zapm.c revision 1.5 1 1.5 nonaka /* $NetBSD: zapm.c,v 1.5 2009/03/11 09:04:31 nonaka Exp $ */
2 1.3 nonaka /* $OpenBSD: zaurus_apm.c,v 1.13 2006/12/12 23:14:28 dim Exp $ */
3 1.1 ober
4 1.1 ober /*
5 1.1 ober * Copyright (c) 2005 Uwe Stuehler <uwe (at) bsdx.de>
6 1.1 ober *
7 1.1 ober * Permission to use, copy, modify, and distribute this software for any
8 1.1 ober * purpose with or without fee is hereby granted, provided that the above
9 1.1 ober * copyright notice and this permission notice appear in all copies.
10 1.1 ober *
11 1.1 ober * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
12 1.1 ober * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
13 1.1 ober * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
14 1.1 ober * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
15 1.1 ober * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
16 1.1 ober * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
17 1.1 ober * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
18 1.1 ober */
19 1.1 ober
20 1.3 nonaka #include <sys/cdefs.h>
21 1.5 nonaka __KERNEL_RCSID(0, "$NetBSD: zapm.c,v 1.5 2009/03/11 09:04:31 nonaka Exp $");
22 1.3 nonaka
23 1.1 ober #include <sys/param.h>
24 1.1 ober #include <sys/systm.h>
25 1.1 ober #include <sys/kernel.h>
26 1.3 nonaka #include <sys/callout.h>
27 1.3 nonaka
28 1.3 nonaka #include <dev/hpc/apm/apmvar.h>
29 1.1 ober
30 1.1 ober #include <arm/xscale/pxa2x0reg.h>
31 1.1 ober #include <arm/xscale/pxa2x0var.h>
32 1.3 nonaka #include <arm/xscale/pxa2x0cpu.h>
33 1.1 ober #include <arm/xscale/pxa2x0_gpio.h>
34 1.1 ober
35 1.3 nonaka #include <machine/config_hook.h>
36 1.1 ober
37 1.3 nonaka #include <zaurus/dev/scoopvar.h>
38 1.3 nonaka #include <zaurus/dev/zsspvar.h>
39 1.3 nonaka #include <zaurus/zaurus/zaurus_reg.h>
40 1.3 nonaka #include <zaurus/zaurus/zaurus_var.h>
41 1.1 ober
42 1.3 nonaka #ifdef APMDEBUG
43 1.1 ober #define DPRINTF(x) printf x
44 1.1 ober #else
45 1.3 nonaka #define DPRINTF(x) do { } while (/*CONSTCOND*/0)
46 1.1 ober #endif
47 1.1 ober
48 1.1 ober struct zapm_softc {
49 1.4 nonaka device_t sc_dev;
50 1.3 nonaka void *sc_apmdev;
51 1.3 nonaka
52 1.3 nonaka struct callout sc_cyclic_poll;
53 1.3 nonaka struct callout sc_discharge_poll;
54 1.1 ober struct timeval sc_lastbattchk;
55 1.3 nonaka volatile int suspended;
56 1.3 nonaka volatile int charging;
57 1.3 nonaka volatile int discharging;
58 1.3 nonaka int battery_volt;
59 1.3 nonaka int battery_full_cnt;
60 1.3 nonaka
61 1.3 nonaka /* GPIO pin */
62 1.3 nonaka int sc_ac_detect_pin;
63 1.3 nonaka int sc_batt_cover_pin;
64 1.3 nonaka int sc_charge_comp_pin;
65 1.3 nonaka
66 1.3 nonaka /* machine-independent part */
67 1.3 nonaka volatile u_int events;
68 1.3 nonaka volatile int power_state;
69 1.3 nonaka volatile int battery_state;
70 1.3 nonaka volatile int ac_state;
71 1.3 nonaka config_hook_tag sc_standby_hook;
72 1.3 nonaka config_hook_tag sc_suspend_hook;
73 1.3 nonaka config_hook_tag sc_battery_hook;
74 1.3 nonaka config_hook_tag sc_ac_hook;
75 1.3 nonaka int battery_life;
76 1.3 nonaka int minutes_left;
77 1.1 ober };
78 1.1 ober
79 1.4 nonaka static int zapm_match(device_t, cfdata_t, void *);
80 1.4 nonaka static void zapm_attach(device_t, device_t, void *);
81 1.3 nonaka
82 1.4 nonaka CFATTACH_DECL_NEW(zapm, sizeof(struct zapm_softc),
83 1.3 nonaka zapm_match, zapm_attach, NULL, NULL);
84 1.1 ober
85 1.3 nonaka static int zapm_hook(void *, int, long, void *);
86 1.3 nonaka static void zapm_disconnect(void *);
87 1.3 nonaka static void zapm_enable(void *, int);
88 1.3 nonaka static int zapm_set_powstate(void *, u_int, u_int);
89 1.3 nonaka static int zapm_get_powstat(void *, struct apm_power_info *);
90 1.3 nonaka static int zapm_get_event(void *, u_int *, u_int *);
91 1.3 nonaka static void zapm_cpu_busy(void *);
92 1.3 nonaka static void zapm_cpu_idle(void *);
93 1.3 nonaka static void zapm_get_capabilities(void *, u_int *, u_int *);
94 1.3 nonaka
95 1.3 nonaka static struct apm_accessops zapm_accessops = {
96 1.3 nonaka zapm_disconnect,
97 1.3 nonaka zapm_enable,
