lm93.c 77 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /*
  3. * lm93.c - Part of lm_sensors, Linux kernel modules for hardware monitoring
  4. *
  5. * Author/Maintainer: Mark M. Hoffman <[email protected]>
  6. * Copyright (c) 2004 Utilitek Systems, Inc.
  7. *
  8. * derived in part from lm78.c:
  9. * Copyright (c) 1998, 1999 Frodo Looijaard <[email protected]>
  10. *
  11. * derived in part from lm85.c:
  12. * Copyright (c) 2002, 2003 Philip Pokorny <[email protected]>
  13. * Copyright (c) 2003 Margit Schubert-While <[email protected]>
  14. *
  15. * derived in part from w83l785ts.c:
  16. * Copyright (c) 2003-2004 Jean Delvare <[email protected]>
  17. *
  18. * Ported to Linux 2.6 by Eric J. Bowersox <[email protected]>
  19. * Copyright (c) 2005 Aspen Systems, Inc.
  20. *
  21. * Adapted to 2.6.20 by Carsten Emde <[email protected]>
  22. * Copyright (c) 2006 Carsten Emde, Open Source Automation Development Lab
  23. *
  24. * Modified for mainline integration by Hans J. Koch <[email protected]>
  25. * Copyright (c) 2007 Hans J. Koch, Linutronix GmbH
  26. */
  27. #include <linux/module.h>
  28. #include <linux/init.h>
  29. #include <linux/slab.h>
  30. #include <linux/i2c.h>
  31. #include <linux/hwmon.h>
  32. #include <linux/hwmon-sysfs.h>
  33. #include <linux/hwmon-vid.h>
  34. #include <linux/err.h>
  35. #include <linux/delay.h>
  36. #include <linux/jiffies.h>
  37. /* LM93 REGISTER ADDRESSES */
  38. /* miscellaneous */
  39. #define LM93_REG_MFR_ID 0x3e
  40. #define LM93_REG_VER 0x3f
  41. #define LM93_REG_STATUS_CONTROL 0xe2
  42. #define LM93_REG_CONFIG 0xe3
  43. #define LM93_REG_SLEEP_CONTROL 0xe4
  44. /* alarm values start here */
  45. #define LM93_REG_HOST_ERROR_1 0x48
  46. /* voltage inputs: in1-in16 (nr => 0-15) */
  47. #define LM93_REG_IN(nr) (0x56 + (nr))
  48. #define LM93_REG_IN_MIN(nr) (0x90 + (nr) * 2)
  49. #define LM93_REG_IN_MAX(nr) (0x91 + (nr) * 2)
  50. /* temperature inputs: temp1-temp4 (nr => 0-3) */
  51. #define LM93_REG_TEMP(nr) (0x50 + (nr))
  52. #define LM93_REG_TEMP_MIN(nr) (0x78 + (nr) * 2)
  53. #define LM93_REG_TEMP_MAX(nr) (0x79 + (nr) * 2)
  54. /* temp[1-4]_auto_boost (nr => 0-3) */
  55. #define LM93_REG_BOOST(nr) (0x80 + (nr))
  56. /* #PROCHOT inputs: prochot1-prochot2 (nr => 0-1) */
  57. #define LM93_REG_PROCHOT_CUR(nr) (0x67 + (nr) * 2)
  58. #define LM93_REG_PROCHOT_AVG(nr) (0x68 + (nr) * 2)
  59. #define LM93_REG_PROCHOT_MAX(nr) (0xb0 + (nr))
  60. /* fan tach inputs: fan1-fan4 (nr => 0-3) */
  61. #define LM93_REG_FAN(nr) (0x6e + (nr) * 2)
  62. #define LM93_REG_FAN_MIN(nr) (0xb4 + (nr) * 2)
  63. /* pwm outputs: pwm1-pwm2 (nr => 0-1, reg => 0-3) */
  64. #define LM93_REG_PWM_CTL(nr, reg) (0xc8 + (reg) + (nr) * 4)
  65. #define LM93_PWM_CTL1 0x0
  66. #define LM93_PWM_CTL2 0x1
  67. #define LM93_PWM_CTL3 0x2
  68. #define LM93_PWM_CTL4 0x3
  69. /* GPIO input state */
  70. #define LM93_REG_GPI 0x6b
  71. /* vid inputs: vid1-vid2 (nr => 0-1) */
  72. #define LM93_REG_VID(nr) (0x6c + (nr))
  73. /* vccp1 & vccp2: VID relative inputs (nr => 0-1) */
  74. #define LM93_REG_VCCP_LIMIT_OFF(nr) (0xb2 + (nr))
  75. /* temp[1-4]_auto_boost_hyst */
  76. #define LM93_REG_BOOST_HYST_12 0xc0
  77. #define LM93_REG_BOOST_HYST_34 0xc1
  78. #define LM93_REG_BOOST_HYST(nr) (0xc0 + (nr)/2)
  79. /* temp[1-4]_auto_pwm_[min|hyst] */
  80. #define LM93_REG_PWM_MIN_HYST_12 0xc3
  81. #define LM93_REG_PWM_MIN_HYST_34 0xc4
  82. #define LM93_REG_PWM_MIN_HYST(nr) (0xc3 + (nr)/2)
  83. /* prochot_override & prochot_interval */
  84. #define LM93_REG_PROCHOT_OVERRIDE 0xc6
  85. #define LM93_REG_PROCHOT_INTERVAL 0xc7
  86. /* temp[1-4]_auto_base (nr => 0-3) */
  87. #define LM93_REG_TEMP_BASE(nr) (0xd0 + (nr))
  88. /* temp[1-4]_auto_offsets (step => 0-11) */
  89. #define LM93_REG_TEMP_OFFSET(step) (0xd4 + (step))
  90. /* #PROCHOT & #VRDHOT PWM ramp control */
  91. #define LM93_REG_PWM_RAMP_CTL 0xbf
  92. /* miscellaneous */
  93. #define LM93_REG_SFC1 0xbc
  94. #define LM93_REG_SFC2 0xbd
  95. #define LM93_REG_GPI_VID_CTL 0xbe
  96. #define LM93_REG_SF_TACH_TO_PWM 0xe0
  97. /* error masks */
  98. #define LM93_REG_GPI_ERR_MASK 0xec
  99. #define LM93_REG_MISC_ERR_MASK 0xed
  100. /* LM93 REGISTER VALUES */
  101. #define LM93_MFR_ID 0x73
  102. #define LM93_MFR_ID_PROTOTYPE 0x72
  103. /* LM94 REGISTER VALUES */
  104. #define LM94_MFR_ID_2 0x7a
  105. #define LM94_MFR_ID 0x79
  106. #define LM94_MFR_ID_PROTOTYPE 0x78
  107. /* SMBus capabilities */
  108. #define LM93_SMBUS_FUNC_FULL (I2C_FUNC_SMBUS_BYTE_DATA | \
  109. I2C_FUNC_SMBUS_WORD_DATA | I2C_FUNC_SMBUS_BLOCK_DATA)
  110. #define LM93_SMBUS_FUNC_MIN (I2C_FUNC_SMBUS_BYTE_DATA | \
  111. I2C_FUNC_SMBUS_WORD_DATA)
  112. /* Addresses to scan */
  113. static const unsigned short normal_i2c[] = { 0x2c, 0x2d, 0x2e, I2C_CLIENT_END };
  114. /* Insmod parameters */
  115. static bool disable_block;
  116. module_param(disable_block, bool, 0);
  117. MODULE_PARM_DESC(disable_block,
  118. "Set to non-zero to disable SMBus block data transactions.");
  119. static bool init;
  120. module_param(init, bool, 0);
  121. MODULE_PARM_DESC(init, "Set to non-zero to force chip initialization.");
  122. static int vccp_limit_type[2] = {0, 0};
  123. module_param_array(vccp_limit_type, int, NULL, 0);
  124. MODULE_PARM_DESC(vccp_limit_type, "Configures in7 and in8 limit modes.");
  125. static int vid_agtl;
  126. module_param(vid_agtl, int, 0);
  127. MODULE_PARM_DESC(vid_agtl, "Configures VID pin input thresholds.");
  128. /* Driver data */
  129. static struct i2c_driver lm93_driver;
  130. /* LM93 BLOCK READ COMMANDS */
  131. static const struct { u8 cmd; u8 len; } lm93_block_read_cmds[12] = {
  132. { 0xf2, 8 },
  133. { 0xf3, 8 },
  134. { 0xf4, 6 },
  135. { 0xf5, 16 },
  136. { 0xf6, 4 },
  137. { 0xf7, 8 },
  138. { 0xf8, 12 },
  139. { 0xf9, 32 },
  140. { 0xfa, 8 },
  141. { 0xfb, 8 },
  142. { 0xfc, 16 },
  143. { 0xfd, 9 },
  144. };
  145. /*
  146. * ALARMS: SYSCTL format described further below
  147. * REG: 64 bits in 8 registers, as immediately below
  148. */
  149. struct block1_t {
  150. u8 host_status_1;
  151. u8 host_status_2;
  152. u8 host_status_3;
  153. u8 host_status_4;
  154. u8 p1_prochot_status;
  155. u8 p2_prochot_status;
  156. u8 gpi_status;
  157. u8 fan_status;
  158. };
  159. /*
  160. * Client-specific data
  161. */
  162. struct lm93_data {
  163. struct i2c_client *client;
  164. struct mutex update_lock;
  165. unsigned long last_updated; /* In jiffies */
  166. /* client update function */
  167. void (*update)(struct lm93_data *, struct i2c_client *);
  168. bool valid; /* true if following fields are valid */
  169. /* register values, arranged by block read groups */
  170. struct block1_t block1;
  171. /*
  172. * temp1 - temp4: unfiltered readings
  173. * temp1 - temp2: filtered readings
  174. */
  175. u8 block2[6];
  176. /* vin1 - vin16: readings */
  177. u8 block3[16];
  178. /* prochot1 - prochot2: readings */
  179. struct {
  180. u8 cur;
  181. u8 avg;
  182. } block4[2];
  183. /* fan counts 1-4 => 14-bits, LE, *left* justified */
  184. u16 block5[4];
  185. /* block6 has a lot of data we don't need */
  186. struct {
  187. u8 min;
  188. u8 max;
  189. } temp_lim[4];
  190. /* vin1 - vin16: low and high limits */
  191. struct {
  192. u8 min;
  193. u8 max;
  194. } block7[16];
  195. /* fan count limits 1-4 => same format as block5 */
  196. u16 block8[4];
  197. /* pwm control registers (2 pwms, 4 regs) */
  198. u8 block9[2][4];
  199. /* auto/pwm base temp and offset temp registers */
  200. struct {
  201. u8 base[4];
  202. u8 offset[12];
  203. } block10;
  204. /* master config register */
  205. u8 config;
  206. /* VID1 & VID2 => register format, 6-bits, right justified */
  207. u8 vid[2];
  208. /* prochot1 - prochot2: limits */
  209. u8 prochot_max[2];
  210. /* vccp1 & vccp2 (in7 & in8): VID relative limits (register format) */
  211. u8 vccp_limits[2];
  212. /* GPIO input state (register format, i.e. inverted) */
  213. u8 gpi;
  214. /* #PROCHOT override (register format) */
  215. u8 prochot_override;
  216. /* #PROCHOT intervals (register format) */
  217. u8 prochot_interval;
  218. /* Fan Boost Temperatures (register format) */
  219. u8 boost[4];
  220. /* Fan Boost Hysteresis (register format) */
  221. u8 boost_hyst[2];
  222. /* Temperature Zone Min. PWM & Hysteresis (register format) */
  223. u8 auto_pwm_min_hyst[2];
  224. /* #PROCHOT & #VRDHOT PWM Ramp Control */
  225. u8 pwm_ramp_ctl;
  226. /* miscellaneous setup regs */
  227. u8 sfc1;
  228. u8 sfc2;
  229. u8 sf_tach_to_pwm;
  230. /*
  231. * The two PWM CTL2 registers can read something other than what was
  232. * last written for the OVR_DC field (duty cycle override). So, we
  233. * save the user-commanded value here.
  234. */
  235. u8 pwm_override[2];
  236. };
  237. /*
  238. * VID: mV
  239. * REG: 6-bits, right justified, *always* using Intel VRM/VRD 10
  240. */
  241. static int LM93_VID_FROM_REG(u8 reg)
  242. {
  243. return vid_from_reg((reg & 0x3f), 100);
  244. }
  245. /* min, max, and nominal register values, per channel (u8) */
  246. static const u8 lm93_vin_reg_min[16] = {
  247. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  248. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xae,
  249. };
  250. static const u8 lm93_vin_reg_max[16] = {
  251. 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
  252. 0xff, 0xfa, 0xff, 0xff, 0xff, 0xff, 0xff, 0xd1,
  253. };
  254. /*
  255. * Values from the datasheet. They're here for documentation only.
  256. * static const u8 lm93_vin_reg_nom[16] = {
  257. * 0xc0, 0xc0, 0xc0, 0xc0, 0xc0, 0xc0, 0xc0, 0xc0,
  258. * 0xc0, 0xc0, 0xc0, 0xc0, 0xc0, 0xc0, 0x40, 0xc0,
  259. * };
  260. */
  261. /* min, max, and nominal voltage readings, per channel (mV)*/
  262. static const unsigned long lm93_vin_val_min[16] = {
  263. 0, 0, 0, 0, 0, 0, 0, 0,
  264. 0, 0, 0, 0, 0, 0, 0, 3000,
  265. };
  266. static const unsigned long lm93_vin_val_max[16] = {
  267. 1236, 1236, 1236, 1600, 2000, 2000, 1600, 1600,
  268. 4400, 6500, 3333, 2625, 1312, 1312, 1236, 3600,
  269. };
  270. /*
  271. * Values from the datasheet. They're here for documentation only.
