1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * lm90.c - Part of lm_sensors, Linux kernel modules for hardware
5 * Copyright (C) 2003-2010 Jean Delvare <jdelvare@suse.de>
7 * Based on the lm83 driver. The LM90 is a sensor chip made by National
8 * Semiconductor. It reports up to two temperatures (its own plus up to
9 * one external one) with a 0.125 deg resolution (1 deg for local
10 * temperature) and a 3-4 deg accuracy.
12 * This driver also supports the LM89 and LM99, two other sensor chips
13 * made by National Semiconductor. Both have an increased remote
14 * temperature measurement accuracy (1 degree), and the LM99
15 * additionally shifts remote temperatures (measured and limits) by 16
16 * degrees, which allows for higher temperatures measurement.
17 * Note that there is no way to differentiate between both chips.
18 * When device is auto-detected, the driver will assume an LM99.
20 * This driver also supports the LM86, another sensor chip made by
21 * National Semiconductor. It is exactly similar to the LM90 except it
22 * has a higher accuracy.
24 * This driver also supports the ADM1032, a sensor chip made by Analog
25 * Devices. That chip is similar to the LM90, with a few differences
26 * that are not handled by this driver. Among others, it has a higher
27 * accuracy than the LM90, much like the LM86 does.
29 * This driver also supports the MAX6657, MAX6658 and MAX6659 sensor
30 * chips made by Maxim. These chips are similar to the LM86.
31 * Note that there is no easy way to differentiate between the three
32 * variants. We use the device address to detect MAX6659, which will result
33 * in a detection as max6657 if it is on address 0x4c. The extra address
34 * and features of the MAX6659 are only supported if the chip is configured
35 * explicitly as max6659, or if its address is not 0x4c.
36 * These chips lack the remote temperature offset feature.
38 * This driver also supports the MAX6654 chip made by Maxim. This chip can
39 * be at 9 different addresses, similar to MAX6680/MAX6681. The MAX6654 is
40 * otherwise similar to MAX6657/MAX6658/MAX6659. Extended range is available
41 * by setting the configuration register accordingly, and is done during
42 * initialization. Extended precision is only available at conversion rates
43 * of 1 Hz and slower. Note that extended precision is not enabled by
44 * default, as this driver initializes all chips to 2 Hz by design.
46 * This driver also supports the MAX6646, MAX6647, MAX6648, MAX6649 and
47 * MAX6692 chips made by Maxim. These are again similar to the LM86,
48 * but they use unsigned temperature values and can report temperatures
49 * from 0 to 145 degrees.
51 * This driver also supports the MAX6680 and MAX6681, two other sensor
52 * chips made by Maxim. These are quite similar to the other Maxim
53 * chips. The MAX6680 and MAX6681 only differ in the pinout so they can
54 * be treated identically.
56 * This driver also supports the MAX6695 and MAX6696, two other sensor
57 * chips made by Maxim. These are also quite similar to other Maxim
58 * chips, but support three temperature sensors instead of two. MAX6695
59 * and MAX6696 only differ in the pinout so they can be treated identically.
61 * This driver also supports ADT7461 and ADT7461A from Analog Devices as well as
62 * NCT1008 from ON Semiconductor. The chips are supported in both compatibility
63 * and extended mode. They are mostly compatible with LM90 except for a data
64 * format difference for the temperature value registers.
66 * This driver also supports the SA56004 from Philips. This device is
67 * pin-compatible with the LM86, the ED/EDP parts are also address-compatible.
69 * This driver also supports the G781 from GMT. This device is compatible
72 * This driver also supports TMP451 from Texas Instruments. This device is
73 * supported in both compatibility and extended mode. It's mostly compatible
74 * with ADT7461 except for local temperature low byte register and max
77 * Since the LM90 was the first chipset supported by this driver, most
78 * comments will refer to this chipset, but are actually general and
79 * concern all supported chipsets, unless mentioned otherwise.
82 #include <linux/module.h>
83 #include <linux/init.h>
84 #include <linux/slab.h>
85 #include <linux/jiffies.h>
86 #include <linux/i2c.h>
87 #include <linux/hwmon.h>
88 #include <linux/err.h>
89 #include <linux/mutex.h>
90 #include <linux/of_device.h>
91 #include <linux/sysfs.h>
92 #include <linux/interrupt.h>
93 #include <linux/regulator/consumer.h>
97 * Address is fully defined internally and cannot be changed except for
98 * MAX6659, MAX6680 and MAX6681.
99 * LM86, LM89, LM90, LM99, ADM1032, ADM1032-1, ADT7461, ADT7461A, MAX6649,
100 * MAX6657, MAX6658, NCT1008 and W83L771 have address 0x4c.
101 * ADM1032-2, ADT7461-2, ADT7461A-2, LM89-1, LM99-1, MAX6646, and NCT1008D
103 * MAX6647 has address 0x4e.
104 * MAX6659 can have address 0x4c, 0x4d or 0x4e.
105 * MAX6654, MAX6680, and MAX6681 can have address 0x18, 0x19, 0x1a, 0x29,
106 * 0x2a, 0x2b, 0x4c, 0x4d or 0x4e.
107 * SA56004 can have address 0x48 through 0x4F.
110 static const unsigned short normal_i2c
[] = {
111 0x18, 0x19, 0x1a, 0x29, 0x2a, 0x2b, 0x48, 0x49, 0x4a, 0x4b, 0x4c,
112 0x4d, 0x4e, 0x4f, I2C_CLIENT_END
};
114 enum chips
{ lm90
, adm1032
, lm99
, lm86
, max6657
, max6659
, adt7461
, max6680
,
115 max6646
, w83l771
, max6696
, sa56004
, g781
, tmp451
, max6654
};
121 #define LM90_REG_R_MAN_ID 0xFE
122 #define LM90_REG_R_CHIP_ID 0xFF
123 #define LM90_REG_R_CONFIG1 0x03
124 #define LM90_REG_W_CONFIG1 0x09
125 #define LM90_REG_R_CONFIG2 0xBF
126 #define LM90_REG_W_CONFIG2 0xBF
127 #define LM90_REG_R_CONVRATE 0x04
128 #define LM90_REG_W_CONVRATE 0x0A
129 #define LM90_REG_R_STATUS 0x02
130 #define LM90_REG_R_LOCAL_TEMP 0x00
131 #define LM90_REG_R_LOCAL_HIGH 0x05
132 #define LM90_REG_W_LOCAL_HIGH 0x0B
133 #define LM90_REG_R_LOCAL_LOW 0x06
134 #define LM90_REG_W_LOCAL_LOW 0x0C
135 #define LM90_REG_R_LOCAL_CRIT 0x20
136 #define LM90_REG_W_LOCAL_CRIT 0x20
137 #define LM90_REG_R_REMOTE_TEMPH 0x01
138 #define LM90_REG_R_REMOTE_TEMPL 0x10
139 #define LM90_REG_R_REMOTE_OFFSH 0x11
140 #define LM90_REG_W_REMOTE_OFFSH 0x11
141 #define LM90_REG_R_REMOTE_OFFSL 0x12
142 #define LM90_REG_W_REMOTE_OFFSL 0x12
143 #define LM90_REG_R_REMOTE_HIGHH 0x07
144 #define LM90_REG_W_REMOTE_HIGHH 0x0D
145 #define LM90_REG_R_REMOTE_HIGHL 0x13
146 #define LM90_REG_W_REMOTE_HIGHL 0x13
147 #define LM90_REG_R_REMOTE_LOWH 0x08
148 #define LM90_REG_W_REMOTE_LOWH 0x0E
149 #define LM90_REG_R_REMOTE_LOWL 0x14
150 #define LM90_REG_W_REMOTE_LOWL 0x14
151 #define LM90_REG_R_REMOTE_CRIT 0x19
152 #define LM90_REG_W_REMOTE_CRIT 0x19
153 #define LM90_REG_R_TCRIT_HYST 0x21
154 #define LM90_REG_W_TCRIT_HYST 0x21
156 /* MAX6646/6647/6649/6654/6657/6658/6659/6695/6696 registers */
158 #define MAX6657_REG_R_LOCAL_TEMPL 0x11
159 #define MAX6696_REG_R_STATUS2 0x12
160 #define MAX6659_REG_R_REMOTE_EMERG 0x16
161 #define MAX6659_REG_W_REMOTE_EMERG 0x16
162 #define MAX6659_REG_R_LOCAL_EMERG 0x17
163 #define MAX6659_REG_W_LOCAL_EMERG 0x17
165 /* SA56004 registers */
167 #define SA56004_REG_R_LOCAL_TEMPL 0x22
169 #define LM90_MAX_CONVRATE_MS 16000 /* Maximum conversion rate in ms */
171 /* TMP451 registers */
172 #define TMP451_REG_R_LOCAL_TEMPL 0x15