98 1.3 nonaka zapm_set_powstate,
99 1.3 nonaka zapm_get_powstat,
100 1.3 nonaka zapm_get_event,
101 1.3 nonaka zapm_cpu_busy,
102 1.3 nonaka zapm_cpu_idle,
103 1.3 nonaka zapm_get_capabilities,
104 1.1 ober };
105 1.1 ober
106 1.3 nonaka static int zapm_acintr(void *);
107 1.3 nonaka static int zapm_bcintr(void *);
108 1.3 nonaka static void zapm_cyclic(void *);
109 1.3 nonaka static void zapm_poll(void *);
110 1.3 nonaka static void zapm_poll1(void *, int);
111 1.3 nonaka
112 1.3 nonaka /* battery-related GPIO pins */
113 1.3 nonaka #define GPIO_AC_IN_C3000 115 /* 0=AC connected */
114 1.3 nonaka #define GPIO_CHRG_CO_C3000 101 /* 1=battery full */
115 1.3 nonaka #define GPIO_BATT_COVER_C3000 90 /* 0=unlocked */
116 1.3 nonaka
117 1.3 nonaka /* Cyclic timer value */
118 1.3 nonaka #define CYCLIC_TIME (60 * hz) /* 60s */
119 1.3 nonaka
120 1.3 nonaka static int
121 1.4 nonaka zapm_match(device_t parent, cfdata_t cf, void *aux)
122 1.3 nonaka {
123 1.3 nonaka
124 1.3 nonaka if (!ZAURUS_ISC3000)
125 1.3 nonaka return 0;
126 1.3 nonaka return 1;
127 1.3 nonaka }
128 1.3 nonaka
129 1.3 nonaka static void
130 1.4 nonaka zapm_attach(device_t parent, device_t self, void *aux)
131 1.3 nonaka {
132 1.3 nonaka struct zapm_softc *sc = device_private(self);
133 1.3 nonaka struct apmdev_attach_args aaa;
134 1.3 nonaka
135 1.4 nonaka sc->sc_dev = self;
136 1.4 nonaka
137 1.3 nonaka aprint_normal(": pseudo power management module\n");
138 1.4 nonaka aprint_naive("\n");
139 1.3 nonaka
140 1.3 nonaka /* machine-depent part */
141 1.3 nonaka callout_init(&sc->sc_cyclic_poll, 0);
142 1.3 nonaka callout_setfunc(&sc->sc_cyclic_poll, zapm_cyclic, sc);
143 1.3 nonaka callout_init(&sc->sc_discharge_poll, 0);
144 1.3 nonaka callout_setfunc(&sc->sc_discharge_poll, zapm_poll, sc);
145 1.3 nonaka
146 1.3 nonaka if (ZAURUS_ISC3000) {
147 1.3 nonaka sc->sc_ac_detect_pin = GPIO_AC_IN_C3000;
148 1.3 nonaka sc->sc_batt_cover_pin = GPIO_BATT_COVER_C3000;
149 1.3 nonaka sc->sc_charge_comp_pin = GPIO_CHRG_CO_C3000;
150 1.3 nonaka } else {
151 1.3 nonaka /* XXX */
152 1.3 nonaka return;
153 1.3 nonaka }
154 1.3 nonaka
155 1.3 nonaka pxa2x0_gpio_set_function(sc->sc_ac_detect_pin, GPIO_IN);
156 1.3 nonaka pxa2x0_gpio_set_function(sc->sc_charge_comp_pin, GPIO_IN);
157 1.3 nonaka pxa2x0_gpio_set_function(sc->sc_batt_cover_pin, GPIO_IN);
158 1.3 nonaka
159 1.3 nonaka (void)pxa2x0_gpio_intr_establish(sc->sc_ac_detect_pin,
160 1.3 nonaka IST_EDGE_BOTH, IPL_BIO, zapm_acintr, sc);
161 1.3 nonaka (void)pxa2x0_gpio_intr_establish(sc->sc_charge_comp_pin,
162 1.3 nonaka IST_EDGE_BOTH, IPL_BIO, zapm_bcintr, sc);
163 1.3 nonaka
164 1.3 nonaka /* machine-independent part */
165 1.3 nonaka sc->events = 0;
166 1.3 nonaka sc->power_state = APM_SYS_READY;
167 1.3 nonaka sc->battery_state = APM_BATT_FLAG_UNKNOWN;
168 1.3 nonaka sc->ac_state = APM_AC_UNKNOWN;
169 1.3 nonaka sc->battery_life = APM_BATT_LIFE_UNKNOWN;
170 1.3 nonaka sc->minutes_left = 0;
171 1.3 nonaka sc->sc_standby_hook = config_hook(CONFIG_HOOK_PMEVENT,
172 1.3 nonaka CONFIG_HOOK_PMEVENT_STANDBYREQ,
173 1.3 nonaka CONFIG_HOOK_EXCLUSIVE,
174 1.3 nonaka zapm_hook, sc);
175 1.3 nonaka sc->sc_suspend_hook = config_hook(CONFIG_HOOK_PMEVENT,
176 1.3 nonaka CONFIG_HOOK_PMEVENT_SUSPENDREQ,
177 1.3 nonaka CONFIG_HOOK_EXCLUSIVE,
178 1.3 nonaka zapm_hook, sc);
179 1.3 nonaka
180 1.3 nonaka sc->sc_battery_hook = config_hook(CONFIG_HOOK_PMEVENT,
181 1.3 nonaka CONFIG_HOOK_PMEVENT_BATTERY,
182 1.3 nonaka CONFIG_HOOK_SHARE,
183 1.3 nonaka zapm_hook, sc);
184 1.3 nonaka
185 1.3 nonaka sc->sc_ac_hook = config_hook(CONFIG_HOOK_PMEVENT,
186 1.3 nonaka CONFIG_HOOK_PMEVENT_AC,
187 1.3 nonaka CONFIG_HOOK_SHARE,
188 1.3 nonaka zapm_hook, sc);
189 1.3 nonaka
190 1.3 nonaka aaa.accessops = &zapm_accessops;
191 1.3 nonaka aaa.accesscookie = sc;
192 1.3 nonaka aaa.apm_detail = 0x0102;
193 1.3 nonaka
194 1.3 nonaka sc->sc_apmdev = config_found_ia(self, "apmdevif", &aaa, apmprint);
195 1.3 nonaka if (sc->sc_apmdev != NULL) {
196 1.3 nonaka zapm_poll1(sc, 0);
197 1.3 nonaka callout_schedule(&sc->sc_cyclic_poll, CYCLIC_TIME);
198 1.3 nonaka }
