axppmic.c revision 1.2 1 1.2 jmcneill /* $NetBSD: axppmic.c,v 1.2 2018/05/05 00:39:59 jmcneill Exp $ */
2 1.1 jmcneill
3 1.1 jmcneill /*-
4 1.1 jmcneill * Copyright (c) 2014-2018 Jared McNeill <jmcneill (at) invisible.ca>
5 1.1 jmcneill * All rights reserved.
6 1.1 jmcneill *
7 1.1 jmcneill * Redistribution and use in source and binary forms, with or without
8 1.1 jmcneill * modification, are permitted provided that the following conditions
9 1.1 jmcneill * are met:
10 1.1 jmcneill * 1. Redistributions of source code must retain the above copyright
11 1.1 jmcneill * notice, this list of conditions and the following disclaimer.
12 1.1 jmcneill * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 jmcneill * notice, this list of conditions and the following disclaimer in the
14 1.1 jmcneill * documentation and/or other materials provided with the distribution.
15 1.1 jmcneill *
16 1.1 jmcneill * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
17 1.1 jmcneill * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
18 1.1 jmcneill * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
19 1.1 jmcneill * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
20 1.1 jmcneill * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
21 1.1 jmcneill * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
22 1.1 jmcneill * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
23 1.1 jmcneill * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
24 1.1 jmcneill * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
25 1.1 jmcneill * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
26 1.1 jmcneill * POSSIBILITY OF SUCH DAMAGE.
27 1.1 jmcneill */
28 1.1 jmcneill
29 1.1 jmcneill #include <sys/cdefs.h>
30 1.2 jmcneill __KERNEL_RCSID(0, "$NetBSD: axppmic.c,v 1.2 2018/05/05 00:39:59 jmcneill Exp $");
31 1.1 jmcneill
32 1.1 jmcneill #include <sys/param.h>
33 1.1 jmcneill #include <sys/systm.h>
34 1.1 jmcneill #include <sys/kernel.h>
35 1.1 jmcneill #include <sys/device.h>
36 1.1 jmcneill #include <sys/conf.h>
37 1.1 jmcneill #include <sys/bus.h>
38 1.1 jmcneill #include <sys/kmem.h>
39 1.1 jmcneill
40 1.1 jmcneill #include <dev/i2c/i2cvar.h>
41 1.1 jmcneill
42 1.1 jmcneill #include <dev/sysmon/sysmonvar.h>
43 1.1 jmcneill #include <dev/sysmon/sysmon_taskq.h>
44 1.1 jmcneill
45 1.1 jmcneill #include <dev/fdt/fdtvar.h>
46 1.1 jmcneill
47 1.2 jmcneill #define AXP_POWER_MODE_REG 0x01
48 1.2 jmcneill #define AXP_POWER_MODE_BATT_VALID __BIT(4)
49 1.2 jmcneill #define AXP_POWER_MODE_BATT_PRESENT __BIT(5)
50 1.2 jmcneill #define AXP_POWER_MODE_BATT_CHARGING __BIT(6)
51 1.2 jmcneill
52 1.1 jmcneill #define AXP_POWER_DISABLE_REG 0x32
53 1.1 jmcneill #define AXP_POWER_DISABLE_CTRL __BIT(7)
54 1.1 jmcneill
55 1.1 jmcneill #define AXP_IRQ_ENABLE_REG(n) (0x40 + (n) - 1)
56 1.1 jmcneill #define AXP_IRQ2_POKSIRQ __BIT(1)
57 1.1 jmcneill #define AXP_IRQ_STATUS_REG(n) (0x48 + (n) - 1)
58 1.1 jmcneill
59 1.2 jmcneill #define AXP_FUEL_GAUGE_CTRL_REG 0xb8
60 1.2 jmcneill #define AXP_FUEL_GAUGE_CTRL_EN __BIT(7)
61 1.2 jmcneill #define AXP_BATT_CAP_REG 0xb9
62 1.2 jmcneill #define AXP_BATT_CAP_VALID __BIT(7)
63 1.2 jmcneill #define AXP_BATT_CAP_PERCENT __BITS(6,0)
64 1.2 jmcneill
65 1.2 jmcneill #define AXP_BATT_CAP_WARN_REG 0xe6
66 1.2 jmcneill #define AXP_BATT_CAP_WARN_LV1 __BITS(7,4)
67 1.2 jmcneill #define AXP_BATT_CAP_WARN_LV2 __BITS(3,0)
68 1.2 jmcneill
69 1.1 jmcneill struct axppmic_ctrl {
70 1.1 jmcneill device_t c_dev;
71 1.1 jmcneill
72 1.1 jmcneill const char * c_name;
73 1.1 jmcneill u_int c_min;
74 1.1 jmcneill u_int c_max;
75 1.1 jmcneill u_int c_step1;
76 1.1 jmcneill u_int c_step1cnt;