  272. * static const unsigned long lm93_vin_val_nom[16] = {
  273. * 927, 927, 927, 1200, 1500, 1500, 1200, 1200,
  274. * 3300, 5000, 2500, 1969, 984, 984, 309, 3300,
  275. * };
  276. */
  277. static unsigned LM93_IN_FROM_REG(int nr, u8 reg)
  278. {
  279. const long uv_max = lm93_vin_val_max[nr] * 1000;
  280. const long uv_min = lm93_vin_val_min[nr] * 1000;
  281. const long slope = (uv_max - uv_min) /
  282. (lm93_vin_reg_max[nr] - lm93_vin_reg_min[nr]);
  283. const long intercept = uv_min - slope * lm93_vin_reg_min[nr];
  284. return (slope * reg + intercept + 500) / 1000;
  285. }
  286. /*
  287. * IN: mV, limits determined by channel nr
  288. * REG: scaling determined by channel nr
  289. */
  290. static u8 LM93_IN_TO_REG(int nr, unsigned val)
  291. {
  292. /* range limit */
  293. const long mv = clamp_val(val,
  294. lm93_vin_val_min[nr], lm93_vin_val_max[nr]);
  295. /* try not to lose too much precision here */
  296. const long uv = mv * 1000;
  297. const long uv_max = lm93_vin_val_max[nr] * 1000;
  298. const long uv_min = lm93_vin_val_min[nr] * 1000;
  299. /* convert */
  300. const long slope = (uv_max - uv_min) /
  301. (lm93_vin_reg_max[nr] - lm93_vin_reg_min[nr]);
  302. const long intercept = uv_min - slope * lm93_vin_reg_min[nr];
  303. u8 result = ((uv - intercept + (slope/2)) / slope);
  304. result = clamp_val(result,
  305. lm93_vin_reg_min[nr], lm93_vin_reg_max[nr]);
  306. return result;
  307. }
  308. /* vid in mV, upper == 0 indicates low limit, otherwise upper limit */
  309. static unsigned LM93_IN_REL_FROM_REG(u8 reg, int upper, int vid)
  310. {
  311. const long uv_offset = upper ? (((reg >> 4 & 0x0f) + 1) * 12500) :
  312. (((reg >> 0 & 0x0f) + 1) * -25000);
  313. const long uv_vid = vid * 1000;
  314. return (uv_vid + uv_offset + 5000) / 10000;
  315. }
  316. #define LM93_IN_MIN_FROM_REG(reg, vid) LM93_IN_REL_FROM_REG((reg), 0, (vid))
  317. #define LM93_IN_MAX_FROM_REG(reg, vid) LM93_IN_REL_FROM_REG((reg), 1, (vid))
  318. /*
  319. * vid in mV , upper == 0 indicates low limit, otherwise upper limit
  320. * upper also determines which nibble of the register is returned
  321. * (the other nibble will be 0x0)
  322. */
  323. static u8 LM93_IN_REL_TO_REG(unsigned val, int upper, int vid)
  324. {
  325. long uv_offset = vid * 1000 - val * 10000;
  326. if (upper) {
  327. uv_offset = clamp_val(uv_offset, 12500, 200000);
  328. return (u8)((uv_offset / 12500 - 1) << 4);
  329. } else {
  330. uv_offset = clamp_val(uv_offset, -400000, -25000);
  331. return (u8)((uv_offset / -25000 - 1) << 0);
  332. }
  333. }
  334. /*
  335. * TEMP: 1/1000 degrees C (-128C to +127C)
  336. * REG: 1C/bit, two's complement
  337. */
  338. static int LM93_TEMP_FROM_REG(u8 reg)
  339. {
  340. return (s8)reg * 1000;
  341. }
  342. #define LM93_TEMP_MIN (-128000)
  343. #define LM93_TEMP_MAX (127000)
  344. /*
  345. * TEMP: 1/1000 degrees C (-128C to +127C)
  346. * REG: 1C/bit, two's complement
  347. */
  348. static u8 LM93_TEMP_TO_REG(long temp)
  349. {
  350. int ntemp = clamp_val(temp, LM93_TEMP_MIN, LM93_TEMP_MAX);
  351. ntemp += (ntemp < 0 ? -500 : 500);
  352. return (u8)(ntemp / 1000);
  353. }
  354. /* Determine 4-bit temperature offset resolution */
  355. static int LM93_TEMP_OFFSET_MODE_FROM_REG(u8 sfc2, int nr)
  356. {
  357. /* mode: 0 => 1C/bit, nonzero => 0.5C/bit */
  358. return sfc2 & (nr < 2 ? 0x10 : 0x20);
  359. }
  360. /*
  361. * This function is common to all 4-bit temperature offsets
  362. * reg is 4 bits right justified
  363. * mode 0 => 1C/bit, mode !0 => 0.5C/bit
  364. */
  365. static int LM93_TEMP_OFFSET_FROM_REG(u8 reg, int mode)
  366. {
  367. return (reg & 0x0f) * (mode ? 5 : 10);
  368. }
  369. #define LM93_TEMP_OFFSET_MIN (0)
  370. #define LM93_TEMP_OFFSET_MAX0 (150)
  371. #define LM93_TEMP_OFFSET_MAX1 (75)
  372. /*
  373. * This function is common to all 4-bit temperature offsets
  374. * returns 4 bits right justified
  375. * mode 0 => 1C/bit, mode !0 => 0.5C/bit
  376. */
  377. static u8 LM93_TEMP_OFFSET_TO_REG(int off, int mode)
  378. {
  379. int factor = mode ? 5 : 10;
  380. off = clamp_val(off, LM93_TEMP_OFFSET_MIN,
  381. mode ? LM93_TEMP_OFFSET_MAX1 : LM93_TEMP_OFFSET_MAX0);
  382. return (u8)((off + factor/2) / factor);
  383. }
  384. /* 0 <= nr <= 3 */
  385. static int LM93_TEMP_AUTO_OFFSET_FROM_REG(u8 reg, int nr, int mode)
  386. {
  387. /* temp1-temp2 (nr=0,1) use lower nibble */
  388. if (nr < 2)
  389. return LM93_TEMP_OFFSET_FROM_REG(reg & 0x0f, mode);
  390. /* temp3-temp4 (nr=2,3) use upper nibble */
  391. else
  392. return LM93_TEMP_OFFSET_FROM_REG(reg >> 4 & 0x0f, mode);
  393. }
  394. /*
  395. * TEMP: 1/10 degrees C (0C to +15C (mode 0) or +7.5C (mode non-zero))
  396. * REG: 1.0C/bit (mode 0) or 0.5C/bit (mode non-zero)
  397. * 0 <= nr <= 3
  398. */
  399. static u8 LM93_TEMP_AUTO_OFFSET_TO_REG(u8 old, int off, int nr, int mode)
  400. {
  401. u8 new = LM93_TEMP_OFFSET_TO_REG(off, mode);
  402. /* temp1-temp2 (nr=0,1) use lower nibble */
  403. if (nr < 2)
  404. return (old & 0xf0) | (new & 0x0f);
  405. /* temp3-temp4 (nr=2,3) use upper nibble */
  406. else
  407. return (new << 4 & 0xf0) | (old & 0x0f);
  408. }
  409. static int LM93_AUTO_BOOST_HYST_FROM_REGS(struct lm93_data *data, int nr,
  410. int mode)
  411. {
  412. u8 reg;
  413. switch (nr) {
  414. case 0:
  415. reg = data->boost_hyst[0] & 0x0f;
  416. break;
  417. case 1:
  418. reg = data->boost_hyst[0] >> 4 & 0x0f;
  419. break;
  420. case 2:
  421. reg = data->boost_hyst[1] & 0x0f;
  422. break;
  423. case 3:
  424. default:
  425. reg = data->boost_hyst[1] >> 4 & 0x0f;
  426. break;
  427. }
  428. return LM93_TEMP_FROM_REG(data->boost[nr]) -
  429. LM93_TEMP_OFFSET_FROM_REG(reg, mode);
  430. }
  431. static u8 LM93_AUTO_BOOST_HYST_TO_REG(struct lm93_data *data, long hyst,
  432. int nr, int mode)
  433. {
  434. u8 reg = LM93_TEMP_OFFSET_TO_REG(
  435. (LM93_TEMP_FROM_REG(data->boost[nr]) - hyst), mode);
  436. switch (nr) {
  437. case 0:
  438. reg = (data->boost_hyst[0] & 0xf0) | (reg & 0x0f);
  439. break;
  440. case 1:
  441. reg = (reg << 4 & 0xf0) | (data->boost_hyst[0] & 0x0f);
  442. break;
  443. case 2:
  444. reg = (data->boost_hyst[1] & 0xf0) | (reg & 0x0f);
  445. break;
  446. case 3:
  447. default:
  448. reg = (reg << 4 & 0xf0) | (data->boost_hyst[1] & 0x0f);
  449. break;
  450. }
  451. return reg;
  452. }
  453. /*
  454. * PWM: 0-255 per sensors documentation
  455. * REG: 0-13 as mapped below... right justified
  456. */
  457. enum pwm_freq { LM93_PWM_MAP_HI_FREQ, LM93_PWM_MAP_LO_FREQ };
  458. static int lm93_pwm_map[2][16] = {
  459. {
  460. 0x00, /* 0.00% */ 0x40, /* 25.00% */
  461. 0x50, /* 31.25% */ 0x60, /* 37.50% */
  462. 0x70, /* 43.75% */ 0x80, /* 50.00% */
  463. 0x90, /* 56.25% */ 0xa0, /* 62.50% */
  464. 0xb0, /* 68.75% */ 0xc0, /* 75.00% */
  465. 0xd0, /* 81.25% */ 0xe0, /* 87.50% */
  466. 0xf0, /* 93.75% */ 0xff, /* 100.00% */
  467. 0xff, 0xff, /* 14, 15 are reserved and should never occur */
  468. },
  469. {
  470. 0x00, /* 0.00% */ 0x40, /* 25.00% */
  471. 0x49, /* 28.57% */ 0x52, /* 32.14% */
  472. 0x5b, /* 35.71% */ 0x64, /* 39.29% */
  473. 0x6d, /* 42.86% */ 0x76, /* 46.43% */
  474. 0x80, /* 50.00% */ 0x89, /* 53.57% */
  475. 0x92, /* 57.14% */ 0xb6, /* 71.43% */
  476. 0xdb, /* 85.71% */ 0xff, /* 100.00% */
  477. 0xff, 0xff, /* 14, 15 are reserved and should never occur */
  478. },
  479. };
  480. static int LM93_PWM_FROM_REG(u8 reg, enum pwm_freq freq)
  481. {
  482. return lm93_pwm_map[freq][reg & 0x0f];
  483. }
  484. /* round up to nearest match */
  485. static u8 LM93_PWM_TO_REG(int pwm, enum pwm_freq freq)
  486. {
  487. int i;
  488. for (i = 0; i < 13; i++)
  489. if (pwm <= lm93_pwm_map[freq][i])
  490. break;
  491. /* can fall through with i==13 */
  492. return (u8)i;
  493. }
  494. static int LM93_FAN_FROM_REG(u16 regs)
  495. {
  496. const u16 count = le16_to_cpu(regs) >> 2;
  497. return count == 0 ? -1 : count == 0x3fff ? 0 : 1350000 / count;
  498. }
  499. /*
  500. * RPM: (82.5 to 1350000)
  501. * REG: 14-bits, LE, *left* justified
  502. */
  503. static u16 LM93_FAN_TO_REG(long rpm)
  504. {
  505. u16 count, regs;
  506. if (rpm == 0) {
  507. count = 0x3fff;
  508. } else {
  509. rpm = clamp_val(rpm, 1, 1000000);
  510. count = clamp_val((1350000 + rpm) / rpm, 1, 0x3ffe);
  511. }
  512. regs = count << 2;
  513. return cpu_to_le16(regs);
  514. }
  515. /*
  516. * PWM FREQ: HZ
  517. * REG: 0-7 as mapped below
  518. */
  519. static int lm93_pwm_freq_map[8] = {
  520. 22500, 96, 84, 72, 60, 48, 36, 12
  521. };
  522. static int LM93_PWM_FREQ_FROM_REG(u8 reg)
  523. {
  524. return lm93_pwm_freq_map[reg & 0x07];
  525. }
  526. /* round up to nearest match */
  527. static u8 LM93_PWM_FREQ_TO_REG(int freq)
  528. {
  529. int i;
  530. for (i = 7; i > 0; i--)
  531. if (freq <= lm93_pwm_freq_map[i])
  532. break;
  533. /* can fall through with i==0 */
  534. return (u8)i;
  535. }
  536. /*
  537. * TIME: 1/100 seconds
  538. * REG: 0-7 as mapped below
  539. */
  540. static int lm93_spinup_time_map[8] = {
  541. 0, 10, 25, 40, 70, 100, 200, 400,
  542. };
  543. static int LM93_SPINUP_TIME_FROM_REG(u8 reg)
  544. {
  545. return lm93_spinup_time_map[reg >> 5 & 0x07];
  546. }
  547. /* round up to nearest match */
  548. static u8 LM93_SPINUP_TIME_TO_REG(int time)
  549. {
  550. int i;
  551. for (i = 0; i < 7; i++)
  552. if (time <= lm93_spinup_time_map[i])
  553. break;
  554. /* can fall through with i==8 */
  555. return (u8)i;
  556. }
  557. #define LM93_RAMP_MIN 0
  558. #define LM93_RAMP_MAX 75
  559. static int LM93_RAMP_FROM_REG(u8 reg)
  560. {
  561. return (reg & 0x0f) * 5;
  562. }
  563. /*
  564. * RAMP: 1/100 seconds
  565. * REG: 50mS/bit 4-bits right justified
  566. */
  567. static u8 LM93_RAMP_TO_REG(int ramp)
  568. {
  569. ramp = clamp_val(ramp, LM93_RAMP_MIN, LM93_RAMP_MAX);
  570. return (u8)((ramp + 2) / 5);
  571. }
  572. /*
  573. * PROCHOT: 0-255, 0 => 0%, 255 => > 96.6%
  574. * REG: (same)
  575. */
  576. static u8 LM93_PROCHOT_TO_REG(long prochot)
  577. {
  578. prochot = clamp_val(prochot, 0, 255);
  579. return (u8)prochot;
  580. }
  581. /*
  582. * PROCHOT-INTERVAL: 73 - 37200 (1/100 seconds)
  583. * REG: 0-9 as mapped below
  584. */
  585. static int lm93_interval_map[10] = {
  586. 73, 146, 290, 580, 1170, 2330, 4660, 9320, 18600, 37200,
  587. };
  588. static int LM93_INTERVAL_FROM_REG(u8 reg)
  589. {
  590. return lm93_interval_map[reg & 0x0f];
  591. }
  592. /* round up to nearest match */
  593. static u8 LM93_INTERVAL_TO_REG(long interval)
  594. {
  595. int i;
  596. for (i = 0; i < 9; i++)
  597. if (interval <= lm93_interval_map[i])
  598. break;
  599. /* can fall through with i==9 */
  600. return (u8)i;
  601. }
  602. /*
  603. * GPIO: 0-255, GPIO0 is LSB
  604. * REG: inverted
  605. */
  606. static unsigned LM93_GPI_FROM_REG(u8 reg)
  607. {
  608. return ~reg & 0xff;
  609. }
  610. /*
  611. * alarm bitmask definitions
  612. * The LM93 has nearly 64 bits of error status... I've pared that down to
  613. * what I think is a useful subset in order to fit it into 32 bits.
  614. *
  615. * Especially note that the #VRD_HOT alarms are missing because we provide
  616. * that information as values in another sysfs file.
  617. *
  618. * If libsensors is extended to support 64 bit values, this could be revisited.