199 1.3 nonaka }
200 1.3 nonaka
201 1.3 nonaka static int
202 1.3 nonaka zapm_hook(void *v, int type, long id, void *msg)
203 1.3 nonaka {
204 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
205 1.3 nonaka int charge;
206 1.3 nonaka int message;
207 1.3 nonaka int s;
208 1.3 nonaka
209 1.3 nonaka if (type != CONFIG_HOOK_PMEVENT)
210 1.3 nonaka return 1;
211 1.3 nonaka
212 1.3 nonaka if (CONFIG_HOOK_VALUEP(msg))
213 1.3 nonaka message = (int)msg;
214 1.3 nonaka else
215 1.3 nonaka message = *(int *)msg;
216 1.3 nonaka
217 1.3 nonaka s = splhigh();
218 1.3 nonaka
219 1.3 nonaka switch (id) {
220 1.3 nonaka case CONFIG_HOOK_PMEVENT_STANDBYREQ:
221 1.3 nonaka if (sc->power_state != APM_SYS_STANDBY) {
222 1.3 nonaka sc->events |= (1 << APM_USER_STANDBY_REQ);
223 1.3 nonaka } else {
224 1.3 nonaka sc->events |= (1 << APM_NORMAL_RESUME);
225 1.3 nonaka }
226 1.3 nonaka break;
227 1.3 nonaka case CONFIG_HOOK_PMEVENT_SUSPENDREQ:
228 1.3 nonaka if (sc->power_state != APM_SYS_SUSPEND) {
229 1.3 nonaka DPRINTF(("zapm: suspend request\n"));
230 1.3 nonaka sc->events |= (1 << APM_USER_SUSPEND_REQ);
231 1.3 nonaka } else {
232 1.3 nonaka sc->events |= (1 << APM_NORMAL_RESUME);
233 1.3 nonaka }
234 1.3 nonaka break;
235 1.3 nonaka case CONFIG_HOOK_PMEVENT_BATTERY:
236 1.3 nonaka switch (message) {
237 1.3 nonaka case CONFIG_HOOK_BATT_CRITICAL:
238 1.3 nonaka DPRINTF(("zapm: battery state critical\n"));
239 1.3 nonaka charge = sc->battery_state & APM_BATT_FLAG_CHARGING;
240 1.3 nonaka sc->battery_state = APM_BATT_FLAG_CRITICAL;
241 1.3 nonaka sc->battery_state |= charge;
242 1.3 nonaka sc->battery_life = 0;
243 1.3 nonaka break;
244 1.3 nonaka case CONFIG_HOOK_BATT_LOW:
245 1.3 nonaka DPRINTF(("zapm: battery state low\n"));
246 1.3 nonaka charge = sc->battery_state & APM_BATT_FLAG_CHARGING;
247 1.3 nonaka sc->battery_state = APM_BATT_FLAG_LOW;
248 1.3 nonaka sc->battery_state |= charge;
249 1.3 nonaka break;
250 1.3 nonaka case CONFIG_HOOK_BATT_HIGH:
251 1.3 nonaka DPRINTF(("zapm: battery state high\n"));
252 1.3 nonaka charge = sc->battery_state & APM_BATT_FLAG_CHARGING;
253 1.3 nonaka sc->battery_state = APM_BATT_FLAG_HIGH;
254 1.3 nonaka sc->battery_state |= charge;
255 1.3 nonaka break;
256 1.3 nonaka case CONFIG_HOOK_BATT_10P:
257 1.3 nonaka DPRINTF(("zapm: battery life 10%%\n"));
258 1.3 nonaka sc->battery_life = 10;
259 1.3 nonaka break;
260 1.3 nonaka case CONFIG_HOOK_BATT_20P:
261 1.3 nonaka DPRINTF(("zapm: battery life 20%%\n"));
262 1.3 nonaka sc->battery_life = 20;
263 1.3 nonaka break;
264 1.3 nonaka case CONFIG_HOOK_BATT_30P:
265 1.3 nonaka DPRINTF(("zapm: battery life 30%%\n"));
266 1.3 nonaka sc->battery_life = 30;
267 1.3 nonaka break;
268 1.3 nonaka case CONFIG_HOOK_BATT_40P:
269 1.3 nonaka DPRINTF(("zapm: battery life 40%%\n"));
270 1.3 nonaka sc->battery_life = 40;
271 1.3 nonaka break;
272 1.3 nonaka case CONFIG_HOOK_BATT_50P:
273 1.3 nonaka DPRINTF(("zapm: battery life 50%%\n"));
274 1.3 nonaka sc->battery_life = 50;
275 1.3 nonaka break;
276 1.3 nonaka case CONFIG_HOOK_BATT_60P:
277 1.3 nonaka DPRINTF(("zapm: battery life 60%%\n"));
278 1.3 nonaka sc->battery_life = 60;
279 1.3 nonaka break;
280 1.3 nonaka case CONFIG_HOOK_BATT_70P:
281 1.3 nonaka DPRINTF(("zapm: battery life 70%%\n"));
282 1.3 nonaka sc->battery_life = 70;
283 1.3 nonaka break;
284 1.3 nonaka case CONFIG_HOOK_BATT_80P:
285 1.3 nonaka DPRINTF(("zapm: battery life 80%%\n"));
286 1.3 nonaka sc->battery_life = 80;
287 1.3 nonaka break;
288 1.3 nonaka case CONFIG_HOOK_BATT_90P:
289 1.3 nonaka DPRINTF(("zapm: battery life 90%%\n"));
290 1.3 nonaka sc->battery_life = 90;
291 1.3 nonaka break;
292 1.3 nonaka case CONFIG_HOOK_BATT_100P:
293 1.3 nonaka DPRINTF(("zapm: battery life 100%%\n"));
294 1.3 nonaka sc->battery_life = 100;
295 1.3 nonaka break;
296 1.3 nonaka case CONFIG_HOOK_BATT_UNKNOWN:
297 1.3 nonaka DPRINTF(("zapm: battery state unknown\n"));
298 1.3 nonaka sc->battery_state = APM_BATT_FLAG_UNKNOWN;
299 1.3 nonaka sc->battery_life = APM_BATT_LIFE_UNKNOWN;
300 1.3 nonaka break;
301 1.3 nonaka case CONFIG_HOOK_BATT_NO_SYSTEM_BATTERY:
302 1.3 nonaka DPRINTF(("zapm: battery state no system battery?\n"));
303 1.3 nonaka sc->battery_state = APM_BATT_FLAG_NO_SYSTEM_BATTERY;
304 1.3 nonaka sc->battery_life = APM_BATT_LIFE_UNKNOWN;
305 1.3 nonaka break;
306 1.3 nonaka }
307 1.3 nonaka break;
308 1.3 nonaka case CONFIG_HOOK_PMEVENT_AC:
309 1.3 nonaka switch (message) {
310 1.3 nonaka case CONFIG_HOOK_AC_OFF:
311 1.3 nonaka DPRINTF(("zapm: ac not connected\n"));
312 1.3 nonaka sc->battery_state &= ~APM_BATT_FLAG_CHARGING;
313 1.3 nonaka sc->ac_state = APM_AC_OFF;
314 1.3 nonaka break;
315 1.3 nonaka case CONFIG_HOOK_AC_ON_CHARGE:
316 1.3 nonaka DPRINTF(("zapm: charging\n"));
317 1.3 nonaka sc->battery_state |= APM_BATT_FLAG_CHARGING;
318 1.3 nonaka sc->ac_state = APM_AC_ON;
319 1.3 nonaka break;
320 1.3 nonaka case CONFIG_HOOK_AC_ON_NOCHARGE:
321 1.3 nonaka DPRINTF(("zapm: ac connected\n"));
322 1.3 nonaka sc->battery_state &= ~APM_BATT_FLAG_CHARGING;
323 1.3 nonaka sc->ac_state = APM_AC_ON;
324 1.3 nonaka break;
325 1.3 nonaka case CONFIG_HOOK_AC_UNKNOWN:
326 1.3 nonaka sc->ac_state = APM_AC_UNKNOWN;
327 1.3 nonaka break;
328 1.3 nonaka }
329 1.3 nonaka break;
330 1.3 nonaka }
331 1.3 nonaka
332 1.3 nonaka splx(s);
333 1.3 nonaka
334 1.3 nonaka return 0;
335 1.3 nonaka }
336 1.3 nonaka
337 1.3 nonaka static void
338 1.3 nonaka zapm_disconnect(void *v)
339 1.3 nonaka {
340 1.3 nonaka #if 0
341 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
342 1.3 nonaka #endif
343 1.3 nonaka }
344 1.3 nonaka
345 1.3 nonaka static void
346 1.3 nonaka zapm_enable(void *v, int onoff)
347 1.3 nonaka {
348 1.3 nonaka #if 0
349 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
350 1.3 nonaka #endif
351 1.3 nonaka }
352 1.3 nonaka
353 1.3 nonaka static int
354 1.3 nonaka zapm_set_powstate(void *v, u_int devid, u_int powstat)
355 1.3 nonaka {
356 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
357 1.3 nonaka
358 1.3 nonaka if (devid != APM_DEV_ALLDEVS)
359 1.3 nonaka return APM_ERR_UNRECOG_DEV;
360 1.3 nonaka
361 1.3 nonaka switch (powstat) {
362 1.3 nonaka case APM_SYS_READY:
363 1.3 nonaka DPRINTF(("zapm: set power state READY\n"));
364 1.3 nonaka sc->power_state = APM_SYS_READY;
365 1.3 nonaka break;
366 1.3 nonaka case APM_SYS_STANDBY:
367 1.3 nonaka DPRINTF(("zapm: set power state STANDBY\n"));
368 1.3 nonaka /* XXX */
369 1.3 nonaka DPRINTF(("zapm: resume\n"));
370 1.3 nonaka break;
371 1.3 nonaka case APM_SYS_SUSPEND:
372 1.3 nonaka DPRINTF(("zapm: set power state SUSPEND...\n"));
373 1.3 nonaka /* XXX */
374 1.3 nonaka DPRINTF(("zapm: resume\n"));
375 1.3 nonaka break;
376 1.3 nonaka case APM_SYS_OFF:
377 1.3 nonaka DPRINTF(("zapm: set power state OFF\n"));
378 1.3 nonaka sc->power_state = APM_SYS_OFF;
379 1.3 nonaka break;
380 1.3 nonaka case APM_LASTREQ_INPROG:
381 1.3 nonaka /*DPRINTF(("zapm: set power state INPROG\n"));*/
382 1.3 nonaka break;
383 1.3 nonaka case APM_LASTREQ_REJECTED:
384 1.3 nonaka DPRINTF(("zapm: set power state REJECTED\n"));
385 1.3 nonaka break;
386 1.3 nonaka }
387 1.3 nonaka
388 1.3 nonaka return 0;
389 1.3 nonaka }
390 1.3 nonaka
391 1.3 nonaka static int
392 1.3 nonaka zapm_get_powstat(void *v, struct apm_power_info *pinfo)
393 1.3 nonaka {
394 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
395 1.3 nonaka int val;
396 1.3 nonaka
397 1.3 nonaka if (config_hook_call(CONFIG_HOOK_GET,
398 1.3 nonaka CONFIG_HOOK_ACADAPTER, &val) != -1)
399 1.3 nonaka pinfo->ac_state = val;
400 1.3 nonaka else
401 1.3 nonaka pinfo->ac_state = sc->ac_state;
402 1.3 nonaka if (config_hook_call(CONFIG_HOOK_GET,
403 1.3 nonaka CONFIG_HOOK_CHARGE, &val) != -1)
404 1.3 nonaka pinfo->battery_state = val;
405 1.3 nonaka else
406 1.3 nonaka pinfo->battery_state = sc->battery_state;
407 1.3 nonaka if (config_hook_call(CONFIG_HOOK_GET,
408 1.3 nonaka CONFIG_HOOK_BATTERYVAL, &val) != -1)
409 1.3 nonaka pinfo->battery_life = val;
410 1.3 nonaka else
411 1.3 nonaka pinfo->battery_life = sc->battery_life;
412 1.3 nonaka
413 1.3 nonaka return 0;
414 1.3 nonaka }
415 1.3 nonaka
416 1.3 nonaka static int
