1*4882a593Smuzhiyun // SPDX-License-Identifier: GPL-2.0-only
2*4882a593Smuzhiyun /*
3*4882a593Smuzhiyun * ROHM BD99954 charger driver
4*4882a593Smuzhiyun *
5*4882a593Smuzhiyun * Copyright (C) 2020 Rohm Semiconductors
6*4882a593Smuzhiyun * Originally written by:
7*4882a593Smuzhiyun * Mikko Mutanen <mikko.mutanen@fi.rohmeurope.com>
8*4882a593Smuzhiyun * Markus Laine <markus.laine@fi.rohmeurope.com>
9*4882a593Smuzhiyun * Bugs added by:
10*4882a593Smuzhiyun * Matti Vaittinen <matti.vaittinen@fi.rohmeurope.com>
11*4882a593Smuzhiyun */
12*4882a593Smuzhiyun
13*4882a593Smuzhiyun /*
14*4882a593Smuzhiyun * The battery charging profile of BD99954.
15*4882a593Smuzhiyun *
16*4882a593Smuzhiyun * Curve (1) represents charging current.
17*4882a593Smuzhiyun * Curve (2) represents battery voltage.
18*4882a593Smuzhiyun *
19*4882a593Smuzhiyun * The BD99954 data sheet divides charging to three phases.
20*4882a593Smuzhiyun * a) Trickle-charge with constant current (8).
21*4882a593Smuzhiyun * b) pre-charge with constant current (6)
22*4882a593Smuzhiyun * c) fast-charge, first with constant current (5) phase. After
23*4882a593Smuzhiyun * the battery voltage has reached target level (4) we have constant
24*4882a593Smuzhiyun * voltage phase until charging current has dropped to termination
25*4882a593Smuzhiyun * level (7)
26*4882a593Smuzhiyun *
27*4882a593Smuzhiyun * V ^ ^ I
28*4882a593Smuzhiyun * . .
29*4882a593Smuzhiyun * . .
30*4882a593Smuzhiyun *(4)` `.` ` ` ` ` ` ` ` ` ` ` ` ` ` ----------------------------.
31*4882a593Smuzhiyun * . :/ .
32*4882a593Smuzhiyun * . o----+/:/ ` ` ` ` ` ` ` ` ` ` ` ` `.` ` (5)
33*4882a593Smuzhiyun * . + :: + .
34*4882a593Smuzhiyun * . + /- -- .
35*4882a593Smuzhiyun * . +`/- + .
36*4882a593Smuzhiyun * . o/- -: .
37*4882a593Smuzhiyun * . .s. +` .
38*4882a593Smuzhiyun * . .--+ `/ .
39*4882a593Smuzhiyun * . ..`` + .: .
40*4882a593Smuzhiyun * . -` + -- .
41*4882a593Smuzhiyun * . (2) ...`` + :- .
42*4882a593Smuzhiyun * . ...`` + -: .
43*4882a593Smuzhiyun *(3)` `.`."" ` ` ` `+-------- ` ` ` ` ` ` `.:` ` ` ` ` ` ` ` ` .` ` (6)
44*4882a593Smuzhiyun * . + `:. .
45*4882a593Smuzhiyun * . + -: .
46*4882a593Smuzhiyun * . + -:. .
47*4882a593Smuzhiyun * . + .--. .
48*4882a593Smuzhiyun * . (1) + `.+` ` ` `.` ` (7)
49*4882a593Smuzhiyun * -..............` ` ` ` ` ` ` ` ` ` ` ` ` ` ` ` ` + ` ` ` .` ` (8)
50*4882a593Smuzhiyun * . + -
51*4882a593Smuzhiyun * -------------------------------------------------+++++++++-->
52*4882a593Smuzhiyun * | trickle | pre | fast |
53*4882a593Smuzhiyun *
54*4882a593Smuzhiyun * Details of DT properties for different limits can be found from BD99954
55*4882a593Smuzhiyun * device tree binding documentation.
56*4882a593Smuzhiyun */
57*4882a593Smuzhiyun
58*4882a593Smuzhiyun #include <linux/delay.h>
59*4882a593Smuzhiyun #include <linux/gpio/consumer.h>
60*4882a593Smuzhiyun #include <linux/interrupt.h>
61*4882a593Smuzhiyun #include <linux/i2c.h>
62*4882a593Smuzhiyun #include <linux/kernel.h>
63*4882a593Smuzhiyun #include <linux/linear_range.h>
64*4882a593Smuzhiyun #include <linux/module.h>
65*4882a593Smuzhiyun #include <linux/mod_devicetable.h>
66*4882a593Smuzhiyun #include <linux/power_supply.h>
67*4882a593Smuzhiyun #include <linux/property.h>
68*4882a593Smuzhiyun #include <linux/regmap.h>
69*4882a593Smuzhiyun #include <linux/types.h>
70*4882a593Smuzhiyun
71*4882a593Smuzhiyun #include "bd99954-charger.h"
72*4882a593Smuzhiyun
73*4882a593Smuzhiyun struct battery_data {
74*4882a593Smuzhiyun u16 precharge_current; /* Trickle-charge Current */
75*4882a593Smuzhiyun u16 fc_reg_voltage; /* Fast Charging Regulation Voltage */
76*4882a593Smuzhiyun u16 voltage_min;
77*4882a593Smuzhiyun u16 voltage_max;
78*4882a593Smuzhiyun };
79*4882a593Smuzhiyun
80*4882a593Smuzhiyun /* Initial field values, converted to initial register values */
81*4882a593Smuzhiyun struct bd9995x_init_data {
82*4882a593Smuzhiyun u16 vsysreg_set; /* VSYS Regulation Setting */
83*4882a593Smuzhiyun u16 ibus_lim_set; /* VBUS input current limitation */
84*4882a593Smuzhiyun u16 icc_lim_set; /* VCC/VACP Input Current Limit Setting */
85*4882a593Smuzhiyun u16 itrich_set; /* Trickle-charge Current Setting */
86*4882a593Smuzhiyun u16 iprech_set; /* Pre-Charge Current Setting */
87*4882a593Smuzhiyun u16 ichg_set; /* Fast-Charge constant current */
88*4882a593Smuzhiyun u16 vfastchg_reg_set1; /* Fast Charging Regulation Voltage */
89*4882a593Smuzhiyun u16 vprechg_th_set; /* Pre-charge Voltage Threshold Setting */
90*4882a593Smuzhiyun u16 vrechg_set; /* Re-charge Battery Voltage Setting */
91*4882a593Smuzhiyun u16 vbatovp_set; /* Battery Over Voltage Threshold Setting */
92*4882a593Smuzhiyun u16 iterm_set; /* Charging termination current */
93*4882a593Smuzhiyun };
94*4882a593Smuzhiyun
95*4882a593Smuzhiyun struct bd9995x_state {
96*4882a593Smuzhiyun u8 online;
97*4882a593Smuzhiyun u16 chgstm_status;
98*4882a593Smuzhiyun u16 vbat_vsys_status;
99*4882a593Smuzhiyun u16 vbus_vcc_status;
100*4882a593Smuzhiyun };
101*4882a593Smuzhiyun
102*4882a593Smuzhiyun struct bd9995x_device {
103*4882a593Smuzhiyun struct i2c_client *client;
104*4882a593Smuzhiyun struct device *dev;
105*4882a593Smuzhiyun struct power_supply *charger;
106*4882a593Smuzhiyun
107*4882a593Smuzhiyun struct regmap *rmap;
108*4882a593Smuzhiyun struct regmap_field *rmap_fields[F_MAX_FIELDS];
109*4882a593Smuzhiyun
110*4882a593Smuzhiyun int chip_id;
111*4882a593Smuzhiyun int chip_rev;
112*4882a593Smuzhiyun struct bd9995x_init_data init_data;
113*4882a593Smuzhiyun struct bd9995x_state state;
114*4882a593Smuzhiyun
115*4882a593Smuzhiyun struct mutex lock; /* Protect state data */
116*4882a593Smuzhiyun };
117*4882a593Smuzhiyun
118*4882a593Smuzhiyun static const struct regmap_range bd9995x_readonly_reg_ranges[] = {
119*4882a593Smuzhiyun regmap_reg_range(CHGSTM_STATUS, SEL_ILIM_VAL),
120*4882a593Smuzhiyun regmap_reg_range(IOUT_DACIN_VAL, IOUT_DACIN_VAL),
121*4882a593Smuzhiyun regmap_reg_range(VCC_UCD_STATUS, VCC_IDD_STATUS),
122*4882a593Smuzhiyun regmap_reg_range(VBUS_UCD_STATUS, VBUS_IDD_STATUS),
123*4882a593Smuzhiyun regmap_reg_range(CHIP_ID, CHIP_REV),
124*4882a593Smuzhiyun regmap_reg_range(SYSTEM_STATUS, SYSTEM_STATUS),
125*4882a593Smuzhiyun regmap_reg_range(IBATP_VAL, VBAT_AVE_VAL),
126*4882a593Smuzhiyun regmap_reg_range(VTH_VAL, EXTIADP_AVE_VAL),
127*4882a593Smuzhiyun };
128*4882a593Smuzhiyun
129*4882a593Smuzhiyun static const struct regmap_access_table bd9995x_writeable_regs = {
130*4882a593Smuzhiyun .no_ranges = bd9995x_readonly_reg_ranges,
131*4882a593Smuzhiyun .n_no_ranges = ARRAY_SIZE(bd9995x_readonly_reg_ranges),
132*4882a593Smuzhiyun };
133*4882a593Smuzhiyun