177 #define LM90_FLAG_ADT7461_EXT (1 << 0) /* ADT7461 extended mode */
178 /* Device features */
179 #define LM90_HAVE_OFFSET (1 << 1) /* temperature offset register */
180 #define LM90_HAVE_REM_LIMIT_EXT (1 << 3) /* extended remote limit */
181 #define LM90_HAVE_EMERGENCY (1 << 4) /* 3rd upper (emergency) limit */
182 #define LM90_HAVE_EMERGENCY_ALARM (1 << 5)/* emergency alarm */
183 #define LM90_HAVE_TEMP3 (1 << 6) /* 3rd temperature sensor */
184 #define LM90_HAVE_BROKEN_ALERT (1 << 7) /* Broken alert */
185 #define LM90_PAUSE_FOR_CONFIG (1 << 8) /* Pause conversion for config */
188 #define LM90_STATUS_LTHRM (1 << 0) /* local THERM limit tripped */
189 #define LM90_STATUS_RTHRM (1 << 1) /* remote THERM limit tripped */
190 #define LM90_STATUS_ROPEN (1 << 2) /* remote is an open circuit */
191 #define LM90_STATUS_RLOW (1 << 3) /* remote low temp limit tripped */
192 #define LM90_STATUS_RHIGH (1 << 4) /* remote high temp limit tripped */
193 #define LM90_STATUS_LLOW (1 << 5) /* local low temp limit tripped */
194 #define LM90_STATUS_LHIGH (1 << 6) /* local high temp limit tripped */
196 #define MAX6696_STATUS2_R2THRM (1 << 1) /* remote2 THERM limit tripped */
197 #define MAX6696_STATUS2_R2OPEN (1 << 2) /* remote2 is an open circuit */
198 #define MAX6696_STATUS2_R2LOW (1 << 3) /* remote2 low temp limit tripped */
199 #define MAX6696_STATUS2_R2HIGH (1 << 4) /* remote2 high temp limit tripped */
200 #define MAX6696_STATUS2_ROT2 (1 << 5) /* remote emergency limit tripped */
201 #define MAX6696_STATUS2_R2OT2 (1 << 6) /* remote2 emergency limit tripped */
202 #define MAX6696_STATUS2_LOT2 (1 << 7) /* local emergency limit tripped */
205 * Driver data (common to all clients)
208 static const struct i2c_device_id lm90_id
[] = {
209 { "adm1032", adm1032
},
210 { "adt7461", adt7461
},
211 { "adt7461a", adt7461
},
217 { "max6646", max6646
},
218 { "max6647", max6646
},
219 { "max6649", max6646
},
220 { "max6654", max6654
},
221 { "max6657", max6657
},
222 { "max6658", max6657
},
223 { "max6659", max6659
},
224 { "max6680", max6680
},
225 { "max6681", max6680
},
226 { "max6695", max6696
},
227 { "max6696", max6696
},
228 { "nct1008", adt7461
},
229 { "w83l771", w83l771
},
230 { "sa56004", sa56004
},
231 { "tmp451", tmp451
},
234 MODULE_DEVICE_TABLE(i2c
, lm90_id
);
236 static const struct of_device_id __maybe_unused lm90_of_match
[] = {
238 .compatible
= "adi,adm1032",
239 .data
= (void *)adm1032
242 .compatible
= "adi,adt7461",
243 .data
= (void *)adt7461
246 .compatible
= "adi,adt7461a",
247 .data
= (void *)adt7461
250 .compatible
= "gmt,g781",
254 .compatible
= "national,lm90",
258 .compatible
= "national,lm86",
262 .compatible
= "national,lm89",
266 .compatible
= "national,lm99",
270 .compatible
= "dallas,max6646",
271 .data
= (void *)max6646
274 .compatible
= "dallas,max6647",
275 .data
= (void *)max6646
278 .compatible
= "dallas,max6649",
279 .data
= (void *)max6646
282 .compatible
= "dallas,max6654",
283 .data
= (void *)max6654
286 .compatible
= "dallas,max6657",
287 .data
= (void *)max6657
290 .compatible
= "dallas,max6658",
291 .data
= (void *)max6657
294 .compatible
= "dallas,max6659",
295 .data
= (void *)max6659
298 .compatible
= "dallas,max6680",
299 .data
= (void *)max6680
302 .compatible
= "dallas,max6681",
303 .data
= (void *)max6680
306 .compatible
= "dallas,max6695",
307 .data
= (void *)max6696
310 .compatible
= "dallas,max6696",
311 .data
= (void *)max6696
314 .compatible
= "onnn,nct1008",
315 .data
= (void *)adt7461
318 .compatible
= "winbond,w83l771",
319 .data
= (void *)w83l771
322 .compatible
= "nxp,sa56004",
323 .data
= (void *)sa56004
326 .compatible
= "ti,tmp451",
327 .data
= (void *)tmp451
331 MODULE_DEVICE_TABLE(of
, lm90_of_match
);
334 * chip type specific parameters
337 u32 flags
; /* Capabilities */
338 u16 alert_alarms
; /* Which alarm bits trigger ALERT# */
339 /* Upper 8 bits for max6695/96 */
340 u8 max_convrate
; /* Maximum conversion rate register value */
341 u8 reg_local_ext
; /* Extended local temp register (optional) */
344 static const struct lm90_params lm90_params
[] = {
346 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
347 | LM90_HAVE_BROKEN_ALERT
,
348 .alert_alarms
= 0x7c,
352 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
353 | LM90_HAVE_BROKEN_ALERT
,
354 .alert_alarms
= 0x7c,
358 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
359 | LM90_HAVE_BROKEN_ALERT
,
360 .alert_alarms
= 0x7c,
364 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
,
365 .alert_alarms
= 0x7b,
369 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
,
370 .alert_alarms
= 0x7b,
374 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
,
375 .alert_alarms
= 0x7b,
379 .alert_alarms
= 0x7c,
381 .reg_local_ext
= MAX6657_REG_R_LOCAL_TEMPL
,
384 .alert_alarms
= 0x7c,
386 .reg_local_ext
= MAX6657_REG_R_LOCAL_TEMPL
,
389 .flags
= LM90_PAUSE_FOR_CONFIG
,
390 .alert_alarms
= 0x7c,
392 .reg_local_ext
= MAX6657_REG_R_LOCAL_TEMPL
,
395 .flags
= LM90_HAVE_EMERGENCY
,
396 .alert_alarms
= 0x7c,
398 .reg_local_ext
= MAX6657_REG_R_LOCAL_TEMPL
,
401 .flags
= LM90_HAVE_OFFSET
,
402 .alert_alarms
= 0x7c,
406 .flags
= LM90_HAVE_EMERGENCY
407 | LM90_HAVE_EMERGENCY_ALARM
| LM90_HAVE_TEMP3
,
408 .alert_alarms
= 0x1c7c,
410 .reg_local_ext
= MAX6657_REG_R_LOCAL_TEMPL
,
413 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
,
414 .alert_alarms
= 0x7c,
418 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
,
419 .alert_alarms
= 0x7b,
421 .reg_local_ext
= SA56004_REG_R_LOCAL_TEMPL
,
424 .flags
= LM90_HAVE_OFFSET
| LM90_HAVE_REM_LIMIT_EXT
425 | LM90_HAVE_BROKEN_ALERT
,
426 .alert_alarms
= 0x7c,
428 .reg_local_ext
= TMP451_REG_R_LOCAL_TEMPL
,
433 * TEMP8 register index
435 enum lm90_temp8_reg_index
{
440 LOCAL_EMERG
, /* max6659 and max6695/96 */
441 REMOTE_EMERG
, /* max6659 and max6695/96 */
442 REMOTE2_CRIT
, /* max6695/96 only */
443 REMOTE2_EMERG
, /* max6695/96 only */
448 * TEMP11 register index
450 enum lm90_temp11_reg_index
{
454 REMOTE_OFFSET
, /* except max6646, max6657/58/59, and max6695/96 */
456 REMOTE2_TEMP
, /* max6695/96 only */
457 REMOTE2_LOW
, /* max6695/96 only */
458 REMOTE2_HIGH
, /* max6695/96 only */
463 * Client data (each client gets its own)
467 struct i2c_client
*client
;
468 u32 channel_config
[4];
469 struct hwmon_channel_info temp_info
;
470 const struct hwmon_channel_info
*info
[3];
471 struct hwmon_chip_info chip
;
472 struct mutex update_lock
;
473 bool valid
; /* true if register values are valid */
474 unsigned long last_updated
; /* in jiffies */
478 unsigned int update_interval
; /* in milliseconds */
480 u8 config
; /* Current configuration register value */
481 u8 config_orig
; /* Original configuration register value */
482 u8 convrate_orig
; /* Original conversion rate register value */
483 u16 alert_alarms
; /* Which alarm bits trigger ALERT# */
484 /* Upper 8 bits for max6695/96 */
485 u8 max_convrate
; /* Maximum conversion rate */
486 u8 reg_local_ext
; /* local extension register offset */
488 /* registers values */
489 s8 temp8
[TEMP8_REG_NUM
];
490 s16 temp11
[TEMP11_REG_NUM
];
492 u16 alarms
; /* bitvector (upper 8 bits for max6695/96) */
500 * The ADM1032 supports PEC but not on write byte transactions, so we need
501 * to explicitly ask for a transaction without PEC.
