asb100.c 28 KB

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  1. /*
  2. asb100.c - Part of lm_sensors, Linux kernel modules for hardware
  3. monitoring
  4. Copyright (C) 2004 Mark M. Hoffman <mhoffman@lightlink.com>
  5. (derived from w83781d.c)
  6. Copyright (C) 1998 - 2003 Frodo Looijaard <frodol@dds.nl>,
  7. Philip Edelbrock <phil@netroedge.com>, and
  8. Mark Studebaker <mdsxyz123@yahoo.com>
  9. This program is free software; you can redistribute it and/or modify
  10. it under the terms of the GNU General Public License as published by
  11. the Free Software Foundation; either version 2 of the License, or
  12. (at your option) any later version.
  13. This program is distributed in the hope that it will be useful,
  14. but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. GNU General Public License for more details.
  17. You should have received a copy of the GNU General Public License
  18. along with this program; if not, write to the Free Software
  19. Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  20. */
  21. /*
  22. This driver supports the hardware sensor chips: Asus ASB100 and
  23. ASB100-A "BACH".
  24. ASB100-A supports pwm1, while plain ASB100 does not. There is no known
  25. way for the driver to tell which one is there.
  26. Chip #vin #fanin #pwm #temp wchipid vendid i2c ISA
  27. asb100 7 3 1 4 0x31 0x0694 yes no
  28. */
  29. #include <linux/module.h>
  30. #include <linux/slab.h>
  31. #include <linux/i2c.h>
  32. #include <linux/hwmon.h>
  33. #include <linux/hwmon-sysfs.h>
  34. #include <linux/hwmon-vid.h>
  35. #include <linux/err.h>
  36. #include <linux/init.h>
  37. #include <linux/jiffies.h>
  38. #include <linux/mutex.h>
  39. #include "lm75.h"
  40. /* I2C addresses to scan */
  41. static const unsigned short normal_i2c[] = { 0x2d, I2C_CLIENT_END };
  42. /* Insmod parameters */
  43. I2C_CLIENT_INSMOD_1(asb100);
  44. I2C_CLIENT_MODULE_PARM(force_subclients, "List of subclient addresses: "
  45. "{bus, clientaddr, subclientaddr1, subclientaddr2}");
  46. /* Voltage IN registers 0-6 */
  47. #define ASB100_REG_IN(nr) (0x20 + (nr))
  48. #define ASB100_REG_IN_MAX(nr) (0x2b + (nr * 2))
  49. #define ASB100_REG_IN_MIN(nr) (0x2c + (nr * 2))
  50. /* FAN IN registers 1-3 */
  51. #define ASB100_REG_FAN(nr) (0x28 + (nr))
  52. #define ASB100_REG_FAN_MIN(nr) (0x3b + (nr))
  53. /* TEMPERATURE registers 1-4 */
  54. static const u16 asb100_reg_temp[] = {0, 0x27, 0x150, 0x250, 0x17};
  55. static const u16 asb100_reg_temp_max[] = {0, 0x39, 0x155, 0x255, 0x18};
  56. static const u16 asb100_reg_temp_hyst[] = {0, 0x3a, 0x153, 0x253, 0x19};
  57. #define ASB100_REG_TEMP(nr) (asb100_reg_temp[nr])
  58. #define ASB100_REG_TEMP_MAX(nr) (asb100_reg_temp_max[nr])
  59. #define ASB100_REG_TEMP_HYST(nr) (asb100_reg_temp_hyst[nr])
  60. #define ASB100_REG_TEMP2_CONFIG 0x0152
  61. #define ASB100_REG_TEMP3_CONFIG 0x0252
  62. #define ASB100_REG_CONFIG 0x40
  63. #define ASB100_REG_ALARM1 0x41
  64. #define ASB100_REG_ALARM2 0x42
  65. #define ASB100_REG_SMIM1 0x43
  66. #define ASB100_REG_SMIM2 0x44
  67. #define ASB100_REG_VID_FANDIV 0x47
  68. #define ASB100_REG_I2C_ADDR 0x48
  69. #define ASB100_REG_CHIPID 0x49
  70. #define ASB100_REG_I2C_SUBADDR 0x4a
  71. #define ASB100_REG_PIN 0x4b
  72. #define ASB100_REG_IRQ 0x4c
  73. #define ASB100_REG_BANK 0x4e
  74. #define ASB100_REG_CHIPMAN 0x4f
  75. #define ASB100_REG_WCHIPID 0x58
  76. /* bit 7 -> enable, bits 0-3 -> duty cycle */
  77. #define ASB100_REG_PWM1 0x59
  78. /* CONVERSIONS
  79. Rounding and limit checking is only done on the TO_REG variants. */
  80. /* These constants are a guess, consistent w/ w83781d */
  81. #define ASB100_IN_MIN ( 0)
  82. #define ASB100_IN_MAX (4080)
  83. /* IN: 1/1000 V (0V to 4.08V)
  84. REG: 16mV/bit */
  85. static u8 IN_TO_REG(unsigned val)
  86. {
  87. unsigned nval = SENSORS_LIMIT(val, ASB100_IN_MIN, ASB100_IN_MAX);
  88. return (nval + 8) / 16;
  89. }
  90. static unsigned IN_FROM_REG(u8 reg)
  91. {
  92. return reg * 16;
  93. }
  94. static u8 FAN_TO_REG(long rpm, int div)
  95. {
  96. if (rpm == -1)
  97. return 0;
  98. if (rpm == 0)
  99. return 255;
  100. rpm = SENSORS_LIMIT(rpm, 1, 1000000);
