
  933. EXPORT_SYMBOL(rouleur_mbhc_hs_detect_exit);
  934. /*
  935. * rouleur_mbhc_ssr_down: stop mbhc during
  936. * rouleur subsystem restart
  937. * @mbhc: pointer to rouleur_mbhc structure
  938. * @component: handle to snd_soc_component *
  939. */
  940. void rouleur_mbhc_ssr_down(struct rouleur_mbhc *mbhc,
  941. struct snd_soc_component *component)
  942. {
  943. struct wcd_mbhc *wcd_mbhc = NULL;
  944. if (!mbhc || !component)
  945. return;
  946. wcd_mbhc = &mbhc->wcd_mbhc;
  947. if (wcd_mbhc == NULL) {
  948. dev_err(component->dev, "%s: wcd_mbhc is NULL\n", __func__);
  949. return;
  950. }
  951. rouleur_mbhc_hs_detect_exit(component);
  952. wcd_mbhc_deinit(wcd_mbhc);
  953. }
  954. EXPORT_SYMBOL(rouleur_mbhc_ssr_down);
  955. /*
  956. * rouleur_mbhc_post_ssr_init: initialize mbhc for
  957. * rouleur post subsystem restart
  958. * @mbhc: poniter to rouleur_mbhc structure
  959. * @component: handle to snd_soc_component *
  960. *
  961. * return 0 if mbhc_init is success or error code in case of failure
  962. */
  963. int rouleur_mbhc_post_ssr_init(struct rouleur_mbhc *mbhc,
  964. struct snd_soc_component *component)
  965. {
  966. int ret = 0;
  967. struct wcd_mbhc *wcd_mbhc = NULL;
  968. if (!mbhc || !component)
  969. return -EINVAL;
  970. wcd_mbhc = &mbhc->wcd_mbhc;
  971. if (wcd_mbhc == NULL) {
  972. pr_err("%s: wcd_mbhc is NULL\n", __func__);
  973. return -EINVAL;
  974. }
  975. snd_soc_component_update_bits(component, ROULEUR_ANA_MBHC_MECH,
  976. 0x20, 0x20);
  977. ret = wcd_mbhc_init(wcd_mbhc, component, &mbhc_cb, &intr_ids,
  978. wcd_mbhc_registers, ROULEUR_ZDET_SUPPORTED);
  979. if (ret)
  980. dev_err(component->dev, "%s: mbhc initialization failed\n",
  981. __func__);
  982. return ret;
  983. }
  984. EXPORT_SYMBOL(rouleur_mbhc_post_ssr_init);
  985. /*
  986. * rouleur_mbhc_init: initialize mbhc for rouleur
  987. * @mbhc: poniter to rouleur_mbhc struct pointer to store the configs
  988. * @component: handle to snd_soc_component *
  989. * @fw_data: handle to firmware data
  990. *
  991. * return 0 if mbhc_init is success or error code in case of failure
  992. */
  993. int rouleur_mbhc_init(struct rouleur_mbhc **mbhc,
  994. struct snd_soc_component *component,
  995. struct fw_info *fw_data)
  996. {
  997. struct rouleur_mbhc *rouleur_mbhc = NULL;
  998. struct wcd_mbhc *wcd_mbhc = NULL;
  999. struct rouleur_pdata *pdata;
  1000. int ret = 0;
  1001. if (!component) {
  1002. pr_err("%s: component is NULL\n", __func__);
  1003. return -EINVAL;
  1004. }
  1005. rouleur_mbhc = devm_kzalloc(component->dev, sizeof(struct rouleur_mbhc),
  1006. GFP_KERNEL);
  1007. if (!rouleur_mbhc)
  1008. return -ENOMEM;
  1009. rouleur_mbhc->fw_data = fw_data;
  1010. BLOCKING_INIT_NOTIFIER_HEAD(&rouleur_mbhc->notifier);
  1011. wcd_mbhc = &rouleur_mbhc->wcd_mbhc;
  1012. if (wcd_mbhc == NULL) {
  1013. pr_err("%s: wcd_mbhc is NULL\n", __func__);
  1014. ret = -EINVAL;
  1015. goto err;
  1016. }
  1017. /* Setting default mbhc detection logic to ADC */
  1018. wcd_mbhc->mbhc_detection_logic = WCD_DETECTION_ADC;
  1019. pdata = dev_get_platdata(component->dev);
  1020. if (!pdata) {
  1021. dev_err(component->dev, "%s: pdata pointer is NULL\n",
  1022. __func__);
  1023. ret = -EINVAL;
  1024. goto err;
  1025. }
  1026. wcd_mbhc->micb_mv = pdata->micbias.micb2_mv;
  1027. ret = wcd_mbhc_init(wcd_mbhc, component, &mbhc_cb,
  1028. &intr_ids, wcd_mbhc_registers,
  1029. ROULEUR_ZDET_SUPPORTED);
  1030. if (ret) {
  1031. dev_err(component->dev, "%s: mbhc initialization failed\n",
  1032. __func__);
  1033. goto err;
  1034. }
  1035. (*mbhc) = rouleur_mbhc;
  1036. snd_soc_add_component_controls(component, impedance_detect_controls,
  1037. ARRAY_SIZE(impedance_detect_controls));
  1038. snd_soc_add_component_controls(component, hph_type_detect_controls,
  1039. ARRAY_SIZE(hph_type_detect_controls));
  1040. return 0;
  1041. err:
  1042. devm_kfree(component->dev, rouleur_mbhc);
  1043. return ret;
  1044. }
  1045. EXPORT_SYMBOL(rouleur_mbhc_init);
  1046. /*
  1047. * rouleur_mbhc_deinit: deinitialize mbhc for rouleur
  1048. * @component: handle to snd_soc_component *
  1049. */
  1050. void rouleur_mbhc_deinit(struct snd_soc_component *component)
  1051. {
  1052. struct rouleur_priv *rouleur;
  1053. struct rouleur_mbhc *rouleur_mbhc;
  1054. if (!component) {
  1055. pr_err("%s: component is NULL\n", __func__);
  1056. return;
  1057. }
  1058. rouleur = snd_soc_component_get_drvdata(component);
  1059. if (!rouleur) {
  1060. pr_err("%s: rouleur is NULL\n", __func__);
  1061. return;
  1062. }
  1063. rouleur_mbhc = rouleur->mbhc;
  1064. if (rouleur_mbhc) {
  1065. wcd_mbhc_deinit(&rouleur_mbhc->wcd_mbhc);
  1066. devm_kfree(component->dev, rouleur_mbhc);
  1067. }
  1068. }
  1069. EXPORT_SYMBOL(rouleur_mbhc_deinit);