77 1.1 jmcneill u_int c_step2;
78 1.1 jmcneill u_int c_step2cnt;
79 1.1 jmcneill
80 1.1 jmcneill uint8_t c_enable_reg;
81 1.1 jmcneill uint8_t c_enable_mask;
82 1.1 jmcneill
83 1.1 jmcneill uint8_t c_voltage_reg;
84 1.1 jmcneill uint8_t c_voltage_mask;
85 1.1 jmcneill };
86 1.1 jmcneill
87 1.1 jmcneill #define AXP_CTRL(name, min, max, step, ereg, emask, vreg, vmask) \
88 1.1 jmcneill { .c_name = (name), .c_min = (min), .c_max = (max), \
89 1.1 jmcneill .c_step1 = (step), .c_step1cnt = (((max) - (min)) / (step)) + 1, \
90 1.1 jmcneill .c_step2 = 0, .c_step2cnt = 0, \
91 1.1 jmcneill .c_enable_reg = (ereg), .c_enable_mask = (emask), \
92 1.1 jmcneill .c_voltage_reg = (vreg), .c_voltage_mask = (vmask) }
93 1.1 jmcneill
94 1.1 jmcneill #define AXP_CTRL2(name, min, max, step1, step1cnt, step2, step2cnt, ereg, emask, vreg, vmask) \
95 1.1 jmcneill { .c_name = (name), .c_min = (min), .c_max = (max), \
96 1.1 jmcneill .c_step1 = (step1), .c_step1cnt = (step1cnt), \
97 1.1 jmcneill .c_step2 = (step2), .c_step2cnt = (step2cnt), \
98 1.1 jmcneill .c_enable_reg = (ereg), .c_enable_mask = (emask), \
99 1.1 jmcneill .c_voltage_reg = (vreg), .c_voltage_mask = (vmask) }
100 1.1 jmcneill
101 1.1 jmcneill static const struct axppmic_ctrl axp803_ctrls[] = {
102 1.1 jmcneill AXP_CTRL("dldo1", 700, 3300, 100,
103 1.1 jmcneill 0x12, __BIT(3), 0x15, __BITS(4,0)),
104 1.1 jmcneill AXP_CTRL2("dldo2", 700, 4200, 100, 28, 200, 4,
105 1.1 jmcneill 0x12, __BIT(4), 0x16, __BITS(4,0)),
106 1.1 jmcneill AXP_CTRL("dldo3", 700, 3300, 100,
107 1.1 jmcneill 0x12, __BIT(5), 0x17, __BITS(4,0)),
108 1.1 jmcneill AXP_CTRL("dldo4", 700, 3300, 100,
109 1.1 jmcneill 0x12, __BIT(6), 0x18, __BITS(4,0)),
110 1.1 jmcneill AXP_CTRL("eldo1", 700, 1900, 50,
111 1.1 jmcneill 0x12, __BIT(0), 0x19, __BITS(4,0)),
112 1.1 jmcneill AXP_CTRL("eldo2", 700, 1900, 50,
113 1.1 jmcneill 0x12, __BIT(1), 0x1a, __BITS(4,0)),
114 1.1 jmcneill AXP_CTRL("eldo3", 700, 1900, 50,
115 1.1 jmcneill 0x12, __BIT(2), 0x1b, __BITS(4,0)),
116 1.1 jmcneill AXP_CTRL("fldo1", 700, 1450, 50,
117 1.1 jmcneill 0x13, __BIT(2), 0x1c, __BITS(3,0)),
118 1.1 jmcneill AXP_CTRL("fldo2", 700, 1450, 50,
119 1.1 jmcneill 0x13, __BIT(3), 0x1d, __BITS(3,0)),
120 1.1 jmcneill AXP_CTRL("dcdc1", 1600, 3400, 100,
121 1.1 jmcneill 0x10, __BIT(0), 0x20, __BITS(4,0)),
122 1.1 jmcneill AXP_CTRL2("dcdc2", 500, 1300, 10, 71, 20, 5,
123 1.1 jmcneill 0x10, __BIT(1), 0x21, __BITS(6,0)),
124 1.1 jmcneill AXP_CTRL2("dcdc3", 500, 1300, 10, 71, 20, 5,
125 1.1 jmcneill 0x10, __BIT(2), 0x22, __BITS(6,0)),
126 1.1 jmcneill AXP_CTRL2("dcdc4", 500, 1300, 10, 71, 20, 5,
127 1.1 jmcneill 0x10, __BIT(3), 0x23, __BITS(6,0)),
128 1.1 jmcneill AXP_CTRL2("dcdc5", 800, 1840, 10, 33, 20, 36,
129 1.1 jmcneill 0x10, __BIT(4), 0x24, __BITS(6,0)),
130 1.1 jmcneill AXP_CTRL2("dcdc6", 600, 1520, 10, 51, 20, 21,
131 1.1 jmcneill 0x10, __BIT(5), 0x25, __BITS(6,0)),
132 1.1 jmcneill AXP_CTRL("aldo1", 700, 3300, 100,
133 1.1 jmcneill 0x13, __BIT(5), 0x28, __BITS(4,0)),
134 1.1 jmcneill AXP_CTRL("aldo2", 700, 3300, 100,
135 1.1 jmcneill 0x13, __BIT(6), 0x29, __BITS(4,0)),
136 1.1 jmcneill AXP_CTRL("aldo3", 700, 3300, 100,
137 1.1 jmcneill 0x13, __BIT(7), 0x2a, __BITS(4,0)),
138 1.1 jmcneill };
139 1.1 jmcneill
140 1.1 jmcneill static const struct axppmic_ctrl axp805_ctrls[] = {
141 1.1 jmcneill AXP_CTRL2("dcdca", 600, 1520, 10, 51, 20, 21,
142 1.1 jmcneill 0x10, __BIT(0), 0x12, __BITS(6,0)),
143 1.1 jmcneill AXP_CTRL("dcdcb", 1000, 2550, 50,
144 1.1 jmcneill 0x10, __BIT(1), 0x13, __BITS(4,0)),
145 1.1 jmcneill AXP_CTRL2("dcdcc", 600, 1520, 10, 51, 20, 21,
146 1.1 jmcneill 0x10, __BIT(2), 0x14, __BITS(6,0)),