134*4882a593Smuzhiyun static const struct regmap_range bd9995x_volatile_reg_ranges[] = {
135*4882a593Smuzhiyun regmap_reg_range(CHGSTM_STATUS, WDT_STATUS),
136*4882a593Smuzhiyun regmap_reg_range(VCC_UCD_STATUS, VCC_IDD_STATUS),
137*4882a593Smuzhiyun regmap_reg_range(VBUS_UCD_STATUS, VBUS_IDD_STATUS),
138*4882a593Smuzhiyun regmap_reg_range(INT0_STATUS, INT7_STATUS),
139*4882a593Smuzhiyun regmap_reg_range(SYSTEM_STATUS, SYSTEM_CTRL_SET),
140*4882a593Smuzhiyun regmap_reg_range(IBATP_VAL, EXTIADP_AVE_VAL), /* Measurement regs */
141*4882a593Smuzhiyun };
142*4882a593Smuzhiyun
143*4882a593Smuzhiyun static const struct regmap_access_table bd9995x_volatile_regs = {
144*4882a593Smuzhiyun .yes_ranges = bd9995x_volatile_reg_ranges,
145*4882a593Smuzhiyun .n_yes_ranges = ARRAY_SIZE(bd9995x_volatile_reg_ranges),
146*4882a593Smuzhiyun };
147*4882a593Smuzhiyun
148*4882a593Smuzhiyun static const struct regmap_range_cfg regmap_range_cfg[] = {
149*4882a593Smuzhiyun {
150*4882a593Smuzhiyun .selector_reg = MAP_SET,
151*4882a593Smuzhiyun .selector_mask = 0xFFFF,
152*4882a593Smuzhiyun .selector_shift = 0,
153*4882a593Smuzhiyun .window_start = 0,
154*4882a593Smuzhiyun .window_len = 0x100,
155*4882a593Smuzhiyun .range_min = 0 * 0x100,
156*4882a593Smuzhiyun .range_max = 3 * 0x100,
157*4882a593Smuzhiyun },
158*4882a593Smuzhiyun };
159*4882a593Smuzhiyun
160*4882a593Smuzhiyun static const struct regmap_config bd9995x_regmap_config = {
161*4882a593Smuzhiyun .reg_bits = 8,
162*4882a593Smuzhiyun .val_bits = 16,
163*4882a593Smuzhiyun .reg_stride = 1,
164*4882a593Smuzhiyun
165*4882a593Smuzhiyun .max_register = 3 * 0x100,
166*4882a593Smuzhiyun .cache_type = REGCACHE_RBTREE,
167*4882a593Smuzhiyun
168*4882a593Smuzhiyun .ranges = regmap_range_cfg,
169*4882a593Smuzhiyun .num_ranges = ARRAY_SIZE(regmap_range_cfg),
170*4882a593Smuzhiyun .val_format_endian = REGMAP_ENDIAN_LITTLE,
171*4882a593Smuzhiyun .wr_table = &bd9995x_writeable_regs,
172*4882a593Smuzhiyun .volatile_table = &bd9995x_volatile_regs,
173*4882a593Smuzhiyun };
174*4882a593Smuzhiyun
175*4882a593Smuzhiyun enum bd9995x_chrg_fault {
176*4882a593Smuzhiyun CHRG_FAULT_NORMAL,
177*4882a593Smuzhiyun CHRG_FAULT_INPUT,
178*4882a593Smuzhiyun CHRG_FAULT_THERMAL_SHUTDOWN,
179*4882a593Smuzhiyun CHRG_FAULT_TIMER_EXPIRED,
180*4882a593Smuzhiyun };
181*4882a593Smuzhiyun
bd9995x_get_prop_batt_health(struct bd9995x_device * bd)182*4882a593Smuzhiyun static int bd9995x_get_prop_batt_health(struct bd9995x_device *bd)
183*4882a593Smuzhiyun {
184*4882a593Smuzhiyun int ret, tmp;
185*4882a593Smuzhiyun
186*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_BATTEMP], &tmp);
187*4882a593Smuzhiyun if (ret)
188*4882a593Smuzhiyun return POWER_SUPPLY_HEALTH_UNKNOWN;
189*4882a593Smuzhiyun
190*4882a593Smuzhiyun /* TODO: Check these against datasheet page 34 */
191*4882a593Smuzhiyun
192*4882a593Smuzhiyun switch (tmp) {
193*4882a593Smuzhiyun case ROOM:
194*4882a593Smuzhiyun return POWER_SUPPLY_HEALTH_GOOD;
195*4882a593Smuzhiyun case HOT1:
196*4882a593Smuzhiyun case HOT2:
197*4882a593Smuzhiyun case HOT3:
198*4882a593Smuzhiyun return POWER_SUPPLY_HEALTH_OVERHEAT;
199*4882a593Smuzhiyun case COLD1:
200*4882a593Smuzhiyun case COLD2:
201*4882a593Smuzhiyun return POWER_SUPPLY_HEALTH_COLD;
202*4882a593Smuzhiyun case TEMP_DIS:
203*4882a593Smuzhiyun case BATT_OPEN:
204*4882a593Smuzhiyun default:
205*4882a593Smuzhiyun return POWER_SUPPLY_HEALTH_UNKNOWN;
206*4882a593Smuzhiyun }
207*4882a593Smuzhiyun }
208*4882a593Smuzhiyun
bd9995x_get_prop_charge_type(struct bd9995x_device * bd)209*4882a593Smuzhiyun static int bd9995x_get_prop_charge_type(struct bd9995x_device *bd)
210*4882a593Smuzhiyun {
211*4882a593Smuzhiyun int ret, tmp;
212*4882a593Smuzhiyun
213*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_CHGSTM_STATE], &tmp);
214*4882a593Smuzhiyun if (ret)
215*4882a593Smuzhiyun return POWER_SUPPLY_CHARGE_TYPE_UNKNOWN;
216*4882a593Smuzhiyun
217*4882a593Smuzhiyun switch (tmp) {
218*4882a593Smuzhiyun case CHGSTM_TRICKLE_CHARGE:
219*4882a593Smuzhiyun case CHGSTM_PRE_CHARGE:
220*4882a593Smuzhiyun return POWER_SUPPLY_CHARGE_TYPE_TRICKLE;
221*4882a593Smuzhiyun case CHGSTM_FAST_CHARGE:
222*4882a593Smuzhiyun return POWER_SUPPLY_CHARGE_TYPE_FAST;
223*4882a593Smuzhiyun case CHGSTM_TOP_OFF:
224*4882a593Smuzhiyun case CHGSTM_DONE:
225*4882a593Smuzhiyun case CHGSTM_SUSPEND:
226*4882a593Smuzhiyun return POWER_SUPPLY_CHARGE_TYPE_NONE;
227*4882a593Smuzhiyun default: /* Rest of the states are error related, no charging */
228*4882a593Smuzhiyun return POWER_SUPPLY_CHARGE_TYPE_NONE;
229*4882a593Smuzhiyun }
230*4882a593Smuzhiyun }
231*4882a593Smuzhiyun
bd9995x_get_prop_batt_present(struct bd9995x_device * bd)232*4882a593Smuzhiyun static bool bd9995x_get_prop_batt_present(struct bd9995x_device *bd)
233*4882a593Smuzhiyun {
234*4882a593Smuzhiyun int ret, tmp;
235*4882a593Smuzhiyun
236*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_BATTEMP], &tmp);
237*4882a593Smuzhiyun if (ret)
238*4882a593Smuzhiyun return false;
239*4882a593Smuzhiyun
240*4882a593Smuzhiyun return tmp != BATT_OPEN;
241*4882a593Smuzhiyun }
242*4882a593Smuzhiyun
bd9995x_get_prop_batt_voltage(struct bd9995x_device * bd)243*4882a593Smuzhiyun static int bd9995x_get_prop_batt_voltage(struct bd9995x_device *bd)
244*4882a593Smuzhiyun {
245*4882a593Smuzhiyun int ret, tmp;
246*4882a593Smuzhiyun
247*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_VBAT_VAL], &tmp);
248*4882a593Smuzhiyun if (ret)
249*4882a593Smuzhiyun return 0;
250*4882a593Smuzhiyun
251*4882a593Smuzhiyun tmp = min(tmp, 19200);
252*4882a593Smuzhiyun
253*4882a593Smuzhiyun return tmp * 1000;
254*4882a593Smuzhiyun }
255*4882a593Smuzhiyun
bd9995x_get_prop_batt_current(struct bd9995x_device * bd)256*4882a593Smuzhiyun static int bd9995x_get_prop_batt_current(struct bd9995x_device *bd)
257*4882a593Smuzhiyun {
258*4882a593Smuzhiyun int ret, tmp;
259*4882a593Smuzhiyun
260*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_IBATP_VAL], &tmp);
261*4882a593Smuzhiyun if (ret)
262*4882a593Smuzhiyun return 0;
263*4882a593Smuzhiyun
264*4882a593Smuzhiyun return tmp * 1000;
265*4882a593Smuzhiyun }
266*4882a593Smuzhiyun
267*4882a593Smuzhiyun #define DEFAULT_BATTERY_TEMPERATURE 250
268*4882a593Smuzhiyun
bd9995x_get_prop_batt_temp(struct bd9995x_device * bd)269*4882a593Smuzhiyun static int bd9995x_get_prop_batt_temp(struct bd9995x_device *bd)
270*4882a593Smuzhiyun {
271*4882a593Smuzhiyun int ret, tmp;
272*4882a593Smuzhiyun
273*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_THERM_VAL], &tmp);
274*4882a593Smuzhiyun if (ret)
275*4882a593Smuzhiyun return DEFAULT_BATTERY_TEMPERATURE;
276*4882a593Smuzhiyun
277*4882a593Smuzhiyun return (200 - tmp) * 10;
278*4882a593Smuzhiyun }
