2 * Device driver for the via-pmu on Apple Powermacs.
4 * The VIA (versatile interface adapter) interfaces to the PMU,
5 * a 6805 microprocessor core whose primary function is to control
6 * battery charging and system power on the PowerBook 3400 and 2400.
7 * The PMU also controls the ADB (Apple Desktop Bus) which connects
8 * to the keyboard and mouse, as well as the non-volatile RAM
9 * and the RTC (real time clock) chip.
11 * Copyright (C) 1998 Paul Mackerras and Fabio Riccardi.
12 * Copyright (C) 2001-2002 Benjamin Herrenschmidt
14 * THIS DRIVER IS BECOMING A TOTAL MESS !
15 * - Cleanup atomically disabling reply to PMU events after
16 * a sleep or a freq. switch
17 * - Move sleep code out of here to pmac_pm, merge into new
18 * common PM infrastructure
19 * - Move backlight code out as well
20 * - Save/Restore PCI space properly
24 #include <linux/config.h>
25 #include <linux/types.h>
26 #include <linux/errno.h>
27 #include <linux/kernel.h>
28 #include <linux/delay.h>
29 #include <linux/sched.h>
30 #include <linux/miscdevice.h>
31 #include <linux/blkdev.h>
32 #include <linux/pci.h>
33 #include <linux/slab.h>
34 #include <linux/poll.h>
35 #include <linux/adb.h>
36 #include <linux/pmu.h>
37 #include <linux/cuda.h>
38 #include <linux/smp_lock.h>
39 #include <linux/module.h>
40 #include <linux/spinlock.h>
42 #include <linux/proc_fs.h>
43 #include <linux/init.h>
44 #include <linux/interrupt.h>
45 #include <linux/device.h>
46 #include <linux/sysdev.h>
47 #include <linux/suspend.h>
48 #include <linux/syscalls.h>
49 #include <linux/cpu.h>
51 #include <asm/machdep.h>
53 #include <asm/pgtable.h>
54 #include <asm/system.h>
55 #include <asm/sections.h>
57 #include <asm/pmac_feature.h>
58 #include <asm/uaccess.h>
59 #include <asm/mmu_context.h>
60 #include <asm/cputable.h>
62 #ifdef CONFIG_PMAC_BACKLIGHT
63 #include <asm/backlight.h>
67 #include <asm/open_pic.h>
70 /* Some compile options */
71 #undef SUSPEND_USES_PMU
73 #undef HACKED_PCI_SAVE
75 /* Misc minor number allocated for /dev/pmu */
78 /* How many iterations between battery polls */
79 #define BATTERY_POLLING_COUNT 2
81 static volatile unsigned char __iomem
*via
;
83 /* VIA registers - spaced 0x200 bytes apart */
84 #define RS 0x200 /* skip between registers */
85 #define B 0 /* B-side data */
86 #define A RS /* A-side data */
87 #define DIRB (2*RS) /* B-side direction (1=output) */
88 #define DIRA (3*RS) /* A-side direction (1=output) */
89 #define T1CL (4*RS) /* Timer 1 ctr/latch (low 8 bits) */
90 #define T1CH (5*RS) /* Timer 1 counter (high 8 bits) */
91 #define T1LL (6*RS) /* Timer 1 latch (low 8 bits) */
92 #define T1LH (7*RS) /* Timer 1 latch (high 8 bits) */
93 #define T2CL (8*RS) /* Timer 2 ctr/latch (low 8 bits) */
94 #define T2CH (9*RS) /* Timer 2 counter (high 8 bits) */
95 #define SR (10*RS) /* Shift register */
96 #define ACR (11*RS) /* Auxiliary control register */
97 #define PCR (12*RS) /* Peripheral control register */
98 #define IFR (13*RS) /* Interrupt flag register */
99 #define IER (14*RS) /* Interrupt enable register */
100 #define ANH (15*RS) /* A-side data, no handshake */
102 /* Bits in B data register: both active low */
103 #define TACK 0x08 /* Transfer acknowledge (input) */
104 #define TREQ 0x10 /* Transfer request (output) */
107 #define SR_CTRL 0x1c /* Shift register control bits */
108 #define SR_EXT 0x0c /* Shift on external clock */
109 #define SR_OUT 0x10 /* Shift out if 1 */
111 /* Bits in IFR and IER */
112 #define IER_SET 0x80 /* set bits in IER */
113 #define IER_CLR 0 /* clear bits in IER */
114 #define SR_INT 0x04 /* Shift register full/empty */
116 #define CB1_INT 0x10 /* transition on CB1 input */
118 static volatile enum pmu_state
{
127 static volatile enum int_data_state
{
132 } int_data_state
[2] = { int_data_empty
, int_data_empty
};
134 static struct adb_request
*current_req
;
135 static struct adb_request
*last_req
;
136 static struct adb_request
*req_awaiting_reply
;
137 static unsigned char interrupt_data
[2][32];
138 static int interrupt_data_len
[2];
139 static int int_data_last
;
140 static unsigned char *reply_ptr
;
141 static int data_index
;
143 static volatile int adb_int_pending
;
144 static volatile int disable_poll
;
145 static struct adb_request bright_req_1
, bright_req_2
;
146 static struct device_node
*vias
;
147 static int pmu_kind
= PMU_UNKNOWN
;
148 static int pmu_fully_inited
= 0;
149 static int pmu_has_adb
;
150 static unsigned char __iomem
*gpio_reg
= NULL
;
151 static int gpio_irq
= -1;
152 static int gpio_irq_enabled
= -1;
153 static volatile int pmu_suspended
= 0;
154 static spinlock_t pmu_lock
;
155 static u8 pmu_intr_mask
;
156 static int pmu_version
;
157 static int drop_interrupts
;
159 static int option_lid_wakeup
= 1;
160 static int sleep_in_progress
;
161 #endif /* CONFIG_PM */
162 static unsigned long async_req_locks
;
163 static unsigned int pmu_irq_stats
[11];
165 static struct proc_dir_entry
*proc_pmu_root
;
166 static struct proc_dir_entry
*proc_pmu_info
;
167 static struct proc_dir_entry
*proc_pmu_irqstats
;
168 static struct proc_dir_entry
*proc_pmu_options
;
169 static int option_server_mode
;
171 int pmu_battery_count
;
173 unsigned int pmu_power_flags
;
174 struct pmu_battery_info pmu_batteries
[PMU_MAX_BATTERIES
];
175 static int query_batt_timer
= BATTERY_POLLING_COUNT
;
176 static struct adb_request batt_req
;
177 static struct proc_dir_entry
*proc_pmu_batt
[PMU_MAX_BATTERIES
];
179 #if defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT)
180 extern int disable_kernel_backlight
;
181 #endif /* defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT) */
185 struct notifier_block
*sleep_notifier_list
;
188 static int adb_dev_map
= 0;
189 static int pmu_adb_flags
;
191 static int pmu_probe(void);
192 static int pmu_init(void);
193 static int pmu_send_request(struct adb_request
*req
, int sync
);
194 static int pmu_adb_autopoll(int devs
);
195 static int pmu_adb_reset_bus(void);
196 #endif /* CONFIG_ADB */
198 static int init_pmu(void);
199 static int pmu_queue_request(struct adb_request
*req
);
200 static void pmu_start(void);
201 static irqreturn_t
via_pmu_interrupt(int irq
, void *arg
, struct pt_regs
*regs
);
202 static irqreturn_t
gpio1_interrupt(int irq
, void *arg
, struct pt_regs
*regs
);
203 static int proc_get_info(char *page
, char **start
, off_t off
,
204 int count
, int *eof
, void *data
);
205 static int proc_get_irqstats(char *page
, char **start
, off_t off
,
206 int count
, int *eof
, void *data
);
207 #ifdef CONFIG_PMAC_BACKLIGHT
208 static int pmu_set_backlight_level(int level
, void* data
);
209 static int pmu_set_backlight_enable(int on
, int level
, void* data
);
210 #endif /* CONFIG_PMAC_BACKLIGHT */
211 static void pmu_pass_intr(unsigned char *data
, int len
);
212 static int proc_get_batt(char *page
, char **start
, off_t off
,
213 int count
, int *eof
, void *data
);
214 static int proc_read_options(char *page
, char **start
, off_t off
,
215 int count
, int *eof
, void *data
);
216 static int proc_write_options(struct file
*file
, const char __user
*buffer
,
217 unsigned long count
, void *data
);
220 struct adb_driver via_pmu_driver
= {
229 #endif /* CONFIG_ADB */
231 extern void low_sleep_handler(void);
232 extern void enable_kernel_altivec(void);
233 extern void enable_kernel_fp(void);
236 int pmu_polled_request(struct adb_request
*req
);
237 int pmu_wink(struct adb_request
*req
);
241 * This table indicates for each PMU opcode:
242 * - the number of data bytes to be sent with the command, or -1
243 * if a length byte should be sent,
244 * - the number of response bytes which the PMU will return, or
245 * -1 if it will send a length byte.