  619. */
  620. #define LM93_ALARM_IN1 0x00000001
  621. #define LM93_ALARM_IN2 0x00000002
  622. #define LM93_ALARM_IN3 0x00000004
  623. #define LM93_ALARM_IN4 0x00000008
  624. #define LM93_ALARM_IN5 0x00000010
  625. #define LM93_ALARM_IN6 0x00000020
  626. #define LM93_ALARM_IN7 0x00000040
  627. #define LM93_ALARM_IN8 0x00000080
  628. #define LM93_ALARM_IN9 0x00000100
  629. #define LM93_ALARM_IN10 0x00000200
  630. #define LM93_ALARM_IN11 0x00000400
  631. #define LM93_ALARM_IN12 0x00000800
  632. #define LM93_ALARM_IN13 0x00001000
  633. #define LM93_ALARM_IN14 0x00002000
  634. #define LM93_ALARM_IN15 0x00004000
  635. #define LM93_ALARM_IN16 0x00008000
  636. #define LM93_ALARM_FAN1 0x00010000
  637. #define LM93_ALARM_FAN2 0x00020000
  638. #define LM93_ALARM_FAN3 0x00040000
  639. #define LM93_ALARM_FAN4 0x00080000
  640. #define LM93_ALARM_PH1_ERR 0x00100000
  641. #define LM93_ALARM_PH2_ERR 0x00200000
  642. #define LM93_ALARM_SCSI1_ERR 0x00400000
  643. #define LM93_ALARM_SCSI2_ERR 0x00800000
  644. #define LM93_ALARM_DVDDP1_ERR 0x01000000
  645. #define LM93_ALARM_DVDDP2_ERR 0x02000000
  646. #define LM93_ALARM_D1_ERR 0x04000000
  647. #define LM93_ALARM_D2_ERR 0x08000000
  648. #define LM93_ALARM_TEMP1 0x10000000
  649. #define LM93_ALARM_TEMP2 0x20000000
  650. #define LM93_ALARM_TEMP3 0x40000000
  651. static unsigned LM93_ALARMS_FROM_REG(struct block1_t b1)
  652. {
  653. unsigned result;
  654. result = b1.host_status_2 & 0x3f;
  655. if (vccp_limit_type[0])
  656. result |= (b1.host_status_4 & 0x10) << 2;
  657. else
  658. result |= b1.host_status_2 & 0x40;
  659. if (vccp_limit_type[1])
  660. result |= (b1.host_status_4 & 0x20) << 2;
  661. else
  662. result |= b1.host_status_2 & 0x80;
  663. result |= b1.host_status_3 << 8;
  664. result |= (b1.fan_status & 0x0f) << 16;
  665. result |= (b1.p1_prochot_status & 0x80) << 13;
  666. result |= (b1.p2_prochot_status & 0x80) << 14;
  667. result |= (b1.host_status_4 & 0xfc) << 20;
  668. result |= (b1.host_status_1 & 0x07) << 28;
  669. return result;
  670. }
  671. #define MAX_RETRIES 5
  672. static u8 lm93_read_byte(struct i2c_client *client, u8 reg)
  673. {
  674. int value, i;
  675. /* retry in case of read errors */
  676. for (i = 1; i <= MAX_RETRIES; i++) {
  677. value = i2c_smbus_read_byte_data(client, reg);
  678. if (value >= 0) {
  679. return value;
  680. } else {
  681. dev_warn(&client->dev,
  682. "lm93: read byte data failed, address 0x%02x.\n",
  683. reg);
  684. mdelay(i + 3);
  685. }
  686. }
  687. /* <TODO> what to return in case of error? */
  688. dev_err(&client->dev, "lm93: All read byte retries failed!!\n");
  689. return 0;
  690. }
  691. static int lm93_write_byte(struct i2c_client *client, u8 reg, u8 value)
  692. {
  693. int result;
  694. /* <TODO> how to handle write errors? */
  695. result = i2c_smbus_write_byte_data(client, reg, value);
  696. if (result < 0)
  697. dev_warn(&client->dev,
  698. "lm93: write byte data failed, 0x%02x at address 0x%02x.\n",
  699. value, reg);
  700. return result;
  701. }
  702. static u16 lm93_read_word(struct i2c_client *client, u8 reg)
  703. {
  704. int value, i;
  705. /* retry in case of read errors */
  706. for (i = 1; i <= MAX_RETRIES; i++) {
  707. value = i2c_smbus_read_word_data(client, reg);
  708. if (value >= 0) {
  709. return value;
  710. } else {
  711. dev_warn(&client->dev,
  712. "lm93: read word data failed, address 0x%02x.\n",
  713. reg);
  714. mdelay(i + 3);
  715. }
  716. }
  717. /* <TODO> what to return in case of error? */
  718. dev_err(&client->dev, "lm93: All read word retries failed!!\n");
  719. return 0;
  720. }
  721. static int lm93_write_word(struct i2c_client *client, u8 reg, u16 value)
  722. {
  723. int result;
  724. /* <TODO> how to handle write errors? */
  725. result = i2c_smbus_write_word_data(client, reg, value);
  726. if (result < 0)
  727. dev_warn(&client->dev,
  728. "lm93: write word data failed, 0x%04x at address 0x%02x.\n",
  729. value, reg);
  730. return result;
  731. }
  732. static u8 lm93_block_buffer[I2C_SMBUS_BLOCK_MAX];
  733. /*
  734. * read block data into values, retry if not expected length
  735. * fbn => index to lm93_block_read_cmds table
  736. * (Fixed Block Number - section 14.5.2 of LM93 datasheet)
  737. */
  738. static void lm93_read_block(struct i2c_client *client, u8 fbn, u8 *values)
  739. {
  740. int i, result = 0;
  741. for (i = 1; i <= MAX_RETRIES; i++) {
  742. result = i2c_smbus_read_block_data(client,
  743. lm93_block_read_cmds[fbn].cmd, lm93_block_buffer);
  744. if (result == lm93_block_read_cmds[fbn].len) {
  745. break;
  746. } else {
  747. dev_warn(&client->dev,
  748. "lm93: block read data failed, command 0x%02x.\n",
  749. lm93_block_read_cmds[fbn].cmd);
  750. mdelay(i + 3);
  751. }
  752. }
  753. if (result == lm93_block_read_cmds[fbn].len) {
  754. memcpy(values, lm93_block_buffer,
  755. lm93_block_read_cmds[fbn].len);
  756. } else {
  757. /* <TODO> what to do in case of error? */
  758. }
  759. }
  760. static struct lm93_data *lm93_update_device(struct device *dev)
  761. {
  762. struct lm93_data *data = dev_get_drvdata(dev);
  763. struct i2c_client *client = data->client;
  764. const unsigned long interval = HZ + (HZ / 2);
  765. mutex_lock(&data->update_lock);
  766. if (time_after(jiffies, data->last_updated + interval) ||
  767. !data->valid) {
  768. data->update(data, client);
  769. data->last_updated = jiffies;
  770. data->valid = true;
  771. }
  772. mutex_unlock(&data->update_lock);
  773. return data;
  774. }
  775. /* update routine for data that has no corresponding SMBus block command */
  776. static void lm93_update_client_common(struct lm93_data *data,
  777. struct i2c_client *client)
  778. {
  779. int i;
  780. u8 *ptr;
  781. /* temp1 - temp4: limits */
  782. for (i = 0; i < 4; i++) {
  783. data->temp_lim[i].min =
  784. lm93_read_byte(client, LM93_REG_TEMP_MIN(i));
  785. data->temp_lim[i].max =
  786. lm93_read_byte(client, LM93_REG_TEMP_MAX(i));
  787. }
  788. /* config register */
  789. data->config = lm93_read_byte(client, LM93_REG_CONFIG);
  790. /* vid1 - vid2: values */
  791. for (i = 0; i < 2; i++)
  792. data->vid[i] = lm93_read_byte(client, LM93_REG_VID(i));
  793. /* prochot1 - prochot2: limits */
  794. for (i = 0; i < 2; i++)
  795. data->prochot_max[i] = lm93_read_byte(client,
  796. LM93_REG_PROCHOT_MAX(i));
  797. /* vccp1 - vccp2: VID relative limits */
  798. for (i = 0; i < 2; i++)
  799. data->vccp_limits[i] = lm93_read_byte(client,
  800. LM93_REG_VCCP_LIMIT_OFF(i));
  801. /* GPIO input state */
  802. data->gpi = lm93_read_byte(client, LM93_REG_GPI);
  803. /* #PROCHOT override state */
  804. data->prochot_override = lm93_read_byte(client,
  805. LM93_REG_PROCHOT_OVERRIDE);
  806. /* #PROCHOT intervals */
  807. data->prochot_interval = lm93_read_byte(client,
  808. LM93_REG_PROCHOT_INTERVAL);
  809. /* Fan Boost Temperature registers */
  810. for (i = 0; i < 4; i++)
  811. data->boost[i] = lm93_read_byte(client, LM93_REG_BOOST(i));
  812. /* Fan Boost Temperature Hyst. registers */
  813. data->boost_hyst[0] = lm93_read_byte(client, LM93_REG_BOOST_HYST_12);
  814. data->boost_hyst[1] = lm93_read_byte(client, LM93_REG_BOOST_HYST_34);
  815. /* Temperature Zone Min. PWM & Hysteresis registers */
  816. data->auto_pwm_min_hyst[0] =
  817. lm93_read_byte(client, LM93_REG_PWM_MIN_HYST_12);
  818. data->auto_pwm_min_hyst[1] =
  819. lm93_read_byte(client, LM93_REG_PWM_MIN_HYST_34);
  820. /* #PROCHOT & #VRDHOT PWM Ramp Control register */
  821. data->pwm_ramp_ctl = lm93_read_byte(client, LM93_REG_PWM_RAMP_CTL);
  822. /* misc setup registers */
  823. data->sfc1 = lm93_read_byte(client, LM93_REG_SFC1);
  824. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  825. data->sf_tach_to_pwm = lm93_read_byte(client,
  826. LM93_REG_SF_TACH_TO_PWM);
  827. /* write back alarm values to clear */
  828. for (i = 0, ptr = (u8 *)(&data->block1); i < 8; i++)
  829. lm93_write_byte(client, LM93_REG_HOST_ERROR_1 + i, *(ptr + i));
  830. }
  831. /* update routine which uses SMBus block data commands */
  832. static void lm93_update_client_full(struct lm93_data *data,
  833. struct i2c_client *client)
  834. {
  835. dev_dbg(&client->dev, "starting device update (block data enabled)\n");
  836. /* in1 - in16: values & limits */
  837. lm93_read_block(client, 3, (u8 *)(data->block3));
  838. lm93_read_block(client, 7, (u8 *)(data->block7));
  839. /* temp1 - temp4: values */
  840. lm93_read_block(client, 2, (u8 *)(data->block2));
  841. /* prochot1 - prochot2: values */
  842. lm93_read_block(client, 4, (u8 *)(data->block4));
  843. /* fan1 - fan4: values & limits */
  844. lm93_read_block(client, 5, (u8 *)(data->block5));
  845. lm93_read_block(client, 8, (u8 *)(data->block8));
  846. /* pmw control registers */
  847. lm93_read_block(client, 9, (u8 *)(data->block9));
  848. /* alarm values */
  849. lm93_read_block(client, 1, (u8 *)(&data->block1));
  850. /* auto/pwm registers */
  851. lm93_read_block(client, 10, (u8 *)(&data->block10));
  852. lm93_update_client_common(data, client);
  853. }
  854. /* update routine which uses SMBus byte/word data commands only */
  855. static void lm93_update_client_min(struct lm93_data *data,
  856. struct i2c_client *client)
  857. {
  858. int i, j;
  859. u8 *ptr;
  860. dev_dbg(&client->dev, "starting device update (block data disabled)\n");
  861. /* in1 - in16: values & limits */
  862. for (i = 0; i < 16; i++) {
  863. data->block3[i] =
  864. lm93_read_byte(client, LM93_REG_IN(i));
  865. data->block7[i].min =
  866. lm93_read_byte(client, LM93_REG_IN_MIN(i));
  867. data->block7[i].max =
  868. lm93_read_byte(client, LM93_REG_IN_MAX(i));
  869. }
  870. /* temp1 - temp4: values */
  871. for (i = 0; i < 4; i++) {
  872. data->block2[i] =
  873. lm93_read_byte(client, LM93_REG_TEMP(i));
  874. }
  875. /* prochot1 - prochot2: values */
  876. for (i = 0; i < 2; i++) {
  877. data->block4[i].cur =
  878. lm93_read_byte(client, LM93_REG_PROCHOT_CUR(i));
  879. data->block4[i].avg =
  880. lm93_read_byte(client, LM93_REG_PROCHOT_AVG(i));
  881. }
  882. /* fan1 - fan4: values & limits */
  883. for (i = 0; i < 4; i++) {
  884. data->block5[i] =
  885. lm93_read_word(client, LM93_REG_FAN(i));
  886. data->block8[i] =
  887. lm93_read_word(client, LM93_REG_FAN_MIN(i));
  888. }
  889. /* pwm control registers */
  890. for (i = 0; i < 2; i++) {
  891. for (j = 0; j < 4; j++) {
  892. data->block9[i][j] =
  893. lm93_read_byte(client, LM93_REG_PWM_CTL(i, j));
  894. }
  895. }
  896. /* alarm values */
  897. for (i = 0, ptr = (u8 *)(&data->block1); i < 8; i++) {
  898. *(ptr + i) =
  899. lm93_read_byte(client, LM93_REG_HOST_ERROR_1 + i);
  900. }
  901. /* auto/pwm (base temp) registers */
  902. for (i = 0; i < 4; i++) {
  903. data->block10.base[i] =
  904. lm93_read_byte(client, LM93_REG_TEMP_BASE(i));
  905. }
  906. /* auto/pwm (offset temp) registers */
  907. for (i = 0; i < 12; i++) {
  908. data->block10.offset[i] =
  909. lm93_read_byte(client, LM93_REG_TEMP_OFFSET(i));
  910. }
  911. lm93_update_client_common(data, client);
  912. }
  913. /* following are the sysfs callback functions */
  914. static ssize_t in_show(struct device *dev, struct device_attribute *attr,
  915. char *buf)
  916. {
  917. int nr = (to_sensor_dev_attr(attr))->index;
  918. struct lm93_data *data = lm93_update_device(dev);
  919. return sprintf(buf, "%d\n", LM93_IN_FROM_REG(nr, data->block3[nr]));
  920. }
  921. static SENSOR_DEVICE_ATTR_RO(in1_input, in, 0);
  922. static SENSOR_DEVICE_ATTR_RO(in2_input, in, 1);
  923. static SENSOR_DEVICE_ATTR_RO(in3_input, in, 2);
  924. static SENSOR_DEVICE_ATTR_RO(in4_input, in, 3);
  925. static SENSOR_DEVICE_ATTR_RO(in5_input, in, 4);
  926. static SENSOR_DEVICE_ATTR_RO(in6_input, in, 5);
  927. static SENSOR_DEVICE_ATTR_RO(in7_input, in, 6);
  928. static SENSOR_DEVICE_ATTR_RO(in8_input, in, 7);
  929. static SENSOR_DEVICE_ATTR_RO(in9_input, in, 8);
  930. static SENSOR_DEVICE_ATTR_RO(in10_input, in, 9);
  931. static SENSOR_DEVICE_ATTR_RO(in11_input, in, 10);
  932. static SENSOR_DEVICE_ATTR_RO(in12_input, in, 11);
  933. static SENSOR_DEVICE_ATTR_RO(in13_input, in, 12);
  934. static SENSOR_DEVICE_ATTR_RO(in14_input, in, 13);
  935. static SENSOR_DEVICE_ATTR_RO(in15_input, in, 14);
  936. static SENSOR_DEVICE_ATTR_RO(in16_input, in, 15);
  937. static ssize_t in_min_show(struct device *dev, struct device_attribute *attr,
  938. char *buf)
  939. {
  940. int nr = (to_sensor_dev_attr(attr))->index;
  941. struct lm93_data *data = lm93_update_device(dev);