503 static inline s32
adm1032_write_byte(struct i2c_client
*client
, u8 value
)
505 return i2c_smbus_xfer(client
->adapter
, client
->addr
,
506 client
->flags
& ~I2C_CLIENT_PEC
,
507 I2C_SMBUS_WRITE
, value
, I2C_SMBUS_BYTE
, NULL
);
511 * It is assumed that client->update_lock is held (unless we are in
512 * detection or initialization steps). This matters when PEC is enabled,
513 * because we don't want the address pointer to change between the write
514 * byte and the read byte transactions.
516 static int lm90_read_reg(struct i2c_client
*client
, u8 reg
)
520 if (client
->flags
& I2C_CLIENT_PEC
) {
521 err
= adm1032_write_byte(client
, reg
);
523 err
= i2c_smbus_read_byte(client
);
525 err
= i2c_smbus_read_byte_data(client
, reg
);
530 static int lm90_read16(struct i2c_client
*client
, u8 regh
, u8 regl
)
535 * There is a trick here. We have to read two registers to have the
536 * sensor temperature, but we have to beware a conversion could occur
537 * between the readings. The datasheet says we should either use
538 * the one-shot conversion register, which we don't want to do
539 * (disables hardware monitoring) or monitor the busy bit, which is
540 * impossible (we can't read the values and monitor that bit at the
541 * exact same time). So the solution used here is to read the high
542 * byte once, then the low byte, then the high byte again. If the new
543 * high byte matches the old one, then we have a valid reading. Else
544 * we have to read the low byte again, and now we believe we have a
547 oldh
= lm90_read_reg(client
, regh
);
550 l
= lm90_read_reg(client
, regl
);
553 newh
= lm90_read_reg(client
, regh
);
557 l
= lm90_read_reg(client
, regl
);
561 return (newh
<< 8) | l
;
564 static int lm90_update_confreg(struct lm90_data
*data
, u8 config
)
566 if (data
->config
!= config
) {
569 err
= i2c_smbus_write_byte_data(data
->client
,
574 data
->config
= config
;
580 * client->update_lock must be held when calling this function (unless we are
581 * in detection or initialization steps), and while a remote channel other
582 * than channel 0 is selected. Also, calling code must make sure to re-select
583 * external channel 0 before releasing the lock. This is necessary because
584 * various registers have different meanings as a result of selecting a
585 * non-default remote channel.
587 static int lm90_select_remote_channel(struct lm90_data
*data
, int channel
)
591 if (data
->kind
== max6696
) {
592 u8 config
= data
->config
& ~0x08;
596 err
= lm90_update_confreg(data
, config
);
601 static int lm90_write_convrate(struct lm90_data
*data
, int val
)
603 u8 config
= data
->config
;
606 /* Save config and pause conversion */
607 if (data
->flags
& LM90_PAUSE_FOR_CONFIG
) {
608 err
= lm90_update_confreg(data
, config
| 0x40);
614 err
= i2c_smbus_write_byte_data(data
->client
, LM90_REG_W_CONVRATE
, val
);
616 /* Revert change to config */
617 lm90_update_confreg(data
, config
);
623 * Set conversion rate.
624 * client->update_lock must be held when calling this function (unless we are
625 * in detection or initialization steps).