147 1.1 jmcneill AXP_CTRL2("dcdcd", 600, 3300, 20, 46, 100, 18,
148 1.1 jmcneill 0x10, __BIT(3), 0x15, __BITS(5,0)),
149 1.1 jmcneill AXP_CTRL("dcdce", 1100, 3400, 100,
150 1.1 jmcneill 0x10, __BIT(4), 0x16, __BITS(4,0)),
151 1.1 jmcneill AXP_CTRL("aldo1", 700, 3300, 100,
152 1.1 jmcneill 0x10, __BIT(5), 0x17, __BITS(4,0)),
153 1.1 jmcneill AXP_CTRL("aldo2", 700, 3400, 100,
154 1.1 jmcneill 0x10, __BIT(6), 0x18, __BITS(4,0)),
155 1.1 jmcneill AXP_CTRL("aldo3", 700, 3300, 100,
156 1.1 jmcneill 0x10, __BIT(7), 0x19, __BITS(4,0)),
157 1.1 jmcneill AXP_CTRL("bldo1", 700, 1900, 100,
158 1.1 jmcneill 0x11, __BIT(0), 0x20, __BITS(3,0)),
159 1.1 jmcneill AXP_CTRL("bldo2", 700, 1900, 100,
160 1.1 jmcneill 0x11, __BIT(1), 0x21, __BITS(3,0)),
161 1.1 jmcneill AXP_CTRL("bldo3", 700, 1900, 100,
162 1.1 jmcneill 0x11, __BIT(2), 0x22, __BITS(3,0)),
163 1.1 jmcneill AXP_CTRL("bldo4", 700, 1900, 100,
164 1.1 jmcneill 0x11, __BIT(3), 0x23, __BITS(3,0)),
165 1.1 jmcneill AXP_CTRL("cldo1", 700, 3300, 100,
166 1.1 jmcneill 0x11, __BIT(4), 0x24, __BITS(4,0)),
167 1.1 jmcneill AXP_CTRL2("cldo2", 700, 4200, 100, 28, 200, 4,
168 1.1 jmcneill 0x11, __BIT(5), 0x25, __BITS(4,0)),
169 1.1 jmcneill AXP_CTRL("cldo3", 700, 3300, 100,
170 1.1 jmcneill 0x11, __BIT(6), 0x26, __BITS(4,0)),
171 1.1 jmcneill };
172 1.1 jmcneill
173 1.1 jmcneill struct axppmic_config {
174 1.1 jmcneill const char *name;
175 1.1 jmcneill const struct axppmic_ctrl *controls;
176 1.1 jmcneill u_int ncontrols;
177 1.1 jmcneill u_int irq_regs;
178 1.2 jmcneill bool has_battery;
179 1.2 jmcneill bool has_fuel_gauge;
180 1.2 jmcneill };
181 1.2 jmcneill
182 1.2 jmcneill enum axppmic_sensor {
183 1.2 jmcneill AXP_SENSOR_BATT_PRESENT,
184 1.2 jmcneill AXP_SENSOR_BATT_CHARGING,
185 1.2 jmcneill AXP_SENSOR_BATT_CHARGE_STATE,
186 1.2 jmcneill AXP_SENSOR_BATT_CAPACITY,
187 1.2 jmcneill AXP_NSENSORS
188 1.1 jmcneill };
189 1.1 jmcneill
190 1.1 jmcneill struct axppmic_softc {
191 1.1 jmcneill device_t sc_dev;
192 1.1 jmcneill i2c_tag_t sc_i2c;
193 1.1 jmcneill i2c_addr_t sc_addr;
194 1.1 jmcneill int sc_phandle;
195 1.1 jmcneill
196 1.2 jmcneill bool sc_has_battery;
197 1.2 jmcneill bool sc_has_fuel_gauge;
198 1.2 jmcneill
199 1.1 jmcneill struct sysmon_pswitch sc_smpsw;
200 1.1 jmcneill
201 1.2 jmcneill struct sysmon_envsys *sc_sme;
202 1.2 jmcneill envsys_data_t sc_sensor[AXP_NSENSORS];
203 1.1 jmcneill };
204 1.1 jmcneill
205 1.1 jmcneill struct axpreg_softc {
206 1.1 jmcneill device_t sc_dev;
207 1.1 jmcneill i2c_tag_t sc_i2c;
208 1.1 jmcneill i2c_addr_t sc_addr;
209 1.1 jmcneill const struct axppmic_ctrl *sc_ctrl;
210 1.1 jmcneill };
211 1.1 jmcneill
212 1.1 jmcneill struct axpreg_attach_args {
213 1.1 jmcneill const struct axppmic_ctrl *reg_ctrl;
214 1.1 jmcneill int reg_phandle;
215 1.1 jmcneill i2c_tag_t reg_i2c;
216 1.1 jmcneill i2c_addr_t reg_addr;
217 1.1 jmcneill };
218 1.1 jmcneill
219 1.1 jmcneill static const struct axppmic_config axp803_config = {
220 1.1 jmcneill .name = "AXP803",
221 1.1 jmcneill .controls = axp803_ctrls,
222 1.1 jmcneill .ncontrols = __arraycount(axp803_ctrls),
223 1.1 jmcneill .irq_regs = 6,
224 1.2 jmcneill .has_battery = true,
225 1.2 jmcneill .has_fuel_gauge = true,
226 1.1 jmcneill };
227 1.1 jmcneill
228 1.1 jmcneill static const struct axppmic_config axp805_config = {
229 1.1 jmcneill .name = "AXP805/806",
230 1.1 jmcneill .controls = axp805_ctrls,
231 1.1 jmcneill .ncontrols = __arraycount(axp805_ctrls),
232 1.1 jmcneill .irq_regs = 2,
233 1.1 jmcneill };
234 1.1 jmcneill
235 1.1 jmcneill static const struct of_compat_data compat_data[] = {
236 1.1 jmcneill { "x-powers,axp803", (uintptr_t)&axp803_config },