  942. int vccp = nr - 6;
  943. long rc, vid;
  944. if ((nr == 6 || nr == 7) && vccp_limit_type[vccp]) {
  945. vid = LM93_VID_FROM_REG(data->vid[vccp]);
  946. rc = LM93_IN_MIN_FROM_REG(data->vccp_limits[vccp], vid);
  947. } else {
  948. rc = LM93_IN_FROM_REG(nr, data->block7[nr].min);
  949. }
  950. return sprintf(buf, "%ld\n", rc);
  951. }
  952. static ssize_t in_min_store(struct device *dev, struct device_attribute *attr,
  953. const char *buf, size_t count)
  954. {
  955. int nr = (to_sensor_dev_attr(attr))->index;
  956. struct lm93_data *data = dev_get_drvdata(dev);
  957. struct i2c_client *client = data->client;
  958. int vccp = nr - 6;
  959. long vid;
  960. unsigned long val;
  961. int err;
  962. err = kstrtoul(buf, 10, &val);
  963. if (err)
  964. return err;
  965. mutex_lock(&data->update_lock);
  966. if ((nr == 6 || nr == 7) && vccp_limit_type[vccp]) {
  967. vid = LM93_VID_FROM_REG(data->vid[vccp]);
  968. data->vccp_limits[vccp] = (data->vccp_limits[vccp] & 0xf0) |
  969. LM93_IN_REL_TO_REG(val, 0, vid);
  970. lm93_write_byte(client, LM93_REG_VCCP_LIMIT_OFF(vccp),
  971. data->vccp_limits[vccp]);
  972. } else {
  973. data->block7[nr].min = LM93_IN_TO_REG(nr, val);
  974. lm93_write_byte(client, LM93_REG_IN_MIN(nr),
  975. data->block7[nr].min);
  976. }
  977. mutex_unlock(&data->update_lock);
  978. return count;
  979. }
  980. static SENSOR_DEVICE_ATTR_RW(in1_min, in_min, 0);
  981. static SENSOR_DEVICE_ATTR_RW(in2_min, in_min, 1);
  982. static SENSOR_DEVICE_ATTR_RW(in3_min, in_min, 2);
  983. static SENSOR_DEVICE_ATTR_RW(in4_min, in_min, 3);
  984. static SENSOR_DEVICE_ATTR_RW(in5_min, in_min, 4);
  985. static SENSOR_DEVICE_ATTR_RW(in6_min, in_min, 5);
  986. static SENSOR_DEVICE_ATTR_RW(in7_min, in_min, 6);
  987. static SENSOR_DEVICE_ATTR_RW(in8_min, in_min, 7);
  988. static SENSOR_DEVICE_ATTR_RW(in9_min, in_min, 8);
  989. static SENSOR_DEVICE_ATTR_RW(in10_min, in_min, 9);
  990. static SENSOR_DEVICE_ATTR_RW(in11_min, in_min, 10);
  991. static SENSOR_DEVICE_ATTR_RW(in12_min, in_min, 11);
  992. static SENSOR_DEVICE_ATTR_RW(in13_min, in_min, 12);
  993. static SENSOR_DEVICE_ATTR_RW(in14_min, in_min, 13);
  994. static SENSOR_DEVICE_ATTR_RW(in15_min, in_min, 14);
  995. static SENSOR_DEVICE_ATTR_RW(in16_min, in_min, 15);
  996. static ssize_t in_max_show(struct device *dev, struct device_attribute *attr,
  997. char *buf)
  998. {
  999. int nr = (to_sensor_dev_attr(attr))->index;
  1000. struct lm93_data *data = lm93_update_device(dev);
  1001. int vccp = nr - 6;
  1002. long rc, vid;
  1003. if ((nr == 6 || nr == 7) && vccp_limit_type[vccp]) {
  1004. vid = LM93_VID_FROM_REG(data->vid[vccp]);
  1005. rc = LM93_IN_MAX_FROM_REG(data->vccp_limits[vccp], vid);
  1006. } else {
  1007. rc = LM93_IN_FROM_REG(nr, data->block7[nr].max);
  1008. }
  1009. return sprintf(buf, "%ld\n", rc);
  1010. }
  1011. static ssize_t in_max_store(struct device *dev, struct device_attribute *attr,
  1012. const char *buf, size_t count)
  1013. {
  1014. int nr = (to_sensor_dev_attr(attr))->index;
  1015. struct lm93_data *data = dev_get_drvdata(dev);
  1016. struct i2c_client *client = data->client;
  1017. int vccp = nr - 6;
  1018. long vid;
  1019. unsigned long val;
  1020. int err;
  1021. err = kstrtoul(buf, 10, &val);
  1022. if (err)
  1023. return err;
  1024. mutex_lock(&data->update_lock);
  1025. if ((nr == 6 || nr == 7) && vccp_limit_type[vccp]) {
  1026. vid = LM93_VID_FROM_REG(data->vid[vccp]);
  1027. data->vccp_limits[vccp] = (data->vccp_limits[vccp] & 0x0f) |
  1028. LM93_IN_REL_TO_REG(val, 1, vid);
  1029. lm93_write_byte(client, LM93_REG_VCCP_LIMIT_OFF(vccp),
  1030. data->vccp_limits[vccp]);
  1031. } else {
  1032. data->block7[nr].max = LM93_IN_TO_REG(nr, val);
  1033. lm93_write_byte(client, LM93_REG_IN_MAX(nr),
  1034. data->block7[nr].max);
  1035. }
  1036. mutex_unlock(&data->update_lock);
  1037. return count;
  1038. }
  1039. static SENSOR_DEVICE_ATTR_RW(in1_max, in_max, 0);
  1040. static SENSOR_DEVICE_ATTR_RW(in2_max, in_max, 1);
  1041. static SENSOR_DEVICE_ATTR_RW(in3_max, in_max, 2);
  1042. static SENSOR_DEVICE_ATTR_RW(in4_max, in_max, 3);
  1043. static SENSOR_DEVICE_ATTR_RW(in5_max, in_max, 4);
  1044. static SENSOR_DEVICE_ATTR_RW(in6_max, in_max, 5);
  1045. static SENSOR_DEVICE_ATTR_RW(in7_max, in_max, 6);
  1046. static SENSOR_DEVICE_ATTR_RW(in8_max, in_max, 7);
  1047. static SENSOR_DEVICE_ATTR_RW(in9_max, in_max, 8);
  1048. static SENSOR_DEVICE_ATTR_RW(in10_max, in_max, 9);
  1049. static SENSOR_DEVICE_ATTR_RW(in11_max, in_max, 10);
  1050. static SENSOR_DEVICE_ATTR_RW(in12_max, in_max, 11);
  1051. static SENSOR_DEVICE_ATTR_RW(in13_max, in_max, 12);
  1052. static SENSOR_DEVICE_ATTR_RW(in14_max, in_max, 13);
  1053. static SENSOR_DEVICE_ATTR_RW(in15_max, in_max, 14);
  1054. static SENSOR_DEVICE_ATTR_RW(in16_max, in_max, 15);
  1055. static ssize_t temp_show(struct device *dev, struct device_attribute *attr,
  1056. char *buf)
  1057. {
  1058. int nr = (to_sensor_dev_attr(attr))->index;
  1059. struct lm93_data *data = lm93_update_device(dev);
  1060. return sprintf(buf, "%d\n", LM93_TEMP_FROM_REG(data->block2[nr]));
  1061. }
  1062. static SENSOR_DEVICE_ATTR_RO(temp1_input, temp, 0);
  1063. static SENSOR_DEVICE_ATTR_RO(temp2_input, temp, 1);
  1064. static SENSOR_DEVICE_ATTR_RO(temp3_input, temp, 2);
  1065. static ssize_t temp_min_show(struct device *dev,
  1066. struct device_attribute *attr, char *buf)
  1067. {
  1068. int nr = (to_sensor_dev_attr(attr))->index;
  1069. struct lm93_data *data = lm93_update_device(dev);
  1070. return sprintf(buf, "%d\n", LM93_TEMP_FROM_REG(data->temp_lim[nr].min));
  1071. }
  1072. static ssize_t temp_min_store(struct device *dev,
  1073. struct device_attribute *attr, const char *buf,
  1074. size_t count)
  1075. {
  1076. int nr = (to_sensor_dev_attr(attr))->index;
  1077. struct lm93_data *data = dev_get_drvdata(dev);
  1078. struct i2c_client *client = data->client;
  1079. long val;
  1080. int err;
  1081. err = kstrtol(buf, 10, &val);
  1082. if (err)
  1083. return err;
  1084. mutex_lock(&data->update_lock);
  1085. data->temp_lim[nr].min = LM93_TEMP_TO_REG(val);
  1086. lm93_write_byte(client, LM93_REG_TEMP_MIN(nr), data->temp_lim[nr].min);
  1087. mutex_unlock(&data->update_lock);
  1088. return count;
  1089. }
  1090. static SENSOR_DEVICE_ATTR_RW(temp1_min, temp_min, 0);
  1091. static SENSOR_DEVICE_ATTR_RW(temp2_min, temp_min, 1);
  1092. static SENSOR_DEVICE_ATTR_RW(temp3_min, temp_min, 2);
  1093. static ssize_t temp_max_show(struct device *dev,
  1094. struct device_attribute *attr, char *buf)
  1095. {
  1096. int nr = (to_sensor_dev_attr(attr))->index;
  1097. struct lm93_data *data = lm93_update_device(dev);
  1098. return sprintf(buf, "%d\n", LM93_TEMP_FROM_REG(data->temp_lim[nr].max));
  1099. }
  1100. static ssize_t temp_max_store(struct device *dev,
  1101. struct device_attribute *attr, const char *buf,
  1102. size_t count)
  1103. {
  1104. int nr = (to_sensor_dev_attr(attr))->index;
  1105. struct lm93_data *data = dev_get_drvdata(dev);
  1106. struct i2c_client *client = data->client;
  1107. long val;
  1108. int err;
  1109. err = kstrtol(buf, 10, &val);
  1110. if (err)
  1111. return err;
  1112. mutex_lock(&data->update_lock);
  1113. data->temp_lim[nr].max = LM93_TEMP_TO_REG(val);
  1114. lm93_write_byte(client, LM93_REG_TEMP_MAX(nr), data->temp_lim[nr].max);
  1115. mutex_unlock(&data->update_lock);
  1116. return count;
  1117. }
  1118. static SENSOR_DEVICE_ATTR_RW(temp1_max, temp_max, 0);
  1119. static SENSOR_DEVICE_ATTR_RW(temp2_max, temp_max, 1);
  1120. static SENSOR_DEVICE_ATTR_RW(temp3_max, temp_max, 2);
  1121. static ssize_t temp_auto_base_show(struct device *dev,
  1122. struct device_attribute *attr, char *buf)
  1123. {
  1124. int nr = (to_sensor_dev_attr(attr))->index;
  1125. struct lm93_data *data = lm93_update_device(dev);
  1126. return sprintf(buf, "%d\n", LM93_TEMP_FROM_REG(data->block10.base[nr]));
  1127. }
  1128. static ssize_t temp_auto_base_store(struct device *dev,
  1129. struct device_attribute *attr,
  1130. const char *buf, size_t count)
  1131. {
  1132. int nr = (to_sensor_dev_attr(attr))->index;
  1133. struct lm93_data *data = dev_get_drvdata(dev);
  1134. struct i2c_client *client = data->client;
  1135. long val;
  1136. int err;
  1137. err = kstrtol(buf, 10, &val);
  1138. if (err)
  1139. return err;
  1140. mutex_lock(&data->update_lock);
  1141. data->block10.base[nr] = LM93_TEMP_TO_REG(val);
  1142. lm93_write_byte(client, LM93_REG_TEMP_BASE(nr), data->block10.base[nr]);
  1143. mutex_unlock(&data->update_lock);
  1144. return count;
  1145. }
  1146. static SENSOR_DEVICE_ATTR_RW(temp1_auto_base, temp_auto_base, 0);
  1147. static SENSOR_DEVICE_ATTR_RW(temp2_auto_base, temp_auto_base, 1);
  1148. static SENSOR_DEVICE_ATTR_RW(temp3_auto_base, temp_auto_base, 2);
  1149. static ssize_t temp_auto_boost_show(struct device *dev,
  1150. struct device_attribute *attr, char *buf)
  1151. {
  1152. int nr = (to_sensor_dev_attr(attr))->index;
  1153. struct lm93_data *data = lm93_update_device(dev);
  1154. return sprintf(buf, "%d\n", LM93_TEMP_FROM_REG(data->boost[nr]));
  1155. }
  1156. static ssize_t temp_auto_boost_store(struct device *dev,
  1157. struct device_attribute *attr,
  1158. const char *buf, size_t count)
  1159. {
  1160. int nr = (to_sensor_dev_attr(attr))->index;
  1161. struct lm93_data *data = dev_get_drvdata(dev);
  1162. struct i2c_client *client = data->client;
  1163. long val;
  1164. int err;
  1165. err = kstrtol(buf, 10, &val);
  1166. if (err)
  1167. return err;
  1168. mutex_lock(&data->update_lock);
  1169. data->boost[nr] = LM93_TEMP_TO_REG(val);
  1170. lm93_write_byte(client, LM93_REG_BOOST(nr), data->boost[nr]);
  1171. mutex_unlock(&data->update_lock);
  1172. return count;
  1173. }
  1174. static SENSOR_DEVICE_ATTR_RW(temp1_auto_boost, temp_auto_boost, 0);
  1175. static SENSOR_DEVICE_ATTR_RW(temp2_auto_boost, temp_auto_boost, 1);
  1176. static SENSOR_DEVICE_ATTR_RW(temp3_auto_boost, temp_auto_boost, 2);
  1177. static ssize_t temp_auto_boost_hyst_show(struct device *dev,
  1178. struct device_attribute *attr,
  1179. char *buf)
  1180. {
  1181. int nr = (to_sensor_dev_attr(attr))->index;
  1182. struct lm93_data *data = lm93_update_device(dev);
  1183. int mode = LM93_TEMP_OFFSET_MODE_FROM_REG(data->sfc2, nr);
  1184. return sprintf(buf, "%d\n",
  1185. LM93_AUTO_BOOST_HYST_FROM_REGS(data, nr, mode));
  1186. }
  1187. static ssize_t temp_auto_boost_hyst_store(struct device *dev,
  1188. struct device_attribute *attr,
  1189. const char *buf, size_t count)
  1190. {
  1191. int nr = (to_sensor_dev_attr(attr))->index;
  1192. struct lm93_data *data = dev_get_drvdata(dev);
  1193. struct i2c_client *client = data->client;
  1194. unsigned long val;
  1195. int err;
  1196. err = kstrtoul(buf, 10, &val);
  1197. if (err)
  1198. return err;
  1199. mutex_lock(&data->update_lock);
  1200. /* force 0.5C/bit mode */
  1201. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  1202. data->sfc2 |= ((nr < 2) ? 0x10 : 0x20);
  1203. lm93_write_byte(client, LM93_REG_SFC2, data->sfc2);
  1204. data->boost_hyst[nr/2] = LM93_AUTO_BOOST_HYST_TO_REG(data, val, nr, 1);
  1205. lm93_write_byte(client, LM93_REG_BOOST_HYST(nr),
  1206. data->boost_hyst[nr/2]);
  1207. mutex_unlock(&data->update_lock);
  1208. return count;
  1209. }
  1210. static SENSOR_DEVICE_ATTR_RW(temp1_auto_boost_hyst, temp_auto_boost_hyst, 0);
  1211. static SENSOR_DEVICE_ATTR_RW(temp2_auto_boost_hyst, temp_auto_boost_hyst, 1);
  1212. static SENSOR_DEVICE_ATTR_RW(temp3_auto_boost_hyst, temp_auto_boost_hyst, 2);
  1213. static ssize_t temp_auto_offset_show(struct device *dev,
  1214. struct device_attribute *attr, char *buf)
  1215. {
  1216. struct sensor_device_attribute_2 *s_attr = to_sensor_dev_attr_2(attr);
  1217. int nr = s_attr->index;
  1218. int ofs = s_attr->nr;
  1219. struct lm93_data *data = lm93_update_device(dev);
  1220. int mode = LM93_TEMP_OFFSET_MODE_FROM_REG(data->sfc2, nr);
  1221. return sprintf(buf, "%d\n",
  1222. LM93_TEMP_AUTO_OFFSET_FROM_REG(data->block10.offset[ofs],
  1223. nr, mode));
  1224. }
  1225. static ssize_t temp_auto_offset_store(struct device *dev,
  1226. struct device_attribute *attr,
  1227. const char *buf, size_t count)
  1228. {
  1229. struct sensor_device_attribute_2 *s_attr = to_sensor_dev_attr_2(attr);
  1230. int nr = s_attr->index;
  1231. int ofs = s_attr->nr;
  1232. struct lm93_data *data = dev_get_drvdata(dev);
  1233. struct i2c_client *client = data->client;
  1234. unsigned long val;
  1235. int err;