627 static int lm90_set_convrate(struct i2c_client
*client
, struct lm90_data
*data
,
628 unsigned int interval
)
630 unsigned int update_interval
;
633 /* Shift calculations to avoid rounding errors */
636 /* find the nearest update rate */
637 for (i
= 0, update_interval
= LM90_MAX_CONVRATE_MS
<< 6;
638 i
< data
->max_convrate
; i
++, update_interval
>>= 1)
639 if (interval
>= update_interval
* 3 / 4)
642 err
= lm90_write_convrate(data
, i
);
643 data
->update_interval
= DIV_ROUND_CLOSEST(update_interval
, 64);
647 static int lm90_update_limits(struct device
*dev
)
649 struct lm90_data
*data
= dev_get_drvdata(dev
);
650 struct i2c_client
*client
= data
->client
;
653 val
= lm90_read_reg(client
, LM90_REG_R_LOCAL_CRIT
);
656 data
->temp8
[LOCAL_CRIT
] = val
;
658 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_CRIT
);
661 data
->temp8
[REMOTE_CRIT
] = val
;
663 val
= lm90_read_reg(client
, LM90_REG_R_TCRIT_HYST
);
666 data
->temp_hyst
= val
;
668 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_LOWH
);
671 data
->temp11
[REMOTE_LOW
] = val
<< 8;
673 if (data
->flags
& LM90_HAVE_REM_LIMIT_EXT
) {
674 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_LOWL
);
677 data
->temp11
[REMOTE_LOW
] |= val
;
680 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_HIGHH
);
683 data
->temp11
[REMOTE_HIGH
] = val
<< 8;
685 if (data
->flags
& LM90_HAVE_REM_LIMIT_EXT
) {
686 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_HIGHL
);
689 data
->temp11
[REMOTE_HIGH
] |= val
;
692 if (data
->flags
& LM90_HAVE_OFFSET
) {
693 val
= lm90_read16(client
, LM90_REG_R_REMOTE_OFFSH
,
694 LM90_REG_R_REMOTE_OFFSL
);
697 data
->temp11
[REMOTE_OFFSET
] = val
;
700 if (data
->flags
& LM90_HAVE_EMERGENCY
) {
701 val
= lm90_read_reg(client
, MAX6659_REG_R_LOCAL_EMERG
);
704 data
->temp8
[LOCAL_EMERG
] = val
;
706 val
= lm90_read_reg(client
, MAX6659_REG_R_REMOTE_EMERG
);
709 data
->temp8
[REMOTE_EMERG
] = val
;
712 if (data
->kind
== max6696
) {
713 val
= lm90_select_remote_channel(data
, 1);
717 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_CRIT
);
720 data
->temp8
[REMOTE2_CRIT
] = val
;
722 val
= lm90_read_reg(client
, MAX6659_REG_R_REMOTE_EMERG
);
725 data
->temp8
[REMOTE2_EMERG
] = val
;
727 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_LOWH
);
730 data
->temp11
[REMOTE2_LOW
] = val
<< 8;
732 val
= lm90_read_reg(client
, LM90_REG_R_REMOTE_HIGHH
);
735 data
->temp11
[REMOTE2_HIGH
] = val
<< 8;
737 lm90_select_remote_channel(data
, 0);
743 static int lm90_update_device(struct device
*dev
)
745 struct lm90_data
*data
= dev_get_drvdata(dev
);
746 struct i2c_client
*client
= data
->client
;
747 unsigned long next_update
;
751 val
= lm90_update_limits(dev
);
756 next_update
= data
->last_updated
+
757 msecs_to_jiffies(data
->update_interval
);
758 if (time_after(jiffies
, next_update
) || !data
->valid
) {
759 dev_dbg(&client
->dev
, "Updating lm90 data.\n");
763 val
= lm90_read_reg(client
, LM90_REG_R_LOCAL_LOW
);
766 data
->temp8
[LOCAL_LOW
] = val
;
768 val
= lm90_read_reg(client
, LM90_REG_R_LOCAL_HIGH
);
771 data
->temp8
[LOCAL_HIGH
] = val
;
773 if (data
->reg_local_ext
) {
774 val
= lm90_read16(client
, LM90_REG_R_LOCAL_TEMP
,
775 data
->reg_local_ext
);
778 data
->temp11
[LOCAL_TEMP
] = val
;
780 val
= lm90_read_reg(client
, LM90_REG_R_LOCAL_TEMP
);
783 data
->temp11
[LOCAL_TEMP
] = val
<< 8;
785 val
= lm90_read16(client
, LM90_REG_R_REMOTE_TEMPH
,
786 LM90_REG_R_REMOTE_TEMPL
);
789 data
->temp11
[REMOTE_TEMP
] = val
;
791 val
= lm90_read_reg(client
, LM90_REG_R_STATUS
);
794 data
->alarms
= val
; /* lower 8 bit of alarms */
796 if (data
->kind
== max6696
) {
797 val
= lm90_select_remote_channel(data
, 1);
801 val
= lm90_read16(client
, LM90_REG_R_REMOTE_TEMPH
,
802 LM90_REG_R_REMOTE_TEMPL
);
804 lm90_select_remote_channel(data
, 0);
807 data
->temp11
[REMOTE2_TEMP
] = val
;
809 lm90_select_remote_channel(data
, 0);
811 val
= lm90_read_reg(client
, MAX6696_REG_R_STATUS2
);
814 data
->alarms
|= val
<< 8;
818 * Re-enable ALERT# output if it was originally enabled and
819 * relevant alarms are all clear
821 if (!(data
->config_orig
& 0x80) &&
822 !(data
->alarms
& data
->alert_alarms
)) {
823 if (data
->config
& 0x80) {
824 dev_dbg(&client
->dev
, "Re-enabling ALERT#\n");
825 lm90_update_confreg(data
, data
->config
& ~0x80);
829 data
->last_updated
= jiffies
;
838 * For local temperatures and limits, critical limits and the hysteresis
839 * value, the LM90 uses signed 8-bit values with LSB = 1 degree Celsius.
840 * For remote temperatures and limits, it uses signed 11-bit values with
841 * LSB = 0.125 degree Celsius, left-justified in 16-bit registers. Some
842 * Maxim chips use unsigned values.
845 static inline int temp_from_s8(s8 val
)
850 static inline int temp_from_u8(u8 val
)
855 static inline int temp_from_s16(s16 val
)
857 return val
/ 32 * 125;
860 static inline int temp_from_u16(u16 val
)
862 return val
/ 32 * 125;
865 static s8
temp_to_s8(long val
)
872 return (val
- 500) / 1000;
873 return (val
+ 500) / 1000;
876 static u8
temp_to_u8(long val
)
882 return (val
+ 500) / 1000;
885 static s16
temp_to_s16(long val
)
892 return (val
- 62) / 125 * 32;
893 return (val
+ 62) / 125 * 32;
896 static u8
hyst_to_reg(long val
)
902 return (val
+ 500) / 1000;
906 * ADT7461 in compatibility mode is almost identical to LM90 except that
907 * attempts to write values that are outside the range 0 < temp < 127 are
908 * treated as the boundary value.
910 * ADT7461 in "extended mode" operation uses unsigned integers offset by
911 * 64 (e.g., 0 -> -64 degC). The range is restricted to -64..191 degC.
913 static inline int temp_from_u8_adt7461(struct lm90_data
*data
, u8 val
)
915 if (data
->flags
& LM90_FLAG_ADT7461_EXT
)
916 return (val
- 64) * 1000;
917 return temp_from_s8(val
);
920 static inline int temp_from_u16_adt7461(struct lm90_data
*data
, u16 val
)
922 if (data
->flags
& LM90_FLAG_ADT7461_EXT
)
923 return (val
- 0x4000) / 64 * 250;
924 return temp_from_s16(val
);
927 static u8
temp_to_u8_adt7461(struct lm90_data
*data
, long val
)
929 if (data
->flags
& LM90_FLAG_ADT7461_EXT
) {
934 return (val
+ 500 + 64000) / 1000;
940 return (val
+ 500) / 1000;
943 static u16
temp_to_u16_adt7461(struct lm90_data
*data
, long val
)
945 if (data
->flags
& LM90_FLAG_ADT7461_EXT
) {
950 return (val
+ 64000 + 125) / 250 * 64;
956 return (val
+ 125) / 250 * 64;