417 1.3 nonaka zapm_get_event(void *v, u_int *event_type, u_int *event_info)
418 1.3 nonaka {
419 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
420 1.3 nonaka u_int ev;
421 1.3 nonaka int s;
422 1.3 nonaka
423 1.3 nonaka s = splhigh();
424 1.3 nonaka for (ev = APM_STANDBY_REQ; ev <= APM_CAP_CHANGE; ev++) {
425 1.3 nonaka if (sc->events & (1 << ev)) {
426 1.3 nonaka sc->events &= ~(1 << ev);
427 1.3 nonaka *event_type = ev;
428 1.3 nonaka if (*event_type == APM_NORMAL_RESUME ||
429 1.3 nonaka *event_type == APM_CRIT_RESUME) {
430 1.3 nonaka /* pccard power off in the suspend state */
431 1.3 nonaka *event_info = 1;
432 1.3 nonaka sc->power_state = APM_SYS_READY;
433 1.3 nonaka } else {
434 1.3 nonaka *event_info = 0;
435 1.3 nonaka }
436 1.3 nonaka splx(s);
437 1.3 nonaka
438 1.3 nonaka return 0;
439 1.3 nonaka }
440 1.3 nonaka }
441 1.3 nonaka splx(s);
442 1.3 nonaka
443 1.3 nonaka return APM_ERR_NOEVENTS;
444 1.3 nonaka }
445 1.3 nonaka
446 1.3 nonaka static void
447 1.3 nonaka zapm_cpu_busy(void *v)
448 1.3 nonaka {
449 1.3 nonaka #if 0
450 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
451 1.3 nonaka #endif
452 1.3 nonaka }
453 1.3 nonaka
454 1.3 nonaka static void
455 1.3 nonaka zapm_cpu_idle(void *v)
456 1.3 nonaka {
457 1.3 nonaka #if 0
458 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
459 1.3 nonaka #endif
460 1.3 nonaka }
461 1.3 nonaka
462 1.3 nonaka static void
463 1.3 nonaka zapm_get_capabilities(void *v, u_int *numbatts, u_int *capflags)
464 1.3 nonaka {
465 1.3 nonaka #if 0
466 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
467 1.3 nonaka #endif
468 1.3 nonaka
469 1.3 nonaka *numbatts = 1;
470 1.3 nonaka *capflags = 0 /* | APM_GLOBAL_STANDBY | APM_GLOBAL_SUSPEND */;
471 1.3 nonaka }
472 1.3 nonaka
473 1.3 nonaka /*-----------------------------------------------------------------------------
474 1.3 nonaka * zaurus depent part
475 1.3 nonaka */
476 1.1 ober /* MAX1111 command word */
477 1.1 ober #define MAXCTRL_PD0 (1<<0)
478 1.1 ober #define MAXCTRL_PD1 (1<<1)
479 1.1 ober #define MAXCTRL_SGL (1<<2)
480 1.1 ober #define MAXCTRL_UNI (1<<3)
481 1.1 ober #define MAXCTRL_SEL_SHIFT 4
482 1.1 ober #define MAXCTRL_STR (1<<7)
483 1.1 ober
484 1.1 ober /* MAX1111 ADC channels */
485 1.1 ober #define BATT_THM 2
486 1.1 ober #define BATT_AD 4
487 1.1 ober #define JK_VAD 6
488 1.1 ober
489 1.1 ober /*
490 1.1 ober * Battery-specific information
491 1.1 ober */
492 1.1 ober struct battery_threshold {
493 1.3 nonaka int percent;
494 1.3 nonaka int value;
495 1.3 nonaka int state;
496 1.1 ober };
497 1.1 ober
498 1.1 ober struct battery_info {
499 1.3 nonaka const struct battery_threshold *bi_thres;
500 1.1 ober };
501 1.1 ober
502 1.3 nonaka static const struct battery_threshold zaurus_battery_life_c3000[] = {
503 1.5 nonaka { 100, 212, CONFIG_HOOK_BATT_HIGH },
504 1.5 nonaka { 98, 212, CONFIG_HOOK_BATT_HIGH },
505 1.5 nonaka { 95, 211, CONFIG_HOOK_BATT_HIGH },
506 1.5 nonaka { 93, 210, CONFIG_HOOK_BATT_HIGH },
507 1.5 nonaka { 90, 209, CONFIG_HOOK_BATT_HIGH },
508 1.5 nonaka { 88, 208, CONFIG_HOOK_BATT_HIGH },
509 1.5 nonaka { 85, 207, CONFIG_HOOK_BATT_HIGH },
510 1.5 nonaka { 83, 206, CONFIG_HOOK_BATT_HIGH },
511 1.5 nonaka { 80, 205, CONFIG_HOOK_BATT_HIGH },
512 1.5 nonaka { 78, 204, CONFIG_HOOK_BATT_HIGH },
513 1.5 nonaka { 75, 203, CONFIG_HOOK_BATT_HIGH },
514 1.5 nonaka { 73, 202, CONFIG_HOOK_BATT_HIGH },
515 1.5 nonaka { 70, 201, CONFIG_HOOK_BATT_HIGH },
516 1.5 nonaka { 68, 200, CONFIG_HOOK_BATT_HIGH },
517 1.5 nonaka { 65, 199, CONFIG_HOOK_BATT_HIGH },
518 1.5 nonaka { 63, 198, CONFIG_HOOK_BATT_HIGH },
519 1.5 nonaka { 60, 197, CONFIG_HOOK_BATT_HIGH },
520 1.5 nonaka { 58, 196, CONFIG_HOOK_BATT_HIGH },
521 1.5 nonaka { 55, 195, CONFIG_HOOK_BATT_HIGH },
522 1.5 nonaka { 53, 194, CONFIG_HOOK_BATT_HIGH },
523 1.5 nonaka { 50, 193, CONFIG_HOOK_BATT_HIGH },
524 1.5 nonaka { 48, 192, CONFIG_HOOK_BATT_HIGH },
525 1.5 nonaka { 45, 192, CONFIG_HOOK_BATT_HIGH },
526 1.5 nonaka { 43, 191, CONFIG_HOOK_BATT_HIGH },
527 1.5 nonaka { 40, 191, CONFIG_HOOK_BATT_HIGH },
528 1.5 nonaka { 38, 190, CONFIG_HOOK_BATT_HIGH },