  1236. err = kstrtoul(buf, 10, &val);
  1237. if (err)
  1238. return err;
  1239. mutex_lock(&data->update_lock);
  1240. /* force 0.5C/bit mode */
  1241. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  1242. data->sfc2 |= ((nr < 2) ? 0x10 : 0x20);
  1243. lm93_write_byte(client, LM93_REG_SFC2, data->sfc2);
  1244. data->block10.offset[ofs] = LM93_TEMP_AUTO_OFFSET_TO_REG(
  1245. data->block10.offset[ofs], val, nr, 1);
  1246. lm93_write_byte(client, LM93_REG_TEMP_OFFSET(ofs),
  1247. data->block10.offset[ofs]);
  1248. mutex_unlock(&data->update_lock);
  1249. return count;
  1250. }
  1251. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset1, temp_auto_offset, 0, 0);
  1252. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset2, temp_auto_offset, 1, 0);
  1253. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset3, temp_auto_offset, 2, 0);
  1254. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset4, temp_auto_offset, 3, 0);
  1255. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset5, temp_auto_offset, 4, 0);
  1256. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset6, temp_auto_offset, 5, 0);
  1257. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset7, temp_auto_offset, 6, 0);
  1258. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset8, temp_auto_offset, 7, 0);
  1259. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset9, temp_auto_offset, 8, 0);
  1260. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset10, temp_auto_offset, 9, 0);
  1261. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset11, temp_auto_offset, 10, 0);
  1262. static SENSOR_DEVICE_ATTR_2_RW(temp1_auto_offset12, temp_auto_offset, 11, 0);
  1263. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset1, temp_auto_offset, 0, 1);
  1264. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset2, temp_auto_offset, 1, 1);
  1265. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset3, temp_auto_offset, 2, 1);
  1266. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset4, temp_auto_offset, 3, 1);
  1267. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset5, temp_auto_offset, 4, 1);
  1268. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset6, temp_auto_offset, 5, 1);
  1269. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset7, temp_auto_offset, 6, 1);
  1270. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset8, temp_auto_offset, 7, 1);
  1271. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset9, temp_auto_offset, 8, 1);
  1272. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset10, temp_auto_offset, 9, 1);
  1273. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset11, temp_auto_offset, 10, 1);
  1274. static SENSOR_DEVICE_ATTR_2_RW(temp2_auto_offset12, temp_auto_offset, 11, 1);
  1275. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset1, temp_auto_offset, 0, 2);
  1276. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset2, temp_auto_offset, 1, 2);
  1277. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset3, temp_auto_offset, 2, 2);
  1278. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset4, temp_auto_offset, 3, 2);
  1279. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset5, temp_auto_offset, 4, 2);
  1280. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset6, temp_auto_offset, 5, 2);
  1281. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset7, temp_auto_offset, 6, 2);
  1282. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset8, temp_auto_offset, 7, 2);
  1283. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset9, temp_auto_offset, 8, 2);
  1284. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset10, temp_auto_offset, 9, 2);
  1285. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset11, temp_auto_offset, 10, 2);
  1286. static SENSOR_DEVICE_ATTR_2_RW(temp3_auto_offset12, temp_auto_offset, 11, 2);
  1287. static ssize_t temp_auto_pwm_min_show(struct device *dev,
  1288. struct device_attribute *attr,
  1289. char *buf)
  1290. {
  1291. int nr = (to_sensor_dev_attr(attr))->index;
  1292. u8 reg, ctl4;
  1293. struct lm93_data *data = lm93_update_device(dev);
  1294. reg = data->auto_pwm_min_hyst[nr/2] >> 4 & 0x0f;
  1295. ctl4 = data->block9[nr][LM93_PWM_CTL4];
  1296. return sprintf(buf, "%d\n", LM93_PWM_FROM_REG(reg, (ctl4 & 0x07) ?
  1297. LM93_PWM_MAP_LO_FREQ : LM93_PWM_MAP_HI_FREQ));
  1298. }
  1299. static ssize_t temp_auto_pwm_min_store(struct device *dev,
  1300. struct device_attribute *attr,
  1301. const char *buf, size_t count)
  1302. {
  1303. int nr = (to_sensor_dev_attr(attr))->index;
  1304. struct lm93_data *data = dev_get_drvdata(dev);
  1305. struct i2c_client *client = data->client;
  1306. u8 reg, ctl4;
  1307. unsigned long val;
  1308. int err;
  1309. err = kstrtoul(buf, 10, &val);
  1310. if (err)
  1311. return err;
  1312. mutex_lock(&data->update_lock);
  1313. reg = lm93_read_byte(client, LM93_REG_PWM_MIN_HYST(nr));
  1314. ctl4 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL4));
  1315. reg = (reg & 0x0f) |
  1316. LM93_PWM_TO_REG(val, (ctl4 & 0x07) ?
  1317. LM93_PWM_MAP_LO_FREQ :
  1318. LM93_PWM_MAP_HI_FREQ) << 4;
  1319. data->auto_pwm_min_hyst[nr/2] = reg;
  1320. lm93_write_byte(client, LM93_REG_PWM_MIN_HYST(nr), reg);
  1321. mutex_unlock(&data->update_lock);
  1322. return count;
  1323. }
  1324. static SENSOR_DEVICE_ATTR_RW(temp1_auto_pwm_min, temp_auto_pwm_min, 0);
  1325. static SENSOR_DEVICE_ATTR_RW(temp2_auto_pwm_min, temp_auto_pwm_min, 1);
  1326. static SENSOR_DEVICE_ATTR_RW(temp3_auto_pwm_min, temp_auto_pwm_min, 2);
  1327. static ssize_t temp_auto_offset_hyst_show(struct device *dev,
  1328. struct device_attribute *attr,
  1329. char *buf)
  1330. {
  1331. int nr = (to_sensor_dev_attr(attr))->index;
  1332. struct lm93_data *data = lm93_update_device(dev);
  1333. int mode = LM93_TEMP_OFFSET_MODE_FROM_REG(data->sfc2, nr);
  1334. return sprintf(buf, "%d\n", LM93_TEMP_OFFSET_FROM_REG(
  1335. data->auto_pwm_min_hyst[nr / 2], mode));
  1336. }
  1337. static ssize_t temp_auto_offset_hyst_store(struct device *dev,
  1338. struct device_attribute *attr,
  1339. const char *buf, size_t count)
  1340. {
  1341. int nr = (to_sensor_dev_attr(attr))->index;
  1342. struct lm93_data *data = dev_get_drvdata(dev);
  1343. struct i2c_client *client = data->client;
  1344. u8 reg;
  1345. unsigned long val;
  1346. int err;
  1347. err = kstrtoul(buf, 10, &val);
  1348. if (err)
  1349. return err;
  1350. mutex_lock(&data->update_lock);
  1351. /* force 0.5C/bit mode */
  1352. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  1353. data->sfc2 |= ((nr < 2) ? 0x10 : 0x20);
  1354. lm93_write_byte(client, LM93_REG_SFC2, data->sfc2);
  1355. reg = data->auto_pwm_min_hyst[nr/2];
  1356. reg = (reg & 0xf0) | (LM93_TEMP_OFFSET_TO_REG(val, 1) & 0x0f);
  1357. data->auto_pwm_min_hyst[nr/2] = reg;
  1358. lm93_write_byte(client, LM93_REG_PWM_MIN_HYST(nr), reg);
  1359. mutex_unlock(&data->update_lock);
  1360. return count;
  1361. }
  1362. static SENSOR_DEVICE_ATTR_RW(temp1_auto_offset_hyst, temp_auto_offset_hyst, 0);
  1363. static SENSOR_DEVICE_ATTR_RW(temp2_auto_offset_hyst, temp_auto_offset_hyst, 1);
  1364. static SENSOR_DEVICE_ATTR_RW(temp3_auto_offset_hyst, temp_auto_offset_hyst, 2);
  1365. static ssize_t fan_input_show(struct device *dev,
  1366. struct device_attribute *attr, char *buf)
  1367. {
  1368. struct sensor_device_attribute *s_attr = to_sensor_dev_attr(attr);
  1369. int nr = s_attr->index;
  1370. struct lm93_data *data = lm93_update_device(dev);
  1371. return sprintf(buf, "%d\n", LM93_FAN_FROM_REG(data->block5[nr]));
  1372. }
  1373. static SENSOR_DEVICE_ATTR_RO(fan1_input, fan_input, 0);
  1374. static SENSOR_DEVICE_ATTR_RO(fan2_input, fan_input, 1);
  1375. static SENSOR_DEVICE_ATTR_RO(fan3_input, fan_input, 2);
  1376. static SENSOR_DEVICE_ATTR_RO(fan4_input, fan_input, 3);
  1377. static ssize_t fan_min_show(struct device *dev, struct device_attribute *attr,
  1378. char *buf)
  1379. {
  1380. int nr = (to_sensor_dev_attr(attr))->index;
  1381. struct lm93_data *data = lm93_update_device(dev);
  1382. return sprintf(buf, "%d\n", LM93_FAN_FROM_REG(data->block8[nr]));
  1383. }
  1384. static ssize_t fan_min_store(struct device *dev,
  1385. struct device_attribute *attr, const char *buf,
  1386. size_t count)
  1387. {
  1388. int nr = (to_sensor_dev_attr(attr))->index;
  1389. struct lm93_data *data = dev_get_drvdata(dev);
  1390. struct i2c_client *client = data->client;
  1391. unsigned long val;
  1392. int err;
  1393. err = kstrtoul(buf, 10, &val);
  1394. if (err)
  1395. return err;
  1396. mutex_lock(&data->update_lock);
  1397. data->block8[nr] = LM93_FAN_TO_REG(val);
  1398. lm93_write_word(client, LM93_REG_FAN_MIN(nr), data->block8[nr]);
  1399. mutex_unlock(&data->update_lock);
  1400. return count;
  1401. }
  1402. static SENSOR_DEVICE_ATTR_RW(fan1_min, fan_min, 0);
  1403. static SENSOR_DEVICE_ATTR_RW(fan2_min, fan_min, 1);
  1404. static SENSOR_DEVICE_ATTR_RW(fan3_min, fan_min, 2);
  1405. static SENSOR_DEVICE_ATTR_RW(fan4_min, fan_min, 3);
  1406. /*
  1407. * some tedious bit-twiddling here to deal with the register format:
  1408. *
  1409. * data->sf_tach_to_pwm: (tach to pwm mapping bits)
  1410. *
  1411. * bit | 7 | 6 | 5 | 4 | 3 | 2 | 1 | 0
  1412. * T4:P2 T4:P1 T3:P2 T3:P1 T2:P2 T2:P1 T1:P2 T1:P1
  1413. *
  1414. * data->sfc2: (enable bits)
  1415. *
  1416. * bit | 3 | 2 | 1 | 0
  1417. * T4 T3 T2 T1
  1418. */
  1419. static ssize_t fan_smart_tach_show(struct device *dev,
  1420. struct device_attribute *attr, char *buf)
  1421. {
  1422. int nr = (to_sensor_dev_attr(attr))->index;
  1423. struct lm93_data *data = lm93_update_device(dev);
  1424. long rc = 0;
  1425. int mapping;
  1426. /* extract the relevant mapping */
  1427. mapping = (data->sf_tach_to_pwm >> (nr * 2)) & 0x03;
  1428. /* if there's a mapping and it's enabled */
  1429. if (mapping && ((data->sfc2 >> nr) & 0x01))
  1430. rc = mapping;
  1431. return sprintf(buf, "%ld\n", rc);
  1432. }
  1433. /*
  1434. * helper function - must grab data->update_lock before calling
  1435. * fan is 0-3, indicating fan1-fan4
  1436. */
  1437. static void lm93_write_fan_smart_tach(struct i2c_client *client,
  1438. struct lm93_data *data, int fan, long value)
  1439. {
  1440. /* insert the new mapping and write it out */
  1441. data->sf_tach_to_pwm = lm93_read_byte(client, LM93_REG_SF_TACH_TO_PWM);
  1442. data->sf_tach_to_pwm &= ~(0x3 << fan * 2);
  1443. data->sf_tach_to_pwm |= value << fan * 2;
  1444. lm93_write_byte(client, LM93_REG_SF_TACH_TO_PWM, data->sf_tach_to_pwm);
  1445. /* insert the enable bit and write it out */
  1446. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  1447. if (value)
  1448. data->sfc2 |= 1 << fan;
  1449. else
  1450. data->sfc2 &= ~(1 << fan);
  1451. lm93_write_byte(client, LM93_REG_SFC2, data->sfc2);
  1452. }
  1453. static ssize_t fan_smart_tach_store(struct device *dev,
  1454. struct device_attribute *attr,
  1455. const char *buf, size_t count)
  1456. {
  1457. int nr = (to_sensor_dev_attr(attr))->index;
  1458. struct lm93_data *data = dev_get_drvdata(dev);
  1459. struct i2c_client *client = data->client;
  1460. unsigned long val;
  1461. int err;
  1462. err = kstrtoul(buf, 10, &val);
  1463. if (err)
  1464. return err;
  1465. mutex_lock(&data->update_lock);
  1466. /* sanity test, ignore the write otherwise */
  1467. if (val <= 2) {
  1468. /* can't enable if pwm freq is 22.5KHz */
  1469. if (val) {
  1470. u8 ctl4 = lm93_read_byte(client,
  1471. LM93_REG_PWM_CTL(val - 1, LM93_PWM_CTL4));
  1472. if ((ctl4 & 0x07) == 0)
  1473. val = 0;
  1474. }
  1475. lm93_write_fan_smart_tach(client, data, nr, val);
  1476. }
  1477. mutex_unlock(&data->update_lock);
  1478. return count;
  1479. }
  1480. static SENSOR_DEVICE_ATTR_RW(fan1_smart_tach, fan_smart_tach, 0);
  1481. static SENSOR_DEVICE_ATTR_RW(fan2_smart_tach, fan_smart_tach, 1);
  1482. static SENSOR_DEVICE_ATTR_RW(fan3_smart_tach, fan_smart_tach, 2);
  1483. static SENSOR_DEVICE_ATTR_RW(fan4_smart_tach, fan_smart_tach, 3);
  1484. static ssize_t pwm_show(struct device *dev, struct device_attribute *attr,
  1485. char *buf)
  1486. {
  1487. int nr = (to_sensor_dev_attr(attr))->index;
  1488. struct lm93_data *data = lm93_update_device(dev);
  1489. u8 ctl2, ctl4;
  1490. long rc;
  1491. ctl2 = data->block9[nr][LM93_PWM_CTL2];
  1492. ctl4 = data->block9[nr][LM93_PWM_CTL4];
  1493. if (ctl2 & 0x01) /* show user commanded value if enabled */
  1494. rc = data->pwm_override[nr];
  1495. else /* show present h/w value if manual pwm disabled */
  1496. rc = LM93_PWM_FROM_REG(ctl2 >> 4, (ctl4 & 0x07) ?