  101. return SENSORS_LIMIT((1350000 + rpm * div / 2) / (rpm * div), 1, 254);
  102. }
  103. static int FAN_FROM_REG(u8 val, int div)
  104. {
  105. return val==0 ? -1 : val==255 ? 0 : 1350000/(val*div);
  106. }
  107. /* These constants are a guess, consistent w/ w83781d */
  108. #define ASB100_TEMP_MIN (-128000)
  109. #define ASB100_TEMP_MAX ( 127000)
  110. /* TEMP: 0.001C/bit (-128C to +127C)
  111. REG: 1C/bit, two's complement */
  112. static u8 TEMP_TO_REG(long temp)
  113. {
  114. int ntemp = SENSORS_LIMIT(temp, ASB100_TEMP_MIN, ASB100_TEMP_MAX);
  115. ntemp += (ntemp<0 ? -500 : 500);
  116. return (u8)(ntemp / 1000);
  117. }
  118. static int TEMP_FROM_REG(u8 reg)
  119. {
  120. return (s8)reg * 1000;
  121. }
  122. /* PWM: 0 - 255 per sensors documentation
  123. REG: (6.25% duty cycle per bit) */
  124. static u8 ASB100_PWM_TO_REG(int pwm)
  125. {
  126. pwm = SENSORS_LIMIT(pwm, 0, 255);
  127. return (u8)(pwm / 16);
  128. }
  129. static int ASB100_PWM_FROM_REG(u8 reg)
  130. {
  131. return reg * 16;
  132. }
  133. #define DIV_FROM_REG(val) (1 << (val))
  134. /* FAN DIV: 1, 2, 4, or 8 (defaults to 2)
  135. REG: 0, 1, 2, or 3 (respectively) (defaults to 1) */
  136. static u8 DIV_TO_REG(long val)
  137. {
  138. return val==8 ? 3 : val==4 ? 2 : val==1 ? 0 : 1;
  139. }
  140. /* For each registered client, we need to keep some data in memory. That
  141. data is pointed to by client->data. The structure itself is
  142. dynamically allocated, at the same time the client itself is allocated. */
  143. struct asb100_data {
  144. struct device *hwmon_dev;
  145. struct mutex lock;
  146. struct mutex update_lock;
  147. unsigned long last_updated; /* In jiffies */
  148. /* array of 2 pointers to subclients */
  149. struct i2c_client *lm75[2];
  150. char valid; /* !=0 if following fields are valid */
  151. u8 in[7]; /* Register value */
  152. u8 in_max[7]; /* Register value */
  153. u8 in_min[7]; /* Register value */
  154. u8 fan[3]; /* Register value */
  155. u8 fan_min[3]; /* Register value */
  156. u16 temp[4]; /* Register value (0 and 3 are u8 only) */
  157. u16 temp_max[4]; /* Register value (0 and 3 are u8 only) */
  158. u16 temp_hyst[4]; /* Register value (0 and 3 are u8 only) */
  159. u8 fan_div[3]; /* Register encoding, right justified */
  160. u8 pwm; /* Register encoding */
  161. u8 vid; /* Register encoding, combined */
  162. u32 alarms; /* Register encoding, combined */
  163. u8 vrm;
  164. };
  165. static int asb100_read_value(struct i2c_client *client, u16 reg);
  166. static void asb100_write_value(struct i2c_client *client, u16 reg, u16 val);
  167. static int asb100_probe(struct i2c_client *client,
  168. const struct i2c_device_id *id);
  169. static int asb100_detect(struct i2c_client *client, int kind,
  170. struct i2c_board_info *info);
  171. static int asb100_remove(struct i2c_client *client);
  172. static struct asb100_data *asb100_update_device(struct device *dev);
  173. static void asb100_init_client(struct i2c_client *client);
  174. static const struct i2c_device_id asb100_id[] = {
  175. { "asb100", asb100 },
  176. { }
  177. };
  178. MODULE_DEVICE_TABLE(i2c, asb100_id);
  179. static struct i2c_driver asb100_driver = {
  180. .class = I2C_CLASS_HWMON,
  181. .driver = {
  182. .name = "asb100",
  183. },
  184. .probe = asb100_probe,
  185. .remove = asb100_remove,
  186. .id_table = asb100_id,
  187. .detect = asb100_detect,
  188. .address_data = &addr_data,
  189. };
  190. /* 7 Voltages */
  191. #define show_in_reg(reg) \
  192. static ssize_t show_##reg(struct device *dev, struct device_attribute *attr, \
  193. char *buf) \
  194. { \
  195. int nr = to_sensor_dev_attr(attr)->index; \
  196. struct asb100_data *data = asb100_update_device(dev); \
  197. return sprintf(buf, "%d\n", IN_FROM_REG(data->reg[nr])); \
  198. }
  199. show_in_reg(in)
  200. show_in_reg(in_min)
  201. show_in_reg(in_max)
  202. #define set_in_reg(REG, reg) \
  203. static ssize_t set_in_##reg(struct device *dev, struct device_attribute *attr, \
  204. const char *buf, size_t count) \
  205. { \
  206. int nr = to_sensor_dev_attr(attr)->index; \