529 1.5 nonaka { 35, 190, CONFIG_HOOK_BATT_HIGH },
530 1.5 nonaka { 33, 189, CONFIG_HOOK_BATT_HIGH },
531 1.5 nonaka { 30, 188, CONFIG_HOOK_BATT_HIGH },
532 1.5 nonaka { 28, 187, CONFIG_HOOK_BATT_LOW },
533 1.5 nonaka { 25, 186, CONFIG_HOOK_BATT_LOW },
534 1.5 nonaka { 23, 185, CONFIG_HOOK_BATT_LOW },
535 1.5 nonaka { 20, 184, CONFIG_HOOK_BATT_LOW },
536 1.5 nonaka { 18, 183, CONFIG_HOOK_BATT_LOW },
537 1.5 nonaka { 15, 182, CONFIG_HOOK_BATT_LOW },
538 1.5 nonaka { 13, 181, CONFIG_HOOK_BATT_LOW },
539 1.5 nonaka { 10, 180, CONFIG_HOOK_BATT_LOW },
540 1.5 nonaka { 8, 179, CONFIG_HOOK_BATT_LOW },
541 1.3 nonaka { 5, 178, CONFIG_HOOK_BATT_LOW },
542 1.3 nonaka { 0, 0, CONFIG_HOOK_BATT_CRITICAL }
543 1.1 ober };
544 1.1 ober
545 1.3 nonaka static const struct battery_info zaurus_battery_c3000 = {
546 1.1 ober zaurus_battery_life_c3000
547 1.1 ober };
548 1.1 ober
549 1.3 nonaka static const struct battery_info *zaurus_main_battery = &zaurus_battery_c3000;
550 1.1 ober
551 1.1 ober /* Restart charging this many times before accepting BATT_FULL. */
552 1.3 nonaka #define MIN_BATT_FULL 2
553 1.1 ober
554 1.1 ober /* Discharge 100 ms before reading the voltage if AC is connected. */
555 1.3 nonaka #define DISCHARGE_TIMEOUT (hz / 10)
556 1.1 ober
557 1.1 ober /* Check battery voltage and "kick charging" every minute. */
558 1.3 nonaka static const struct timeval zapm_battchkrate = { 60, 0 };
559 1.3 nonaka
560 1.3 nonaka static int zapm_get_ac_state(struct zapm_softc *);
561 1.3 nonaka static int zapm_get_battery_compartment_state(struct zapm_softc *);
562 1.3 nonaka static int zapm_get_charge_complete_state(struct zapm_softc *);
563 1.3 nonaka static void zapm_set_charging(struct zapm_softc *, int);
564 1.3 nonaka static int zapm_charge_complete(struct zapm_softc *);
565 1.5 nonaka static int max1111_adc_value_avg(int chan, int pause);
566 1.3 nonaka static int zapm_get_battery_volt(void);
567 1.3 nonaka static int zapm_battery_state(int volt);
568 1.3 nonaka static int zapm_battery_life(int volt);
569 1.3 nonaka
570 1.3 nonaka static int
571 1.3 nonaka zapm_acintr(void *v)
572 1.3 nonaka {
573 1.3 nonaka
574 1.3 nonaka zapm_poll1(v, 1);
575 1.3 nonaka
576 1.3 nonaka return 1;
577 1.3 nonaka }
578 1.3 nonaka
579 1.3 nonaka static int
580 1.3 nonaka zapm_bcintr(void *v)
581 1.3 nonaka {
582 1.3 nonaka
583 1.3 nonaka zapm_poll1(v, 1);
584 1.1 ober
585 1.3 nonaka return 1;
586 1.3 nonaka }
587 1.3 nonaka
588 1.3 nonaka static void
589 1.3 nonaka zapm_cyclic(void *v)
590 1.3 nonaka {
591 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
592 1.1 ober
593 1.3 nonaka zapm_poll1(sc, 1);
594 1.3 nonaka
595 1.3 nonaka callout_schedule(&sc->sc_cyclic_poll, CYCLIC_TIME);
596 1.3 nonaka }
597 1.3 nonaka
598 1.3 nonaka static void
599 1.3 nonaka zapm_poll(void *v)
600 1.3 nonaka {
601 1.1 ober
602 1.3 nonaka zapm_poll1(v, 1);
603 1.3 nonaka }
604 1.1 ober
605 1.3 nonaka static int
606 1.3 nonaka zapm_get_ac_state(struct zapm_softc *sc)
607 1.3 nonaka {
608 1.1 ober
609 1.3 nonaka if (!pxa2x0_gpio_get_bit(sc->sc_ac_detect_pin))
610 1.3 nonaka return APM_AC_ON;
611 1.3 nonaka return APM_AC_OFF;
612 1.1 ober }
613 1.1 ober
614 1.3 nonaka static int
615 1.3 nonaka zapm_get_battery_compartment_state(struct zapm_softc *sc)
616 1.1 ober {
617 1.1 ober
618 1.3 nonaka return pxa2x0_gpio_get_bit(sc->sc_batt_cover_pin);
619 1.1 ober }
620 1.1 ober
621 1.3 nonaka static int
622 1.3 nonaka zapm_get_charge_complete_state(struct zapm_softc *sc)
623 1.1 ober {
624 1.3 nonaka
625 1.3 nonaka return pxa2x0_gpio_get_bit(sc->sc_charge_comp_pin);
626 1.1 ober }
627 1.1 ober
628 1.3 nonaka static void
629 1.3 nonaka zapm_set_charging(struct zapm_softc *sc, int enable)
630 1.1 ober {
631 1.3 nonaka
632 1.3 nonaka scoop_discharge_battery(0);
633 1.3 nonaka scoop_charge_battery(enable, 0);
634 1.3 nonaka scoop_led_set(SCOOP_LED_ORANGE, enable);
635 1.1 ober }
636 1.1 ober
637 1.3 nonaka /*
638 1.3 nonaka * Return non-zero if the charge complete signal indicates that the
639 1.3 nonaka * battery is fully charged. Restart charging to clear this signal.