247 static const s8 pmu_data_len
[256][2] __openfirmwaredata
= {
248 /* 0 1 2 3 4 5 6 7 */
249 /*00*/ {-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
250 /*08*/ {-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
251 /*10*/ { 1, 0},{ 1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
252 /*18*/ { 0, 1},{ 0, 1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{ 0, 0},
253 /*20*/ {-1, 0},{ 0, 0},{ 2, 0},{ 1, 0},{ 1, 0},{-1, 0},{-1, 0},{-1, 0},
254 /*28*/ { 0,-1},{ 0,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{ 0,-1},
255 /*30*/ { 4, 0},{20, 0},{-1, 0},{ 3, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
256 /*38*/ { 0, 4},{ 0,20},{ 2,-1},{ 2, 1},{ 3,-1},{-1,-1},{-1,-1},{ 4, 0},
257 /*40*/ { 1, 0},{ 1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
258 /*48*/ { 0, 1},{ 0, 1},{-1,-1},{ 1, 0},{ 1, 0},{-1,-1},{-1,-1},{-1,-1},
259 /*50*/ { 1, 0},{ 0, 0},{ 2, 0},{ 2, 0},{-1, 0},{ 1, 0},{ 3, 0},{ 1, 0},
260 /*58*/ { 0, 1},{ 1, 0},{ 0, 2},{ 0, 2},{ 0,-1},{-1,-1},{-1,-1},{-1,-1},
261 /*60*/ { 2, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
262 /*68*/ { 0, 3},{ 0, 3},{ 0, 2},{ 0, 8},{ 0,-1},{ 0,-1},{-1,-1},{-1,-1},
263 /*70*/ { 1, 0},{ 1, 0},{ 1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
264 /*78*/ { 0,-1},{ 0,-1},{-1,-1},{-1,-1},{-1,-1},{ 5, 1},{ 4, 1},{ 4, 1},
265 /*80*/ { 4, 0},{-1, 0},{ 0, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
266 /*88*/ { 0, 5},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
267 /*90*/ { 1, 0},{ 2, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
268 /*98*/ { 0, 1},{ 0, 1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
269 /*a0*/ { 2, 0},{ 2, 0},{ 2, 0},{ 4, 0},{-1, 0},{ 0, 0},{-1, 0},{-1, 0},
270 /*a8*/ { 1, 1},{ 1, 0},{ 3, 0},{ 2, 0},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
271 /*b0*/ {-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
272 /*b8*/ {-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
273 /*c0*/ {-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
274 /*c8*/ {-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
275 /*d0*/ { 0, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
276 /*d8*/ { 1, 1},{ 1, 1},{-1,-1},{-1,-1},{ 0, 1},{ 0,-1},{-1,-1},{-1,-1},
277 /*e0*/ {-1, 0},{ 4, 0},{ 0, 1},{-1, 0},{-1, 0},{ 4, 0},{-1, 0},{-1, 0},
278 /*e8*/ { 3,-1},{-1,-1},{ 0, 1},{-1,-1},{ 0,-1},{-1,-1},{-1,-1},{ 0, 0},
279 /*f0*/ {-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},{-1, 0},
280 /*f8*/ {-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},{-1,-1},
283 static char *pbook_type
[] = {
285 "PowerBook 2400/3400/3500(G3)",
286 "PowerBook G3 Series",
291 #ifdef CONFIG_PMAC_BACKLIGHT
292 static struct backlight_controller pmu_backlight_controller
= {
293 pmu_set_backlight_enable
,
294 pmu_set_backlight_level
296 #endif /* CONFIG_PMAC_BACKLIGHT */
303 vias
= find_devices("via-pmu");
307 printk(KERN_WARNING
"Warning: only using 1st via-pmu\n");
309 if (vias
->n_addrs
< 1 || vias
->n_intrs
< 1) {
310 printk(KERN_ERR
"via-pmu: %d addresses, %d interrupts!\n",
311 vias
->n_addrs
, vias
->n_intrs
);
312 if (vias
->n_addrs
< 1 || vias
->n_intrs
< 1)
316 spin_lock_init(&pmu_lock
);
320 pmu_intr_mask
= PMU_INT_PCEJECT
|
325 if (vias
->parent
->name
&& ((strcmp(vias
->parent
->name
, "ohare") == 0)
326 || device_is_compatible(vias
->parent
, "ohare")))
327 pmu_kind
= PMU_OHARE_BASED
;
328 else if (device_is_compatible(vias
->parent
, "paddington"))
329 pmu_kind
= PMU_PADDINGTON_BASED
;
330 else if (device_is_compatible(vias
->parent
, "heathrow"))
331 pmu_kind
= PMU_HEATHROW_BASED
;
332 else if (device_is_compatible(vias
->parent
, "Keylargo")
333 || device_is_compatible(vias
->parent
, "K2-Keylargo")) {
334 struct device_node
*gpio
, *gpiop
;
336 pmu_kind
= PMU_KEYLARGO_BASED
;
337 pmu_has_adb
= (find_type_devices("adb") != NULL
);
338 pmu_intr_mask
= PMU_INT_PCEJECT
|
344 gpiop
= find_devices("gpio");
345 if (gpiop
&& gpiop
->n_addrs
) {
346 gpio_reg
= ioremap(gpiop
->addrs
->address
, 0x10);
347 gpio
= find_devices("extint-gpio1");
349 gpio
= find_devices("pmu-interrupt");
350 if (gpio
&& gpio
->parent
== gpiop
&& gpio
->n_intrs
)
351 gpio_irq
= gpio
->intrs
[0].line
;
354 pmu_kind
= PMU_UNKNOWN
;
356 via
= ioremap(vias
->addrs
->address
, 0x2000);
358 out_8(&via
[IER
], IER_CLR
| 0x7f); /* disable all intrs */
359 out_8(&via
[IFR
], 0x7f); /* clear IFR */
368 printk(KERN_INFO
"PMU driver %d initialized for %s, firmware: %02x\n",
369 PMU_DRIVER_VERSION
, pbook_type
[pmu_kind
], pmu_version
);
371 sys_ctrler
= SYS_CTRLER_PMU
;
377 static int __openfirmware
380 return vias
== NULL
? -ENODEV
: 0;
390 #endif /* CONFIG_ADB */
393 * We can't wait until pmu_init gets called, that happens too late.