279*4882a593Smuzhiyun
bd9995x_power_supply_get_property(struct power_supply * psy,enum power_supply_property psp,union power_supply_propval * val)280*4882a593Smuzhiyun static int bd9995x_power_supply_get_property(struct power_supply *psy,
281*4882a593Smuzhiyun enum power_supply_property psp,
282*4882a593Smuzhiyun union power_supply_propval *val)
283*4882a593Smuzhiyun {
284*4882a593Smuzhiyun int ret, tmp;
285*4882a593Smuzhiyun struct bd9995x_device *bd = power_supply_get_drvdata(psy);
286*4882a593Smuzhiyun struct bd9995x_state state;
287*4882a593Smuzhiyun
288*4882a593Smuzhiyun mutex_lock(&bd->lock);
289*4882a593Smuzhiyun state = bd->state;
290*4882a593Smuzhiyun mutex_unlock(&bd->lock);
291*4882a593Smuzhiyun
292*4882a593Smuzhiyun switch (psp) {
293*4882a593Smuzhiyun case POWER_SUPPLY_PROP_STATUS:
294*4882a593Smuzhiyun switch (state.chgstm_status) {
295*4882a593Smuzhiyun case CHGSTM_TRICKLE_CHARGE:
296*4882a593Smuzhiyun case CHGSTM_PRE_CHARGE:
297*4882a593Smuzhiyun case CHGSTM_FAST_CHARGE:
298*4882a593Smuzhiyun case CHGSTM_TOP_OFF:
299*4882a593Smuzhiyun val->intval = POWER_SUPPLY_STATUS_CHARGING;
300*4882a593Smuzhiyun break;
301*4882a593Smuzhiyun
302*4882a593Smuzhiyun case CHGSTM_DONE:
303*4882a593Smuzhiyun val->intval = POWER_SUPPLY_STATUS_FULL;
304*4882a593Smuzhiyun break;
305*4882a593Smuzhiyun
306*4882a593Smuzhiyun case CHGSTM_SUSPEND:
307*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_1:
308*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_2:
309*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_3:
310*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_4:
311*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_5:
312*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_6:
313*4882a593Smuzhiyun case CHGSTM_TEMPERATURE_ERROR_7:
314*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_1:
315*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_2:
316*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_3:
317*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_4:
318*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_5:
319*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_6:
320*4882a593Smuzhiyun case CHGSTM_THERMAL_SHUT_DOWN_7:
321*4882a593Smuzhiyun case CHGSTM_BATTERY_ERROR:
322*4882a593Smuzhiyun val->intval = POWER_SUPPLY_STATUS_NOT_CHARGING;
323*4882a593Smuzhiyun break;
324*4882a593Smuzhiyun
325*4882a593Smuzhiyun default:
326*4882a593Smuzhiyun val->intval = POWER_SUPPLY_STATUS_UNKNOWN;
327*4882a593Smuzhiyun break;
328*4882a593Smuzhiyun }
329*4882a593Smuzhiyun break;
330*4882a593Smuzhiyun
331*4882a593Smuzhiyun case POWER_SUPPLY_PROP_MANUFACTURER:
332*4882a593Smuzhiyun val->strval = BD9995X_MANUFACTURER;
333*4882a593Smuzhiyun break;
334*4882a593Smuzhiyun
335*4882a593Smuzhiyun case POWER_SUPPLY_PROP_ONLINE:
336*4882a593Smuzhiyun val->intval = state.online;
337*4882a593Smuzhiyun break;
338*4882a593Smuzhiyun
339*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT:
340*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_IBATP_VAL], &tmp);
341*4882a593Smuzhiyun if (ret)
342*4882a593Smuzhiyun return ret;
343*4882a593Smuzhiyun val->intval = tmp * 1000;
344*4882a593Smuzhiyun break;
345*4882a593Smuzhiyun
346*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CHARGE_AVG:
347*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_IBATP_AVE_VAL], &tmp);
348*4882a593Smuzhiyun if (ret)
349*4882a593Smuzhiyun return ret;
350*4882a593Smuzhiyun val->intval = tmp * 1000;
351*4882a593Smuzhiyun break;
352*4882a593Smuzhiyun
353*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX:
354*4882a593Smuzhiyun /*
355*4882a593Smuzhiyun * Currently the DT uses this property to give the
356*4882a593Smuzhiyun * target current for fast-charging constant current phase.
357*4882a593Smuzhiyun * I think it is correct in a sense.
358*4882a593Smuzhiyun *
359*4882a593Smuzhiyun * Yet, this prop we read and return here is the programmed
360*4882a593Smuzhiyun * safety limit for combined input currents. This feels
361*4882a593Smuzhiyun * also correct in a sense.
362*4882a593Smuzhiyun *
363*4882a593Smuzhiyun * However, this results a mismatch to DT value and value
364*4882a593Smuzhiyun * read from sysfs.
365*4882a593Smuzhiyun */
366*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_SEL_ILIM_VAL], &tmp);
367*4882a593Smuzhiyun if (ret)
368*4882a593Smuzhiyun return ret;
369*4882a593Smuzhiyun val->intval = tmp * 1000;
370*4882a593Smuzhiyun break;
371*4882a593Smuzhiyun
372*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE:
373*4882a593Smuzhiyun if (!state.online) {
374*4882a593Smuzhiyun val->intval = 0;
375*4882a593Smuzhiyun break;
376*4882a593Smuzhiyun }
377*4882a593Smuzhiyun
378*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_VFASTCHG_REG_SET1],
379*4882a593Smuzhiyun &tmp);
380*4882a593Smuzhiyun if (ret)
381*4882a593Smuzhiyun return ret;
382*4882a593Smuzhiyun
383*4882a593Smuzhiyun /*
384*4882a593Smuzhiyun * The actual range : 2560 to 19200 mV. No matter what the
385*4882a593Smuzhiyun * register says
386*4882a593Smuzhiyun */
387*4882a593Smuzhiyun val->intval = clamp_val(tmp << 4, 2560, 19200);
388*4882a593Smuzhiyun val->intval *= 1000;
389*4882a593Smuzhiyun break;
390*4882a593Smuzhiyun
391*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT:
392*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_ITERM_SET], &tmp);
393*4882a593Smuzhiyun if (ret)
394*4882a593Smuzhiyun return ret;
395*4882a593Smuzhiyun /* Start step is 64 mA */
396*4882a593Smuzhiyun val->intval = tmp << 6;
397*4882a593Smuzhiyun /* Maximum is 1024 mA - no matter what register says */
398*4882a593Smuzhiyun val->intval = min(val->intval, 1024);
399*4882a593Smuzhiyun val->intval *= 1000;
400*4882a593Smuzhiyun break;
401*4882a593Smuzhiyun
402*4882a593Smuzhiyun /* Battery properties which we access through charger */
403*4882a593Smuzhiyun case POWER_SUPPLY_PROP_PRESENT:
404*4882a593Smuzhiyun val->intval = bd9995x_get_prop_batt_present(bd);
405*4882a593Smuzhiyun break;
406*4882a593Smuzhiyun
407*4882a593Smuzhiyun case POWER_SUPPLY_PROP_VOLTAGE_NOW:
408*4882a593Smuzhiyun val->intval = bd9995x_get_prop_batt_voltage(bd);
409*4882a593Smuzhiyun break;
410*4882a593Smuzhiyun
411*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CURRENT_NOW:
412*4882a593Smuzhiyun val->intval = bd9995x_get_prop_batt_current(bd);
413*4882a593Smuzhiyun break;
414*4882a593Smuzhiyun
415*4882a593Smuzhiyun case POWER_SUPPLY_PROP_CHARGE_TYPE:
416*4882a593Smuzhiyun val->intval = bd9995x_get_prop_charge_type(bd);
417*4882a593Smuzhiyun break;
418*4882a593Smuzhiyun
419*4882a593Smuzhiyun case POWER_SUPPLY_PROP_HEALTH:
420*4882a593Smuzhiyun val->intval = bd9995x_get_prop_batt_health(bd);