640 1.3 nonaka */
641 1.3 nonaka static int
642 1.3 nonaka zapm_charge_complete(struct zapm_softc *sc)
643 1.1 ober {
644 1.3 nonaka
645 1.3 nonaka if (sc->charging && sc->battery_full_cnt < MIN_BATT_FULL) {
646 1.3 nonaka if (zapm_get_charge_complete_state(sc)) {
647 1.3 nonaka sc->battery_full_cnt++;
648 1.3 nonaka if (sc->battery_full_cnt < MIN_BATT_FULL) {
649 1.3 nonaka DPRINTF(("battery almost full\n"));
650 1.3 nonaka zapm_set_charging(sc, 0);
651 1.3 nonaka delay(15000);
652 1.3 nonaka zapm_set_charging(sc, 1);
653 1.3 nonaka }
654 1.3 nonaka } else if (sc->battery_full_cnt > 0) {
655 1.3 nonaka /* false alarm */
656 1.3 nonaka sc->battery_full_cnt = 0;
657 1.3 nonaka zapm_set_charging(sc, 0);
658 1.3 nonaka delay(15000);
659 1.3 nonaka zapm_set_charging(sc, 1);
660 1.3 nonaka }
661 1.3 nonaka }
662 1.3 nonaka
663 1.3 nonaka return (sc->battery_full_cnt >= MIN_BATT_FULL);
664 1.1 ober }
665 1.1 ober
666 1.3 nonaka static int
667 1.1 ober max1111_adc_value(int chan)
668 1.1 ober {
669 1.1 ober
670 1.1 ober return ((int)zssp_ic_send(ZSSP_IC_MAX1111, MAXCTRL_PD0 |
671 1.1 ober MAXCTRL_PD1 | MAXCTRL_SGL | MAXCTRL_UNI |
672 1.1 ober (chan << MAXCTRL_SEL_SHIFT) | MAXCTRL_STR));
673 1.1 ober }
674 1.1 ober
675 1.1 ober /* XXX simplify */
676 1.3 nonaka static int
677 1.1 ober max1111_adc_value_avg(int chan, int pause)
678 1.1 ober {
679 1.1 ober int val[5];
680 1.5 nonaka int sum;
681 1.5 nonaka int minv, maxv, v;
682 1.5 nonaka int i;
683 1.1 ober
684 1.3 nonaka DPRINTF(("max1111_adc_value_avg: chan = %d, pause = %d\n",
685 1.3 nonaka chan, pause));
686 1.3 nonaka
687 1.1 ober for (i = 0; i < 5; i++) {
688 1.1 ober val[i] = max1111_adc_value(chan);
689 1.1 ober if (i != 4)
690 1.1 ober delay(pause * 1000);
691 1.3 nonaka DPRINTF(("max1111_adc_value_avg: chan[%d] = %d\n", i, val[i]));
692 1.1 ober }
693 1.1 ober
694 1.5 nonaka /* get max value */
695 1.5 nonaka v = val[0];
696 1.5 nonaka minv = 0;
697 1.1 ober for (i = 1; i < 5; i++) {
698 1.5 nonaka if (v < val[i]) {
699 1.5 nonaka v = val[i];
700 1.5 nonaka minv = i;
701 1.1 ober }
702 1.1 ober }
703 1.1 ober
704 1.5 nonaka /* get min value */
705 1.5 nonaka v = val[4];
706 1.5 nonaka maxv = 4;
707 1.1 ober for (i = 3; i >= 0; i--) {
708 1.5 nonaka if (v > val[i]) {
709 1.5 nonaka v = val[i];
710 1.5 nonaka maxv = i;
711 1.1 ober }
712 1.1 ober }
713 1.1 ober
714 1.5 nonaka DPRINTF(("max1111_adc_value_avg: minv = %d, maxv = %d\n", minv, maxv));
715 1.5 nonaka sum = 0;
716 1.1 ober for (i = 0; i < 5; i++) {
717 1.5 nonaka if (i == minv || i == maxv)
718 1.1 ober continue;
719 1.1 ober sum += val[i];
720 1.1 ober }
721 1.1 ober
722 1.3 nonaka DPRINTF(("max1111_adc_value_avg: sum = %d, sum / 3 = %d\n",
723 1.3 nonaka sum, sum / 3));
724 1.1 ober
725 1.3 nonaka return sum / 3;
726 1.1 ober }
727 1.1 ober
728 1.3 nonaka static int
729 1.3 nonaka zapm_get_battery_volt(void)
730 1.1 ober {
731 1.1 ober
732 1.3 nonaka return max1111_adc_value_avg(BATT_AD, 10);
733 1.1 ober }
734 1.1 ober
735 1.3 nonaka static int
736 1.3 nonaka zapm_battery_state(int volt)
737 1.1 ober {
738 1.1 ober const struct battery_threshold *bthr;
739 1.1 ober int i;
740 1.1 ober
741 1.1 ober bthr = zaurus_main_battery->bi_thres;
742 1.1 ober
743 1.3 nonaka for (i = 0; bthr[i].value > 0; i++)
744 1.3 nonaka if (bthr[i].value <= volt)
745 1.1 ober break;
746 1.1 ober
747 1.3 nonaka return bthr[i].state;
748 1.1 ober }
749 1.1 ober
750 1.3 nonaka static int
751 1.3 nonaka zapm_battery_life(int volt)
752 1.1 ober {
753 1.1 ober const struct battery_threshold *bthr;
754 1.1 ober int i;
755 1.1 ober
756 1.1 ober bthr = zaurus_main_battery->bi_thres;
757 1.1 ober
758 1.3 nonaka for (i = 0; bthr[i].value > 0; i++)
759 1.3 nonaka if (bthr[i].value <= volt)
760 1.1 ober break;
761 1.1 ober
762 1.1 ober if (i == 0)
763 1.3 nonaka return bthr[0].percent;
764 1.1 ober
765 1.3 nonaka return (bthr[i].percent +
766 1.3 nonaka ((volt - bthr[i].value) * 100) /
767 1.3 nonaka (bthr[i-1].value - bthr[i].value) *
768 1.3 nonaka (bthr[i-1].percent - bthr[i].percent) / 100);
769 1.1 ober }
770 1.1 ober
771 1.1 ober /*
772 1.1 ober * Poll power-management related GPIO inputs, update battery life
773 1.1 ober * in softc, and/or control battery charging.