  1497. LM93_PWM_MAP_LO_FREQ : LM93_PWM_MAP_HI_FREQ);
  1498. return sprintf(buf, "%ld\n", rc);
  1499. }
  1500. static ssize_t pwm_store(struct device *dev, struct device_attribute *attr,
  1501. const char *buf, size_t count)
  1502. {
  1503. int nr = (to_sensor_dev_attr(attr))->index;
  1504. struct lm93_data *data = dev_get_drvdata(dev);
  1505. struct i2c_client *client = data->client;
  1506. u8 ctl2, ctl4;
  1507. unsigned long val;
  1508. int err;
  1509. err = kstrtoul(buf, 10, &val);
  1510. if (err)
  1511. return err;
  1512. mutex_lock(&data->update_lock);
  1513. ctl2 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL2));
  1514. ctl4 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL4));
  1515. ctl2 = (ctl2 & 0x0f) | LM93_PWM_TO_REG(val, (ctl4 & 0x07) ?
  1516. LM93_PWM_MAP_LO_FREQ : LM93_PWM_MAP_HI_FREQ) << 4;
  1517. /* save user commanded value */
  1518. data->pwm_override[nr] = LM93_PWM_FROM_REG(ctl2 >> 4,
  1519. (ctl4 & 0x07) ? LM93_PWM_MAP_LO_FREQ :
  1520. LM93_PWM_MAP_HI_FREQ);
  1521. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL2), ctl2);
  1522. mutex_unlock(&data->update_lock);
  1523. return count;
  1524. }
  1525. static SENSOR_DEVICE_ATTR_RW(pwm1, pwm, 0);
  1526. static SENSOR_DEVICE_ATTR_RW(pwm2, pwm, 1);
  1527. static ssize_t pwm_enable_show(struct device *dev,
  1528. struct device_attribute *attr, char *buf)
  1529. {
  1530. int nr = (to_sensor_dev_attr(attr))->index;
  1531. struct lm93_data *data = lm93_update_device(dev);
  1532. u8 ctl2;
  1533. long rc;
  1534. ctl2 = data->block9[nr][LM93_PWM_CTL2];
  1535. if (ctl2 & 0x01) /* manual override enabled ? */
  1536. rc = ((ctl2 & 0xF0) == 0xF0) ? 0 : 1;
  1537. else
  1538. rc = 2;
  1539. return sprintf(buf, "%ld\n", rc);
  1540. }
  1541. static ssize_t pwm_enable_store(struct device *dev,
  1542. struct device_attribute *attr,
  1543. const char *buf, size_t count)
  1544. {
  1545. int nr = (to_sensor_dev_attr(attr))->index;
  1546. struct lm93_data *data = dev_get_drvdata(dev);
  1547. struct i2c_client *client = data->client;
  1548. u8 ctl2;
  1549. unsigned long val;
  1550. int err;
  1551. err = kstrtoul(buf, 10, &val);
  1552. if (err)
  1553. return err;
  1554. mutex_lock(&data->update_lock);
  1555. ctl2 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL2));
  1556. switch (val) {
  1557. case 0:
  1558. ctl2 |= 0xF1; /* enable manual override, set PWM to max */
  1559. break;
  1560. case 1:
  1561. ctl2 |= 0x01; /* enable manual override */
  1562. break;
  1563. case 2:
  1564. ctl2 &= ~0x01; /* disable manual override */
  1565. break;
  1566. default:
  1567. mutex_unlock(&data->update_lock);
  1568. return -EINVAL;
  1569. }
  1570. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL2), ctl2);
  1571. mutex_unlock(&data->update_lock);
  1572. return count;
  1573. }
  1574. static SENSOR_DEVICE_ATTR_RW(pwm1_enable, pwm_enable, 0);
  1575. static SENSOR_DEVICE_ATTR_RW(pwm2_enable, pwm_enable, 1);
  1576. static ssize_t pwm_freq_show(struct device *dev,
  1577. struct device_attribute *attr, char *buf)
  1578. {
  1579. int nr = (to_sensor_dev_attr(attr))->index;
  1580. struct lm93_data *data = lm93_update_device(dev);
  1581. u8 ctl4;
  1582. ctl4 = data->block9[nr][LM93_PWM_CTL4];
  1583. return sprintf(buf, "%d\n", LM93_PWM_FREQ_FROM_REG(ctl4));
  1584. }
  1585. /*
  1586. * helper function - must grab data->update_lock before calling
  1587. * pwm is 0-1, indicating pwm1-pwm2
  1588. * this disables smart tach for all tach channels bound to the given pwm
  1589. */
  1590. static void lm93_disable_fan_smart_tach(struct i2c_client *client,
  1591. struct lm93_data *data, int pwm)
  1592. {
  1593. int mapping = lm93_read_byte(client, LM93_REG_SF_TACH_TO_PWM);
  1594. int mask;
  1595. /* collapse the mapping into a mask of enable bits */
  1596. mapping = (mapping >> pwm) & 0x55;
  1597. mask = mapping & 0x01;
  1598. mask |= (mapping & 0x04) >> 1;
  1599. mask |= (mapping & 0x10) >> 2;
  1600. mask |= (mapping & 0x40) >> 3;
  1601. /* disable smart tach according to the mask */
  1602. data->sfc2 = lm93_read_byte(client, LM93_REG_SFC2);
  1603. data->sfc2 &= ~mask;
  1604. lm93_write_byte(client, LM93_REG_SFC2, data->sfc2);
  1605. }
  1606. static ssize_t pwm_freq_store(struct device *dev,
  1607. struct device_attribute *attr, const char *buf,
  1608. size_t count)
  1609. {
  1610. int nr = (to_sensor_dev_attr(attr))->index;
  1611. struct lm93_data *data = dev_get_drvdata(dev);
  1612. struct i2c_client *client = data->client;
  1613. u8 ctl4;
  1614. unsigned long val;
  1615. int err;
  1616. err = kstrtoul(buf, 10, &val);
  1617. if (err)
  1618. return err;
  1619. mutex_lock(&data->update_lock);
  1620. ctl4 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL4));
  1621. ctl4 = (ctl4 & 0xf8) | LM93_PWM_FREQ_TO_REG(val);
  1622. data->block9[nr][LM93_PWM_CTL4] = ctl4;
  1623. /* ctl4 == 0 -> 22.5KHz -> disable smart tach */
  1624. if (!ctl4)
  1625. lm93_disable_fan_smart_tach(client, data, nr);
  1626. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL4), ctl4);
  1627. mutex_unlock(&data->update_lock);
  1628. return count;
  1629. }
  1630. static SENSOR_DEVICE_ATTR_RW(pwm1_freq, pwm_freq, 0);
  1631. static SENSOR_DEVICE_ATTR_RW(pwm2_freq, pwm_freq, 1);
  1632. static ssize_t pwm_auto_channels_show(struct device *dev,
  1633. struct device_attribute *attr,
  1634. char *buf)
  1635. {
  1636. int nr = (to_sensor_dev_attr(attr))->index;
  1637. struct lm93_data *data = lm93_update_device(dev);
  1638. return sprintf(buf, "%d\n", data->block9[nr][LM93_PWM_CTL1]);
  1639. }
  1640. static ssize_t pwm_auto_channels_store(struct device *dev,
  1641. struct device_attribute *attr,
  1642. const char *buf, size_t count)
  1643. {
  1644. int nr = (to_sensor_dev_attr(attr))->index;
  1645. struct lm93_data *data = dev_get_drvdata(dev);
  1646. struct i2c_client *client = data->client;
  1647. unsigned long val;
  1648. int err;
  1649. err = kstrtoul(buf, 10, &val);
  1650. if (err)
  1651. return err;
  1652. mutex_lock(&data->update_lock);
  1653. data->block9[nr][LM93_PWM_CTL1] = clamp_val(val, 0, 255);
  1654. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL1),
  1655. data->block9[nr][LM93_PWM_CTL1]);
  1656. mutex_unlock(&data->update_lock);
  1657. return count;
  1658. }
  1659. static SENSOR_DEVICE_ATTR_RW(pwm1_auto_channels, pwm_auto_channels, 0);
  1660. static SENSOR_DEVICE_ATTR_RW(pwm2_auto_channels, pwm_auto_channels, 1);
  1661. static ssize_t pwm_auto_spinup_min_show(struct device *dev,
  1662. struct device_attribute *attr,
  1663. char *buf)
  1664. {
  1665. int nr = (to_sensor_dev_attr(attr))->index;
  1666. struct lm93_data *data = lm93_update_device(dev);
  1667. u8 ctl3, ctl4;
  1668. ctl3 = data->block9[nr][LM93_PWM_CTL3];
  1669. ctl4 = data->block9[nr][LM93_PWM_CTL4];
  1670. return sprintf(buf, "%d\n",
  1671. LM93_PWM_FROM_REG(ctl3 & 0x0f, (ctl4 & 0x07) ?
  1672. LM93_PWM_MAP_LO_FREQ : LM93_PWM_MAP_HI_FREQ));
  1673. }
  1674. static ssize_t pwm_auto_spinup_min_store(struct device *dev,
  1675. struct device_attribute *attr,
  1676. const char *buf, size_t count)
  1677. {
  1678. int nr = (to_sensor_dev_attr(attr))->index;
  1679. struct lm93_data *data = dev_get_drvdata(dev);
  1680. struct i2c_client *client = data->client;
  1681. u8 ctl3, ctl4;
  1682. unsigned long val;
  1683. int err;
  1684. err = kstrtoul(buf, 10, &val);
  1685. if (err)
  1686. return err;
  1687. mutex_lock(&data->update_lock);
  1688. ctl3 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL3));
  1689. ctl4 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL4));
  1690. ctl3 = (ctl3 & 0xf0) | LM93_PWM_TO_REG(val, (ctl4 & 0x07) ?