237 1.1 jmcneill { "x-powers,axp805", (uintptr_t)&axp805_config },
238 1.1 jmcneill { "x-powers,axp806", (uintptr_t)&axp805_config },
239 1.1 jmcneill { NULL }
240 1.1 jmcneill };
241 1.1 jmcneill
242 1.1 jmcneill static int
243 1.1 jmcneill axppmic_read(i2c_tag_t tag, i2c_addr_t addr, uint8_t reg, uint8_t *val, int flags)
244 1.1 jmcneill {
245 1.1 jmcneill return iic_smbus_read_byte(tag, addr, reg, val, flags);
246 1.1 jmcneill }
247 1.1 jmcneill
248 1.1 jmcneill static int
249 1.1 jmcneill axppmic_write(i2c_tag_t tag, i2c_addr_t addr, uint8_t reg, uint8_t val, int flags)
250 1.1 jmcneill {
251 1.1 jmcneill return iic_smbus_write_byte(tag, addr, reg, val, flags);
252 1.1 jmcneill }
253 1.1 jmcneill
254 1.1 jmcneill static int
255 1.1 jmcneill axppmic_set_voltage(i2c_tag_t tag, i2c_addr_t addr, const struct axppmic_ctrl *c, u_int min, u_int max)
256 1.1 jmcneill {
257 1.1 jmcneill const int flags = (cold ? I2C_F_POLL : 0);
258 1.1 jmcneill u_int vol, reg_val;
259 1.1 jmcneill int nstep, error;
260 1.1 jmcneill uint8_t val;
261 1.1 jmcneill
262 1.1 jmcneill if (!c->c_voltage_mask)
263 1.1 jmcneill return EINVAL;
264 1.1 jmcneill
265 1.1 jmcneill if (min < c->c_min || min > c->c_max)
266 1.1 jmcneill return EINVAL;
267 1.1 jmcneill
268 1.1 jmcneill reg_val = 0;
269 1.1 jmcneill nstep = 1;
270 1.1 jmcneill vol = c->c_min;
271 1.1 jmcneill
272 1.1 jmcneill for (nstep = 0; nstep < c->c_step1cnt && vol < min; nstep++) {
273 1.1 jmcneill ++reg_val;
274 1.1 jmcneill vol += c->c_step1;
275 1.1 jmcneill }
276 1.1 jmcneill for (nstep = 0; nstep < c->c_step2cnt && vol < min; nstep++) {
277 1.1 jmcneill ++reg_val;
278 1.1 jmcneill vol += c->c_step2;
279 1.1 jmcneill }
280 1.1 jmcneill
281 1.1 jmcneill if (vol > max)
282 1.1 jmcneill return EINVAL;
283 1.1 jmcneill
284 1.1 jmcneill iic_acquire_bus(tag, flags);
285 1.1 jmcneill if ((error = axppmic_read(tag, addr, c->c_voltage_reg, &val, flags)) == 0) {
286 1.1 jmcneill val &= ~c->c_voltage_mask;
287 1.1 jmcneill val |= __SHIFTIN(reg_val, c->c_voltage_mask);
288 1.1 jmcneill error = axppmic_write(tag, addr, c->c_voltage_reg, val, flags);
289 1.1 jmcneill }
290 1.1 jmcneill iic_release_bus(tag, flags);
291 1.1 jmcneill
292 1.1 jmcneill return error;
293 1.1 jmcneill }
294 1.1 jmcneill
295 1.1 jmcneill static int
296 1.1 jmcneill axppmic_get_voltage(i2c_tag_t tag, i2c_addr_t addr, const struct axppmic_ctrl *c, u_int *pvol)
297 1.1 jmcneill {
298 1.1 jmcneill const int flags = (cold ? I2C_F_POLL : 0);
299 1.1 jmcneill int reg_val, error;
300 1.1 jmcneill uint8_t val;
301 1.1 jmcneill
302 1.1 jmcneill if (!c->c_voltage_mask)
303 1.1 jmcneill return EINVAL;
304 1.1 jmcneill
305 1.1 jmcneill iic_acquire_bus(tag, flags);
306 1.1 jmcneill error = axppmic_read(tag, addr, c->c_voltage_reg, &val, flags);
307 1.1 jmcneill iic_release_bus(tag, flags);
308 1.1 jmcneill if (error)
309 1.1 jmcneill return error;
310 1.1 jmcneill
311 1.1 jmcneill reg_val = __SHIFTOUT(val, c->c_voltage_mask);
312 1.1 jmcneill if (reg_val < c->c_step1cnt) {
313 1.1 jmcneill *pvol = c->c_min + reg_val * c->c_step1;
314 1.1 jmcneill } else {
315 1.1 jmcneill *pvol = c->c_min + (c->c_step1cnt * c->c_step1) +
316 1.1 jmcneill ((reg_val - c->c_step1cnt) * c->c_step2);
317 1.1 jmcneill }
318 1.1 jmcneill
319 1.1 jmcneill return 0;
320 1.1 jmcneill }
321 1.1 jmcneill
322 1.1 jmcneill static void
323 1.1 jmcneill axppmic_power_poweroff(device_t dev)
324 1.1 jmcneill {
325 1.1 jmcneill struct axppmic_softc *sc = device_private(dev);
326 1.1 jmcneill
327 1.1 jmcneill delay(1000000);
328 1.1 jmcneill
329 1.1 jmcneill iic_acquire_bus(sc->sc_i2c, I2C_F_POLL);