394 * It happens after IDE and SCSI initialization, which can take a few
395 * seconds, and by that time the PMU could have given up on us and
397 * Thus this is called with arch_initcall rather than device_initcall.
399 static int __init
via_pmu_start(void)
404 bright_req_1
.complete
= 1;
405 bright_req_2
.complete
= 1;
406 batt_req
.complete
= 1;
409 if (pmu_kind
== PMU_KEYLARGO_BASED
)
410 openpic_set_irq_priority(vias
->intrs
[0].line
,
411 OPENPIC_PRIORITY_DEFAULT
+ 1);
414 if (request_irq(vias
->intrs
[0].line
, via_pmu_interrupt
, 0, "VIA-PMU",
416 printk(KERN_ERR
"VIA-PMU: can't get irq %d\n",
417 vias
->intrs
[0].line
);
421 if (pmu_kind
== PMU_KEYLARGO_BASED
&& gpio_irq
!= -1) {
422 if (request_irq(gpio_irq
, gpio1_interrupt
, 0, "GPIO1 ADB", (void *)0))
423 printk(KERN_ERR
"pmu: can't get irq %d (GPIO1)\n", gpio_irq
);
424 gpio_irq_enabled
= 1;
427 /* Enable interrupts */
428 out_8(&via
[IER
], IER_SET
| SR_INT
| CB1_INT
);
430 pmu_fully_inited
= 1;
432 /* Make sure PMU settle down before continuing. This is _very_ important
433 * since the IDE probe may shut interrupts down for quite a bit of time. If
434 * a PMU communication is pending while this happens, the PMU may timeout
435 * Not that on Core99 machines, the PMU keeps sending us environement
436 * messages, we should find a way to either fix IDE or make it call
437 * pmu_suspend() before masking interrupts. This can also happens while
438 * scolling with some fbdevs.
442 } while (pmu_state
!= idle
);
447 arch_initcall(via_pmu_start
);
450 * This has to be done after pci_init, which is a subsys_initcall.
452 static int __init
via_pmu_dev_init(void)
458 request_OF_resource(vias
, 0, NULL
);
460 #ifdef CONFIG_PMAC_BACKLIGHT
461 /* Enable backlight */
462 register_backlight_controller(&pmu_backlight_controller
, NULL
, "pmu");
463 #endif /* CONFIG_PMAC_BACKLIGHT */
466 if (machine_is_compatible("AAPL,3400/2400") ||
467 machine_is_compatible("AAPL,3500")) {
468 int mb
= pmac_call_feature(PMAC_FTR_GET_MB_INFO
,
469 NULL
, PMAC_MB_INFO_MODEL
, 0);
470 pmu_battery_count
= 1;
471 if (mb
== PMAC_TYPE_COMET
)
472 pmu_batteries
[0].flags
|= PMU_BATT_TYPE_COMET
;
474 pmu_batteries
[0].flags
|= PMU_BATT_TYPE_HOOPER
;
475 } else if (machine_is_compatible("AAPL,PowerBook1998") ||
476 machine_is_compatible("PowerBook1,1")) {
477 pmu_battery_count
= 2;
478 pmu_batteries
[0].flags
|= PMU_BATT_TYPE_SMART
;
479 pmu_batteries
[1].flags
|= PMU_BATT_TYPE_SMART
;
481 struct device_node
* prim
= find_devices("power-mgt");
482 u32
*prim_info
= NULL
;
484 prim_info
= (u32
*)get_property(prim
, "prim-info", NULL
);
486 /* Other stuffs here yet unknown */
487 pmu_battery_count
= (prim_info
[6] >> 16) & 0xff;
488 pmu_batteries
[0].flags
|= PMU_BATT_TYPE_SMART
;
489 if (pmu_battery_count
> 1)
490 pmu_batteries
[1].flags
|= PMU_BATT_TYPE_SMART
;
493 #endif /* CONFIG_PPC32 */
495 /* Create /proc/pmu */
496 proc_pmu_root
= proc_mkdir("pmu", NULL
);
500 for (i
=0; i
<pmu_battery_count
; i
++) {
502 sprintf(title
, "battery_%ld", i
);
503 proc_pmu_batt
[i
] = create_proc_read_entry(title
, 0, proc_pmu_root
,
504 proc_get_batt
, (void *)i
);
507 proc_pmu_info
= create_proc_read_entry("info", 0, proc_pmu_root
,
508 proc_get_info
, NULL
);
509 proc_pmu_irqstats
= create_proc_read_entry("interrupts", 0, proc_pmu_root
,
510 proc_get_irqstats
, NULL
);
511 proc_pmu_options
= create_proc_entry("options", 0600, proc_pmu_root
);
512 if (proc_pmu_options
) {
513 proc_pmu_options
->nlink
= 1;
514 proc_pmu_options
->read_proc
= proc_read_options
;
515 proc_pmu_options
->write_proc
= proc_write_options
;
521 device_initcall(via_pmu_dev_init
);
523 static int __openfirmware
527 struct adb_request req
;
529 out_8(&via
[B
], via
[B
] | TREQ
); /* negate TREQ */
530 out_8(&via
[DIRB
], (via
[DIRB
] | TREQ
) & ~TACK
); /* TACK in, TREQ out */
532 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, pmu_intr_mask
);
534 while (!req
.complete
) {
536 printk(KERN_ERR
"init_pmu: no response from PMU\n");
543 /* ack all pending interrupts */
545 interrupt_data
[0][0] = 1;
546 while (interrupt_data
[0][0] || pmu_state
!= idle
) {
548 printk(KERN_ERR
"init_pmu: timed out acking intrs\n");
551 if (pmu_state
== idle
)
553 via_pmu_interrupt(0, NULL
, NULL
);
557 /* Tell PMU we are ready. */
558 if (pmu_kind
== PMU_KEYLARGO_BASED
) {
559 pmu_request(&req
, NULL
, 2, PMU_SYSTEM_READY
, 2);
560 while (!req
.complete
)
564 /* Read PMU version */
565 pmu_request(&req
, NULL
, 1, PMU_GET_VERSION
);
566 pmu_wait_complete(&req
);
567 if (req
.reply_len
> 0)
568 pmu_version
= req
.reply
[0];
570 /* Read server mode setting */
571 if (pmu_kind
== PMU_KEYLARGO_BASED
) {
572 pmu_request(&req
, NULL
, 2, PMU_POWER_EVENTS
,
573 PMU_PWR_GET_POWERUP_EVENTS
);
574 pmu_wait_complete(&req
);
575 if (req
.reply_len
== 2) {
576 if (req
.reply
[1] & PMU_PWR_WAKEUP_AC_INSERT
)
577 option_server_mode
= 1;
578 printk(KERN_INFO
"via-pmu: Server Mode is %s\n",
579 option_server_mode
? "enabled" : "disabled");
592 static inline void wakeup_decrementer(void)
594 set_dec(tb_ticks_per_jiffy
);
595 /* No currently-supported powerbook has a 601,