959 /* pec used for ADM1032 only */
960 static ssize_t
pec_show(struct device
*dev
, struct device_attribute
*dummy
,
963 struct i2c_client
*client
= to_i2c_client(dev
);
965 return sprintf(buf
, "%d\n", !!(client
->flags
& I2C_CLIENT_PEC
));
968 static ssize_t
pec_store(struct device
*dev
, struct device_attribute
*dummy
,
969 const char *buf
, size_t count
)
971 struct i2c_client
*client
= to_i2c_client(dev
);
975 err
= kstrtol(buf
, 10, &val
);
981 client
->flags
&= ~I2C_CLIENT_PEC
;
984 client
->flags
|= I2C_CLIENT_PEC
;
993 static DEVICE_ATTR_RW(pec
);
995 static int lm90_get_temp11(struct lm90_data
*data
, int index
)
997 s16 temp11
= data
->temp11
[index
];
1000 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1001 temp
= temp_from_u16_adt7461(data
, temp11
);
1002 else if (data
->kind
== max6646
)
1003 temp
= temp_from_u16(temp11
);
1005 temp
= temp_from_s16(temp11
);
1007 /* +16 degrees offset for temp2 for the LM99 */
1008 if (data
->kind
== lm99
&& index
<= 2)
1014 static int lm90_set_temp11(struct lm90_data
*data
, int index
, long val
)
1020 [REMOTE_LOW
] = { LM90_REG_W_REMOTE_LOWH
, LM90_REG_W_REMOTE_LOWL
},
1021 [REMOTE_HIGH
] = { LM90_REG_W_REMOTE_HIGHH
, LM90_REG_W_REMOTE_HIGHL
},
1022 [REMOTE_OFFSET
] = { LM90_REG_W_REMOTE_OFFSH
, LM90_REG_W_REMOTE_OFFSL
},
1023 [REMOTE2_LOW
] = { LM90_REG_W_REMOTE_LOWH
, LM90_REG_W_REMOTE_LOWL
},
1024 [REMOTE2_HIGH
] = { LM90_REG_W_REMOTE_HIGHH
, LM90_REG_W_REMOTE_HIGHL
}
1026 struct i2c_client
*client
= data
->client
;
1027 struct reg
*regp
= ®
[index
];
1030 /* +16 degrees offset for temp2 for the LM99 */
1031 if (data
->kind
== lm99
&& index
<= 2)
1034 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1035 data
->temp11
[index
] = temp_to_u16_adt7461(data
, val
);
1036 else if (data
->kind
== max6646
)
1037 data
->temp11
[index
] = temp_to_u8(val
) << 8;
1038 else if (data
->flags
& LM90_HAVE_REM_LIMIT_EXT
)
1039 data
->temp11
[index
] = temp_to_s16(val
);
1041 data
->temp11
[index
] = temp_to_s8(val
) << 8;
1043 lm90_select_remote_channel(data
, index
>= 3);
1044 err
= i2c_smbus_write_byte_data(client
, regp
->high
,
1045 data
->temp11
[index
] >> 8);
1048 if (data
->flags
& LM90_HAVE_REM_LIMIT_EXT
)
1049 err
= i2c_smbus_write_byte_data(client
, regp
->low
,
1050 data
->temp11
[index
] & 0xff);
1052 lm90_select_remote_channel(data
, 0);
1056 static int lm90_get_temp8(struct lm90_data
*data
, int index
)
1058 s8 temp8
= data
->temp8
[index
];
1061 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1062 temp
= temp_from_u8_adt7461(data
, temp8
);
1063 else if (data
->kind
== max6646
)
1064 temp
= temp_from_u8(temp8
);
1066 temp
= temp_from_s8(temp8
);
1068 /* +16 degrees offset for temp2 for the LM99 */
1069 if (data
->kind
== lm99
&& index
== 3)
1075 static int lm90_set_temp8(struct lm90_data
*data
, int index
, long val
)
1077 static const u8 reg
[TEMP8_REG_NUM
] = {
1078 LM90_REG_W_LOCAL_LOW
,
1079 LM90_REG_W_LOCAL_HIGH
,
1080 LM90_REG_W_LOCAL_CRIT
,
1081 LM90_REG_W_REMOTE_CRIT
,
1082 MAX6659_REG_W_LOCAL_EMERG
,
1083 MAX6659_REG_W_REMOTE_EMERG
,
1084 LM90_REG_W_REMOTE_CRIT
,
1085 MAX6659_REG_W_REMOTE_EMERG
,
1087 struct i2c_client
*client
= data
->client
;
1090 /* +16 degrees offset for temp2 for the LM99 */
1091 if (data
->kind
== lm99
&& index
== 3)
1094 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1095 data
->temp8
[index
] = temp_to_u8_adt7461(data
, val
);
1096 else if (data
->kind
== max6646
)
1097 data
->temp8
[index
] = temp_to_u8(val
);
1099 data
->temp8
[index
] = temp_to_s8(val
);
1101 lm90_select_remote_channel(data
, index
>= 6);
1102 err
= i2c_smbus_write_byte_data(client
, reg
[index
], data
->temp8
[index
]);
1103 lm90_select_remote_channel(data
, 0);
1108 static int lm90_get_temphyst(struct lm90_data
*data
, int index
)
1112 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1113 temp
= temp_from_u8_adt7461(data
, data
->temp8
[index
]);
1114 else if (data
->kind
== max6646
)
1115 temp
= temp_from_u8(data
->temp8
[index
]);
1117 temp
= temp_from_s8(data
->temp8
[index
]);
1119 /* +16 degrees offset for temp2 for the LM99 */
1120 if (data
->kind
== lm99
&& index
== 3)
1123 return temp
- temp_from_s8(data
->temp_hyst
);
1126 static int lm90_set_temphyst(struct lm90_data
*data
, long val
)
1128 struct i2c_client
*client
= data
->client
;
1132 if (data
->kind
== adt7461
|| data
->kind
== tmp451
)
1133 temp
= temp_from_u8_adt7461(data
, data
->temp8
[LOCAL_CRIT
]);
1134 else if (data
->kind
== max6646
)
1135 temp
= temp_from_u8(data
->temp8
[LOCAL_CRIT
]);
1137 temp
= temp_from_s8(data
->temp8
[LOCAL_CRIT
]);
1139 data
->temp_hyst
= hyst_to_reg(temp
- val
);
1140 err
= i2c_smbus_write_byte_data(client
, LM90_REG_W_TCRIT_HYST
,
1145 static const u8 lm90_temp_index
[3] = {
1146 LOCAL_TEMP
, REMOTE_TEMP
, REMOTE2_TEMP
1149 static const u8 lm90_temp_min_index
[3] = {
1150 LOCAL_LOW
, REMOTE_LOW
, REMOTE2_LOW
1153 static const u8 lm90_temp_max_index
[3] = {
1154 LOCAL_HIGH
, REMOTE_HIGH
, REMOTE2_HIGH
1157 static const u8 lm90_temp_crit_index
[3] = {
1158 LOCAL_CRIT
, REMOTE_CRIT
, REMOTE2_CRIT
1161 static const u8 lm90_temp_emerg_index
[3] = {
1162 LOCAL_EMERG
, REMOTE_EMERG
, REMOTE2_EMERG
1165 static const u8 lm90_min_alarm_bits
[3] = { 5, 3, 11 };
1166 static const u8 lm90_max_alarm_bits
[3] = { 6, 4, 12 };
1167 static const u8 lm90_crit_alarm_bits
[3] = { 0, 1, 9 };
1168 static const u8 lm90_emergency_alarm_bits
[3] = { 15, 13, 14 };
1169 static const u8 lm90_fault_bits
[3] = { 0, 2, 10 };
1171 static int lm90_temp_read(struct device
*dev
, u32 attr
, int channel
, long *val
)
1173 struct lm90_data
*data
= dev_get_drvdata(dev
);
1176 mutex_lock(&data
->update_lock
);
1177 err
= lm90_update_device(dev
);
1178 mutex_unlock(&data
->update_lock
);
1183 case hwmon_temp_input
:
1184 *val
= lm90_get_temp11(data
, lm90_temp_index
[channel
]);
1186 case hwmon_temp_min_alarm
:
1187 *val
= (data
->alarms
>> lm90_min_alarm_bits
[channel
]) & 1;
1189 case hwmon_temp_max_alarm
:
1190 *val
= (data
->alarms
>> lm90_max_alarm_bits
[channel
]) & 1;
1192 case hwmon_temp_crit_alarm
:
1193 *val
= (data
->alarms
>> lm90_crit_alarm_bits
[channel
]) & 1;
1195 case hwmon_temp_emergency_alarm
:
1196 *val
= (data
->alarms
>> lm90_emergency_alarm_bits
[channel
]) & 1;
1198 case hwmon_temp_fault
:
1199 *val
= (data
->alarms
>> lm90_fault_bits
[channel
]) & 1;
1201 case hwmon_temp_min