330 1.1 jmcneill axppmic_write(sc->sc_i2c, sc->sc_addr, AXP_POWER_DISABLE_REG, AXP_POWER_DISABLE_CTRL, I2C_F_POLL);
331 1.1 jmcneill iic_release_bus(sc->sc_i2c, I2C_F_POLL);
332 1.1 jmcneill }
333 1.1 jmcneill
334 1.1 jmcneill static struct fdtbus_power_controller_func axppmic_power_funcs = {
335 1.1 jmcneill .poweroff = axppmic_power_poweroff,
336 1.1 jmcneill };
337 1.1 jmcneill
338 1.1 jmcneill static void
339 1.1 jmcneill axppmic_task_shut(void *priv)
340 1.1 jmcneill {
341 1.1 jmcneill struct axppmic_softc *sc = priv;
342 1.1 jmcneill
343 1.1 jmcneill sysmon_pswitch_event(&sc->sc_smpsw, PSWITCH_EVENT_PRESSED);
344 1.1 jmcneill }
345 1.1 jmcneill
346 1.1 jmcneill static int
347 1.1 jmcneill axppmic_intr(void *priv)
348 1.1 jmcneill {
349 1.1 jmcneill struct axppmic_softc *sc = priv;
350 1.1 jmcneill const int flags = I2C_F_POLL;
351 1.1 jmcneill uint8_t stat;
352 1.1 jmcneill
353 1.1 jmcneill iic_acquire_bus(sc->sc_i2c, flags);
354 1.2 jmcneill if (axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_IRQ_STATUS_REG(2), &stat, flags) == 0) {
355 1.1 jmcneill if (stat & AXP_IRQ2_POKSIRQ)
356 1.1 jmcneill sysmon_task_queue_sched(0, axppmic_task_shut, sc);
357 1.1 jmcneill
358 1.1 jmcneill axppmic_write(sc->sc_i2c, sc->sc_addr, AXP_IRQ_STATUS_REG(2), stat, flags);
359 1.1 jmcneill }
360 1.1 jmcneill iic_release_bus(sc->sc_i2c, flags);
361 1.1 jmcneill
362 1.1 jmcneill return 1;
363 1.1 jmcneill }
364 1.1 jmcneill
365 1.2 jmcneill static void
366 1.2 jmcneill axppmic_sensor_refresh(struct sysmon_envsys *sme, envsys_data_t *e)
367 1.2 jmcneill {
368 1.2 jmcneill struct axppmic_softc *sc = sme->sme_cookie;
369 1.2 jmcneill const int flags = I2C_F_POLL;
370 1.2 jmcneill uint8_t val, warn_val;
371 1.2 jmcneill
372 1.2 jmcneill e->state = ENVSYS_SINVALID;
373 1.2 jmcneill
374 1.2 jmcneill iic_acquire_bus(sc->sc_i2c, flags);
375 1.2 jmcneill switch (e->private) {
376 1.2 jmcneill case AXP_SENSOR_BATT_PRESENT:
377 1.2 jmcneill if (axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_POWER_MODE_REG, &val, flags) == 0) {
378 1.2 jmcneill if (val & AXP_POWER_MODE_BATT_VALID) {
379 1.2 jmcneill e->state = ENVSYS_SVALID;
380 1.2 jmcneill e->value_cur = !!(val & AXP_POWER_MODE_BATT_PRESENT);
381 1.2 jmcneill break;
382 1.2 jmcneill }
383 1.2 jmcneill }
384 1.2 jmcneill break;
385 1.2 jmcneill case AXP_SENSOR_BATT_CHARGING:
386 1.2 jmcneill if (axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_POWER_MODE_REG, &val, flags) == 0) {
387 1.2 jmcneill e->state = ENVSYS_SVALID;
388 1.2 jmcneill e->value_cur = !!(val & AXP_POWER_MODE_BATT_CHARGING);
389 1.2 jmcneill }
390 1.2 jmcneill break;
391 1.2 jmcneill case AXP_SENSOR_BATT_CHARGE_STATE:
392 1.2 jmcneill if (axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_POWER_MODE_REG, &val, flags) == 0 &&
393 1.2 jmcneill (val & AXP_POWER_MODE_BATT_VALID) != 0 &&
394 1.2 jmcneill (val & AXP_POWER_MODE_BATT_PRESENT) != 0 &&
395 1.2 jmcneill axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_BATT_CAP_REG, &val, flags) == 0 &&
396 1.2 jmcneill (val & AXP_BATT_CAP_VALID) != 0 &&
397 1.2 jmcneill axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_BATT_CAP_WARN_REG, &warn_val, flags) == 0) {
398 1.2 jmcneill const u_int warn_thres = __SHIFTOUT(warn_val, AXP_BATT_CAP_WARN_LV1) + 5;
399 1.2 jmcneill const u_int shut_thres = __SHIFTOUT(warn_val, AXP_BATT_CAP_WARN_LV2);
400 1.2 jmcneill
401 1.2 jmcneill const u_int batt_val = __SHIFTOUT(val, AXP_BATT_CAP_PERCENT);
402 1.2 jmcneill if (batt_val <= shut_thres) {
403 1.2 jmcneill e->state = ENVSYS_SCRITICAL;
404 1.2 jmcneill e->value_cur = ENVSYS_BATTERY_CAPACITY_CRITICAL;
405 1.2 jmcneill } else if (batt_val <= warn_thres) {