596 * so use get_tbl, not native
598 last_jiffy_stamp(0) = tb_last_stamp
= get_tbl();
602 static void pmu_set_server_mode(int server_mode
)
604 struct adb_request req
;
606 if (pmu_kind
!= PMU_KEYLARGO_BASED
)
609 option_server_mode
= server_mode
;
610 pmu_request(&req
, NULL
, 2, PMU_POWER_EVENTS
, PMU_PWR_GET_POWERUP_EVENTS
);
611 pmu_wait_complete(&req
);
612 if (req
.reply_len
< 2)
615 pmu_request(&req
, NULL
, 4, PMU_POWER_EVENTS
,
616 PMU_PWR_SET_POWERUP_EVENTS
,
617 req
.reply
[0], PMU_PWR_WAKEUP_AC_INSERT
);
619 pmu_request(&req
, NULL
, 4, PMU_POWER_EVENTS
,
620 PMU_PWR_CLR_POWERUP_EVENTS
,
621 req
.reply
[0], PMU_PWR_WAKEUP_AC_INSERT
);
622 pmu_wait_complete(&req
);
625 /* This new version of the code for 2400/3400/3500 powerbooks
626 * is inspired from the implementation in gkrellm-pmu
629 done_battery_state_ohare(struct adb_request
* req
)
633 * 0x01 : AC indicator
635 * 0x04 : battery exist
638 * 0x20 : full charged
639 * 0x40 : pcharge reset
640 * 0x80 : battery exist
642 * [1][2] : battery voltage
643 * [3] : CPU temperature
644 * [4] : battery temperature
649 unsigned int bat_flags
= PMU_BATT_TYPE_HOOPER
;
650 long pcharge
, charge
, vb
, vmax
, lmax
;
651 long vmax_charging
, vmax_charged
;
652 long amperage
, voltage
, time
, max
;
653 int mb
= pmac_call_feature(PMAC_FTR_GET_MB_INFO
,
654 NULL
, PMAC_MB_INFO_MODEL
, 0);
656 if (req
->reply
[0] & 0x01)
657 pmu_power_flags
|= PMU_PWR_AC_PRESENT
;
659 pmu_power_flags
&= ~PMU_PWR_AC_PRESENT
;
661 if (mb
== PMAC_TYPE_COMET
) {
672 /* If battery installed */
673 if (req
->reply
[0] & 0x04) {
674 bat_flags
|= PMU_BATT_PRESENT
;
675 if (req
->reply
[0] & 0x02)
676 bat_flags
|= PMU_BATT_CHARGING
;
677 vb
= (req
->reply
[1] << 8) | req
->reply
[2];
678 voltage
= (vb
* 265 + 72665) / 10;
679 amperage
= req
->reply
[5];
680 if ((req
->reply
[0] & 0x01) == 0) {
682 vb
+= ((amperage
- 200) * 15)/100;
683 } else if (req
->reply
[0] & 0x02) {
684 vb
= (vb
* 97) / 100;
685 vmax
= vmax_charging
;
687 charge
= (100 * vb
) / vmax
;
688 if (req
->reply
[0] & 0x40) {
689 pcharge
= (req
->reply
[6] << 8) + req
->reply
[7];
693 pcharge
= 100 - pcharge
/ lmax
;
694 if (pcharge
< charge
)
698 time
= (charge
* 16440) / amperage
;
702 amperage
= -amperage
;
704 charge
= max
= amperage
= voltage
= time
= 0;
706 pmu_batteries
[pmu_cur_battery
].flags
= bat_flags
;
707 pmu_batteries
[pmu_cur_battery
].charge
= charge
;
708 pmu_batteries
[pmu_cur_battery
].max_charge
= max
;
709 pmu_batteries
[pmu_cur_battery
].amperage
= amperage
;
710 pmu_batteries
[pmu_cur_battery
].voltage
= voltage
;
711 pmu_batteries
[pmu_cur_battery
].time_remaining
= time
;
713 clear_bit(0, &async_req_locks
);
717 done_battery_state_smart(struct adb_request
* req
)
720 * [0] : format of this structure (known: 3,4,5)
733 * [4][5] : max charge
738 unsigned int bat_flags
= PMU_BATT_TYPE_SMART
;
740 unsigned int capa
, max
, voltage
;
742 if (req
->reply
[1] & 0x01)
743 pmu_power_flags
|= PMU_PWR_AC_PRESENT
;
745 pmu_power_flags
&= ~PMU_PWR_AC_PRESENT
;
748 capa
= max
= amperage
= voltage
= 0;
750 if (req
->reply
[1] & 0x04) {
751 bat_flags
|= PMU_BATT_PRESENT
;
752 switch(req
->reply
[0]) {
754 case 4: capa
= req
->reply
[2];
756 amperage
= *((signed char *)&req
->reply
[4]);
757 voltage
= req
->reply
[5];
759 case 5: capa
= (req
->reply
[2] << 8) | req
->reply
[3];
760 max
= (req
->reply
[4] << 8) | req
->reply
[5];
761 amperage
= *((signed short *)&req
->reply
[6]);
762 voltage
= (req
->reply
[8] << 8) | req
->reply
[9];
765 printk(KERN_WARNING
"pmu.c : unrecognized battery info, len: %d, %02x %02x %02x %02x\n",
766 req
->reply_len
, req
->reply
[0], req
->reply
[1], req
->reply
[2], req
->reply
[3]);
771 if ((req
->reply
[1] & 0x01) && (amperage
> 0))
772 bat_flags
|= PMU_BATT_CHARGING
;
774 pmu_batteries
[pmu_cur_battery
].flags
= bat_flags
;
775 pmu_batteries
[pmu_cur_battery
].charge
= capa
;
776 pmu_batteries
[pmu_cur_battery
].max_charge
= max
;
777 pmu_batteries
[pmu_cur_battery
].amperage
= amperage
;
778 pmu_batteries
[pmu_cur_battery
].voltage
= voltage
;
780 if ((req
->reply
[1] & 0x01) && (amperage
> 0))
781 pmu_batteries
[pmu_cur_battery
].time_remaining
782 = ((max
-capa
) * 3600) / amperage
;
784 pmu_batteries
[pmu_cur_battery
].time_remaining
785 = (capa
* 3600) / (-amperage
);
787 pmu_batteries
[pmu_cur_battery
].time_remaining
= 0;
789 pmu_cur_battery
= (pmu_cur_battery
+ 1) % pmu_battery_count
;
791 clear_bit(0, &async_req_locks
);
795 query_battery_state(void)
797 if (test_and_set_bit(0, &async_req_locks
))
799 if (pmu_kind
== PMU_OHARE_BASED
)
800 pmu_request(&batt_req
, done_battery_state_ohare
,
801 1, PMU_BATTERY_STATE
);
803 pmu_request(&batt_req
, done_battery_state_smart
,
804 2, PMU_SMART_BATTERY_STATE
, pmu_cur_battery
+1);
808 proc_get_info(char *page
, char **start
, off_t off
,
809 int count
, int *eof
, void *data
)
813 p
+= sprintf(p
, "PMU driver version : %d\n", PMU_DRIVER_VERSION
);
814 p
+= sprintf(p
, "PMU firmware version : %02x\n", pmu_version
);
815 p
+= sprintf(p
, "AC Power : %d\n",
816 ((pmu_power_flags
& PMU_PWR_AC_PRESENT