421*4882a593Smuzhiyun break;
422*4882a593Smuzhiyun
423*4882a593Smuzhiyun case POWER_SUPPLY_PROP_TEMP:
424*4882a593Smuzhiyun val->intval = bd9995x_get_prop_batt_temp(bd);
425*4882a593Smuzhiyun break;
426*4882a593Smuzhiyun
427*4882a593Smuzhiyun case POWER_SUPPLY_PROP_TECHNOLOGY:
428*4882a593Smuzhiyun val->intval = POWER_SUPPLY_TECHNOLOGY_LION;
429*4882a593Smuzhiyun break;
430*4882a593Smuzhiyun
431*4882a593Smuzhiyun case POWER_SUPPLY_PROP_MODEL_NAME:
432*4882a593Smuzhiyun val->strval = "bd99954";
433*4882a593Smuzhiyun break;
434*4882a593Smuzhiyun
435*4882a593Smuzhiyun default:
436*4882a593Smuzhiyun return -EINVAL;
437*4882a593Smuzhiyun
438*4882a593Smuzhiyun }
439*4882a593Smuzhiyun
440*4882a593Smuzhiyun return 0;
441*4882a593Smuzhiyun }
442*4882a593Smuzhiyun
bd9995x_get_chip_state(struct bd9995x_device * bd,struct bd9995x_state * state)443*4882a593Smuzhiyun static int bd9995x_get_chip_state(struct bd9995x_device *bd,
444*4882a593Smuzhiyun struct bd9995x_state *state)
445*4882a593Smuzhiyun {
446*4882a593Smuzhiyun int i, ret, tmp;
447*4882a593Smuzhiyun struct {
448*4882a593Smuzhiyun struct regmap_field *id;
449*4882a593Smuzhiyun u16 *data;
450*4882a593Smuzhiyun } state_fields[] = {
451*4882a593Smuzhiyun {
452*4882a593Smuzhiyun bd->rmap_fields[F_CHGSTM_STATE], &state->chgstm_status,
453*4882a593Smuzhiyun }, {
454*4882a593Smuzhiyun bd->rmap_fields[F_VBAT_VSYS_STATUS],
455*4882a593Smuzhiyun &state->vbat_vsys_status,
456*4882a593Smuzhiyun }, {
457*4882a593Smuzhiyun bd->rmap_fields[F_VBUS_VCC_STATUS],
458*4882a593Smuzhiyun &state->vbus_vcc_status,
459*4882a593Smuzhiyun },
460*4882a593Smuzhiyun };
461*4882a593Smuzhiyun
462*4882a593Smuzhiyun
463*4882a593Smuzhiyun for (i = 0; i < ARRAY_SIZE(state_fields); i++) {
464*4882a593Smuzhiyun ret = regmap_field_read(state_fields[i].id, &tmp);
465*4882a593Smuzhiyun if (ret)
466*4882a593Smuzhiyun return ret;
467*4882a593Smuzhiyun
468*4882a593Smuzhiyun *state_fields[i].data = tmp;
469*4882a593Smuzhiyun }
470*4882a593Smuzhiyun
471*4882a593Smuzhiyun if (state->vbus_vcc_status & STATUS_VCC_DET ||
472*4882a593Smuzhiyun state->vbus_vcc_status & STATUS_VBUS_DET)
473*4882a593Smuzhiyun state->online = 1;
474*4882a593Smuzhiyun else
475*4882a593Smuzhiyun state->online = 0;
476*4882a593Smuzhiyun
477*4882a593Smuzhiyun return 0;
478*4882a593Smuzhiyun }
479*4882a593Smuzhiyun
bd9995x_irq_handler_thread(int irq,void * private)480*4882a593Smuzhiyun static irqreturn_t bd9995x_irq_handler_thread(int irq, void *private)
481*4882a593Smuzhiyun {
482*4882a593Smuzhiyun struct bd9995x_device *bd = private;
483*4882a593Smuzhiyun int ret, status, mask, i;
484*4882a593Smuzhiyun unsigned long tmp;
485*4882a593Smuzhiyun struct bd9995x_state state;
486*4882a593Smuzhiyun
487*4882a593Smuzhiyun /*
488*4882a593Smuzhiyun * The bd9995x does not seem to generate big amount of interrupts.
489*4882a593Smuzhiyun * The logic regarding which interrupts can cause relevant
490*4882a593Smuzhiyun * status changes seem to be pretty complex.
491*4882a593Smuzhiyun *
492*4882a593Smuzhiyun * So lets implement really simple and hopefully bullet-proof handler:
493*4882a593Smuzhiyun * It does not really matter which IRQ we handle, we just go and
494*4882a593Smuzhiyun * re-read all interesting statuses + give the framework a nudge.
495*4882a593Smuzhiyun *
496*4882a593Smuzhiyun * Other option would be building a _complex_ and error prone logic
497*4882a593Smuzhiyun * trying to decide what could have been changed (resulting this IRQ
498*4882a593Smuzhiyun * we are now handling). During the normal operation the BD99954 does
499*4882a593Smuzhiyun * not seem to be generating much of interrupts so benefit from such
500*4882a593Smuzhiyun * logic would probably be minimal.
501*4882a593Smuzhiyun */
502*4882a593Smuzhiyun
503*4882a593Smuzhiyun ret = regmap_read(bd->rmap, INT0_STATUS, &status);
504*4882a593Smuzhiyun if (ret) {
505*4882a593Smuzhiyun dev_err(bd->dev, "Failed to read IRQ status\n");
506*4882a593Smuzhiyun return IRQ_NONE;
507*4882a593Smuzhiyun }
508*4882a593Smuzhiyun
509*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_INT0_SET], &mask);
510*4882a593Smuzhiyun if (ret) {
511*4882a593Smuzhiyun dev_err(bd->dev, "Failed to read IRQ mask\n");
512*4882a593Smuzhiyun return IRQ_NONE;
513*4882a593Smuzhiyun }
514*4882a593Smuzhiyun
515*4882a593Smuzhiyun /* Handle only IRQs that are not masked */
516*4882a593Smuzhiyun status &= mask;
517*4882a593Smuzhiyun tmp = status;
518*4882a593Smuzhiyun
519*4882a593Smuzhiyun /* Lowest bit does not represent any sub-registers */
520*4882a593Smuzhiyun tmp >>= 1;
521*4882a593Smuzhiyun
522*4882a593Smuzhiyun /*
523*4882a593Smuzhiyun * Mask and ack IRQs we will handle (+ the idiot bit)
524*4882a593Smuzhiyun */
525*4882a593Smuzhiyun ret = regmap_field_write(bd->rmap_fields[F_INT0_SET], 0);
526*4882a593Smuzhiyun if (ret) {
527*4882a593Smuzhiyun dev_err(bd->dev, "Failed to mask F_INT0\n");
528*4882a593Smuzhiyun return IRQ_NONE;
529*4882a593Smuzhiyun }
530*4882a593Smuzhiyun
531*4882a593Smuzhiyun ret = regmap_write(bd->rmap, INT0_STATUS, status);
532*4882a593Smuzhiyun if (ret) {
533*4882a593Smuzhiyun dev_err(bd->dev, "Failed to ack F_INT0\n");
534*4882a593Smuzhiyun goto err_umask;
535*4882a593Smuzhiyun }
536*4882a593Smuzhiyun
537*4882a593Smuzhiyun for_each_set_bit(i, &tmp, 7) {
538*4882a593Smuzhiyun int sub_status, sub_mask;
539*4882a593Smuzhiyun int sub_status_reg[] = {
540*4882a593Smuzhiyun INT1_STATUS, INT2_STATUS, INT3_STATUS, INT4_STATUS,
541*4882a593Smuzhiyun INT5_STATUS, INT6_STATUS, INT7_STATUS,
542*4882a593Smuzhiyun };
543*4882a593Smuzhiyun struct regmap_field *sub_mask_f[] = {
544*4882a593Smuzhiyun bd->rmap_fields[F_INT1_SET],
545*4882a593Smuzhiyun bd->rmap_fields[F_INT2_SET],
546*4882a593Smuzhiyun bd->rmap_fields[F_INT3_SET],
547*4882a593Smuzhiyun bd->rmap_fields[F_INT4_SET],
548*4882a593Smuzhiyun bd->rmap_fields[F_INT5_SET],
549*4882a593Smuzhiyun bd->rmap_fields[F_INT6_SET],
550*4882a593Smuzhiyun bd->rmap_fields[F_INT7_SET],
551*4882a593Smuzhiyun };
552*4882a593Smuzhiyun
553*4882a593Smuzhiyun /* Clear sub IRQs */
554*4882a593Smuzhiyun ret = regmap_read(bd->rmap, sub_status_reg[i], &sub_status);
555*4882a593Smuzhiyun if (ret) {
556*4882a593Smuzhiyun dev_err(bd->dev, "Failed to read IRQ sub-status\n");
557*4882a593Smuzhiyun goto err_umask;
558*4882a593Smuzhiyun }
559*4882a593Smuzhiyun
560*4882a593Smuzhiyun ret = regmap_field_read(sub_mask_f[i], &sub_mask);
561*4882a593Smuzhiyun if (ret) {
562*4882a593Smuzhiyun dev_err(bd->dev, "Failed to read IRQ sub-mask\n");
563*4882a593Smuzhiyun goto err_umask;
564*4882a593Smuzhiyun }
565*4882a593Smuzhiyun
566*4882a593Smuzhiyun /* Ack active sub-statuses */