  1691. LM93_PWM_MAP_LO_FREQ :
  1692. LM93_PWM_MAP_HI_FREQ);
  1693. data->block9[nr][LM93_PWM_CTL3] = ctl3;
  1694. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL3), ctl3);
  1695. mutex_unlock(&data->update_lock);
  1696. return count;
  1697. }
  1698. static SENSOR_DEVICE_ATTR_RW(pwm1_auto_spinup_min, pwm_auto_spinup_min, 0);
  1699. static SENSOR_DEVICE_ATTR_RW(pwm2_auto_spinup_min, pwm_auto_spinup_min, 1);
  1700. static ssize_t pwm_auto_spinup_time_show(struct device *dev,
  1701. struct device_attribute *attr,
  1702. char *buf)
  1703. {
  1704. int nr = (to_sensor_dev_attr(attr))->index;
  1705. struct lm93_data *data = lm93_update_device(dev);
  1706. return sprintf(buf, "%d\n", LM93_SPINUP_TIME_FROM_REG(
  1707. data->block9[nr][LM93_PWM_CTL3]));
  1708. }
  1709. static ssize_t pwm_auto_spinup_time_store(struct device *dev,
  1710. struct device_attribute *attr,
  1711. const char *buf, size_t count)
  1712. {
  1713. int nr = (to_sensor_dev_attr(attr))->index;
  1714. struct lm93_data *data = dev_get_drvdata(dev);
  1715. struct i2c_client *client = data->client;
  1716. u8 ctl3;
  1717. unsigned long val;
  1718. int err;
  1719. err = kstrtoul(buf, 10, &val);
  1720. if (err)
  1721. return err;
  1722. mutex_lock(&data->update_lock);
  1723. ctl3 = lm93_read_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL3));
  1724. ctl3 = (ctl3 & 0x1f) | (LM93_SPINUP_TIME_TO_REG(val) << 5 & 0xe0);
  1725. data->block9[nr][LM93_PWM_CTL3] = ctl3;
  1726. lm93_write_byte(client, LM93_REG_PWM_CTL(nr, LM93_PWM_CTL3), ctl3);
  1727. mutex_unlock(&data->update_lock);
  1728. return count;
  1729. }
  1730. static SENSOR_DEVICE_ATTR_RW(pwm1_auto_spinup_time, pwm_auto_spinup_time, 0);
  1731. static SENSOR_DEVICE_ATTR_RW(pwm2_auto_spinup_time, pwm_auto_spinup_time, 1);
  1732. static ssize_t pwm_auto_prochot_ramp_show(struct device *dev,
  1733. struct device_attribute *attr, char *buf)
  1734. {
  1735. struct lm93_data *data = lm93_update_device(dev);
  1736. return sprintf(buf, "%d\n",
  1737. LM93_RAMP_FROM_REG(data->pwm_ramp_ctl >> 4 & 0x0f));
  1738. }
  1739. static ssize_t pwm_auto_prochot_ramp_store(struct device *dev,
  1740. struct device_attribute *attr,
  1741. const char *buf, size_t count)
  1742. {
  1743. struct lm93_data *data = dev_get_drvdata(dev);
  1744. struct i2c_client *client = data->client;
  1745. u8 ramp;
  1746. unsigned long val;
  1747. int err;
  1748. err = kstrtoul(buf, 10, &val);
  1749. if (err)
  1750. return err;
  1751. mutex_lock(&data->update_lock);
  1752. ramp = lm93_read_byte(client, LM93_REG_PWM_RAMP_CTL);
  1753. ramp = (ramp & 0x0f) | (LM93_RAMP_TO_REG(val) << 4 & 0xf0);
  1754. lm93_write_byte(client, LM93_REG_PWM_RAMP_CTL, ramp);
  1755. mutex_unlock(&data->update_lock);
  1756. return count;
  1757. }
  1758. static DEVICE_ATTR_RW(pwm_auto_prochot_ramp);
  1759. static ssize_t pwm_auto_vrdhot_ramp_show(struct device *dev,
  1760. struct device_attribute *attr, char *buf)
  1761. {
  1762. struct lm93_data *data = lm93_update_device(dev);
  1763. return sprintf(buf, "%d\n",
  1764. LM93_RAMP_FROM_REG(data->pwm_ramp_ctl & 0x0f));
  1765. }
  1766. static ssize_t pwm_auto_vrdhot_ramp_store(struct device *dev,
  1767. struct device_attribute *attr,
  1768. const char *buf, size_t count)
  1769. {
  1770. struct lm93_data *data = dev_get_drvdata(dev);
  1771. struct i2c_client *client = data->client;
  1772. u8 ramp;
  1773. unsigned long val;
  1774. int err;
  1775. err = kstrtoul(buf, 10, &val);
  1776. if (err)
  1777. return err;
  1778. mutex_lock(&data->update_lock);
  1779. ramp = lm93_read_byte(client, LM93_REG_PWM_RAMP_CTL);
  1780. ramp = (ramp & 0xf0) | (LM93_RAMP_TO_REG(val) & 0x0f);
  1781. lm93_write_byte(client, LM93_REG_PWM_RAMP_CTL, ramp);
  1782. mutex_unlock(&data->update_lock);
  1783. return 0;
  1784. }
  1785. static DEVICE_ATTR_RW(pwm_auto_vrdhot_ramp);
  1786. static ssize_t vid_show(struct device *dev, struct device_attribute *attr,
  1787. char *buf)
  1788. {
  1789. int nr = (to_sensor_dev_attr(attr))->index;
  1790. struct lm93_data *data = lm93_update_device(dev);
  1791. return sprintf(buf, "%d\n", LM93_VID_FROM_REG(data->vid[nr]));
  1792. }
  1793. static SENSOR_DEVICE_ATTR_RO(cpu0_vid, vid, 0);
  1794. static SENSOR_DEVICE_ATTR_RO(cpu1_vid, vid, 1);
  1795. static ssize_t prochot_show(struct device *dev, struct device_attribute *attr,
  1796. char *buf)
  1797. {
  1798. int nr = (to_sensor_dev_attr(attr))->index;
  1799. struct lm93_data *data = lm93_update_device(dev);
  1800. return sprintf(buf, "%d\n", data->block4[nr].cur);
  1801. }
  1802. static SENSOR_DEVICE_ATTR_RO(prochot1, prochot, 0);
  1803. static SENSOR_DEVICE_ATTR_RO(prochot2, prochot, 1);
  1804. static ssize_t prochot_avg_show(struct device *dev,
  1805. struct device_attribute *attr, char *buf)
  1806. {
  1807. int nr = (to_sensor_dev_attr(attr))->index;
  1808. struct lm93_data *data = lm93_update_device(dev);
  1809. return sprintf(buf, "%d\n", data->block4[nr].avg);
  1810. }
  1811. static SENSOR_DEVICE_ATTR_RO(prochot1_avg, prochot_avg, 0);
  1812. static SENSOR_DEVICE_ATTR_RO(prochot2_avg, prochot_avg, 1);
  1813. static ssize_t prochot_max_show(struct device *dev,
  1814. struct device_attribute *attr, char *buf)
  1815. {
  1816. int nr = (to_sensor_dev_attr(attr))->index;
  1817. struct lm93_data *data = lm93_update_device(dev);
  1818. return sprintf(buf, "%d\n", data->prochot_max[nr]);
  1819. }
  1820. static ssize_t prochot_max_store(struct device *dev,
  1821. struct device_attribute *attr,
  1822. const char *buf, size_t count)
  1823. {
  1824. int nr = (to_sensor_dev_attr(attr))->index;
  1825. struct lm93_data *data = dev_get_drvdata(dev);
  1826. struct i2c_client *client = data->client;
  1827. unsigned long val;
  1828. int err;
  1829. err = kstrtoul(buf, 10, &val);
  1830. if (err)
  1831. return err;
  1832. mutex_lock(&data->update_lock);
  1833. data->prochot_max[nr] = LM93_PROCHOT_TO_REG(val);
  1834. lm93_write_byte(client, LM93_REG_PROCHOT_MAX(nr),
  1835. data->prochot_max[nr]);
  1836. mutex_unlock(&data->update_lock);
  1837. return count;
  1838. }
  1839. static SENSOR_DEVICE_ATTR_RW(prochot1_max, prochot_max, 0);
  1840. static SENSOR_DEVICE_ATTR_RW(prochot2_max, prochot_max, 1);
  1841. static const u8 prochot_override_mask[] = { 0x80, 0x40 };
  1842. static ssize_t prochot_override_show(struct device *dev,
  1843. struct device_attribute *attr, char *buf)
  1844. {
  1845. int nr = (to_sensor_dev_attr(attr))->index;
  1846. struct lm93_data *data = lm93_update_device(dev);
  1847. return sprintf(buf, "%d\n",
  1848. (data->prochot_override & prochot_override_mask[nr]) ? 1 : 0);
  1849. }
  1850. static ssize_t prochot_override_store(struct device *dev,
  1851. struct device_attribute *attr,
  1852. const char *buf, size_t count)
  1853. {
  1854. int nr = (to_sensor_dev_attr(attr))->index;
  1855. struct lm93_data *data = dev_get_drvdata(dev);
  1856. struct i2c_client *client = data->client;
  1857. unsigned long val;
  1858. int err;
  1859. err = kstrtoul(buf, 10, &val);
  1860. if (err)
  1861. return err;
  1862. mutex_lock(&data->update_lock);
  1863. if (val)
  1864. data->prochot_override |= prochot_override_mask[nr];
  1865. else
  1866. data->prochot_override &= (~prochot_override_mask[nr]);
  1867. lm93_write_byte(client, LM93_REG_PROCHOT_OVERRIDE,
  1868. data->prochot_override);
  1869. mutex_unlock(&data->update_lock);
  1870. return count;
  1871. }
  1872. static SENSOR_DEVICE_ATTR_RW(prochot1_override, prochot_override, 0);
  1873. static SENSOR_DEVICE_ATTR_RW(prochot2_override, prochot_override, 1);
  1874. static ssize_t prochot_interval_show(struct device *dev,
  1875. struct device_attribute *attr, char *buf)
  1876. {
  1877. int nr = (to_sensor_dev_attr(attr))->index;
  1878. struct lm93_data *data = lm93_update_device(dev);
  1879. u8 tmp;
  1880. if (nr == 1)
  1881. tmp = (data->prochot_interval & 0xf0) >> 4;
  1882. else
  1883. tmp = data->prochot_interval & 0x0f;
  1884. return sprintf(buf, "%d\n", LM93_INTERVAL_FROM_REG(tmp));
  1885. }
  1886. static ssize_t prochot_interval_store(struct device *dev,
  1887. struct device_attribute *attr,
  1888. const char *buf, size_t count)
  1889. {
  1890. int nr = (to_sensor_dev_attr(attr))->index;
  1891. struct lm93_data *data = dev_get_drvdata(dev);
  1892. struct i2c_client *client = data->client;
  1893. u8 tmp;
  1894. unsigned long val;
  1895. int err;
  1896. err = kstrtoul(buf, 10, &val);
  1897. if (err)
  1898. return err;
  1899. mutex_lock(&data->update_lock);
  1900. tmp = lm93_read_byte(client, LM93_REG_PROCHOT_INTERVAL);
  1901. if (nr == 1)
  1902. tmp = (tmp & 0x0f) | (LM93_INTERVAL_TO_REG(val) << 4);
  1903. else
  1904. tmp = (tmp & 0xf0) | LM93_INTERVAL_TO_REG(val);
  1905. data->prochot_interval = tmp;
  1906. lm93_write_byte(client, LM93_REG_PROCHOT_INTERVAL, tmp);
  1907. mutex_unlock(&data->update_lock);
  1908. return count;
  1909. }
  1910. static SENSOR_DEVICE_ATTR_RW(prochot1_interval, prochot_interval, 0);
  1911. static SENSOR_DEVICE_ATTR_RW(prochot2_interval, prochot_interval, 1);
  1912. static ssize_t prochot_override_duty_cycle_show(struct device *dev,
  1913. struct device_attribute *attr,
  1914. char *buf)
  1915. {
  1916. struct lm93_data *data = lm93_update_device(dev);
  1917. return sprintf(buf, "%d\n", data->prochot_override & 0x0f);
  1918. }
  1919. static ssize_t prochot_override_duty_cycle_store(struct device *dev,
  1920. struct device_attribute *attr,
  1921. const char *buf, size_t count)
  1922. {
  1923. struct lm93_data *data = dev_get_drvdata(dev);
  1924. struct i2c_client *client = data->client;
  1925. unsigned long val;
  1926. int err;
  1927. err = kstrtoul(buf, 10, &val);
  1928. if (err)
  1929. return err;
  1930. mutex_lock(&data->update_lock);
  1931. data->prochot_override = (data->prochot_override & 0xf0) |
  1932. clamp_val(val, 0, 15);
  1933. lm93_write_byte(client, LM93_REG_PROCHOT_OVERRIDE,
  1934. data->prochot_override);
  1935. mutex_unlock(&data->update_lock);
  1936. return count;
  1937. }
  1938. static DEVICE_ATTR_RW(prochot_override_duty_cycle);
  1939. static ssize_t prochot_short_show(struct device *dev,
  1940. struct device_attribute *attr, char *buf)
  1941. {
  1942. struct lm93_data *data = lm93_update_device(dev);
  1943. return sprintf(buf, "%d\n", (data->config & 0x10) ? 1 : 0);
  1944. }
  1945. static ssize_t prochot_short_store(struct device *dev,
  1946. struct device_attribute *attr,
  1947. const char *buf, size_t count)
  1948. {
  1949. struct lm93_data *data = dev_get_drvdata(dev);
  1950. struct i2c_client *client = data->client;
  1951. unsigned long val;
  1952. int err;
  1953. err = kstrtoul(buf, 10, &val);
  1954. if (err)
  1955. return err;
  1956. mutex_lock(&data->update_lock);
  1957. if (val)
  1958. data->config |= 0x10;
  1959. else
  1960. data->config &= ~0x10;
  1961. lm93_write_byte(client, LM93_REG_CONFIG, data->config);
  1962. mutex_unlock(&data->update_lock);
  1963. return count;
  1964. }
  1965. static DEVICE_ATTR_RW(prochot_short);
  1966. static ssize_t vrdhot_show(struct device *dev, struct device_attribute *attr,
  1967. char *buf)
  1968. {
  1969. int nr = (to_sensor_dev_attr(attr))->index;
  1970. struct lm93_data *data = lm93_update_device(dev);
  1971. return sprintf(buf, "%d\n",
  1972. data->block1.host_status_1 & (1 << (nr + 4)) ? 1 : 0);
  1973. }
  1974. static SENSOR_DEVICE_ATTR_RO(vrdhot1, vrdhot, 0);
  1975. static SENSOR_DEVICE_ATTR_RO(vrdhot2, vrdhot, 1);
  1976. static ssize_t gpio_show(struct device *dev, struct device_attribute *attr,
  1977. char *buf)
  1978. {
  1979. struct lm93_data *data = lm93_update_device(dev);
  1980. return sprintf(buf, "%d\n", LM93_GPI_FROM_REG(data->gpi));
  1981. }
  1982. static DEVICE_ATTR_RO(gpio);
  1983. static ssize_t alarms_show(struct device *dev, struct device_attribute *attr,
  1984. char *buf)
  1985. {
  1986. struct lm93_data *data = lm93_update_device(dev);
  1987. return sprintf(buf, "%d\n", LM93_ALARMS_FROM_REG(data->block1));
  1988. }
  1989. static DEVICE_ATTR_RO(alarms);
  1990. static struct attribute *lm93_attrs[] = {
  1991. &sensor_dev_attr_in1_input.dev_attr.attr,
  1992. &sensor_dev_attr_in2_input.dev_attr.attr,
  1993. &sensor_dev_attr_in3_input.dev_attr.attr,
  1994. &sensor_dev_attr_in4_input.dev_attr.attr,
  1995. &sensor_dev_attr_in5_input.dev_attr.attr,
  1996. &sensor_dev_attr_in6_input.dev_attr.attr,
  1997. &sensor_dev_attr_in7_input.dev_attr.attr,