  207. struct i2c_client *client = to_i2c_client(dev); \
  208. struct asb100_data *data = i2c_get_clientdata(client); \
  209. unsigned long val = simple_strtoul(buf, NULL, 10); \
  210. \
  211. mutex_lock(&data->update_lock); \
  212. data->in_##reg[nr] = IN_TO_REG(val); \
  213. asb100_write_value(client, ASB100_REG_IN_##REG(nr), \
  214. data->in_##reg[nr]); \
  215. mutex_unlock(&data->update_lock); \
  216. return count; \
  217. }
  218. set_in_reg(MIN, min)
  219. set_in_reg(MAX, max)
  220. #define sysfs_in(offset) \
  221. static SENSOR_DEVICE_ATTR(in##offset##_input, S_IRUGO, \
  222. show_in, NULL, offset); \
  223. static SENSOR_DEVICE_ATTR(in##offset##_min, S_IRUGO | S_IWUSR, \
  224. show_in_min, set_in_min, offset); \
  225. static SENSOR_DEVICE_ATTR(in##offset##_max, S_IRUGO | S_IWUSR, \
  226. show_in_max, set_in_max, offset)
  227. sysfs_in(0);
  228. sysfs_in(1);
  229. sysfs_in(2);
  230. sysfs_in(3);
  231. sysfs_in(4);
  232. sysfs_in(5);
  233. sysfs_in(6);
  234. /* 3 Fans */
  235. static ssize_t show_fan(struct device *dev, struct device_attribute *attr,
  236. char *buf)
  237. {
  238. int nr = to_sensor_dev_attr(attr)->index;
  239. struct asb100_data *data = asb100_update_device(dev);
  240. return sprintf(buf, "%d\n", FAN_FROM_REG(data->fan[nr],
  241. DIV_FROM_REG(data->fan_div[nr])));
  242. }
  243. static ssize_t show_fan_min(struct device *dev, struct device_attribute *attr,
  244. char *buf)
  245. {
  246. int nr = to_sensor_dev_attr(attr)->index;
  247. struct asb100_data *data = asb100_update_device(dev);
  248. return sprintf(buf, "%d\n", FAN_FROM_REG(data->fan_min[nr],
  249. DIV_FROM_REG(data->fan_div[nr])));
  250. }
  251. static ssize_t show_fan_div(struct device *dev, struct device_attribute *attr,
  252. char *buf)
  253. {
  254. int nr = to_sensor_dev_attr(attr)->index;
  255. struct asb100_data *data = asb100_update_device(dev);
  256. return sprintf(buf, "%d\n", DIV_FROM_REG(data->fan_div[nr]));
  257. }
  258. static ssize_t set_fan_min(struct device *dev, struct device_attribute *attr,
  259. const char *buf, size_t count)
  260. {
  261. int nr = to_sensor_dev_attr(attr)->index;
  262. struct i2c_client *client = to_i2c_client(dev);
  263. struct asb100_data *data = i2c_get_clientdata(client);
  264. u32 val = simple_strtoul(buf, NULL, 10);
  265. mutex_lock(&data->update_lock);
  266. data->fan_min[nr] = FAN_TO_REG(val, DIV_FROM_REG(data->fan_div[nr]));
  267. asb100_write_value(client, ASB100_REG_FAN_MIN(nr), data->fan_min[nr]);
  268. mutex_unlock(&data->update_lock);
  269. return count;
  270. }
  271. /* Note: we save and restore the fan minimum here, because its value is
  272. determined in part by the fan divisor. This follows the principle of
  273. least surprise; the user doesn't expect the fan minimum to change just
  274. because the divisor changed. */
  275. static ssize_t set_fan_div(struct device *dev, struct device_attribute *attr,
  276. const char *buf, size_t count)
  277. {
  278. int nr = to_sensor_dev_attr(attr)->index;
  279. struct i2c_client *client = to_i2c_client(dev);
  280. struct asb100_data *data = i2c_get_clientdata(client);
  281. unsigned long min;
  282. unsigned long val = simple_strtoul(buf, NULL, 10);
  283. int reg;
  284. mutex_lock(&data->update_lock);
  285. min = FAN_FROM_REG(data->fan_min[nr],
  286. DIV_FROM_REG(data->fan_div[nr]));
  287. data->fan_div[nr] = DIV_TO_REG(val);
  288. switch (nr) {
  289. case 0: /* fan 1 */
  290. reg = asb100_read_value(client, ASB100_REG_VID_FANDIV);
  291. reg = (reg & 0xcf) | (data->fan_div[0] << 4);
  292. asb100_write_value(client, ASB100_REG_VID_FANDIV, reg);
  293. break;
  294. case 1: /* fan 2 */
  295. reg = asb100_read_value(client, ASB100_REG_VID_FANDIV);
  296. reg = (reg & 0x3f) | (data->fan_div[1] << 6);
  297. asb100_write_value(client, ASB100_REG_VID_FANDIV, reg);
  298. break;
  299. case 2: /* fan 3 */
  300. reg = asb100_read_value(client, ASB100_REG_PIN);
  301. reg = (reg & 0x3f) | (data->fan_div[2] << 6);
  302. asb100_write_value(client, ASB100_REG_PIN, reg);
  303. break;
  304. }
  305. data->fan_min[nr] =
  306. FAN_TO_REG(min, DIV_FROM_REG(data->fan_div[nr]));