567*4882a593Smuzhiyun sub_status &= sub_mask;
568*4882a593Smuzhiyun
569*4882a593Smuzhiyun ret = regmap_write(bd->rmap, sub_status_reg[i], sub_status);
570*4882a593Smuzhiyun if (ret) {
571*4882a593Smuzhiyun dev_err(bd->dev, "Failed to ack sub-IRQ\n");
572*4882a593Smuzhiyun goto err_umask;
573*4882a593Smuzhiyun }
574*4882a593Smuzhiyun }
575*4882a593Smuzhiyun
576*4882a593Smuzhiyun ret = regmap_field_write(bd->rmap_fields[F_INT0_SET], mask);
577*4882a593Smuzhiyun if (ret)
578*4882a593Smuzhiyun /* May as well retry once */
579*4882a593Smuzhiyun goto err_umask;
580*4882a593Smuzhiyun
581*4882a593Smuzhiyun /* Read whole chip state */
582*4882a593Smuzhiyun ret = bd9995x_get_chip_state(bd, &state);
583*4882a593Smuzhiyun if (ret < 0) {
584*4882a593Smuzhiyun dev_err(bd->dev, "Failed to read chip state\n");
585*4882a593Smuzhiyun } else {
586*4882a593Smuzhiyun mutex_lock(&bd->lock);
587*4882a593Smuzhiyun bd->state = state;
588*4882a593Smuzhiyun mutex_unlock(&bd->lock);
589*4882a593Smuzhiyun
590*4882a593Smuzhiyun power_supply_changed(bd->charger);
591*4882a593Smuzhiyun }
592*4882a593Smuzhiyun
593*4882a593Smuzhiyun return IRQ_HANDLED;
594*4882a593Smuzhiyun
595*4882a593Smuzhiyun err_umask:
596*4882a593Smuzhiyun ret = regmap_field_write(bd->rmap_fields[F_INT0_SET], mask);
597*4882a593Smuzhiyun if (ret)
598*4882a593Smuzhiyun dev_err(bd->dev,
599*4882a593Smuzhiyun "Failed to un-mask F_INT0 - IRQ permanently disabled\n");
600*4882a593Smuzhiyun
601*4882a593Smuzhiyun return IRQ_NONE;
602*4882a593Smuzhiyun }
603*4882a593Smuzhiyun
__bd9995x_chip_reset(struct bd9995x_device * bd)604*4882a593Smuzhiyun static int __bd9995x_chip_reset(struct bd9995x_device *bd)
605*4882a593Smuzhiyun {
606*4882a593Smuzhiyun int ret, state;
607*4882a593Smuzhiyun int rst_check_counter = 10;
608*4882a593Smuzhiyun u16 tmp = ALLRST | OTPLD;
609*4882a593Smuzhiyun
610*4882a593Smuzhiyun ret = regmap_raw_write(bd->rmap, SYSTEM_CTRL_SET, &tmp, 2);
611*4882a593Smuzhiyun if (ret < 0)
612*4882a593Smuzhiyun return ret;
613*4882a593Smuzhiyun
614*4882a593Smuzhiyun do {
615*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_OTPLD_STATE], &state);
616*4882a593Smuzhiyun if (ret)
617*4882a593Smuzhiyun return ret;
618*4882a593Smuzhiyun
619*4882a593Smuzhiyun msleep(10);
620*4882a593Smuzhiyun } while (state == 0 && --rst_check_counter);
621*4882a593Smuzhiyun
622*4882a593Smuzhiyun if (!rst_check_counter) {
623*4882a593Smuzhiyun dev_err(bd->dev, "chip reset not completed\n");
624*4882a593Smuzhiyun return -ETIMEDOUT;
625*4882a593Smuzhiyun }
626*4882a593Smuzhiyun
627*4882a593Smuzhiyun tmp = 0;
628*4882a593Smuzhiyun ret = regmap_raw_write(bd->rmap, SYSTEM_CTRL_SET, &tmp, 2);
629*4882a593Smuzhiyun
630*4882a593Smuzhiyun return ret;
631*4882a593Smuzhiyun }
632*4882a593Smuzhiyun
bd9995x_hw_init(struct bd9995x_device * bd)633*4882a593Smuzhiyun static int bd9995x_hw_init(struct bd9995x_device *bd)
634*4882a593Smuzhiyun {
635*4882a593Smuzhiyun int ret;
636*4882a593Smuzhiyun int i;
637*4882a593Smuzhiyun struct bd9995x_state state;
638*4882a593Smuzhiyun struct bd9995x_init_data *id = &bd->init_data;
639*4882a593Smuzhiyun
640*4882a593Smuzhiyun const struct {
641*4882a593Smuzhiyun enum bd9995x_fields id;
642*4882a593Smuzhiyun u16 value;
643*4882a593Smuzhiyun } init_data[] = {
644*4882a593Smuzhiyun /* Enable the charging trigger after SDP charger attached */
645*4882a593Smuzhiyun {F_SDP_CHG_TRIG_EN, 1},
646*4882a593Smuzhiyun /* Enable charging trigger after SDP charger attached */
647*4882a593Smuzhiyun {F_SDP_CHG_TRIG, 1},
648*4882a593Smuzhiyun /* Disable charging trigger by BC1.2 detection */
649*4882a593Smuzhiyun {F_VBUS_BC_DISEN, 1},
650*4882a593Smuzhiyun /* Disable charging trigger by BC1.2 detection */
651*4882a593Smuzhiyun {F_VCC_BC_DISEN, 1},
652*4882a593Smuzhiyun /* Disable automatic limitation of the input current */
653*4882a593Smuzhiyun {F_ILIM_AUTO_DISEN, 1},
654*4882a593Smuzhiyun /* Select current limitation when SDP charger attached*/
655*4882a593Smuzhiyun {F_SDP_500_SEL, 1},
656*4882a593Smuzhiyun /* Select current limitation when DCP charger attached */
657*4882a593Smuzhiyun {F_DCP_2500_SEL, 1},
658*4882a593Smuzhiyun {F_VSYSREG_SET, id->vsysreg_set},
659*4882a593Smuzhiyun /* Activate USB charging and DC/DC converter */
660*4882a593Smuzhiyun {F_USB_SUS, 0},
661*4882a593Smuzhiyun /* DCDC clock: 1200 kHz*/
662*4882a593Smuzhiyun {F_DCDC_CLK_SEL, 3},
663*4882a593Smuzhiyun /* Enable charging */
664*4882a593Smuzhiyun {F_CHG_EN, 1},
665*4882a593Smuzhiyun /* Disable Input current Limit setting voltage measurement */
666*4882a593Smuzhiyun {F_EXTIADPEN, 0},
667*4882a593Smuzhiyun /* Disable input current limiting */
668*4882a593Smuzhiyun {F_VSYS_PRIORITY, 1},
669*4882a593Smuzhiyun {F_IBUS_LIM_SET, id->ibus_lim_set},
670*4882a593Smuzhiyun {F_ICC_LIM_SET, id->icc_lim_set},
671*4882a593Smuzhiyun /* Charge Termination Current Setting to 0*/
672*4882a593Smuzhiyun {F_ITERM_SET, id->iterm_set},
673*4882a593Smuzhiyun /* Trickle-charge Current Setting */
674*4882a593Smuzhiyun {F_ITRICH_SET, id->itrich_set},
675*4882a593Smuzhiyun /* Pre-charge Current setting */
676*4882a593Smuzhiyun {F_IPRECH_SET, id->iprech_set},
677*4882a593Smuzhiyun /* Fast Charge Current for constant current phase */
678*4882a593Smuzhiyun {F_ICHG_SET, id->ichg_set},
679*4882a593Smuzhiyun /* Fast Charge Voltage Regulation Setting */
680*4882a593Smuzhiyun {F_VFASTCHG_REG_SET1, id->vfastchg_reg_set1},
681*4882a593Smuzhiyun /* Set Pre-charge Voltage Threshold for trickle charging. */
682*4882a593Smuzhiyun {F_VPRECHG_TH_SET, id->vprechg_th_set},
683*4882a593Smuzhiyun {F_VRECHG_SET, id->vrechg_set},
684*4882a593Smuzhiyun {F_VBATOVP_SET, id->vbatovp_set},
685*4882a593Smuzhiyun /* Reverse buck boost voltage Setting */
686*4882a593Smuzhiyun {F_VRBOOST_SET, 0},
687*4882a593Smuzhiyun /* Disable fast-charging watchdog */
688*4882a593Smuzhiyun {F_WDT_FST, 0},
689*4882a593Smuzhiyun /* Disable pre-charging watchdog */
690*4882a593Smuzhiyun {F_WDT_PRE, 0},
691*4882a593Smuzhiyun /* Power save off */
692*4882a593Smuzhiyun {F_POWER_SAVE_MODE, 0},
693*4882a593Smuzhiyun {F_INT1_SET, INT1_ALL},
694*4882a593Smuzhiyun {F_INT2_SET, INT2_ALL},
695*4882a593Smuzhiyun {F_INT3_SET, INT3_ALL},
696*4882a593Smuzhiyun {F_INT4_SET, INT4_ALL},
697*4882a593Smuzhiyun {F_INT5_SET, INT5_ALL},
698*4882a593Smuzhiyun {F_INT6_SET, INT6_ALL},
699*4882a593Smuzhiyun {F_INT7_SET, INT7_ALL},
700*4882a593Smuzhiyun };
701*4882a593Smuzhiyun
702*4882a593Smuzhiyun /*
703*4882a593Smuzhiyun * Currently we initialize charger to a known state at startup.
704*4882a593Smuzhiyun * If we want to allow for example the boot code to initialize
705*4882a593Smuzhiyun * charger we should get rid of this.