:
1203 *val
= lm90_get_temp8(data
,
1204 lm90_temp_min_index
[channel
]);
1206 *val
= lm90_get_temp11(data
,
1207 lm90_temp_min_index
[channel
]);
1209 case hwmon_temp_max
:
1211 *val
= lm90_get_temp8(data
,
1212 lm90_temp_max_index
[channel
]);
1214 *val
= lm90_get_temp11(data
,
1215 lm90_temp_max_index
[channel
]);
1217 case hwmon_temp_crit
:
1218 *val
= lm90_get_temp8(data
, lm90_temp_crit_index
[channel
]);
1220 case hwmon_temp_crit_hyst
:
1221 *val
= lm90_get_temphyst(data
, lm90_temp_crit_index
[channel
]);
1223 case hwmon_temp_emergency
:
1224 *val
= lm90_get_temp8(data
, lm90_temp_emerg_index
[channel
]);
1226 case hwmon_temp_emergency_hyst
:
1227 *val
= lm90_get_temphyst(data
, lm90_temp_emerg_index
[channel
]);
1229 case hwmon_temp_offset
:
1230 *val
= lm90_get_temp11(data
, REMOTE_OFFSET
);
1238 static int lm90_temp_write(struct device
*dev
, u32 attr
, int channel
, long val
)
1240 struct lm90_data
*data
= dev_get_drvdata(dev
);
1243 mutex_lock(&data
->update_lock
);
1245 err
= lm90_update_device(dev
);
1250 case hwmon_temp_min
:
1252 err
= lm90_set_temp8(data
,
1253 lm90_temp_min_index
[channel
],
1256 err
= lm90_set_temp11(data
,
1257 lm90_temp_min_index
[channel
],
1260 case hwmon_temp_max
:
1262 err
= lm90_set_temp8(data
,
1263 lm90_temp_max_index
[channel
],
1266 err
= lm90_set_temp11(data
,
1267 lm90_temp_max_index
[channel
],
1270 case hwmon_temp_crit
:
1271 err
= lm90_set_temp8(data
, lm90_temp_crit_index
[channel
], val
);
1273 case hwmon_temp_crit_hyst
:
1274 err
= lm90_set_temphyst(data
, val
);
1276 case hwmon_temp_emergency
:
1277 err
= lm90_set_temp8(data
, lm90_temp_emerg_index
[channel
], val
);
1279 case hwmon_temp_offset
:
1280 err
= lm90_set_temp11(data
, REMOTE_OFFSET
, val
);
1287 mutex_unlock(&data
->update_lock
);
1292 static umode_t
lm90_temp_is_visible(const void *data
, u32 attr
, int channel
)
1295 case hwmon_temp_input
:
1296 case hwmon_temp_min_alarm
:
1297 case hwmon_temp_max_alarm
:
1298 case hwmon_temp_crit_alarm
:
1299 case hwmon_temp_emergency_alarm
:
1300 case hwmon_temp_emergency_hyst
:
1301 case hwmon_temp_fault
:
1303 case hwmon_temp_min
:
1304 case hwmon_temp_max
:
1305 case hwmon_temp_crit
:
1306 case hwmon_temp_emergency
:
1307 case hwmon_temp_offset
:
1309 case hwmon_temp_crit_hyst
:
1318 static int lm90_chip_read(struct device
*dev
, u32 attr
, int channel
, long *val
)
1320 struct lm90_data
*data
= dev_get_drvdata(dev
);
1323 mutex_lock(&data
->update_lock
);
1324 err
= lm90_update_device(dev
);
1325 mutex_unlock(&data
->update_lock
);
1330 case hwmon_chip_update_interval
:
1331 *val
= data
->update_interval
;
1333 case hwmon_chip_alarms
:
1334 *val
= data
->alarms
;
1343 static int lm90_chip_write(struct device
*dev
, u32 attr
, int channel
, long val
)
1345 struct lm90_data
*data
= dev_get_drvdata(dev
);
1346 struct i2c_client
*client
= data
->client
;
1349 mutex_lock(&data
->update_lock
);
1351 err
= lm90_update_device(dev
);
1356 case hwmon_chip_update_interval
:
1357 err
= lm90_set_convrate(client
, data
,
1358 clamp_val(val
, 0, 100000));
1365 mutex_unlock(&data
->update_lock
);
1370 static umode_t
lm90_chip_is_visible(const void *data
, u32 attr
, int channel
)
1373 case hwmon_chip_update_interval
:
1375 case hwmon_chip_alarms
:
1382 static int lm90_read(struct device
*dev
, enum hwmon_sensor_types type
,
1383 u32 attr
, int channel
, long *val
)
1387 return lm90_chip_read(dev
, attr
, channel
, val
);
1389 return lm90_temp_read(dev
, attr
, channel
, val
);
1395 static int lm90_write(struct device
*dev
, enum hwmon_sensor_types type
,
1396 u32 attr
, int channel
, long val
)
1400 return lm90_chip_write(dev
, attr
, channel
, val
);
1402 return lm90_temp_write(dev
, attr
, channel
, val
);
1408 static umode_t
lm90_is_visible(const void *data
, enum hwmon_sensor_types type
,
1409 u32 attr
, int channel
)
1413 return lm90_chip_is_visible(data
, attr
, channel
);
1415 return lm90_temp_is_visible(data
, attr
, channel
);
1421 /* Return 0 if detection is successful, -ENODEV otherwise */
1422 static int lm90_detect(struct i2c_client
*client
,
1423 struct i2c_board_info
*info
)
1425 struct i2c_adapter
*adapter
= client
->adapter
;
1426 int address
= client
->addr
;
1427 const char *name
= NULL
;
1428 int man_id
, chip_id
, config1
, config2
, convrate
;
1430 if (!i2c_check_functionality(adapter
, I2C_FUNC_SMBUS_BYTE_DATA
))
1433 /* detection and identification */
1434 man_id
= i2c_smbus_read_byte_data(client
, LM90_REG_R_MAN_ID
);
1435 chip_id
= i2c_smbus_read_byte_data(client
, LM90_REG_R_CHIP_ID
);
1436 config1
= i2c_smbus_read_byte_data(client
, LM90_REG_R_CONFIG1
);
1437 convrate
= i2c_smbus_read_byte_data(client
, LM90_REG_R_CONVRATE
);
1438 if (man_id
< 0 || chip_id
< 0 || config1
< 0 || convrate
< 0)
1441 if (man_id
== 0x01 || man_id
== 0x5C || man_id
== 0x41) {
1442 config2
= i2c_smbus_read_byte_data(client
, LM90_REG_R_CONFIG2
);
1446 config2
= 0; /* Make compiler happy */
1448 if ((address
== 0x4C || address
== 0x4D)
1449 && man_id
== 0x01) { /* National Semiconductor */
1450 if ((config1
& 0x2A) == 0x00
1451 && (config2
& 0xF8) == 0x00
1452 && convrate
<= 0x09) {
1454 && (chip_id
& 0xF0) == 0x20) { /* LM90 */
1457 if ((chip_id
& 0xF0) == 0x30) { /* LM89/LM99 */
1459 dev_info(&adapter
->dev
,
1460 "Assuming LM99 chip at 0x%02x\n",
1462 dev_info(&adapter
->dev
,
1463 "If it is an LM89, instantiate it "
1464 "with the new_device sysfs "
1468 && (chip_id
& 0xF0) == 0x10) { /* LM86 */
1473 if ((address
== 0x4C || address
== 0x4D)
1474 && man_id
== 0x41) { /* Analog Devices */
1475 if ((chip_id
& 0xF0) == 0x40 /* ADM1032 */
1476 && (config1
& 0x3F) == 0x00
1477 && convrate
<= 0x0A) {
1480 * The ADM1032 supports PEC, but only if combined
1481 * transactions are not used.
1483 if (i2c_check_functionality(adapter
,
1484 I2C_FUNC_SMBUS_BYTE
))
1485 info
->flags
|= I2C_CLIENT_PEC
;
1487 if (chip_id
== 0x51 /* ADT7461 */
1488 && (config1
& 0x1B) == 0x00
1489 && convrate
<= 0x0A) {
1492 if (chip_id
== 0x57 /* ADT7461A, NCT1008 */
1493 && (config1
& 0x1B) == 0x00
1494 && convrate
<= 0x0A) {
1498 if (man_id
== 0x4D) { /* Maxim */
1499 int emerg
, emerg2
, status2
;
1502 * We read MAX6659_REG_R_REMOTE_EMERG twice, and re-read
1503 * LM90_REG_R_MAN_ID in between. If MAX6659_REG_R_REMOTE_EMERG
1504 * exists, both readings will reflect the same value. Otherwise,
1505 * the readings will be different.