  307. asb100_write_value(client, ASB100_REG_FAN_MIN(nr), data->fan_min[nr]);
  308. mutex_unlock(&data->update_lock);
  309. return count;
  310. }
  311. #define sysfs_fan(offset) \
  312. static SENSOR_DEVICE_ATTR(fan##offset##_input, S_IRUGO, \
  313. show_fan, NULL, offset - 1); \
  314. static SENSOR_DEVICE_ATTR(fan##offset##_min, S_IRUGO | S_IWUSR, \
  315. show_fan_min, set_fan_min, offset - 1); \
  316. static SENSOR_DEVICE_ATTR(fan##offset##_div, S_IRUGO | S_IWUSR, \
  317. show_fan_div, set_fan_div, offset - 1)
  318. sysfs_fan(1);
  319. sysfs_fan(2);
  320. sysfs_fan(3);
  321. /* 4 Temp. Sensors */
  322. static int sprintf_temp_from_reg(u16 reg, char *buf, int nr)
  323. {
  324. int ret = 0;
  325. switch (nr) {
  326. case 1: case 2:
  327. ret = sprintf(buf, "%d\n", LM75_TEMP_FROM_REG(reg));
  328. break;
  329. case 0: case 3: default:
  330. ret = sprintf(buf, "%d\n", TEMP_FROM_REG(reg));
  331. break;
  332. }
  333. return ret;
  334. }
  335. #define show_temp_reg(reg) \
  336. static ssize_t show_##reg(struct device *dev, struct device_attribute *attr, \
  337. char *buf) \
  338. { \
  339. int nr = to_sensor_dev_attr(attr)->index; \
  340. struct asb100_data *data = asb100_update_device(dev); \
  341. return sprintf_temp_from_reg(data->reg[nr], buf, nr); \
  342. }
  343. show_temp_reg(temp);
  344. show_temp_reg(temp_max);
  345. show_temp_reg(temp_hyst);
  346. #define set_temp_reg(REG, reg) \
  347. static ssize_t set_##reg(struct device *dev, struct device_attribute *attr, \
  348. const char *buf, size_t count) \
  349. { \
  350. int nr = to_sensor_dev_attr(attr)->index; \
  351. struct i2c_client *client = to_i2c_client(dev); \
  352. struct asb100_data *data = i2c_get_clientdata(client); \
  353. long val = simple_strtol(buf, NULL, 10); \
  354. \
  355. mutex_lock(&data->update_lock); \
  356. switch (nr) { \
  357. case 1: case 2: \
  358. data->reg[nr] = LM75_TEMP_TO_REG(val); \
  359. break; \
  360. case 0: case 3: default: \
  361. data->reg[nr] = TEMP_TO_REG(val); \
  362. break; \
  363. } \
  364. asb100_write_value(client, ASB100_REG_TEMP_##REG(nr+1), \
  365. data->reg[nr]); \
  366. mutex_unlock(&data->update_lock); \
  367. return count; \
  368. }
  369. set_temp_reg(MAX, temp_max);
  370. set_temp_reg(HYST, temp_hyst);
  371. #define sysfs_temp(num) \
  372. static SENSOR_DEVICE_ATTR(temp##num##_input, S_IRUGO, \
  373. show_temp, NULL, num - 1); \
  374. static SENSOR_DEVICE_ATTR(temp##num##_max, S_IRUGO | S_IWUSR, \
  375. show_temp_max, set_temp_max, num - 1); \
  376. static SENSOR_DEVICE_ATTR(temp##num##_max_hyst, S_IRUGO | S_IWUSR, \
  377. show_temp_hyst, set_temp_hyst, num - 1)
  378. sysfs_temp(1);
  379. sysfs_temp(2);
  380. sysfs_temp(3);
  381. sysfs_temp(4);
  382. /* VID */
  383. static ssize_t show_vid(struct device *dev, struct device_attribute *attr,
  384. char *buf)
  385. {
  386. struct asb100_data *data = asb100_update_device(dev);
  387. return sprintf(buf, "%d\n", vid_from_reg(data->vid, data->vrm));
  388. }
  389. static DEVICE_ATTR(cpu0_vid, S_IRUGO, show_vid, NULL);
  390. /* VRM */
  391. static ssize_t show_vrm(struct device *dev, struct device_attribute *attr,
  392. char *buf)
  393. {
  394. struct asb100_data *data = dev_get_drvdata(dev);
  395. return sprintf(buf, "%d\n", data->vrm);
  396. }
  397. static ssize_t set_vrm(struct device *dev, struct device_attribute *attr,
  398. const char *buf, size_t count)
  399. {
  400. struct asb100_data *data = dev_get_drvdata(dev);
  401. data->vrm = simple_strtoul(buf, NULL, 10);
  402. return count;
  403. }
  404. /* Alarms */
  405. static DEVICE_ATTR(vrm, S_IRUGO | S_IWUSR, show_vrm, set_vrm);
  406. static ssize_t show_alarms(struct device *dev, struct device_attribute *attr,
  407. char *buf)
  408. {
  409. struct asb100_data *data = asb100_update_device(dev);
  410. return sprintf(buf, "%u\n", data->alarms);
  411. }
  412. static DEVICE_ATTR(alarms, S_IRUGO, show_alarms, NULL);
  413. static ssize_t show_alarm(struct device *dev, struct device_attribute *attr,
  414. char *buf)
  415. {
  416. int bitnr = to_sensor_dev_attr(attr)->index;
  417. struct asb100_data *data = asb100_update_device(dev);
  418. return sprintf(buf, "%u\n", (data->alarms >> bitnr) & 1);