774 1.1 ober */
775 1.3 nonaka static void
776 1.3 nonaka zapm_poll1(void *v, int do_suspend)
777 1.1 ober {
778 1.3 nonaka struct zapm_softc *sc = (struct zapm_softc *)v;
779 1.3 nonaka int ac_state;
780 1.1 ober int bc_lock;
781 1.1 ober int charging;
782 1.1 ober int volt;
783 1.1 ober int s;
784 1.1 ober
785 1.1 ober s = splhigh();
786 1.1 ober
787 1.3 nonaka ac_state = zapm_get_ac_state(sc);
788 1.3 nonaka bc_lock = zapm_get_battery_compartment_state(sc);
789 1.1 ober
790 1.1 ober /* Stop discharging. */
791 1.3 nonaka if (sc->discharging) {
792 1.3 nonaka sc->discharging = 0;
793 1.1 ober charging = 0;
794 1.3 nonaka volt = zapm_get_battery_volt();
795 1.1 ober DPRINTF(("zapm_poll: discharge off volt %d\n", volt));
796 1.1 ober } else {
797 1.3 nonaka charging = sc->battery_state & APM_BATT_FLAG_CHARGING;
798 1.3 nonaka volt = sc->battery_volt;
799 1.1 ober }
800 1.1 ober
801 1.1 ober /* Start or stop charging as necessary. */
802 1.3 nonaka if (ac_state && bc_lock) {
803 1.3 nonaka int charge_completed = zapm_charge_complete(sc);
804 1.1 ober if (charging) {
805 1.3 nonaka if (charge_completed) {
806 1.3 nonaka DPRINTF(("zapm_poll: battery is full\n"));
807 1.1 ober charging = 0;
808 1.3 nonaka zapm_set_charging(sc, 0);
809 1.1 ober }
810 1.3 nonaka } else if (!charge_completed) {
811 1.1 ober charging = 1;
812 1.3 nonaka volt = zapm_get_battery_volt();
813 1.3 nonaka zapm_set_charging(sc, 1);
814 1.1 ober DPRINTF(("zapm_poll: start charging volt %d\n", volt));
815 1.1 ober }
816 1.1 ober } else {
817 1.1 ober if (charging) {
818 1.1 ober charging = 0;
819 1.3 nonaka zapm_set_charging(sc, 0);
820 1.1 ober timerclear(&sc->sc_lastbattchk);
821 1.1 ober DPRINTF(("zapm_poll: stop charging\n"));
822 1.1 ober }
823 1.3 nonaka sc->battery_full_cnt = 0;
824 1.1 ober }
825 1.1 ober
826 1.1 ober /*
827 1.1 ober * Restart charging once in a while. Discharge a few milliseconds
828 1.1 ober * before updating the voltage in our softc if A/C is connected.
829 1.1 ober */
830 1.1 ober if (bc_lock && ratecheck(&sc->sc_lastbattchk, &zapm_battchkrate)) {
831 1.3 nonaka if (do_suspend && sc->suspended) {
832 1.3 nonaka /* XXX */
833 1.3 nonaka #if 0
834 1.1 ober DPRINTF(("zapm_poll: suspended %lu %lu\n",
835 1.3 nonaka sc->lastbattchk.tv_sec,
836 1.1 ober pxa2x0_rtc_getsecs()));
837 1.1 ober if (charging) {
838 1.3 nonaka zapm_set_charging(sc, 0);
839 1.1 ober delay(15000);
840 1.3 nonaka zapm_set_charging(sc, 1);
841 1.1 ober pxa2x0_rtc_setalarm(pxa2x0_rtc_getsecs() +
842 1.1 ober zapm_battchkrate.tv_sec + 1);
843 1.1 ober }
844 1.3 nonaka #endif
845 1.3 nonaka } else if (ac_state && sc->battery_full_cnt == 0) {
846 1.1 ober DPRINTF(("zapm_poll: discharge on\n"));
847 1.1 ober if (charging)
848 1.3 nonaka zapm_set_charging(sc, 0);
849 1.3 nonaka sc->discharging = 1;
850 1.1 ober scoop_discharge_battery(1);
851 1.3 nonaka callout_schedule(&sc->sc_discharge_poll,
852 1.3 nonaka DISCHARGE_TIMEOUT);
853 1.3 nonaka } else if (!ac_state) {
854 1.3 nonaka volt = zapm_get_battery_volt();
855 1.1 ober DPRINTF(("zapm_poll: volt %d\n", volt));
856 1.1 ober }
857 1.1 ober }
858 1.1 ober
859 1.1 ober /* Update the cached power state in our softc. */
860 1.3 nonaka if ((ac_state != sc->ac_state)
861 1.3 nonaka || (charging != (sc->battery_state & APM_BATT_FLAG_CHARGING))) {
862 1.3 nonaka config_hook_call(CONFIG_HOOK_PMEVENT,
863 1.3 nonaka CONFIG_HOOK_PMEVENT_AC,
864 1.3 nonaka (void *)((ac_state == APM_AC_OFF)
865 1.3 nonaka ? CONFIG_HOOK_AC_OFF
866 1.3 nonaka : (charging ? CONFIG_HOOK_AC_ON_CHARGE
867 1.3 nonaka : CONFIG_HOOK_AC_ON_NOCHARGE)));
868 1.3 nonaka }
869 1.3 nonaka if (volt != sc->battery_volt) {
870 1.3 nonaka sc->battery_volt = volt;
871 1.3 nonaka sc->battery_life = zapm_battery_life(volt);
872 1.3 nonaka config_hook_call(CONFIG_HOOK_PMEVENT,
873 1.3 nonaka CONFIG_HOOK_PMEVENT_BATTERY,
874 1.3 nonaka (void *)zapm_battery_state(volt));
875 1.1 ober }
876 1.1 ober
877 1.1 ober splx(s);
878 1.1 ober }
879