406 1.2 jmcneill e->state = ENVSYS_SWARNUNDER;
407 1.2 jmcneill e->value_cur = ENVSYS_BATTERY_CAPACITY_WARNING;
408 1.2 jmcneill } else {
409 1.2 jmcneill e->state = ENVSYS_SVALID;
410 1.2 jmcneill e->value_cur = ENVSYS_BATTERY_CAPACITY_NORMAL;
411 1.2 jmcneill }
412 1.2 jmcneill }
413 1.2 jmcneill break;
414 1.2 jmcneill case AXP_SENSOR_BATT_CAPACITY:
415 1.2 jmcneill if (axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_POWER_MODE_REG, &val, flags) == 0 &&
416 1.2 jmcneill (val & AXP_POWER_MODE_BATT_VALID) != 0 &&
417 1.2 jmcneill (val & AXP_POWER_MODE_BATT_PRESENT) != 0 &&
418 1.2 jmcneill axppmic_read(sc->sc_i2c, sc->sc_addr, AXP_BATT_CAP_REG, &val, flags) == 0 &&
419 1.2 jmcneill (val & AXP_BATT_CAP_VALID) != 0) {
420 1.2 jmcneill e->state = ENVSYS_SVALID;
421 1.2 jmcneill e->value_cur = __SHIFTOUT(val, AXP_BATT_CAP_PERCENT);
422 1.2 jmcneill }
423 1.2 jmcneill break;
424 1.2 jmcneill }
425 1.2 jmcneill iic_release_bus(sc->sc_i2c, flags);
426 1.2 jmcneill }
427 1.2 jmcneill
428 1.2 jmcneill static void
429 1.2 jmcneill axppmic_attach_battery(struct axppmic_softc *sc)
430 1.2 jmcneill {
431 1.2 jmcneill envsys_data_t *e;
432 1.2 jmcneill
433 1.2 jmcneill e = &sc->sc_sensor[AXP_SENSOR_BATT_PRESENT];
434 1.2 jmcneill e->private = AXP_SENSOR_BATT_PRESENT;
435 1.2 jmcneill e->units = ENVSYS_INDICATOR;
436 1.2 jmcneill e->state = ENVSYS_SINVALID;
437 1.2 jmcneill strlcpy(e->desc, "battery present", sizeof(e->desc));
438 1.2 jmcneill sysmon_envsys_sensor_attach(sc->sc_sme, e);
439 1.2 jmcneill
440 1.2 jmcneill e = &sc->sc_sensor[AXP_SENSOR_BATT_CHARGING];
441 1.2 jmcneill e->private = AXP_SENSOR_BATT_CHARGING;
442 1.2 jmcneill e->units = ENVSYS_BATTERY_CHARGE;
443 1.2 jmcneill e->state = ENVSYS_SINVALID;
444 1.2 jmcneill strlcpy(e->desc, "charging", sizeof(e->desc));
445 1.2 jmcneill sysmon_envsys_sensor_attach(sc->sc_sme, e);
446 1.2 jmcneill
447 1.2 jmcneill e = &sc->sc_sensor[AXP_SENSOR_BATT_CHARGE_STATE];
448 1.2 jmcneill e->private = AXP_SENSOR_BATT_CHARGE_STATE;
449 1.2 jmcneill e->units = ENVSYS_BATTERY_CAPACITY;
450 1.2 jmcneill e->flags = ENVSYS_FMONSTCHANGED;
451 1.2 jmcneill e->state = ENVSYS_SVALID;
452 1.2 jmcneill e->value_cur = ENVSYS_BATTERY_CAPACITY_NORMAL;
453 1.2 jmcneill strlcpy(e->desc, "charge state", sizeof(e->desc));
454 1.2 jmcneill sysmon_envsys_sensor_attach(sc->sc_sme, e);
455 1.2 jmcneill
456 1.2 jmcneill if (sc->sc_has_fuel_gauge) {
457 1.2 jmcneill e = &sc->sc_sensor[AXP_SENSOR_BATT_CAPACITY];
458 1.2 jmcneill e->private = AXP_SENSOR_BATT_CAPACITY;
459 1.2 jmcneill e->units = ENVSYS_INTEGER;
460 1.2 jmcneill e->state = ENVSYS_SINVALID;
461 1.2 jmcneill e->flags = ENVSYS_FPERCENT;
462 1.2 jmcneill strlcpy(e->desc, "battery percent", sizeof(e->desc));
463 1.2 jmcneill sysmon_envsys_sensor_attach(sc->sc_sme, e);
464 1.2 jmcneill }
465 1.2 jmcneill }
466 1.2 jmcneill
467 1.2 jmcneill static void
468 1.2 jmcneill axppmic_attach_sensors(struct axppmic_softc *sc)
469 1.2 jmcneill {
470 1.2 jmcneill if (sc->sc_has_battery) {
471 1.2 jmcneill sc->sc_sme = sysmon_envsys_create();
472 1.2 jmcneill sc->sc_sme->sme_name = device_xname(sc->sc_dev);
473 1.2 jmcneill sc->sc_sme->sme_cookie = sc;
474 1.2 jmcneill sc->sc_sme->sme_refresh = axppmic_sensor_refresh;
475 1.2 jmcneill sc->sc_sme->sme_class = SME_CLASS_BATTERY;
476 1.2 jmcneill sc->sc_sme->sme_flags = SME_POLL_ONLY | SME_INIT_REFRESH;
477 1.2 jmcneill
478 1.2 jmcneill axppmic_attach_battery(sc);
479 1.2 jmcneill
480 1.2 jmcneill sysmon_envsys_register(sc->sc_sme);
481 1.2 jmcneill }
482 1.2 jmcneill }
483 1.2 jmcneill
484 1.2 jmcneill
485 1.1 jmcneill static int