  419. }
  420. static SENSOR_DEVICE_ATTR(in0_alarm, S_IRUGO, show_alarm, NULL, 0);
  421. static SENSOR_DEVICE_ATTR(in1_alarm, S_IRUGO, show_alarm, NULL, 1);
  422. static SENSOR_DEVICE_ATTR(in2_alarm, S_IRUGO, show_alarm, NULL, 2);
  423. static SENSOR_DEVICE_ATTR(in3_alarm, S_IRUGO, show_alarm, NULL, 3);
  424. static SENSOR_DEVICE_ATTR(in4_alarm, S_IRUGO, show_alarm, NULL, 8);
  425. static SENSOR_DEVICE_ATTR(fan1_alarm, S_IRUGO, show_alarm, NULL, 6);
  426. static SENSOR_DEVICE_ATTR(fan2_alarm, S_IRUGO, show_alarm, NULL, 7);
  427. static SENSOR_DEVICE_ATTR(fan3_alarm, S_IRUGO, show_alarm, NULL, 11);
  428. static SENSOR_DEVICE_ATTR(temp1_alarm, S_IRUGO, show_alarm, NULL, 4);
  429. static SENSOR_DEVICE_ATTR(temp2_alarm, S_IRUGO, show_alarm, NULL, 5);
  430. static SENSOR_DEVICE_ATTR(temp3_alarm, S_IRUGO, show_alarm, NULL, 13);
  431. /* 1 PWM */
  432. static ssize_t show_pwm1(struct device *dev, struct device_attribute *attr,
  433. char *buf)
  434. {
  435. struct asb100_data *data = asb100_update_device(dev);
  436. return sprintf(buf, "%d\n", ASB100_PWM_FROM_REG(data->pwm & 0x0f));
  437. }
  438. static ssize_t set_pwm1(struct device *dev, struct device_attribute *attr,
  439. const char *buf, size_t count)
  440. {
  441. struct i2c_client *client = to_i2c_client(dev);
  442. struct asb100_data *data = i2c_get_clientdata(client);
  443. unsigned long val = simple_strtoul(buf, NULL, 10);
  444. mutex_lock(&data->update_lock);
  445. data->pwm &= 0x80; /* keep the enable bit */
  446. data->pwm |= (0x0f & ASB100_PWM_TO_REG(val));
  447. asb100_write_value(client, ASB100_REG_PWM1, data->pwm);
  448. mutex_unlock(&data->update_lock);
  449. return count;
  450. }
  451. static ssize_t show_pwm_enable1(struct device *dev,
  452. struct device_attribute *attr, char *buf)
  453. {
  454. struct asb100_data *data = asb100_update_device(dev);
  455. return sprintf(buf, "%d\n", (data->pwm & 0x80) ? 1 : 0);
  456. }
  457. static ssize_t set_pwm_enable1(struct device *dev,
  458. struct device_attribute *attr, const char *buf, size_t count)
  459. {
  460. struct i2c_client *client = to_i2c_client(dev);
  461. struct asb100_data *data = i2c_get_clientdata(client);
  462. unsigned long val = simple_strtoul(buf, NULL, 10);
  463. mutex_lock(&data->update_lock);
  464. data->pwm &= 0x0f; /* keep the duty cycle bits */
  465. data->pwm |= (val ? 0x80 : 0x00);
  466. asb100_write_value(client, ASB100_REG_PWM1, data->pwm);
  467. mutex_unlock(&data->update_lock);
  468. return count;
  469. }
  470. static DEVICE_ATTR(pwm1, S_IRUGO | S_IWUSR, show_pwm1, set_pwm1);
  471. static DEVICE_ATTR(pwm1_enable, S_IRUGO | S_IWUSR,
  472. show_pwm_enable1, set_pwm_enable1);
  473. static struct attribute *asb100_attributes[] = {
  474. &sensor_dev_attr_in0_input.dev_attr.attr,
  475. &sensor_dev_attr_in0_min.dev_attr.attr,
  476. &sensor_dev_attr_in0_max.dev_attr.attr,
  477. &sensor_dev_attr_in1_input.dev_attr.attr,
  478. &sensor_dev_attr_in1_min.dev_attr.attr,
  479. &sensor_dev_attr_in1_max.dev_attr.attr,
  480. &sensor_dev_attr_in2_input.dev_attr.attr,
  481. &sensor_dev_attr_in2_min.dev_attr.attr,
  482. &sensor_dev_attr_in2_max.dev_attr.attr,
  483. &sensor_dev_attr_in3_input.dev_attr.attr,
  484. &sensor_dev_attr_in3_min.dev_attr.attr,
  485. &sensor_dev_attr_in3_max.dev_attr.attr,
  486. &sensor_dev_attr_in4_input.dev_attr.attr,
  487. &sensor_dev_attr_in4_min.dev_attr.attr,
  488. &sensor_dev_attr_in4_max.dev_attr.attr,
  489. &sensor_dev_attr_in5_input.dev_attr.attr,
  490. &sensor_dev_attr_in5_min.dev_attr.attr,
  491. &sensor_dev_attr_in5_max.dev_attr.attr,
  492. &sensor_dev_attr_in6_input.dev_attr.attr,
  493. &sensor_dev_attr_in6_min.dev_attr.attr,
  494. &sensor_dev_attr_in6_max.dev_attr.attr,
  495. &sensor_dev_attr_fan1_input.dev_attr.attr,
  496. &sensor_dev_attr_fan1_min.dev_attr.attr,
  497. &sensor_dev_attr_fan1_div.dev_attr.attr,
  498. &sensor_dev_attr_fan2_input.dev_attr.attr,
  499. &sensor_dev_attr_fan2_min.dev_attr.attr,
  500. &sensor_dev_attr_fan2_div.dev_attr.attr,
  501. &sensor_dev_attr_fan3_input.dev_attr.attr,
  502. &sensor_dev_attr_fan3_min.dev_attr.attr,
  503. &sensor_dev_attr_fan3_div.dev_attr.attr,