) != 0));
817 p
+= sprintf(p
, "Battery count : %d\n", pmu_battery_count
);
823 proc_get_irqstats(char *page
, char **start
, off_t off
,
824 int count
, int *eof
, void *data
)
828 static const char *irq_names
[] = {
829 "Total CB1 triggered events",
830 "Total GPIO1 triggered events",
831 "PC-Card eject button",
832 "Sound/Brightness button",
834 "Battery state change",
835 "Environment interrupt",
837 "Ghost interrupt (zero len)",
838 "Empty interrupt (empty mask)",
842 for (i
=0; i
<11; i
++) {
843 p
+= sprintf(p
, " %2u: %10u (%s)\n",
844 i
, pmu_irq_stats
[i
], irq_names
[i
]);
850 proc_get_batt(char *page
, char **start
, off_t off
,
851 int count
, int *eof
, void *data
)
853 long batnum
= (long)data
;
856 p
+= sprintf(p
, "\n");
857 p
+= sprintf(p
, "flags : %08x\n",
858 pmu_batteries
[batnum
].flags
);
859 p
+= sprintf(p
, "charge : %d\n",
860 pmu_batteries
[batnum
].charge
);
861 p
+= sprintf(p
, "max_charge : %d\n",
862 pmu_batteries
[batnum
].max_charge
);
863 p
+= sprintf(p
, "current : %d\n",
864 pmu_batteries
[batnum
].amperage
);
865 p
+= sprintf(p
, "voltage : %d\n",
866 pmu_batteries
[batnum
].voltage
);
867 p
+= sprintf(p
, "time rem. : %d\n",
868 pmu_batteries
[batnum
].time_remaining
);
874 proc_read_options(char *page
, char **start
, off_t off
,
875 int count
, int *eof
, void *data
)
880 if (pmu_kind
== PMU_KEYLARGO_BASED
&&
881 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,-1) >= 0)
882 p
+= sprintf(p
, "lid_wakeup=%d\n", option_lid_wakeup
);
884 if (pmu_kind
== PMU_KEYLARGO_BASED
)
885 p
+= sprintf(p
, "server_mode=%d\n", option_server_mode
);
891 proc_write_options(struct file
*file
, const char __user
*buffer
,
892 unsigned long count
, void *data
)
896 unsigned long fcount
= count
;
902 if (copy_from_user(tmp
, buffer
, count
))
910 while(*val
&& (*val
!= '=')) {
921 if (pmu_kind
== PMU_KEYLARGO_BASED
&&
922 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,-1) >= 0)
923 if (!strcmp(label
, "lid_wakeup"))
924 option_lid_wakeup
= ((*val
) == '1');
926 if (pmu_kind
== PMU_KEYLARGO_BASED
&& !strcmp(label
, "server_mode")) {
928 new_value
= ((*val
) == '1');
929 if (new_value
!= option_server_mode
)
930 pmu_set_server_mode(new_value
);
936 /* Send an ADB command */
938 pmu_send_request(struct adb_request
*req
, int sync
)
942 if ((vias
== NULL
) || (!pmu_fully_inited
)) {
949 switch (req
->data
[0]) {
951 for (i
= 0; i
< req
->nbytes
- 1; ++i
)
952 req
->data
[i
] = req
->data
[i
+1];
954 if (pmu_data_len
[req
->data
[0]][1] != 0) {
955 req
->reply
[0] = ADB_RET_OK
;
959 ret
= pmu_queue_request(req
);
962 switch (req
->data
[1]) {
964 if (req
->nbytes
!= 2)
966 req
->data
[0] = PMU_READ_RTC
;
969 req
->reply
[0] = CUDA_PACKET
;
971 req
->reply
[2] = CUDA_GET_TIME
;
972 ret
= pmu_queue_request(req
);
975 if (req
->nbytes
!= 6)
977 req
->data
[0] = PMU_SET_RTC
;
979 for (i
= 1; i
<= 4; ++i
)
980 req
->data
[i
] = req
->data
[i
+1];
982 req
->reply
[0] = CUDA_PACKET
;
984 req
->reply
[2] = CUDA_SET_TIME
;
985 ret
= pmu_queue_request(req
);
992 for (i
= req
->nbytes
- 1; i
> 1; --i
)
993 req
->data
[i
+2] = req
->data
[i
];
994 req
->data
[3] = req
->nbytes
- 2;
995 req
->data
[2] = pmu_adb_flags
;
996 /*req->data[1] = req->data[1];*/
997 req
->data
[0] = PMU_ADB_CMD
;
999 req
->reply_expected
= 1;
1001 ret
= pmu_queue_request(req
);
1010 while (!req
->complete
)
1016 /* Enable/disable autopolling */
1018 pmu_adb_autopoll(int devs
)
1020 struct adb_request req
;
1022 if ((vias
== NULL
) || (!pmu_fully_inited
) || !pmu_has_adb
)
1027 pmu_request(&req
, NULL
, 5, PMU_ADB_CMD
, 0, 0x86,
1028 adb_dev_map
>> 8, adb_dev_map
);
1031 pmu_request(&req
, NULL
, 1, PMU_ADB_POLL_OFF
);
1034 while (!req
.complete
)
1039 /* Reset the ADB bus */
1041 pmu_adb_reset_bus(void)
1043 struct adb_request req
;
1044 int save_autopoll
= adb_dev_map
;
1046 if ((vias
== NULL
) || (!pmu_fully_inited
) || !pmu_has_adb
)
1049 /* anyone got a better idea?? */
1050 pmu_adb_autopoll(0);
1054 req
.data
[0] = PMU_ADB_CMD
;
1056 req
.data
[2] = ADB_BUSRESET
;
1060 req
.reply_expected
= 1;
1061 if (pmu_queue_request(&req
) != 0) {
1062 printk(KERN_ERR
"pmu_adb_reset_bus: pmu_queue_request failed\n");
1065 pmu_wait_complete(&req
);
1067 if (save_autopoll
!= 0)
1068 pmu_adb_autopoll(save_autopoll
);
1072 #endif /* CONFIG_ADB */
1074 /* Construct and send a pmu request */
1076 pmu_request(struct adb_request
*req
, void (*done
)(struct adb_request
*),
1085 if (nbytes
< 0 || nbytes
> 32) {
1086 printk(KERN_ERR
"pmu_request: bad nbytes (%d)\n", nbytes
);
1090 req
->nbytes
= nbytes
;
1092 va_start(list
, nbytes
);
1093 for (i
= 0; i
< nbytes
; ++i
)
1094 req
->data
[i
] = va_arg(list
, int);
1097 req
->reply_expected
= 0;
1098 return pmu_queue_request(req
);
1102 pmu_queue_request(struct adb_request
*req
)
1104 unsigned long flags
;
1111 if (req
->nbytes
<= 0) {
1115 nsend
= pmu_data_len
[req
->data
[0]][0];
1116 if (nsend
>= 0 && req
->nbytes
!= nsend
+ 1) {
1125 spin_lock_irqsave(&pmu_lock
, flags
);
1126 if (current_req
!= 0) {
1127 last_req
->next
= req
;
1132 if (pmu_state
== idle
)
1135 spin_unlock_irqrestore(&pmu_lock