486 1.1 jmcneill axppmic_match(device_t parent, cfdata_t match, void *aux)
487 1.1 jmcneill {
488 1.1 jmcneill struct i2c_attach_args *ia = aux;
489 1.1 jmcneill
490 1.1 jmcneill if (ia->ia_name != NULL) {
491 1.1 jmcneill if (ia->ia_cookie)
492 1.1 jmcneill return of_match_compat_data(ia->ia_cookie, compat_data);
493 1.1 jmcneill else
494 1.1 jmcneill return 0;
495 1.1 jmcneill }
496 1.1 jmcneill
497 1.1 jmcneill return 1;
498 1.1 jmcneill }
499 1.1 jmcneill
500 1.1 jmcneill static void
501 1.1 jmcneill axppmic_attach(device_t parent, device_t self, void *aux)
502 1.1 jmcneill {
503 1.1 jmcneill struct axppmic_softc *sc = device_private(self);
504 1.1 jmcneill const struct axppmic_config *c;
505 1.1 jmcneill struct axpreg_attach_args aaa;
506 1.1 jmcneill struct i2c_attach_args *ia = aux;
507 1.1 jmcneill int phandle, child, i;
508 1.1 jmcneill uint32_t irq_mask;
509 1.1 jmcneill void *ih;
510 1.1 jmcneill
511 1.1 jmcneill c = (void *)of_search_compatible(ia->ia_cookie, compat_data)->data;
512 1.1 jmcneill
513 1.1 jmcneill sc->sc_dev = self;
514 1.1 jmcneill sc->sc_i2c = ia->ia_tag;
515 1.1 jmcneill sc->sc_addr = ia->ia_addr;
516 1.1 jmcneill sc->sc_phandle = ia->ia_cookie;
517 1.2 jmcneill sc->sc_has_battery = c->has_battery;
518 1.2 jmcneill sc->sc_has_fuel_gauge = c->has_fuel_gauge;
519 1.1 jmcneill
520 1.1 jmcneill aprint_naive("\n");
521 1.1 jmcneill aprint_normal(": %s\n", c->name);
522 1.1 jmcneill
523 1.1 jmcneill sc->sc_smpsw.smpsw_name = device_xname(self);
524 1.1 jmcneill sc->sc_smpsw.smpsw_type = PSWITCH_TYPE_POWER;
525 1.1 jmcneill sysmon_pswitch_register(&sc->sc_smpsw);
526 1.1 jmcneill
527 1.1 jmcneill iic_acquire_bus(sc->sc_i2c, I2C_F_POLL);
528 1.2 jmcneill for (i = 1; i <= c->irq_regs; i++) {
529 1.1 jmcneill irq_mask = 0;
530 1.1 jmcneill if (i == 2)
531 1.1 jmcneill irq_mask |= AXP_IRQ2_POKSIRQ;
532 1.1 jmcneill axppmic_write(sc->sc_i2c, sc->sc_addr, AXP_IRQ_ENABLE_REG(i), irq_mask, I2C_F_POLL);
533 1.1 jmcneill }
534 1.1 jmcneill iic_release_bus(sc->sc_i2c, I2C_F_POLL);
535 1.1 jmcneill
536 1.1 jmcneill ih = fdtbus_intr_establish(sc->sc_phandle, 0, IPL_VM, FDT_INTR_MPSAFE,
537 1.1 jmcneill axppmic_intr, sc);
538 1.1 jmcneill if (ih == NULL) {
539 1.1 jmcneill aprint_error_dev(self, "WARNING: couldn't establish interrupt handler\n");
540 1.1 jmcneill }
541 1.1 jmcneill
542 1.1 jmcneill fdtbus_register_power_controller(sc->sc_dev, sc->sc_phandle,
543 1.1 jmcneill &axppmic_power_funcs);
544 1.1 jmcneill
545 1.1 jmcneill phandle = of_find_firstchild_byname(sc->sc_phandle, "regulators");
546 1.2 jmcneill if (phandle > 0) {
547 1.2 jmcneill aaa.reg_i2c = sc->sc_i2c;
548 1.2 jmcneill aaa.reg_addr = sc->sc_addr;
549 1.2 jmcneill for (i = 0; i < c->ncontrols; i++) {
550 1.2 jmcneill const struct axppmic_ctrl *ctrl = &c->controls[i];
551 1.2 jmcneill child = of_find_firstchild_byname(phandle, ctrl->c_name);
552 1.2 jmcneill if (child <= 0)
553 1.2 jmcneill continue;
554 1.2 jmcneill aaa.reg_ctrl = ctrl;
555 1.2 jmcneill aaa.reg_phandle = child;
556 1.2 jmcneill config_found(sc->sc_dev, &aaa, NULL);
557 1.2 jmcneill }
558 1.2 jmcneill }
559 1.1 jmcneill
560 1.2 jmcneill if (c->has_battery)
561 1.2 jmcneill axppmic_attach_sensors(sc);
562 1.1 jmcneill }
563 1.1 jmcneill
564 1.1 jmcneill static int
565 1.1 jmcneill axpreg_acquire(device_t dev)
566 1.1 jmcneill {
567 1.1 jmcneill return 0;
568 1.1 jmcneill }
569 1.1 jmcneill
570 1.1 jmcneill static void
571 1.1 jmcneill axpreg_release(device_t dev)
572 1.1 jmcneill {
573 1.1 jmcneill }
574 1.1 jmcneill
575 1.1 jmcneill static int
576 1.1 jmcneill axpreg_enable(device_t dev, bool enable)
577 1.1 jmcneill {