  504. &sensor_dev_attr_temp1_input.dev_attr.attr,
  505. &sensor_dev_attr_temp1_max.dev_attr.attr,
  506. &sensor_dev_attr_temp1_max_hyst.dev_attr.attr,
  507. &sensor_dev_attr_temp2_input.dev_attr.attr,
  508. &sensor_dev_attr_temp2_max.dev_attr.attr,
  509. &sensor_dev_attr_temp2_max_hyst.dev_attr.attr,
  510. &sensor_dev_attr_temp3_input.dev_attr.attr,
  511. &sensor_dev_attr_temp3_max.dev_attr.attr,
  512. &sensor_dev_attr_temp3_max_hyst.dev_attr.attr,
  513. &sensor_dev_attr_temp4_input.dev_attr.attr,
  514. &sensor_dev_attr_temp4_max.dev_attr.attr,
  515. &sensor_dev_attr_temp4_max_hyst.dev_attr.attr,
  516. &sensor_dev_attr_in0_alarm.dev_attr.attr,
  517. &sensor_dev_attr_in1_alarm.dev_attr.attr,
  518. &sensor_dev_attr_in2_alarm.dev_attr.attr,
  519. &sensor_dev_attr_in3_alarm.dev_attr.attr,
  520. &sensor_dev_attr_in4_alarm.dev_attr.attr,
  521. &sensor_dev_attr_fan1_alarm.dev_attr.attr,
  522. &sensor_dev_attr_fan2_alarm.dev_attr.attr,
  523. &sensor_dev_attr_fan3_alarm.dev_attr.attr,
  524. &sensor_dev_attr_temp1_alarm.dev_attr.attr,
  525. &sensor_dev_attr_temp2_alarm.dev_attr.attr,
  526. &sensor_dev_attr_temp3_alarm.dev_attr.attr,
  527. &dev_attr_cpu0_vid.attr,
  528. &dev_attr_vrm.attr,
  529. &dev_attr_alarms.attr,
  530. &dev_attr_pwm1.attr,
  531. &dev_attr_pwm1_enable.attr,
  532. NULL
  533. };
  534. static const struct attribute_group asb100_group = {
  535. .attrs = asb100_attributes,
  536. };
  537. static int asb100_detect_subclients(struct i2c_client *client)
  538. {
  539. int i, id, err;
  540. int address = client->addr;
  541. unsigned short sc_addr[2];
  542. struct asb100_data *data = i2c_get_clientdata(client);
  543. struct i2c_adapter *adapter = client->adapter;
  544. id = i2c_adapter_id(adapter);
  545. if (force_subclients[0] == id && force_subclients[1] == address) {
  546. for (i = 2; i <= 3; i++) {
  547. if (force_subclients[i] < 0x48 ||
  548. force_subclients[i] > 0x4f) {
  549. dev_err(&client->dev, "invalid subclient "
  550. "address %d; must be 0x48-0x4f\n",
  551. force_subclients[i]);
  552. err = -ENODEV;
  553. goto ERROR_SC_2;
  554. }
  555. }
  556. asb100_write_value(client, ASB100_REG_I2C_SUBADDR,
  557. (force_subclients[2] & 0x07) |
  558. ((force_subclients[3] & 0x07) << 4));
  559. sc_addr[0] = force_subclients[2];
  560. sc_addr[1] = force_subclients[3];
  561. } else {
  562. int val = asb100_read_value(client, ASB100_REG_I2C_SUBADDR);
  563. sc_addr[0] = 0x48 + (val & 0x07);
  564. sc_addr[1] = 0x48 + ((val >> 4) & 0x07);
  565. }
  566. if (sc_addr[0] == sc_addr[1]) {
  567. dev_err(&client->dev, "duplicate addresses 0x%x "
  568. "for subclients\n", sc_addr[0]);
  569. err = -ENODEV;
  570. goto ERROR_SC_2;
  571. }
  572. data->lm75[0] = i2c_new_dummy(adapter, sc_addr[0]);
  573. if (!data->lm75[0]) {
  574. dev_err(&client->dev, "subclient %d registration "
  575. "at address 0x%x failed.\n", 1, sc_addr[0]);
  576. err = -ENOMEM;
  577. goto ERROR_SC_2;
  578. }
  579. data->lm75[1] = i2c_new_dummy(adapter, sc_addr[1]);
  580. if (!data->lm75[1]) {
  581. dev_err(&client->dev, "subclient %d registration "
  582. "at address 0x%x failed.\n", 2, sc_addr[1]);
  583. err = -ENOMEM;
  584. goto ERROR_SC_3;
  585. }
  586. return 0;
  587. /* Undo inits in case of errors */
  588. ERROR_SC_3:
  589. i2c_unregister_device(data->lm75[0]);
  590. ERROR_SC_2:
  591. return err;
  592. }
  593. /* Return 0 if detection is successful, -ENODEV otherwise */
  594. static int asb100_detect(struct i2c_client *client, int kind,
  595. struct i2c_board_info *info)
  596. {
  597. struct i2c_adapter *adapter = client->adapter;
  598. if (!i2c_check_functionality(adapter, I2C_FUNC_SMBUS_BYTE_DATA)) {
  599. pr_debug("asb100.o: detect failed, "
  600. "smbus byte data not supported!\n");
  601. return -ENODEV;
  602. }
  603. /* The chip may be stuck in some other bank than bank 0. This may
  604. make reading other information impossible. Specify a force=... or
  605. force_*=... parameter, and the chip will be reset to the right
  606. bank. */
  607. if (kind < 0) {
  608. int val1 = i2c_smbus_read_byte_data(client, ASB100_REG_BANK);