, flags
);
1143 /* Sightly increased the delay, I had one occurrence of the message
1147 while ((in_8(&via
[B
]) & TACK
) == 0) {
1148 if (--timeout
< 0) {
1149 printk(KERN_ERR
"PMU not responding (!ack)\n");
1156 /* New PMU seems to be very sensitive to those timings, so we make sure
1157 * PCI is flushed immediately */
1161 volatile unsigned char __iomem
*v
= via
;
1163 out_8(&v
[ACR
], in_8(&v
[ACR
]) | SR_OUT
| SR_EXT
);
1165 out_8(&v
[B
], in_8(&v
[B
]) & ~TREQ
); /* assert TREQ */
1172 volatile unsigned char __iomem
*v
= via
;
1174 out_8(&v
[ACR
], (in_8(&v
[ACR
]) & ~SR_OUT
) | SR_EXT
);
1175 in_8(&v
[SR
]); /* resets SR */
1176 out_8(&v
[B
], in_8(&v
[B
]) & ~TREQ
);
1181 pmu_done(struct adb_request
*req
)
1183 void (*done
)(struct adb_request
*) = req
->done
;
1186 /* Here, we assume that if the request has a done member, the
1187 * struct request will survive to setting req->complete to 1
1196 struct adb_request
*req
;
1198 /* assert pmu_state == idle */
1199 /* get the packet to send */
1201 if (req
== 0 || pmu_state
!= idle
1202 || (/*req->reply_expected && */req_awaiting_reply
))
1205 pmu_state
= sending
;
1207 data_len
= pmu_data_len
[req
->data
[0]][0];
1209 /* Sounds safer to make sure ACK is high before writing. This helped
1210 * kill a problem with ADB and some iBooks
1213 /* set the shift register to shift out and send a byte */
1214 send_byte(req
->data
[0]);
1224 via_pmu_interrupt(0, NULL
, NULL
);
1234 /* Kicks ADB read when PMU is suspended */
1235 adb_int_pending
= 1;
1237 via_pmu_interrupt(0, NULL
, NULL
);
1238 } while (pmu_suspended
&& (adb_int_pending
|| pmu_state
!= idle
1239 || req_awaiting_reply
));
1243 pmu_wait_complete(struct adb_request
*req
)
1247 while((pmu_state
!= idle
&& pmu_state
!= locked
) || !req
->complete
)
1248 via_pmu_interrupt(0, NULL
, NULL
);
1251 /* This function loops until the PMU is idle and prevents it from
1252 * anwsering to ADB interrupts. pmu_request can still be called.
1253 * This is done to avoid spurrious shutdowns when we know we'll have
1254 * interrupts switched off for a long time
1259 unsigned long flags
;
1260 #ifdef SUSPEND_USES_PMU
1261 struct adb_request
*req
;
1266 spin_lock_irqsave(&pmu_lock
, flags
);
1268 if (pmu_suspended
> 1) {
1269 spin_unlock_irqrestore(&pmu_lock
, flags
);
1274 spin_unlock_irqrestore(&pmu_lock
, flags
);
1275 if (req_awaiting_reply
)
1276 adb_int_pending
= 1;
1277 via_pmu_interrupt(0, NULL
, NULL
);
1278 spin_lock_irqsave(&pmu_lock
, flags
);
1279 if (!adb_int_pending
&& pmu_state
== idle
&& !req_awaiting_reply
) {
1280 #ifdef SUSPEND_USES_PMU
1281 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, 0);
1282 spin_unlock_irqrestore(&pmu_lock
, flags
);
1283 while(!req
.complete
)
1285 #else /* SUSPEND_USES_PMU */
1287 disable_irq_nosync(gpio_irq
);
1288 out_8(&via
[IER
], CB1_INT
| IER_CLR
);
1289 spin_unlock_irqrestore(&pmu_lock
, flags
);
1290 #endif /* SUSPEND_USES_PMU */
1299 unsigned long flags
;
1301 if (!via
|| (pmu_suspended
< 1))
1304 spin_lock_irqsave(&pmu_lock
, flags
);
1306 if (pmu_suspended
> 0) {
1307 spin_unlock_irqrestore(&pmu_lock
, flags
);
1310 adb_int_pending
= 1;
1311 #ifdef SUSPEND_USES_PMU
1312 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, pmu_intr_mask
);
1313 spin_unlock_irqrestore(&pmu_lock
, flags
);
1314 while(!req
.complete
)
1316 #else /* SUSPEND_USES_PMU */
1318 enable_irq(gpio_irq
);
1319 out_8(&via
[IER
], CB1_INT
| IER_SET
);
1320 spin_unlock_irqrestore(&pmu_lock
, flags
);
1322 #endif /* SUSPEND_USES_PMU */
1325 /* Interrupt data could be the result data from an ADB cmd */
1327 pmu_handle_data(unsigned char *data
, int len
, struct pt_regs
*regs
)
1329 unsigned char ints
, pirq
;
1333 if (drop_interrupts
|| len
< 1) {
1334 adb_int_pending
= 0;
1339 /* Get PMU interrupt mask */
1342 /* Record zero interrupts for stats */
1346 /* Hack to deal with ADB autopoll flag */
1347 if (ints
& PMU_INT_ADB
)
1348 ints
&= ~(PMU_INT_ADB_AUTO
| PMU_INT_AUTO_SRQ_POLL
);
1353 if (i
> pmu_irq_stats
[10])
1354 pmu_irq_stats
[10] = i
;
1358 for (pirq
= 0; pirq
< 8; pirq
++)
1359 if (ints
& (1 << pirq
))
1361 pmu_irq_stats
[pirq
]++;
1363 ints
&= ~(1 << pirq
);
1365 /* Note: for some reason, we get an interrupt with len=1,
1366 * data[0]==0 after each normal ADB interrupt, at least
1367 * on the Pismo. Still investigating... --BenH
1369 if ((1 << pirq
) & PMU_INT_ADB
) {
1370 if ((data
[0] & PMU_INT_ADB_AUTO
) == 0) {
1371 struct adb_request
*req
= req_awaiting_reply
;
1373 printk(KERN_ERR
"PMU: extra ADB reply\n");
1376 req_awaiting_reply
= NULL
;
1380 memcpy(req
->reply
, data
+ 1, len
- 1);
1381 req
->reply_len
= len
- 1;
1385 #if defined(CONFIG_XMON) && !defined(CONFIG_PPC64)
1386 if (len
== 4 && data
[1] == 0x2c) {
1387 extern int xmon_wants_key
, xmon_adb_keycode
;
1388 if (xmon_wants_key
) {
1389 xmon_adb_keycode
= data
[2];
1393 #endif /* defined(CONFIG_XMON) && !defined(CONFIG_PPC64) */
1396 * XXX On the [23]400 the PMU gives us an up
1397 * event for keycodes 0x74 or 0x75 when the PC
1398 * card eject buttons are released, so we
1399 * ignore those events.