706*4882a593Smuzhiyun */
707*4882a593Smuzhiyun ret = __bd9995x_chip_reset(bd);
708*4882a593Smuzhiyun if (ret < 0)
709*4882a593Smuzhiyun return ret;
710*4882a593Smuzhiyun
711*4882a593Smuzhiyun /* Initialize currents/voltages and other parameters */
712*4882a593Smuzhiyun for (i = 0; i < ARRAY_SIZE(init_data); i++) {
713*4882a593Smuzhiyun ret = regmap_field_write(bd->rmap_fields[init_data[i].id],
714*4882a593Smuzhiyun init_data[i].value);
715*4882a593Smuzhiyun if (ret) {
716*4882a593Smuzhiyun dev_err(bd->dev, "failed to initialize charger (%d)\n",
717*4882a593Smuzhiyun ret);
718*4882a593Smuzhiyun return ret;
719*4882a593Smuzhiyun }
720*4882a593Smuzhiyun }
721*4882a593Smuzhiyun
722*4882a593Smuzhiyun ret = bd9995x_get_chip_state(bd, &state);
723*4882a593Smuzhiyun if (ret < 0)
724*4882a593Smuzhiyun return ret;
725*4882a593Smuzhiyun
726*4882a593Smuzhiyun mutex_lock(&bd->lock);
727*4882a593Smuzhiyun bd->state = state;
728*4882a593Smuzhiyun mutex_unlock(&bd->lock);
729*4882a593Smuzhiyun
730*4882a593Smuzhiyun return 0;
731*4882a593Smuzhiyun }
732*4882a593Smuzhiyun
733*4882a593Smuzhiyun static enum power_supply_property bd9995x_power_supply_props[] = {
734*4882a593Smuzhiyun POWER_SUPPLY_PROP_MANUFACTURER,
735*4882a593Smuzhiyun POWER_SUPPLY_PROP_STATUS,
736*4882a593Smuzhiyun POWER_SUPPLY_PROP_ONLINE,
737*4882a593Smuzhiyun POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT,
738*4882a593Smuzhiyun POWER_SUPPLY_PROP_CHARGE_AVG,
739*4882a593Smuzhiyun POWER_SUPPLY_PROP_CONSTANT_CHARGE_CURRENT_MAX,
740*4882a593Smuzhiyun POWER_SUPPLY_PROP_CONSTANT_CHARGE_VOLTAGE,
741*4882a593Smuzhiyun POWER_SUPPLY_PROP_CHARGE_TERM_CURRENT,
742*4882a593Smuzhiyun /* Battery props we access through charger */
743*4882a593Smuzhiyun POWER_SUPPLY_PROP_PRESENT,
744*4882a593Smuzhiyun POWER_SUPPLY_PROP_VOLTAGE_NOW,
745*4882a593Smuzhiyun POWER_SUPPLY_PROP_CURRENT_NOW,
746*4882a593Smuzhiyun POWER_SUPPLY_PROP_CHARGE_TYPE,
747*4882a593Smuzhiyun POWER_SUPPLY_PROP_HEALTH,
748*4882a593Smuzhiyun POWER_SUPPLY_PROP_TEMP,
749*4882a593Smuzhiyun POWER_SUPPLY_PROP_TECHNOLOGY,
750*4882a593Smuzhiyun POWER_SUPPLY_PROP_MODEL_NAME,
751*4882a593Smuzhiyun };
752*4882a593Smuzhiyun
753*4882a593Smuzhiyun static const struct power_supply_desc bd9995x_power_supply_desc = {
754*4882a593Smuzhiyun .name = "bd9995x-charger",
755*4882a593Smuzhiyun .type = POWER_SUPPLY_TYPE_USB,
756*4882a593Smuzhiyun .properties = bd9995x_power_supply_props,
757*4882a593Smuzhiyun .num_properties = ARRAY_SIZE(bd9995x_power_supply_props),
758*4882a593Smuzhiyun .get_property = bd9995x_power_supply_get_property,
759*4882a593Smuzhiyun };
760*4882a593Smuzhiyun
761*4882a593Smuzhiyun /*
762*4882a593Smuzhiyun * Limit configurations for vbus-input-current and vcc-vacp-input-current
763*4882a593Smuzhiyun * Minimum limit is 0 uA. Max is 511 * 32000 uA = 16352000 uA. This is
764*4882a593Smuzhiyun * configured by writing a register so that each increment in register
765*4882a593Smuzhiyun * value equals to 32000 uA limit increment.
766*4882a593Smuzhiyun *
767*4882a593Smuzhiyun * Eg, value 0x0 is limit 0, value 0x1 is limit 32000, ...
768*4882a593Smuzhiyun * Describe the setting in linear_range table.
769*4882a593Smuzhiyun */
770*4882a593Smuzhiyun static const struct linear_range input_current_limit_ranges[] = {
771*4882a593Smuzhiyun {
772*4882a593Smuzhiyun .min = 0,
773*4882a593Smuzhiyun .step = 32000,
774*4882a593Smuzhiyun .min_sel = 0x0,
775*4882a593Smuzhiyun .max_sel = 0x1ff,
776*4882a593Smuzhiyun },
777*4882a593Smuzhiyun };
778*4882a593Smuzhiyun
779*4882a593Smuzhiyun /* Possible trickle, pre-charging and termination current values */
780*4882a593Smuzhiyun static const struct linear_range charging_current_ranges[] = {
781*4882a593Smuzhiyun {
782*4882a593Smuzhiyun .min = 0,
783*4882a593Smuzhiyun .step = 64000,
784*4882a593Smuzhiyun .min_sel = 0x0,
785*4882a593Smuzhiyun .max_sel = 0x10,
786*4882a593Smuzhiyun }, {
787*4882a593Smuzhiyun .min = 1024000,
788*4882a593Smuzhiyun .step = 0,
789*4882a593Smuzhiyun .min_sel = 0x11,
790*4882a593Smuzhiyun .max_sel = 0x1f,
791*4882a593Smuzhiyun },
792*4882a593Smuzhiyun };
793*4882a593Smuzhiyun
794*4882a593Smuzhiyun /*
795*4882a593Smuzhiyun * Fast charging voltage regulation, starting re-charging limit
796*4882a593Smuzhiyun * and battery over voltage protection have same possible values
797*4882a593Smuzhiyun */
798*4882a593Smuzhiyun static const struct linear_range charge_voltage_regulation_ranges[] = {
799*4882a593Smuzhiyun {
800*4882a593Smuzhiyun .min = 2560000,
801*4882a593Smuzhiyun .step = 0,
802*4882a593Smuzhiyun .min_sel = 0,
803*4882a593Smuzhiyun .max_sel = 0xA0,
804*4882a593Smuzhiyun }, {
805*4882a593Smuzhiyun .min = 2560000,
806*4882a593Smuzhiyun .step = 16000,
807*4882a593Smuzhiyun .min_sel = 0xA0,
808*4882a593Smuzhiyun .max_sel = 0x4B0,
809*4882a593Smuzhiyun }, {
810*4882a593Smuzhiyun .min = 19200000,
811*4882a593Smuzhiyun .step = 0,
812*4882a593Smuzhiyun .min_sel = 0x4B0,
813*4882a593Smuzhiyun .max_sel = 0x7FF,
814*4882a593Smuzhiyun },
815*4882a593Smuzhiyun };
816*4882a593Smuzhiyun
817*4882a593Smuzhiyun /* Possible VSYS voltage regulation values */
818*4882a593Smuzhiyun static const struct linear_range vsys_voltage_regulation_ranges[] = {
819*4882a593Smuzhiyun {
820*4882a593Smuzhiyun .min = 2560000,
821*4882a593Smuzhiyun .step = 0,
822*4882a593Smuzhiyun .min_sel = 0,
823*4882a593Smuzhiyun .max_sel = 0x28,
824*4882a593Smuzhiyun }, {
825*4882a593Smuzhiyun .min = 2560000,
826*4882a593Smuzhiyun .step = 64000,
827*4882a593Smuzhiyun .min_sel = 0x28,
828*4882a593Smuzhiyun .max_sel = 0x12C,
829*4882a593Smuzhiyun }, {
830*4882a593Smuzhiyun .min = 19200000,
831*4882a593Smuzhiyun .step = 0,
832*4882a593Smuzhiyun .min_sel = 0x12C,
833*4882a593Smuzhiyun .max_sel = 0x1FF,
834*4882a593Smuzhiyun },
835*4882a593Smuzhiyun };
836*4882a593Smuzhiyun