578 1.1 jmcneill struct axpreg_softc *sc = device_private(dev);
579 1.1 jmcneill const struct axppmic_ctrl *c = sc->sc_ctrl;
580 1.1 jmcneill const int flags = (cold ? I2C_F_POLL : 0);
581 1.1 jmcneill uint8_t val;
582 1.1 jmcneill int error;
583 1.1 jmcneill
584 1.1 jmcneill if (!c->c_enable_mask)
585 1.1 jmcneill return EINVAL;
586 1.1 jmcneill
587 1.1 jmcneill iic_acquire_bus(sc->sc_i2c, flags);
588 1.1 jmcneill if ((error = axppmic_read(sc->sc_i2c, sc->sc_addr, c->c_enable_reg, &val, flags)) == 0) {
589 1.1 jmcneill if (enable)
590 1.1 jmcneill val |= c->c_enable_mask;
591 1.1 jmcneill else
592 1.1 jmcneill val &= ~c->c_enable_mask;
593 1.1 jmcneill error = axppmic_write(sc->sc_i2c, sc->sc_addr, c->c_enable_reg, val, flags);
594 1.1 jmcneill }
595 1.1 jmcneill iic_release_bus(sc->sc_i2c, flags);
596 1.1 jmcneill
597 1.1 jmcneill return error;
598 1.1 jmcneill }
599 1.1 jmcneill
600 1.1 jmcneill static int
601 1.1 jmcneill axpreg_set_voltage(device_t dev, u_int min_uvol, u_int max_uvol)
602 1.1 jmcneill {
603 1.1 jmcneill struct axpreg_softc *sc = device_private(dev);
604 1.1 jmcneill const struct axppmic_ctrl *c = sc->sc_ctrl;
605 1.1 jmcneill
606 1.1 jmcneill return axppmic_set_voltage(sc->sc_i2c, sc->sc_addr, c,
607 1.1 jmcneill min_uvol / 1000, max_uvol / 1000);
608 1.1 jmcneill }
609 1.1 jmcneill
610 1.1 jmcneill static int
611 1.1 jmcneill axpreg_get_voltage(device_t dev, u_int *puvol)
612 1.1 jmcneill {
613 1.1 jmcneill struct axpreg_softc *sc = device_private(dev);
614 1.1 jmcneill const struct axppmic_ctrl *c = sc->sc_ctrl;
615 1.1 jmcneill int error;
616 1.1 jmcneill u_int vol;
617 1.1 jmcneill
618 1.1 jmcneill error = axppmic_get_voltage(sc->sc_i2c, sc->sc_addr, c, &vol);
619 1.1 jmcneill if (error)
620 1.1 jmcneill return error;
621 1.1 jmcneill
622 1.1 jmcneill *puvol = vol * 1000;
623 1.1 jmcneill return 0;
624 1.1 jmcneill }
625 1.1 jmcneill
626 1.1 jmcneill static struct fdtbus_regulator_controller_func axpreg_funcs = {
627 1.1 jmcneill .acquire = axpreg_acquire,
628 1.1 jmcneill .release = axpreg_release,
629 1.1 jmcneill .enable = axpreg_enable,
630 1.1 jmcneill .set_voltage = axpreg_set_voltage,
631 1.1 jmcneill .get_voltage = axpreg_get_voltage,
632 1.1 jmcneill };
633 1.1 jmcneill
634 1.1 jmcneill static int
635 1.1 jmcneill axpreg_match(device_t parent, cfdata_t match, void *aux)
636 1.1 jmcneill {
637 1.1 jmcneill return 1;
638 1.1 jmcneill }
639 1.1 jmcneill
640 1.1 jmcneill static void
641 1.1 jmcneill axpreg_attach(device_t parent, device_t self, void *aux)
642 1.1 jmcneill {
643 1.1 jmcneill struct axpreg_softc *sc = device_private(self);
644 1.1 jmcneill struct axpreg_attach_args *aaa = aux;
645 1.1 jmcneill const int phandle = aaa->reg_phandle;
646 1.1 jmcneill const char *name;
647 1.1 jmcneill
648 1.1 jmcneill sc->sc_dev = self;
649 1.1 jmcneill sc->sc_i2c = aaa->reg_i2c;
650 1.1 jmcneill sc->sc_addr = aaa->reg_addr;
651 1.1 jmcneill sc->sc_ctrl = aaa->reg_ctrl;
652 1.1 jmcneill
653 1.1 jmcneill fdtbus_register_regulator_controller(self, phandle,
654 1.1 jmcneill &axpreg_funcs);
655 1.1 jmcneill
656 1.1 jmcneill aprint_naive("\n");
657 1.1 jmcneill name = fdtbus_get_string(phandle, "regulator-name");
658 1.1 jmcneill if (name)
659 1.1 jmcneill aprint_normal(": %s\n", name);
660 1.1 jmcneill else
661 1.1 jmcneill aprint_normal("\n");
662 1.1 jmcneill }
663 1.1 jmcneill
664 1.1 jmcneill CFATTACH_DECL_NEW(axppmic, sizeof(struct axppmic_softc),
665 1.1 jmcneill axppmic_match, axppmic_attach, NULL, NULL);
666 1.1 jmcneill
667 1.1 jmcneill CFATTACH_DECL_NEW(axpreg, sizeof(struct axpreg_softc),
668 1.1 jmcneill axpreg_match, axpreg_attach, NULL, NULL);
669