1401 if (!(pmu_kind
== PMU_OHARE_BASED
&& len
== 4
1402 && data
[1] == 0x2c && data
[3] == 0xff
1403 && (data
[2] & ~1) == 0xf4))
1404 adb_input(data
+1, len
-1, regs
, 1);
1405 #endif /* CONFIG_ADB */
1408 /* Sound/brightness button pressed */
1409 else if ((1 << pirq
) & PMU_INT_SNDBRT
) {
1410 #ifdef CONFIG_PMAC_BACKLIGHT
1412 #ifdef CONFIG_INPUT_ADBHID
1413 if (!disable_kernel_backlight
)
1414 #endif /* CONFIG_INPUT_ADBHID */
1415 set_backlight_level(data
[1] >> 4);
1416 #endif /* CONFIG_PMAC_BACKLIGHT */
1418 /* Tick interrupt */
1419 else if ((1 << pirq
) & PMU_INT_TICK
) {
1420 /* Environement or tick interrupt, query batteries */
1421 if (pmu_battery_count
) {
1422 if ((--query_batt_timer
) == 0) {
1423 query_battery_state();
1424 query_batt_timer
= BATTERY_POLLING_COUNT
;
1428 else if ((1 << pirq
) & PMU_INT_ENVIRONMENT
) {
1429 if (pmu_battery_count
)
1430 query_battery_state();
1431 pmu_pass_intr(data
, len
);
1433 pmu_pass_intr(data
, len
);
1438 static struct adb_request
* __pmac
1439 pmu_sr_intr(struct pt_regs
*regs
)
1441 struct adb_request
*req
;
1444 if (via
[B
] & TREQ
) {
1445 printk(KERN_ERR
"PMU: spurious SR intr (%x)\n", via
[B
]);
1446 out_8(&via
[IFR
], SR_INT
);
1449 /* The ack may not yet be low when we get the interrupt */
1450 while ((in_8(&via
[B
]) & TACK
) != 0)
1453 /* if reading grab the byte, and reset the interrupt */
1454 if (pmu_state
== reading
|| pmu_state
== reading_intr
)
1455 bite
= in_8(&via
[SR
]);
1457 /* reset TREQ and wait for TACK to go high */
1458 out_8(&via
[B
], in_8(&via
[B
]) | TREQ
);
1461 switch (pmu_state
) {
1465 data_len
= req
->nbytes
- 1;
1466 send_byte(data_len
);
1469 if (data_index
<= data_len
) {
1470 send_byte(req
->data
[data_index
++]);
1474 data_len
= pmu_data_len
[req
->data
[0]][1];
1475 if (data_len
== 0) {
1477 current_req
= req
->next
;
1478 if (req
->reply_expected
)
1479 req_awaiting_reply
= req
;
1483 pmu_state
= reading
;
1485 reply_ptr
= req
->reply
+ req
->reply_len
;
1493 pmu_state
= reading_intr
;
1494 reply_ptr
= interrupt_data
[int_data_last
];
1496 if (gpio_irq
>= 0 && !gpio_irq_enabled
) {
1497 enable_irq(gpio_irq
);
1498 gpio_irq_enabled
= 1;
1504 if (data_len
== -1) {
1507 printk(KERN_ERR
"PMU: bad reply len %d\n", bite
);
1508 } else if (data_index
< 32) {
1509 reply_ptr
[data_index
++] = bite
;
1511 if (data_index
< data_len
) {
1516 if (pmu_state
== reading_intr
) {
1518 int_data_state
[int_data_last
] = int_data_ready
;
1519 interrupt_data_len
[int_data_last
] = data_len
;
1523 * For PMU sleep and freq change requests, we lock the
1524 * PMU until it's explicitely unlocked. This avoids any
1525 * spurrious event polling getting in
1527 current_req
= req
->next
;
1528 req
->reply_len
+= data_index
;
1529 if (req
->data
[0] == PMU_SLEEP
|| req
->data
[0] == PMU_CPU_SPEED
)
1538 printk(KERN_ERR
"via_pmu_interrupt: unknown state %d?\n",
1544 static irqreturn_t __pmac
1545 via_pmu_interrupt(int irq
, void *arg
, struct pt_regs
*regs
)
1547 unsigned long flags
;
1551 struct adb_request
*req
= NULL
;
1554 /* This is a bit brutal, we can probably do better */
1555 spin_lock_irqsave(&pmu_lock
, flags
);
1559 intr
= in_8(&via
[IFR
]) & (SR_INT
| CB1_INT
);
1563 if (++nloop
> 1000) {
1564 printk(KERN_DEBUG
"PMU: stuck in intr loop, "
1565 "intr=%x, ier=%x pmu_state=%d\n",
1566 intr
, in_8(&via
[IER
]), pmu_state
);
1569 out_8(&via
[IFR
], intr
);
1570 if (intr
& CB1_INT
) {
1571 adb_int_pending
= 1;
1574 if (intr
& SR_INT
) {
1575 req
= pmu_sr_intr(regs
);
1582 if (pmu_state
== idle
) {
1583 if (adb_int_pending
) {
1584 if (int_data_state
[0] == int_data_empty
)
1586 else if (int_data_state
[1] == int_data_empty
)
1591 int_data_state
[int_data_last
] = int_data_fill
;
1592 /* Sounds safer to make sure ACK is high before writing.