  609. int val2 = i2c_smbus_read_byte_data(client, ASB100_REG_CHIPMAN);
  610. /* If we're in bank 0 */
  611. if ((!(val1 & 0x07)) &&
  612. /* Check for ASB100 ID (low byte) */
  613. (((!(val1 & 0x80)) && (val2 != 0x94)) ||
  614. /* Check for ASB100 ID (high byte ) */
  615. ((val1 & 0x80) && (val2 != 0x06)))) {
  616. pr_debug("asb100.o: detect failed, "
  617. "bad chip id 0x%02x!\n", val2);
  618. return -ENODEV;
  619. }
  620. } /* kind < 0 */
  621. /* We have either had a force parameter, or we have already detected
  622. Winbond. Put it now into bank 0 and Vendor ID High Byte */
  623. i2c_smbus_write_byte_data(client, ASB100_REG_BANK,
  624. (i2c_smbus_read_byte_data(client, ASB100_REG_BANK) & 0x78)
  625. | 0x80);
  626. /* Determine the chip type. */
  627. if (kind <= 0) {
  628. int val1 = i2c_smbus_read_byte_data(client, ASB100_REG_WCHIPID);
  629. int val2 = i2c_smbus_read_byte_data(client, ASB100_REG_CHIPMAN);
  630. if ((val1 == 0x31) && (val2 == 0x06))
  631. kind = asb100;
  632. else {
  633. if (kind == 0)
  634. dev_warn(&adapter->dev, "ignoring "
  635. "'force' parameter for unknown chip "
  636. "at adapter %d, address 0x%02x.\n",
  637. i2c_adapter_id(adapter), client->addr);
  638. return -ENODEV;
  639. }
  640. }
  641. strlcpy(info->type, "asb100", I2C_NAME_SIZE);
  642. return 0;
  643. }
  644. static int asb100_probe(struct i2c_client *client,
  645. const struct i2c_device_id *id)
  646. {
  647. int err;
  648. struct asb100_data *data;
  649. data = kzalloc(sizeof(struct asb100_data), GFP_KERNEL);
  650. if (!data) {
  651. pr_debug("asb100.o: probe failed, kzalloc failed!\n");
  652. err = -ENOMEM;
  653. goto ERROR0;
  654. }
  655. i2c_set_clientdata(client, data);
  656. mutex_init(&data->lock);
  657. mutex_init(&data->update_lock);
  658. /* Attach secondary lm75 clients */
  659. err = asb100_detect_subclients(client);
  660. if (err)
  661. goto ERROR1;
  662. /* Initialize the chip */
  663. asb100_init_client(client);
  664. /* A few vars need to be filled upon startup */
  665. data->fan_min[0] = asb100_read_value(client, ASB100_REG_FAN_MIN(0));
  666. data->fan_min[1] = asb100_read_value(client, ASB100_REG_FAN_MIN(1));
  667. data->fan_min[2] = asb100_read_value(client, ASB100_REG_FAN_MIN(2));
  668. /* Register sysfs hooks */
  669. if ((err = sysfs_create_group(&client->dev.kobj, &asb100_group)))
  670. goto ERROR3;
  671. data->hwmon_dev = hwmon_device_register(&client->dev);
  672. if (IS_ERR(data->hwmon_dev)) {
  673. err = PTR_ERR(data->hwmon_dev);
  674. goto ERROR4;
  675. }
  676. return 0;
  677. ERROR4:
  678. sysfs_remove_group(&client->dev.kobj, &asb100_group);
  679. ERROR3:
  680. i2c_unregister_device(data->lm75[1]);
  681. i2c_unregister_device(data->lm75[0]);
  682. ERROR1:
  683. kfree(data);
  684. ERROR0:
  685. return err;
  686. }
  687. static int asb100_remove(struct i2c_client *client)
  688. {
  689. struct asb100_data *data = i2c_get_clientdata(client);
  690. hwmon_device_unregister(data->hwmon_dev);
  691. sysfs_remove_group(&client->dev.kobj, &asb100_group);
  692. i2c_unregister_device(data->lm75[1]);
  693. i2c_unregister_device(data->lm75[0]);
  694. kfree(data);
  695. return 0;
  696. }
  697. /* The SMBus locks itself, usually, but nothing may access the chip between
  698. bank switches. */
  699. static int asb100_read_value(struct i2c_client *client, u16 reg)
  700. {
  701. struct asb100_data *data = i2c_get_clientdata(client);
  702. struct i2c_client *cl;
  703. int res, bank;
  704. mutex_lock(&data->lock);
  705. bank = (reg >> 8) & 0x0f;
  706. if (bank > 2)
  707. /* switch banks */
  708. i2c_smbus_write_byte_data(client, ASB100_REG_BANK, bank);
  709. if (bank == 0 || bank > 2) {
  710. res = i2c_smbus_read_byte_data(client, reg & 0xff);
  711. } else {
  712. /* switch to subclient */
  713. cl = data->lm75[bank - 1];
  714. /* convert from ISA to LM75 I2C addresses */
  715. switch (reg & 0xff) {
  716. case 0x50: /* TEMP */
  717. res = swab16(i2c_smbus_read_word_data(cl, 0));
  718. break;
  719. case 0x52: /* CONFIG */
  720. res = i2c_smbus_read_byte_data(cl, 1);
  721. break;
  722. case 0x53: /* HYST */
  723. res = swab16(i2c_smbus_read_word_data(cl, 2));