1507 emerg
= i2c_smbus_read_byte_data(client
,
1508 MAX6659_REG_R_REMOTE_EMERG
);
1509 man_id
= i2c_smbus_read_byte_data(client
,
1511 emerg2
= i2c_smbus_read_byte_data(client
,
1512 MAX6659_REG_R_REMOTE_EMERG
);
1513 status2
= i2c_smbus_read_byte_data(client
,
1514 MAX6696_REG_R_STATUS2
);
1515 if (emerg
< 0 || man_id
< 0 || emerg2
< 0 || status2
< 0)
1519 * The MAX6657, MAX6658 and MAX6659 do NOT have a chip_id
1520 * register. Reading from that address will return the last
1521 * read value, which in our case is those of the man_id
1522 * register. Likewise, the config1 register seems to lack a
1523 * low nibble, so the value will be those of the previous
1524 * read, so in our case those of the man_id register.
1525 * MAX6659 has a third set of upper temperature limit registers.
1526 * Those registers also return values on MAX6657 and MAX6658,
1527 * thus the only way to detect MAX6659 is by its address.
1528 * For this reason it will be mis-detected as MAX6657 if its
1531 if (chip_id
== man_id
1532 && (address
== 0x4C || address
== 0x4D || address
== 0x4E)
1533 && (config1
& 0x1F) == (man_id
& 0x0F)
1534 && convrate
<= 0x09) {
1535 if (address
== 0x4C)
1541 * Even though MAX6695 and MAX6696 do not have a chip ID
1542 * register, reading it returns 0x01. Bit 4 of the config1
1543 * register is unused and should return zero when read. Bit 0 of
1544 * the status2 register is unused and should return zero when
1547 * MAX6695 and MAX6696 have an additional set of temperature
1548 * limit registers. We can detect those chips by checking if
1549 * one of those registers exists.
1552 && (config1
& 0x10) == 0x00
1553 && (status2
& 0x01) == 0x00
1555 && convrate
<= 0x07) {
1559 * The chip_id register of the MAX6680 and MAX6681 holds the
1560 * revision of the chip. The lowest bit of the config1 register
1561 * is unused and should return zero when read, so should the
1562 * second to last bit of config1 (software reset).
1565 && (config1
& 0x03) == 0x00
1566 && convrate
<= 0x07) {
1570 * The chip_id register of the MAX6646/6647/6649 holds the
1571 * revision of the chip. The lowest 6 bits of the config1
1572 * register are unused and should return zero when read.
1575 && (config1
& 0x3f) == 0x00
1576 && convrate
<= 0x07) {
1580 * The chip_id of the MAX6654 holds the revision of the chip.
1581 * The lowest 3 bits of the config1 register are unused and
1582 * should return zero when read.
1585 && (config1
& 0x07) == 0x00
1586 && convrate
<= 0x07) {
1591 && man_id
== 0x5C) { /* Winbond/Nuvoton */
1592 if ((config1
& 0x2A) == 0x00
1593 && (config2
& 0xF8) == 0x00) {
1594 if (chip_id
== 0x01 /* W83L771W/G */
1595 && convrate
<= 0x09) {
1598 if ((chip_id
& 0xFE) == 0x10 /* W83L771AWG/ASG */
1599 && convrate
<= 0x08) {
1604 if (address
>= 0x48 && address
<= 0x4F
1605 && man_id
== 0xA1) { /* NXP Semiconductor/Philips */
1607 && (config1
& 0x2A) == 0x00
1608 && (config2
& 0xFE) == 0x00
1609 && convrate
<= 0x09) {
1613 if ((address
== 0x4C || address
== 0x4D)
1614 && man_id
== 0x47) { /* GMT */
1615 if (chip_id
== 0x01 /* G781 */
1616 && (config1
& 0x3F) == 0x00
1617 && convrate
<= 0x08)
1621 && man_id
== 0x55) { /* Texas Instruments */
1624 local_ext
= i2c_smbus_read_byte_data(client
,
1625 TMP451_REG_R_LOCAL_TEMPL
);
1627 if (chip_id
== 0x00 /* TMP451 */
1628 && (config1
& 0x1B) == 0x00
1630 && (local_ext
& 0x0F) == 0x00)
1634 if (!name
) { /* identification failed */
1635 dev_dbg(&adapter
->dev
,
1636 "Unsupported chip at 0x%02x (man_id=0x%02X, "
1637 "chip_id=0x%02X)\n", address
, man_id
, chip_id
);
1641 strlcpy(info
->type
, name
, I2C_NAME_SIZE
);
1646 static void lm90_restore_conf(void *_data
)
1648 struct lm90_data
*data
= _data
;
1649 struct i2c_client
*client
= data
->client
;
1651 /* Restore initial configuration */
1652 lm90_write_convrate(data
, data
->convrate_orig
);
1653 i2c_smbus_write_byte_data(client
, LM90_REG_W_CONFIG1
,
1657 static int lm90_init_client(struct i2c_client
*client
, struct lm90_data
*data
)
1659 int config
, convrate
;
1661 convrate
= lm90_read_reg(client
, LM90_REG_R_CONVRATE
);
1664 data
->convrate_orig
= convrate
;
1667 * Start the conversions.
1669 config
= lm90_read_reg(client
, LM90_REG_R_CONFIG1
);
1672 data
->config_orig
= config
;
1673 data
->config
= config
;
1675 lm90_set_convrate(client
, data
, 500); /* 500ms; 2Hz conversion rate */
1677 /* Check Temperature Range Select */
1678 if (data
->kind
== adt7461
|| data
->kind
== tmp451
) {
1680 data
->flags
|= LM90_FLAG_ADT7461_EXT
;
1684 * Put MAX6680/MAX8881 into extended resolution (bit 0x10,
1685 * 0.125 degree resolution) and range (0x08, extend range
1686 * to -64 degree) mode for the remote temperature sensor.
1688 if (data
->kind
== max6680
)
1692 * Put MAX6654 into extended range (0x20, extend minimum range from
1693 * 0 degrees to -64 degrees). Note that extended resolution is not
1694 * possible on the MAX6654 unless conversion rate is set to 1 Hz or
1695 * slower, which is intentionally not done by default.