  1998. &sensor_dev_attr_in8_input.dev_attr.attr,
  1999. &sensor_dev_attr_in9_input.dev_attr.attr,
  2000. &sensor_dev_attr_in10_input.dev_attr.attr,
  2001. &sensor_dev_attr_in11_input.dev_attr.attr,
  2002. &sensor_dev_attr_in12_input.dev_attr.attr,
  2003. &sensor_dev_attr_in13_input.dev_attr.attr,
  2004. &sensor_dev_attr_in14_input.dev_attr.attr,
  2005. &sensor_dev_attr_in15_input.dev_attr.attr,
  2006. &sensor_dev_attr_in16_input.dev_attr.attr,
  2007. &sensor_dev_attr_in1_min.dev_attr.attr,
  2008. &sensor_dev_attr_in2_min.dev_attr.attr,
  2009. &sensor_dev_attr_in3_min.dev_attr.attr,
  2010. &sensor_dev_attr_in4_min.dev_attr.attr,
  2011. &sensor_dev_attr_in5_min.dev_attr.attr,
  2012. &sensor_dev_attr_in6_min.dev_attr.attr,
  2013. &sensor_dev_attr_in7_min.dev_attr.attr,
  2014. &sensor_dev_attr_in8_min.dev_attr.attr,
  2015. &sensor_dev_attr_in9_min.dev_attr.attr,
  2016. &sensor_dev_attr_in10_min.dev_attr.attr,
  2017. &sensor_dev_attr_in11_min.dev_attr.attr,
  2018. &sensor_dev_attr_in12_min.dev_attr.attr,
  2019. &sensor_dev_attr_in13_min.dev_attr.attr,
  2020. &sensor_dev_attr_in14_min.dev_attr.attr,
  2021. &sensor_dev_attr_in15_min.dev_attr.attr,
  2022. &sensor_dev_attr_in16_min.dev_attr.attr,
  2023. &sensor_dev_attr_in1_max.dev_attr.attr,
  2024. &sensor_dev_attr_in2_max.dev_attr.attr,
  2025. &sensor_dev_attr_in3_max.dev_attr.attr,
  2026. &sensor_dev_attr_in4_max.dev_attr.attr,
  2027. &sensor_dev_attr_in5_max.dev_attr.attr,
  2028. &sensor_dev_attr_in6_max.dev_attr.attr,
  2029. &sensor_dev_attr_in7_max.dev_attr.attr,
  2030. &sensor_dev_attr_in8_max.dev_attr.attr,
  2031. &sensor_dev_attr_in9_max.dev_attr.attr,
  2032. &sensor_dev_attr_in10_max.dev_attr.attr,
  2033. &sensor_dev_attr_in11_max.dev_attr.attr,
  2034. &sensor_dev_attr_in12_max.dev_attr.attr,
  2035. &sensor_dev_attr_in13_max.dev_attr.attr,
  2036. &sensor_dev_attr_in14_max.dev_attr.attr,
  2037. &sensor_dev_attr_in15_max.dev_attr.attr,
  2038. &sensor_dev_attr_in16_max.dev_attr.attr,
  2039. &sensor_dev_attr_temp1_input.dev_attr.attr,
  2040. &sensor_dev_attr_temp2_input.dev_attr.attr,
  2041. &sensor_dev_attr_temp3_input.dev_attr.attr,
  2042. &sensor_dev_attr_temp1_min.dev_attr.attr,
  2043. &sensor_dev_attr_temp2_min.dev_attr.attr,
  2044. &sensor_dev_attr_temp3_min.dev_attr.attr,
  2045. &sensor_dev_attr_temp1_max.dev_attr.attr,
  2046. &sensor_dev_attr_temp2_max.dev_attr.attr,
  2047. &sensor_dev_attr_temp3_max.dev_attr.attr,
  2048. &sensor_dev_attr_temp1_auto_base.dev_attr.attr,
  2049. &sensor_dev_attr_temp2_auto_base.dev_attr.attr,
  2050. &sensor_dev_attr_temp3_auto_base.dev_attr.attr,
  2051. &sensor_dev_attr_temp1_auto_boost.dev_attr.attr,
  2052. &sensor_dev_attr_temp2_auto_boost.dev_attr.attr,
  2053. &sensor_dev_attr_temp3_auto_boost.dev_attr.attr,
  2054. &sensor_dev_attr_temp1_auto_boost_hyst.dev_attr.attr,
  2055. &sensor_dev_attr_temp2_auto_boost_hyst.dev_attr.attr,
  2056. &sensor_dev_attr_temp3_auto_boost_hyst.dev_attr.attr,
  2057. &sensor_dev_attr_temp1_auto_offset1.dev_attr.attr,
  2058. &sensor_dev_attr_temp1_auto_offset2.dev_attr.attr,
  2059. &sensor_dev_attr_temp1_auto_offset3.dev_attr.attr,
  2060. &sensor_dev_attr_temp1_auto_offset4.dev_attr.attr,
  2061. &sensor_dev_attr_temp1_auto_offset5.dev_attr.attr,
  2062. &sensor_dev_attr_temp1_auto_offset6.dev_attr.attr,
  2063. &sensor_dev_attr_temp1_auto_offset7.dev_attr.attr,
  2064. &sensor_dev_attr_temp1_auto_offset8.dev_attr.attr,
  2065. &sensor_dev_attr_temp1_auto_offset9.dev_attr.attr,
  2066. &sensor_dev_attr_temp1_auto_offset10.dev_attr.attr,
  2067. &sensor_dev_attr_temp1_auto_offset11.dev_attr.attr,
  2068. &sensor_dev_attr_temp1_auto_offset12.dev_attr.attr,
  2069. &sensor_dev_attr_temp2_auto_offset1.dev_attr.attr,
  2070. &sensor_dev_attr_temp2_auto_offset2.dev_attr.attr,
  2071. &sensor_dev_attr_temp2_auto_offset3.dev_attr.attr,
  2072. &sensor_dev_attr_temp2_auto_offset4.dev_attr.attr,
  2073. &sensor_dev_attr_temp2_auto_offset5.dev_attr.attr,
  2074. &sensor_dev_attr_temp2_auto_offset6.dev_attr.attr,
  2075. &sensor_dev_attr_temp2_auto_offset7.dev_attr.attr,
  2076. &sensor_dev_attr_temp2_auto_offset8.dev_attr.attr,
  2077. &sensor_dev_attr_temp2_auto_offset9.dev_attr.attr,
  2078. &sensor_dev_attr_temp2_auto_offset10.dev_attr.attr,
  2079. &sensor_dev_attr_temp2_auto_offset11.dev_attr.attr,
  2080. &sensor_dev_attr_temp2_auto_offset12.dev_attr.attr,
  2081. &sensor_dev_attr_temp3_auto_offset1.dev_attr.attr,
  2082. &sensor_dev_attr_temp3_auto_offset2.dev_attr.attr,
  2083. &sensor_dev_attr_temp3_auto_offset3.dev_attr.attr,
  2084. &sensor_dev_attr_temp3_auto_offset4.dev_attr.attr,
  2085. &sensor_dev_attr_temp3_auto_offset5.dev_attr.attr,
  2086. &sensor_dev_attr_temp3_auto_offset6.dev_attr.attr,
  2087. &sensor_dev_attr_temp3_auto_offset7.dev_attr.attr,
  2088. &sensor_dev_attr_temp3_auto_offset8.dev_attr.attr,
  2089. &sensor_dev_attr_temp3_auto_offset9.dev_attr.attr,
  2090. &sensor_dev_attr_temp3_auto_offset10.dev_attr.attr,
  2091. &sensor_dev_attr_temp3_auto_offset11.dev_attr.attr,
  2092. &sensor_dev_attr_temp3_auto_offset12.dev_attr.attr,
  2093. &sensor_dev_attr_temp1_auto_pwm_min.dev_attr.attr,
  2094. &sensor_dev_attr_temp2_auto_pwm_min.dev_attr.attr,
  2095. &sensor_dev_attr_temp3_auto_pwm_min.dev_attr.attr,
  2096. &sensor_dev_attr_temp1_auto_offset_hyst.dev_attr.attr,
  2097. &sensor_dev_attr_temp2_auto_offset_hyst.dev_attr.attr,
  2098. &sensor_dev_attr_temp3_auto_offset_hyst.dev_attr.attr,
  2099. &sensor_dev_attr_fan1_input.dev_attr.attr,
  2100. &sensor_dev_attr_fan2_input.dev_attr.attr,
  2101. &sensor_dev_attr_fan3_input.dev_attr.attr,
  2102. &sensor_dev_attr_fan4_input.dev_attr.attr,
  2103. &sensor_dev_attr_fan1_min.dev_attr.attr,
  2104. &sensor_dev_attr_fan2_min.dev_attr.attr,
  2105. &sensor_dev_attr_fan3_min.dev_attr.attr,
  2106. &sensor_dev_attr_fan4_min.dev_attr.attr,
  2107. &sensor_dev_attr_fan1_smart_tach.dev_attr.attr,
  2108. &sensor_dev_attr_fan2_smart_tach.dev_attr.attr,
  2109. &sensor_dev_attr_fan3_smart_tach.dev_attr.attr,
  2110. &sensor_dev_attr_fan4_smart_tach.dev_attr.attr,
  2111. &sensor_dev_attr_pwm1.dev_attr.attr,
  2112. &sensor_dev_attr_pwm2.dev_attr.attr,
  2113. &sensor_dev_attr_pwm1_enable.dev_attr.attr,
  2114. &sensor_dev_attr_pwm2_enable.dev_attr.attr,
  2115. &sensor_dev_attr_pwm1_freq.dev_attr.attr,
  2116. &sensor_dev_attr_pwm2_freq.dev_attr.attr,
  2117. &sensor_dev_attr_pwm1_auto_channels.dev_attr.attr,
  2118. &sensor_dev_attr_pwm2_auto_channels.dev_attr.attr,
  2119. &sensor_dev_attr_pwm1_auto_spinup_min.dev_attr.attr,
  2120. &sensor_dev_attr_pwm2_auto_spinup_min.dev_attr.attr,
  2121. &sensor_dev_attr_pwm1_auto_spinup_time.dev_attr.attr,
  2122. &sensor_dev_attr_pwm2_auto_spinup_time.dev_attr.attr,
  2123. &dev_attr_pwm_auto_prochot_ramp.attr,
  2124. &dev_attr_pwm_auto_vrdhot_ramp.attr,
  2125. &sensor_dev_attr_cpu0_vid.dev_attr.attr,
  2126. &sensor_dev_attr_cpu1_vid.dev_attr.attr,
  2127. &sensor_dev_attr_prochot1.dev_attr.attr,
  2128. &sensor_dev_attr_prochot2.dev_attr.attr,
  2129. &sensor_dev_attr_prochot1_avg.dev_attr.attr,
  2130. &sensor_dev_attr_prochot2_avg.dev_attr.attr,
  2131. &sensor_dev_attr_prochot1_max.dev_attr.attr,
  2132. &sensor_dev_attr_prochot2_max.dev_attr.attr,
  2133. &sensor_dev_attr_prochot1_override.dev_attr.attr,
  2134. &sensor_dev_attr_prochot2_override.dev_attr.attr,
  2135. &sensor_dev_attr_prochot1_interval.dev_attr.attr,
  2136. &sensor_dev_attr_prochot2_interval.dev_attr.attr,
  2137. &dev_attr_prochot_override_duty_cycle.attr,
  2138. &dev_attr_prochot_short.attr,
  2139. &sensor_dev_attr_vrdhot1.dev_attr.attr,
  2140. &sensor_dev_attr_vrdhot2.dev_attr.attr,
  2141. &dev_attr_gpio.attr,
  2142. &dev_attr_alarms.attr,
  2143. NULL
  2144. };
  2145. ATTRIBUTE_GROUPS(lm93);
  2146. static void lm93_init_client(struct i2c_client *client)
  2147. {
  2148. int i;
  2149. u8 reg;
  2150. /* configure VID pin input thresholds */
  2151. reg = lm93_read_byte(client, LM93_REG_GPI_VID_CTL);
  2152. lm93_write_byte(client, LM93_REG_GPI_VID_CTL,
  2153. reg | (vid_agtl ? 0x03 : 0x00));
  2154. if (init) {
  2155. /* enable #ALERT pin */
  2156. reg = lm93_read_byte(client, LM93_REG_CONFIG);
  2157. lm93_write_byte(client, LM93_REG_CONFIG, reg | 0x08);
  2158. /* enable ASF mode for BMC status registers */
  2159. reg = lm93_read_byte(client, LM93_REG_STATUS_CONTROL);
  2160. lm93_write_byte(client, LM93_REG_STATUS_CONTROL, reg | 0x02);
  2161. /* set sleep state to S0 */
  2162. lm93_write_byte(client, LM93_REG_SLEEP_CONTROL, 0);
  2163. /* unmask #VRDHOT and dynamic VCCP (if nec) error events */
  2164. reg = lm93_read_byte(client, LM93_REG_MISC_ERR_MASK);
  2165. reg &= ~0x03;
  2166. reg &= ~(vccp_limit_type[0] ? 0x10 : 0);
  2167. reg &= ~(vccp_limit_type[1] ? 0x20 : 0);
  2168. lm93_write_byte(client, LM93_REG_MISC_ERR_MASK, reg);
  2169. }
  2170. /* start monitoring */
  2171. reg = lm93_read_byte(client, LM93_REG_CONFIG);
  2172. lm93_write_byte(client, LM93_REG_CONFIG, reg | 0x01);
  2173. /* spin until ready */
  2174. for (i = 0; i < 20; i++) {
  2175. msleep(10);
  2176. if ((lm93_read_byte(client, LM93_REG_CONFIG) & 0x80) == 0x80)
  2177. return;
  2178. }
  2179. dev_warn(&client->dev,
  2180. "timed out waiting for sensor chip to signal ready!\n");
  2181. }
  2182. /* Return 0 if detection is successful, -ENODEV otherwise */
  2183. static int lm93_detect(struct i2c_client *client, struct i2c_board_info *info)
  2184. {
  2185. struct i2c_adapter *adapter = client->adapter;
  2186. int mfr, ver;
  2187. const char *name;
  2188. if (!i2c_check_functionality(adapter, LM93_SMBUS_FUNC_MIN))
  2189. return -ENODEV;
  2190. /* detection */
  2191. mfr = lm93_read_byte(client, LM93_REG_MFR_ID);
  2192. if (mfr != 0x01) {
  2193. dev_dbg(&adapter->dev,
  2194. "detect failed, bad manufacturer id 0x%02x!\n", mfr);
  2195. return -ENODEV;
  2196. }
  2197. ver = lm93_read_byte(client, LM93_REG_VER);
  2198. switch (ver) {
  2199. case LM93_MFR_ID:
  2200. case LM93_MFR_ID_PROTOTYPE:
  2201. name = "lm93";
  2202. break;
  2203. case LM94_MFR_ID_2:
  2204. case LM94_MFR_ID:
  2205. case LM94_MFR_ID_PROTOTYPE:
  2206. name = "lm94";
  2207. break;
  2208. default:
  2209. dev_dbg(&adapter->dev,
  2210. "detect failed, bad version id 0x%02x!\n", ver);
  2211. return -ENODEV;
  2212. }
  2213. strscpy(info->type, name, I2C_NAME_SIZE);
  2214. dev_dbg(&adapter->dev, "loading %s at %d, 0x%02x\n",
  2215. client->name, i2c_adapter_id(client->adapter),
  2216. client->addr);
  2217. return 0;
  2218. }
  2219. static int lm93_probe(struct i2c_client *client)
  2220. {
  2221. struct device *dev = &client->dev;
  2222. struct lm93_data *data;
  2223. struct device *hwmon_dev;
  2224. int func;
  2225. void (*update)(struct lm93_data *, struct i2c_client *);
  2226. /* choose update routine based on bus capabilities */
  2227. func = i2c_get_functionality(client->adapter);
  2228. if (((LM93_SMBUS_FUNC_FULL & func) == LM93_SMBUS_FUNC_FULL) &&
  2229. (!disable_block)) {
  2230. dev_dbg(dev, "using SMBus block data transactions\n");
  2231. update = lm93_update_client_full;
  2232. } else if ((LM93_SMBUS_FUNC_MIN & func) == LM93_SMBUS_FUNC_MIN) {
  2233. dev_dbg(dev, "disabled SMBus block data transactions\n");
  2234. update = lm93_update_client_min;
  2235. } else {
  2236. dev_dbg(dev, "detect failed, smbus byte and/or word data not supported!\n");
  2237. return -ENODEV;
  2238. }
  2239. data = devm_kzalloc(dev, sizeof(struct lm93_data), GFP_KERNEL);
  2240. if (!data)
  2241. return -ENOMEM;
  2242. /* housekeeping */
  2243. data->client = client;
  2244. data->update = update;
  2245. mutex_init(&data->update_lock);
  2246. /* initialize the chip */
  2247. lm93_init_client(client);
  2248. hwmon_dev = devm_hwmon_device_register_with_groups(dev, client->name,
  2249. data,
  2250. lm93_groups);
  2251. return PTR_ERR_OR_ZERO(hwmon_dev);
  2252. }
  2253. static const struct i2c_device_id lm93_id[] = {
  2254. { "lm93", 0 },
  2255. { "lm94", 0 },
  2256. { }
  2257. };
  2258. MODULE_DEVICE_TABLE(i2c, lm93_id);
  2259. static struct i2c_driver lm93_driver = {
  2260. .class = I2C_CLASS_HWMON,
  2261. .driver = {
  2262. .name = "lm93",
  2263. },
  2264. .probe_new = lm93_probe,
  2265. .id_table = lm93_id,
  2266. .detect = lm93_detect,
  2267. .address_list = normal_i2c,
  2268. };
  2269. module_i2c_driver(lm93_driver);
  2270. MODULE_AUTHOR("Mark M. Hoffman <[email protected]>, "
  2271. "Hans J. Koch <[email protected]>");
  2272. MODULE_DESCRIPTION("LM93 driver");
  2273. MODULE_LICENSE("GPL");