837*4882a593Smuzhiyun /* Possible settings for switching from trickle to pre-charging limits */
838*4882a593Smuzhiyun static const struct linear_range trickle_to_pre_threshold_ranges[] = {
839*4882a593Smuzhiyun {
840*4882a593Smuzhiyun .min = 2048000,
841*4882a593Smuzhiyun .step = 0,
842*4882a593Smuzhiyun .min_sel = 0,
843*4882a593Smuzhiyun .max_sel = 0x20,
844*4882a593Smuzhiyun }, {
845*4882a593Smuzhiyun .min = 2048000,
846*4882a593Smuzhiyun .step = 64000,
847*4882a593Smuzhiyun .min_sel = 0x20,
848*4882a593Smuzhiyun .max_sel = 0x12C,
849*4882a593Smuzhiyun }, {
850*4882a593Smuzhiyun .min = 19200000,
851*4882a593Smuzhiyun .step = 0,
852*4882a593Smuzhiyun .min_sel = 0x12C,
853*4882a593Smuzhiyun .max_sel = 0x1FF
854*4882a593Smuzhiyun }
855*4882a593Smuzhiyun };
856*4882a593Smuzhiyun
857*4882a593Smuzhiyun /* Possible current values for fast-charging constant current phase */
858*4882a593Smuzhiyun static const struct linear_range fast_charge_current_ranges[] = {
859*4882a593Smuzhiyun {
860*4882a593Smuzhiyun .min = 0,
861*4882a593Smuzhiyun .step = 64000,
862*4882a593Smuzhiyun .min_sel = 0,
863*4882a593Smuzhiyun .max_sel = 0xFF,
864*4882a593Smuzhiyun }
865*4882a593Smuzhiyun };
866*4882a593Smuzhiyun
867*4882a593Smuzhiyun struct battery_init {
868*4882a593Smuzhiyun const char *name;
869*4882a593Smuzhiyun int *info_data;
870*4882a593Smuzhiyun const struct linear_range *range;
871*4882a593Smuzhiyun int ranges;
872*4882a593Smuzhiyun u16 *data;
873*4882a593Smuzhiyun };
874*4882a593Smuzhiyun
875*4882a593Smuzhiyun struct dt_init {
876*4882a593Smuzhiyun char *prop;
877*4882a593Smuzhiyun const struct linear_range *range;
878*4882a593Smuzhiyun int ranges;
879*4882a593Smuzhiyun u16 *data;
880*4882a593Smuzhiyun };
881*4882a593Smuzhiyun
bd9995x_fw_probe(struct bd9995x_device * bd)882*4882a593Smuzhiyun static int bd9995x_fw_probe(struct bd9995x_device *bd)
883*4882a593Smuzhiyun {
884*4882a593Smuzhiyun int ret;
885*4882a593Smuzhiyun struct power_supply_battery_info info;
886*4882a593Smuzhiyun u32 property;
887*4882a593Smuzhiyun int i;
888*4882a593Smuzhiyun int regval;
889*4882a593Smuzhiyun bool found;
890*4882a593Smuzhiyun struct bd9995x_init_data *init = &bd->init_data;
891*4882a593Smuzhiyun struct battery_init battery_inits[] = {
892*4882a593Smuzhiyun {
893*4882a593Smuzhiyun .name = "trickle-charging current",
894*4882a593Smuzhiyun .info_data = &info.tricklecharge_current_ua,
895*4882a593Smuzhiyun .range = &charging_current_ranges[0],
896*4882a593Smuzhiyun .ranges = 2,
897*4882a593Smuzhiyun .data = &init->itrich_set,
898*4882a593Smuzhiyun }, {
899*4882a593Smuzhiyun .name = "pre-charging current",
900*4882a593Smuzhiyun .info_data = &info.precharge_current_ua,
901*4882a593Smuzhiyun .range = &charging_current_ranges[0],
902*4882a593Smuzhiyun .ranges = 2,
903*4882a593Smuzhiyun .data = &init->iprech_set,
904*4882a593Smuzhiyun }, {
905*4882a593Smuzhiyun .name = "pre-to-trickle charge voltage threshold",
906*4882a593Smuzhiyun .info_data = &info.precharge_voltage_max_uv,
907*4882a593Smuzhiyun .range = &trickle_to_pre_threshold_ranges[0],
908*4882a593Smuzhiyun .ranges = 2,
909*4882a593Smuzhiyun .data = &init->vprechg_th_set,
910*4882a593Smuzhiyun }, {
911*4882a593Smuzhiyun .name = "charging termination current",
912*4882a593Smuzhiyun .info_data = &info.charge_term_current_ua,
913*4882a593Smuzhiyun .range = &charging_current_ranges[0],
914*4882a593Smuzhiyun .ranges = 2,
915*4882a593Smuzhiyun .data = &init->iterm_set,
916*4882a593Smuzhiyun }, {
917*4882a593Smuzhiyun .name = "charging re-start voltage",
918*4882a593Smuzhiyun .info_data = &info.charge_restart_voltage_uv,
919*4882a593Smuzhiyun .range = &charge_voltage_regulation_ranges[0],
920*4882a593Smuzhiyun .ranges = 2,
921*4882a593Smuzhiyun .data = &init->vrechg_set,
922*4882a593Smuzhiyun }, {
923*4882a593Smuzhiyun .name = "battery overvoltage limit",
924*4882a593Smuzhiyun .info_data = &info.overvoltage_limit_uv,
925*4882a593Smuzhiyun .range = &charge_voltage_regulation_ranges[0],
926*4882a593Smuzhiyun .ranges = 2,
927*4882a593Smuzhiyun .data = &init->vbatovp_set,
928*4882a593Smuzhiyun }, {
929*4882a593Smuzhiyun .name = "fast-charging max current",
930*4882a593Smuzhiyun .info_data = &info.constant_charge_current_max_ua,
931*4882a593Smuzhiyun .range = &fast_charge_current_ranges[0],
932*4882a593Smuzhiyun .ranges = 1,
933*4882a593Smuzhiyun .data = &init->ichg_set,
934*4882a593Smuzhiyun }, {
935*4882a593Smuzhiyun .name = "fast-charging voltage",
936*4882a593Smuzhiyun .info_data = &info.constant_charge_voltage_max_uv,
937*4882a593Smuzhiyun .range = &charge_voltage_regulation_ranges[0],
938*4882a593Smuzhiyun .ranges = 2,
939*4882a593Smuzhiyun .data = &init->vfastchg_reg_set1,
940*4882a593Smuzhiyun },
941*4882a593Smuzhiyun };
942*4882a593Smuzhiyun struct dt_init props[] = {
943*4882a593Smuzhiyun {
944*4882a593Smuzhiyun .prop = "rohm,vsys-regulation-microvolt",
945*4882a593Smuzhiyun .range = &vsys_voltage_regulation_ranges[0],
946*4882a593Smuzhiyun .ranges = 2,
947*4882a593Smuzhiyun .data = &init->vsysreg_set,
948*4882a593Smuzhiyun }, {
949*4882a593Smuzhiyun .prop = "rohm,vbus-input-current-limit-microamp",
950*4882a593Smuzhiyun .range = &input_current_limit_ranges[0],
951*4882a593Smuzhiyun .ranges = 1,
952*4882a593Smuzhiyun .data = &init->ibus_lim_set,
953*4882a593Smuzhiyun }, {
954*4882a593Smuzhiyun .prop = "rohm,vcc-input-current-limit-microamp",
955*4882a593Smuzhiyun .range = &input_current_limit_ranges[0],
956*4882a593Smuzhiyun .ranges = 1,
957*4882a593Smuzhiyun .data = &init->icc_lim_set,
958*4882a593Smuzhiyun },
959*4882a593Smuzhiyun };
960*4882a593Smuzhiyun
961*4882a593Smuzhiyun /*
962*4882a593Smuzhiyun * The power_supply_get_battery_info() does not support getting values
963*4882a593Smuzhiyun * from ACPI. Let's fix it if ACPI is required here.