1697 if (data
->kind
== max6654
)
1701 * Select external channel 0 for max6695/96
1703 if (data
->kind
== max6696
)
1706 config
&= 0xBF; /* run */
1707 lm90_update_confreg(data
, config
);
1709 return devm_add_action_or_reset(&client
->dev
, lm90_restore_conf
, data
);
1712 static bool lm90_is_tripped(struct i2c_client
*client
, u16
*status
)
1714 struct lm90_data
*data
= i2c_get_clientdata(client
);
1717 st
= lm90_read_reg(client
, LM90_REG_R_STATUS
);
1721 if (data
->kind
== max6696
) {
1722 st2
= lm90_read_reg(client
, MAX6696_REG_R_STATUS2
);
1727 *status
= st
| (st2
<< 8);
1729 if ((st
& 0x7f) == 0 && (st2
& 0xfe) == 0)
1732 if ((st
& (LM90_STATUS_LLOW
| LM90_STATUS_LHIGH
| LM90_STATUS_LTHRM
)) ||
1733 (st2
& MAX6696_STATUS2_LOT2
))
1734 dev_warn(&client
->dev
,
1735 "temp%d out of range, please check!\n", 1);
1736 if ((st
& (LM90_STATUS_RLOW
| LM90_STATUS_RHIGH
| LM90_STATUS_RTHRM
)) ||
1737 (st2
& MAX6696_STATUS2_ROT2
))
1738 dev_warn(&client
->dev
,
1739 "temp%d out of range, please check!\n", 2);
1740 if (st
& LM90_STATUS_ROPEN
)
1741 dev_warn(&client
->dev
,
1742 "temp%d diode open, please check!\n", 2);
1743 if (st2
& (MAX6696_STATUS2_R2LOW
| MAX6696_STATUS2_R2HIGH
|
1744 MAX6696_STATUS2_R2THRM
| MAX6696_STATUS2_R2OT2
))
1745 dev_warn(&client
->dev
,
1746 "temp%d out of range, please check!\n", 3);
1747 if (st2
& MAX6696_STATUS2_R2OPEN
)
1748 dev_warn(&client
->dev
,
1749 "temp%d diode open, please check!\n", 3);
1754 static irqreturn_t
lm90_irq_thread(int irq
, void *dev_id
)
1756 struct i2c_client
*client
= dev_id
;
1759 if (lm90_is_tripped(client
, &status
))
1765 static void lm90_remove_pec(void *dev
)
1767 device_remove_file(dev
, &dev_attr_pec
);
1770 static void lm90_regulator_disable(void *regulator
)
1772 regulator_disable(regulator
);
1776 static const struct hwmon_ops lm90_ops
= {
1777 .is_visible
= lm90_is_visible
,
1779 .write
= lm90_write
,
1782 static int lm90_probe(struct i2c_client
*client
)
1784 struct device
*dev
= &client
->dev
;
1785 struct i2c_adapter
*adapter
= client
->adapter
;
1786 struct hwmon_channel_info
*info
;
1787 struct regulator
*regulator
;
1788 struct device
*hwmon_dev
;
1789 struct lm90_data
*data
;
1792 regulator
= devm_regulator_get(dev
, "vcc");
1793 if (IS_ERR(regulator
))
1794 return PTR_ERR(regulator
);
1796 err
= regulator_enable(regulator
);
1798 dev_err(dev
, "Failed to enable regulator: %d\n", err
);
1802 err
= devm_add_action_or_reset(dev
, lm90_regulator_disable
, regulator
);
1806 data
= devm_kzalloc(dev
, sizeof(struct lm90_data
), GFP_KERNEL
);
1810 data
->client
= client
;
1811 i2c_set_clientdata(client
, data
);
1812 mutex_init(&data
->update_lock
);
1814 /* Set the device type */
1815 if (client
->dev
.of_node
)
1816 data
->kind
= (enum chips
)of_device_get_match_data(&client
->dev
);
1818 data
->kind
= i2c_match_id(lm90_id
, client
)->driver_data
;
1819 if (data
->kind
== adm1032
) {
1820 if (!i2c_check_functionality(adapter
, I2C_FUNC_SMBUS_BYTE
))
1821 client
->flags
&= ~I2C_CLIENT_PEC
;
1825 * Different devices have different alarm bits triggering the
1828 data
->alert_alarms
= lm90_params
[data
->kind
].alert_alarms
;
1830 /* Set chip capabilities */
1831 data
->flags
= lm90_params
[data
->kind
].flags
;
1833 data
->chip
.ops
= &lm90_ops
;
1834 data
->chip
.info
= data
->info
;
1836 data
->info
[0] = HWMON_CHANNEL_INFO(chip
,
1837 HWMON_C_REGISTER_TZ
| HWMON_C_UPDATE_INTERVAL
| HWMON_C_ALARMS
);
1838 data
->info
[1] = &data
->temp_info
;
1840 info
= &data
->temp_info
;
1841 info
->type
= hwmon_temp
;
1842 info
->config
= data
->channel_config
;
1844 data
->channel_config
[0] = HWMON_T_INPUT
| HWMON_T_MIN
| HWMON_T_MAX
|
1845 HWMON_T_CRIT
| HWMON_T_CRIT_HYST
| HWMON_T_MIN_ALARM
|
1846 HWMON_T_MAX_ALARM
| HWMON_T_CRIT_ALARM
;
1847 data
->channel_config
[1] = HWMON_T_INPUT
| HWMON_T_MIN
| HWMON_T_MAX
|
1848 HWMON_T_CRIT
| HWMON_T_CRIT_HYST
| HWMON_T_MIN_ALARM
|
1849 HWMON_T_MAX_ALARM
| HWMON_T_CRIT_ALARM
| HWMON_T_FAULT
;
1851 if (data
->flags
& LM90_HAVE_OFFSET
)
1852 data
->channel_config
[1] |= HWMON_T_OFFSET
;
1854 if (data
->flags
& LM90_HAVE_EMERGENCY
) {
1855 data
->channel_config
[0] |= HWMON_T_EMERGENCY
|
1856 HWMON_T_EMERGENCY_HYST
;
1857 data
->channel_config
[1] |= HWMON_T_EMERGENCY
|
1858 HWMON_T_EMERGENCY_HYST
;
1861 if (data
->flags
& LM90_HAVE_EMERGENCY_ALARM
) {
1862 data
->channel_config
[0] |= HWMON_T_EMERGENCY_ALARM
;
1863 data
->channel_config
[1] |= HWMON_T_EMERGENCY_ALARM
;
1866 if (data
->flags
& LM90_HAVE_TEMP3
) {
1867 data
->channel_config
[2] = HWMON_T_INPUT
|
1868 HWMON_T_MIN
| HWMON_T_MAX
|
1869 HWMON_T_CRIT
| HWMON_T_CRIT_HYST
|
1870 HWMON_T_EMERGENCY
| HWMON_T_EMERGENCY_HYST
|
1871 HWMON_T_MIN_ALARM
| HWMON_T_MAX_ALARM
|
1872 HWMON_T_CRIT_ALARM
| HWMON_T_EMERGENCY_ALARM
|
1876 data
->reg_local_ext
= lm90_params
[data
->kind
].reg_local_ext
;
1878 /* Set maximum conversion rate */
1879 data
->max_convrate
= lm90_params
[data
->kind
].max_convrate
;
1881 /* Initialize the LM90 chip */
1882 err
= lm90_init_client(client
, data
);
1884 dev_err(dev
, "Failed to initialize device\n");
1889 * The 'pec' attribute is attached to the i2c device and thus created
1892 if (client
->flags
& I2C_CLIENT_PEC
) {
1893 err
= device_create_file(dev
, &dev_attr_pec
);
1896 err
= devm_add_action_or_reset(dev
, lm90_remove_pec
, dev
);
1901 hwmon_dev
= devm_hwmon_device_register_with_info(dev
, client
->name
,
1904 if (IS_ERR(hwmon_dev
))
1905 return PTR_ERR(hwmon_dev
);
1908 dev_dbg(dev
, "IRQ: %d\n", client
->irq
);
1909 err
= devm_request_threaded_irq(dev
, client
->irq
,
1910 NULL
, lm90_irq_thread
,
1911 IRQF_TRIGGER_LOW
| IRQF_ONESHOT
,
1914 dev_err(dev
, "cannot request IRQ %d\n", client
->irq
);
1922 static void lm90_alert(struct i2c_client
*client
, enum i2c_alert_protocol type
,
1927 if (type
!= I2C_PROTOCOL_SMBUS_ALERT
)
1930 if (lm90_is_tripped(client
, &alarms
)) {
1932 * Disable ALERT# output, because these chips don't implement
1933 * SMBus alert correctly; they should only hold the alert line
1936 struct lm90_data
*data
= i2c_get_clientdata(client
);
1938 if ((data
->flags
& LM90_HAVE_BROKEN_ALERT
) &&
1939 (alarms
& data
->alert_alarms
)) {
1940 dev_dbg(&client
->dev
, "Disabling ALERT#\n");
1941 lm90_update_confreg(data
, data
->config
| 0x80);
1944 dev_info(&client
->dev
, "Everything OK\n");
1948 static struct i2c_driver lm90_driver
= {
1949 .class = I2C_CLASS_HWMON
,
1952 .of_match_table
= of_match_ptr(lm90_of_match
),
1954 .probe_new
= lm90_probe
,
1955 .alert
= lm90_alert
,
1956 .id_table
= lm90_id
,
1957 .detect
= lm90_detect
,
1958 .address_list
= normal_i2c
,
1961 module_i2c_driver(lm90_driver
);
1963 MODULE_AUTHOR("Jean Delvare <jdelvare@suse.de>");
1964 MODULE_DESCRIPTION("LM90/ADM1032 driver");
1965 MODULE_LICENSE("GPL");