  724. break;
  725. case 0x55: /* MAX */
  726. default:
  727. res = swab16(i2c_smbus_read_word_data(cl, 3));
  728. break;
  729. }
  730. }
  731. if (bank > 2)
  732. i2c_smbus_write_byte_data(client, ASB100_REG_BANK, 0);
  733. mutex_unlock(&data->lock);
  734. return res;
  735. }
  736. static void asb100_write_value(struct i2c_client *client, u16 reg, u16 value)
  737. {
  738. struct asb100_data *data = i2c_get_clientdata(client);
  739. struct i2c_client *cl;
  740. int bank;
  741. mutex_lock(&data->lock);
  742. bank = (reg >> 8) & 0x0f;
  743. if (bank > 2)
  744. /* switch banks */
  745. i2c_smbus_write_byte_data(client, ASB100_REG_BANK, bank);
  746. if (bank == 0 || bank > 2) {
  747. i2c_smbus_write_byte_data(client, reg & 0xff, value & 0xff);
  748. } else {
  749. /* switch to subclient */
  750. cl = data->lm75[bank - 1];
  751. /* convert from ISA to LM75 I2C addresses */
  752. switch (reg & 0xff) {
  753. case 0x52: /* CONFIG */
  754. i2c_smbus_write_byte_data(cl, 1, value & 0xff);
  755. break;
  756. case 0x53: /* HYST */
  757. i2c_smbus_write_word_data(cl, 2, swab16(value));
  758. break;
  759. case 0x55: /* MAX */
  760. i2c_smbus_write_word_data(cl, 3, swab16(value));
  761. break;
  762. }
  763. }
  764. if (bank > 2)
  765. i2c_smbus_write_byte_data(client, ASB100_REG_BANK, 0);
  766. mutex_unlock(&data->lock);
  767. }
  768. static void asb100_init_client(struct i2c_client *client)
  769. {
  770. struct asb100_data *data = i2c_get_clientdata(client);
  771. data->vrm = vid_which_vrm();
  772. /* Start monitoring */
  773. asb100_write_value(client, ASB100_REG_CONFIG,
  774. (asb100_read_value(client, ASB100_REG_CONFIG) & 0xf7) | 0x01);
  775. }
  776. static struct asb100_data *asb100_update_device(struct device *dev)
  777. {
  778. struct i2c_client *client = to_i2c_client(dev);
  779. struct asb100_data *data = i2c_get_clientdata(client);
  780. int i;
  781. mutex_lock(&data->update_lock);
  782. if (time_after(jiffies, data->last_updated + HZ + HZ / 2)
  783. || !data->valid) {
  784. dev_dbg(&client->dev, "starting device update...\n");
  785. /* 7 voltage inputs */
  786. for (i = 0; i < 7; i++) {
  787. data->in[i] = asb100_read_value(client,
  788. ASB100_REG_IN(i));
  789. data->in_min[i] = asb100_read_value(client,
  790. ASB100_REG_IN_MIN(i));
  791. data->in_max[i] = asb100_read_value(client,
  792. ASB100_REG_IN_MAX(i));
  793. }
  794. /* 3 fan inputs */
  795. for (i = 0; i < 3; i++) {
  796. data->fan[i] = asb100_read_value(client,
  797. ASB100_REG_FAN(i));
  798. data->fan_min[i] = asb100_read_value(client,
  799. ASB100_REG_FAN_MIN(i));
  800. }
  801. /* 4 temperature inputs */
  802. for (i = 1; i <= 4; i++) {
  803. data->temp[i-1] = asb100_read_value(client,
  804. ASB100_REG_TEMP(i));
  805. data->temp_max[i-1] = asb100_read_value(client,
  806. ASB100_REG_TEMP_MAX(i));
  807. data->temp_hyst[i-1] = asb100_read_value(client,
  808. ASB100_REG_TEMP_HYST(i));
  809. }
  810. /* VID and fan divisors */
  811. i = asb100_read_value(client, ASB100_REG_VID_FANDIV);
  812. data->vid = i & 0x0f;
  813. data->vid |= (asb100_read_value(client,
  814. ASB100_REG_CHIPID) & 0x01) << 4;
  815. data->fan_div[0] = (i >> 4) & 0x03;
  816. data->fan_div[1] = (i >> 6) & 0x03;
  817. data->fan_div[2] = (asb100_read_value(client,
  818. ASB100_REG_PIN) >> 6) & 0x03;
  819. /* PWM */
  820. data->pwm = asb100_read_value(client, ASB100_REG_PWM1);
  821. /* alarms */
  822. data->alarms = asb100_read_value(client, ASB100_REG_ALARM1) +
  823. (asb100_read_value(client, ASB100_REG_ALARM2) << 8);
  824. data->last_updated = jiffies;
  825. data->valid = 1;
  826. dev_dbg(&client->dev, "... device update complete\n");
  827. }
  828. mutex_unlock(&data->update_lock);
  829. return data;
  830. }
  831. static int __init asb100_init(void)
  832. {
  833. return i2c_add_driver(&asb100_driver);
  834. }
  835. static void __exit asb100_exit(void)
  836. {
  837. i2c_del_driver(&asb100_driver);
  838. }
  839. MODULE_AUTHOR("Mark M. Hoffman <mhoffman@lightlink.com>");
  840. MODULE_DESCRIPTION("ASB100 Bach driver");
  841. MODULE_LICENSE("GPL");
  842. module_init(asb100_init);
  843. module_exit(asb100_exit);