964*4882a593Smuzhiyun */
965*4882a593Smuzhiyun ret = power_supply_get_battery_info(bd->charger, &info);
966*4882a593Smuzhiyun if (ret < 0)
967*4882a593Smuzhiyun return ret;
968*4882a593Smuzhiyun
969*4882a593Smuzhiyun for (i = 0; i < ARRAY_SIZE(battery_inits); i++) {
970*4882a593Smuzhiyun int val = *battery_inits[i].info_data;
971*4882a593Smuzhiyun const struct linear_range *range = battery_inits[i].range;
972*4882a593Smuzhiyun int ranges = battery_inits[i].ranges;
973*4882a593Smuzhiyun
974*4882a593Smuzhiyun if (val == -EINVAL)
975*4882a593Smuzhiyun continue;
976*4882a593Smuzhiyun
977*4882a593Smuzhiyun ret = linear_range_get_selector_low_array(range, ranges, val,
978*4882a593Smuzhiyun ®val, &found);
979*4882a593Smuzhiyun if (ret) {
980*4882a593Smuzhiyun dev_err(bd->dev, "Unsupported value for %s\n",
981*4882a593Smuzhiyun battery_inits[i].name);
982*4882a593Smuzhiyun
983*4882a593Smuzhiyun power_supply_put_battery_info(bd->charger, &info);
984*4882a593Smuzhiyun return -EINVAL;
985*4882a593Smuzhiyun }
986*4882a593Smuzhiyun if (!found) {
987*4882a593Smuzhiyun dev_warn(bd->dev,
988*4882a593Smuzhiyun "Unsupported value for %s - using smaller\n",
989*4882a593Smuzhiyun battery_inits[i].name);
990*4882a593Smuzhiyun }
991*4882a593Smuzhiyun *(battery_inits[i].data) = regval;
992*4882a593Smuzhiyun }
993*4882a593Smuzhiyun
994*4882a593Smuzhiyun power_supply_put_battery_info(bd->charger, &info);
995*4882a593Smuzhiyun
996*4882a593Smuzhiyun for (i = 0; i < ARRAY_SIZE(props); i++) {
997*4882a593Smuzhiyun ret = device_property_read_u32(bd->dev, props[i].prop,
998*4882a593Smuzhiyun &property);
999*4882a593Smuzhiyun if (ret < 0) {
1000*4882a593Smuzhiyun dev_err(bd->dev, "failed to read %s", props[i].prop);
1001*4882a593Smuzhiyun
1002*4882a593Smuzhiyun return ret;
1003*4882a593Smuzhiyun }
1004*4882a593Smuzhiyun
1005*4882a593Smuzhiyun ret = linear_range_get_selector_low_array(props[i].range,
1006*4882a593Smuzhiyun props[i].ranges,
1007*4882a593Smuzhiyun property, ®val,
1008*4882a593Smuzhiyun &found);
1009*4882a593Smuzhiyun if (ret) {
1010*4882a593Smuzhiyun dev_err(bd->dev, "Unsupported value for '%s'\n",
1011*4882a593Smuzhiyun props[i].prop);
1012*4882a593Smuzhiyun
1013*4882a593Smuzhiyun return -EINVAL;
1014*4882a593Smuzhiyun }
1015*4882a593Smuzhiyun
1016*4882a593Smuzhiyun if (!found) {
1017*4882a593Smuzhiyun dev_warn(bd->dev,
1018*4882a593Smuzhiyun "Unsupported value for '%s' - using smaller\n",
1019*4882a593Smuzhiyun props[i].prop);
1020*4882a593Smuzhiyun }
1021*4882a593Smuzhiyun
1022*4882a593Smuzhiyun *(props[i].data) = regval;
1023*4882a593Smuzhiyun }
1024*4882a593Smuzhiyun
1025*4882a593Smuzhiyun return 0;
1026*4882a593Smuzhiyun }
1027*4882a593Smuzhiyun
bd9995x_chip_reset(void * bd)1028*4882a593Smuzhiyun static void bd9995x_chip_reset(void *bd)
1029*4882a593Smuzhiyun {
1030*4882a593Smuzhiyun __bd9995x_chip_reset(bd);
1031*4882a593Smuzhiyun }
1032*4882a593Smuzhiyun
bd9995x_probe(struct i2c_client * client)1033*4882a593Smuzhiyun static int bd9995x_probe(struct i2c_client *client)
1034*4882a593Smuzhiyun {
1035*4882a593Smuzhiyun struct device *dev = &client->dev;
1036*4882a593Smuzhiyun struct bd9995x_device *bd;
1037*4882a593Smuzhiyun struct power_supply_config psy_cfg = {};
1038*4882a593Smuzhiyun int ret;
1039*4882a593Smuzhiyun int i;
1040*4882a593Smuzhiyun
1041*4882a593Smuzhiyun bd = devm_kzalloc(dev, sizeof(*bd), GFP_KERNEL);
1042*4882a593Smuzhiyun if (!bd)
1043*4882a593Smuzhiyun return -ENOMEM;
1044*4882a593Smuzhiyun
1045*4882a593Smuzhiyun bd->client = client;
1046*4882a593Smuzhiyun bd->dev = dev;
1047*4882a593Smuzhiyun psy_cfg.drv_data = bd;
1048*4882a593Smuzhiyun psy_cfg.of_node = dev->of_node;
1049*4882a593Smuzhiyun
1050*4882a593Smuzhiyun mutex_init(&bd->lock);
1051*4882a593Smuzhiyun
1052*4882a593Smuzhiyun bd->rmap = devm_regmap_init_i2c(client, &bd9995x_regmap_config);
1053*4882a593Smuzhiyun if (IS_ERR(bd->rmap)) {
1054*4882a593Smuzhiyun dev_err(dev, "Failed to setup register access via i2c\n");
1055*4882a593Smuzhiyun return PTR_ERR(bd->rmap);
1056*4882a593Smuzhiyun }
1057*4882a593Smuzhiyun
1058*4882a593Smuzhiyun for (i = 0; i < ARRAY_SIZE(bd9995x_reg_fields); i++) {
1059*4882a593Smuzhiyun const struct reg_field *reg_fields = bd9995x_reg_fields;
1060*4882a593Smuzhiyun
1061*4882a593Smuzhiyun bd->rmap_fields[i] = devm_regmap_field_alloc(dev, bd->rmap,
1062*4882a593Smuzhiyun reg_fields[i]);
1063*4882a593Smuzhiyun if (IS_ERR(bd->rmap_fields[i])) {
1064*4882a593Smuzhiyun dev_err(dev, "cannot allocate regmap field\n");
1065*4882a593Smuzhiyun return PTR_ERR(bd->rmap_fields[i]);
1066*4882a593Smuzhiyun }
1067*4882a593Smuzhiyun }
1068*4882a593Smuzhiyun
1069*4882a593Smuzhiyun i2c_set_clientdata(client, bd);
1070*4882a593Smuzhiyun
1071*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_CHIP_ID], &bd->chip_id);
1072*4882a593Smuzhiyun if (ret) {
1073*4882a593Smuzhiyun dev_err(dev, "Cannot read chip ID.\n");
1074*4882a593Smuzhiyun return ret;
1075*4882a593Smuzhiyun }
1076*4882a593Smuzhiyun
1077*4882a593Smuzhiyun if (bd->chip_id != BD99954_ID) {
1078*4882a593Smuzhiyun dev_err(dev, "Chip with ID=0x%x, not supported!\n",
1079*4882a593Smuzhiyun bd->chip_id);
1080*4882a593Smuzhiyun return -ENODEV;
1081*4882a593Smuzhiyun }
1082*4882a593Smuzhiyun
1083*4882a593Smuzhiyun ret = regmap_field_read(bd->rmap_fields[F_CHIP_REV], &bd->chip_rev);
1084*4882a593Smuzhiyun if (ret) {
1085*4882a593Smuzhiyun dev_err(dev, "Cannot read revision.\n");
1086*4882a593Smuzhiyun return ret;
1087*4882a593Smuzhiyun }
1088*4882a593Smuzhiyun
1089*4882a593Smuzhiyun dev_info(bd->dev, "Found BD99954 chip rev %d\n", bd->chip_rev);
1090*4882a593Smuzhiyun
1091*4882a593Smuzhiyun /*
1092*4882a593Smuzhiyun * We need to init the psy before we can call
1093*4882a593Smuzhiyun * power_supply_get_battery_info() for it
1094*4882a593Smuzhiyun */
1095*4882a593Smuzhiyun bd->charger = devm_power_supply_register(bd->dev,
1096*4882a593Smuzhiyun &bd9995x_power_supply_desc,
1097*4882a593Smuzhiyun &psy_cfg);
1098*4882a593Smuzhiyun if (IS_ERR(bd->charger)) {
1099*4882a593Smuzhiyun dev_err(dev, "Failed to register power supply\n");
1100*4882a593Smuzhiyun return PTR_ERR(bd->charger);
1101*4882a593Smuzhiyun }
1102*4882a593Smuzhiyun
1103*4882a593Smuzhiyun ret = bd9995x_fw_probe(bd);
1104*4882a593Smuzhiyun if (ret < 0) {
1105*4882a593Smuzhiyun dev_err(dev, "Cannot read device properties.\n");
1106*4882a593Smuzhiyun return ret;
1107*4882a593Smuzhiyun }
1108*4882a593Smuzhiyun
1109*4882a593Smuzhiyun ret = bd9995x_hw_init(bd);
1110*4882a593Smuzhiyun if (ret < 0) {
1111*4882a593Smuzhiyun dev_err(dev, "Cannot initialize the chip.\n");
1112*4882a593Smuzhiyun return ret;
1113*4882a593Smuzhiyun }
1114*4882a593Smuzhiyun
1115*4882a593Smuzhiyun ret = devm_add_action_or_reset(dev, bd9995x_chip_reset, bd);
1116*4882a593Smuzhiyun if (ret)
1117*4882a593Smuzhiyun return ret;
1118*4882a593Smuzhiyun
1119*4882a593Smuzhiyun return devm_request_threaded_irq(dev, client->irq, NULL,
1120*4882a593Smuzhiyun bd9995x_irq_handler_thread,
1121*4882a593Smuzhiyun IRQF_TRIGGER_LOW | IRQF_ONESHOT,
1122*4882a593Smuzhiyun BD9995X_IRQ_PIN, bd);
1123*4882a593Smuzhiyun }
1124*4882a593Smuzhiyun
1125*4882a593Smuzhiyun static const struct of_device_id bd9995x_of_match[] = {
1126*4882a593Smuzhiyun { .compatible = "rohm,bd99954", },
1127*4882a593Smuzhiyun { }
1128*4882a593Smuzhiyun };
1129*4882a593Smuzhiyun MODULE_DEVICE_TABLE(of, bd9995x_of_match);
1130*4882a593Smuzhiyun
1131*4882a593Smuzhiyun static struct i2c_driver bd9995x_driver = {
1132*4882a593Smuzhiyun .driver = {
1133*4882a593Smuzhiyun .name = "bd9995x-charger",
1134*4882a593Smuzhiyun .of_match_table = bd9995x_of_match,
1135*4882a593Smuzhiyun },
1136*4882a593Smuzhiyun .probe_new = bd9995x_probe,
1137*4882a593Smuzhiyun };
1138*4882a593Smuzhiyun module_i2c_driver(bd9995x_driver);
1139*4882a593Smuzhiyun
1140*4882a593Smuzhiyun MODULE_AUTHOR("Laine Markus <markus.laine@fi.rohmeurope.com>");
1141*4882a593Smuzhiyun MODULE_DESCRIPTION("ROHM BD99954 charger driver");
1142*4882a593Smuzhiyun MODULE_LICENSE("GPL");
1143