1593 * This helped kill a problem with ADB and some iBooks
1596 send_byte(PMU_INT_ACK
);
1597 adb_int_pending
= 0;
1598 } else if (current_req
)
1602 /* Mark the oldest buffer for flushing */
1603 if (int_data_state
[!int_data_last
] == int_data_ready
) {
1604 int_data_state
[!int_data_last
] = int_data_flush
;
1605 int_data
= !int_data_last
;
1606 } else if (int_data_state
[int_data_last
] == int_data_ready
) {
1607 int_data_state
[int_data_last
] = int_data_flush
;
1608 int_data
= int_data_last
;
1611 spin_unlock_irqrestore(&pmu_lock
, flags
);
1613 /* Deal with completed PMU requests outside of the lock */
1619 /* Deal with interrupt datas outside of the lock */
1620 if (int_data
>= 0) {
1621 pmu_handle_data(interrupt_data
[int_data
], interrupt_data_len
[int_data
], regs
);
1622 spin_lock_irqsave(&pmu_lock
, flags
);
1624 int_data_state
[int_data
] = int_data_empty
;
1629 return IRQ_RETVAL(handled
);
1635 unsigned long flags
;
1637 spin_lock_irqsave(&pmu_lock
, flags
);
1638 if (pmu_state
== locked
)
1640 adb_int_pending
= 1;
1641 spin_unlock_irqrestore(&pmu_lock
, flags
);
1645 static irqreturn_t __pmac
1646 gpio1_interrupt(int irq
, void *arg
, struct pt_regs
*regs
)
1648 unsigned long flags
;
1650 if ((in_8(gpio_reg
+ 0x9) & 0x02) == 0) {
1651 spin_lock_irqsave(&pmu_lock
, flags
);
1652 if (gpio_irq_enabled
> 0) {
1653 disable_irq_nosync(gpio_irq
);
1654 gpio_irq_enabled
= 0;
1657 adb_int_pending
= 1;
1658 spin_unlock_irqrestore(&pmu_lock
, flags
);
1659 via_pmu_interrupt(0, NULL
, NULL
);
1665 #ifdef CONFIG_PMAC_BACKLIGHT
1666 static int backlight_to_bright
[] __pmacdata
= {
1667 0x7f, 0x46, 0x42, 0x3e, 0x3a, 0x36, 0x32, 0x2e,
1668 0x2a, 0x26, 0x22, 0x1e, 0x1a, 0x16, 0x12, 0x0e
1671 static int __openfirmware
1672 pmu_set_backlight_enable(int on
, int level
, void* data
)
1674 struct adb_request req
;
1680 pmu_request(&req
, NULL
, 2, PMU_BACKLIGHT_BRIGHT
,
1681 backlight_to_bright
[level
]);
1682 pmu_wait_complete(&req
);
1684 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL
,
1685 PMU_POW_BACKLIGHT
| (on
? PMU_POW_ON
: PMU_POW_OFF
));
1686 pmu_wait_complete(&req
);
1691 static void __openfirmware
1692 pmu_bright_complete(struct adb_request
*req
)
1694 if (req
== &bright_req_1
)
1695 clear_bit(1, &async_req_locks
);
1696 if (req
== &bright_req_2
)
1697 clear_bit(2, &async_req_locks
);
1700 static int __openfirmware
1701 pmu_set_backlight_level(int level
, void* data
)
1706 if (test_and_set_bit(1, &async_req_locks
))
1708 pmu_request(&bright_req_1
, pmu_bright_complete
, 2, PMU_BACKLIGHT_BRIGHT
,
1709 backlight_to_bright
[level
]);
1710 if (test_and_set_bit(2, &async_req_locks
))
1712 pmu_request(&bright_req_2
, pmu_bright_complete
, 2, PMU_POWER_CTRL
,
1713 PMU_POW_BACKLIGHT
| (level
> BACKLIGHT_OFF
?
1714 PMU_POW_ON
: PMU_POW_OFF
));
1718 #endif /* CONFIG_PMAC_BACKLIGHT */
1721 pmu_enable_irled(int on
)
1723 struct adb_request req
;
1727 if (pmu_kind
== PMU_KEYLARGO_BASED
)
1730 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL
, PMU_POW_IRLED
|
1731 (on
? PMU_POW_ON
: PMU_POW_OFF
));
1732 pmu_wait_complete(&req
);
1738 struct adb_request req
;
1743 local_irq_disable();
1745 drop_interrupts
= 1;
1747 if (pmu_kind
!= PMU_KEYLARGO_BASED
) {
1748 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, PMU_INT_ADB
|
1750 while(!req
.complete
)
1754 pmu_request(&req
, NULL
, 1, PMU_RESET
);
1755 pmu_wait_complete(&req
);
1763 struct adb_request req
;
1768 local_irq_disable();
1770 drop_interrupts
= 1;
1772 if (pmu_kind
!= PMU_KEYLARGO_BASED
) {
1773 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, PMU_INT_ADB
|
1775 pmu_wait_complete(&req
);
1777 /* Disable server mode on shutdown or we'll just
1780 pmu_set_server_mode(0);
1783 pmu_request(&req
, NULL
, 5, PMU_SHUTDOWN
,
1784 'M', 'A', 'T', 'T');
1785 pmu_wait_complete(&req
);
1796 struct pmu_i2c_hdr
{
1807 pmu_i2c_combined_read(int bus
, int addr
, int subaddr
, u8
* data
, int len
)
1809 struct adb_request req
;
1810 struct pmu_i2c_hdr
*hdr
= (struct pmu_i2c_hdr
*)&req
.data
[1];
1814 for (retry
=0; retry
<16; retry
++) {
1815 memset(&req
, 0, sizeof(req
));
1818 hdr
->address
= addr
& 0xfe;
1819 hdr
->mode
= PMU_I2C_MODE_COMBINED
;
1821 hdr
->sub_addr
= subaddr
;
1822 hdr
->comb_addr
= addr
| 1;
1825 req
.nbytes
= sizeof(struct pmu_i2c_hdr
) + 1;
1826 req
.reply_expected
= 0;
1828 req
.data
[0] = PMU_I2C_CMD
;
1829 req
.reply
[0] = 0xff;
1830 rc
= pmu_queue_request(&req
);
1833 while(!req
.complete
)
1835 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
1839 if (req
.reply
[0] != PMU_I2C_STATUS_OK
)
1842 for (retry
=0; retry
<16; retry
++) {
1843 memset(&req
, 0, sizeof(req
));
1847 hdr
->bus
= PMU_I2C_BUS_STATUS
;
1848 req
.reply
[0] = 0xff;
1851 req
.reply_expected
= 0;
1853 req
.data
[0] = PMU_I2C_CMD
;
1854 rc
= pmu_queue_request(&req
);
1857 while(!req
.complete
)
1859 if (req
.reply
[0] == PMU_I2C_STATUS_DATAREAD
) {
1860 memcpy(data
, &req
.reply
[1], req
.reply_len
- 1);
1861 return req
.reply_len
- 1;
1868 pmu_i2c_stdsub_write(int bus
, int addr
, int subaddr
, u8
* data
, int len
)
1870 struct adb_request req
;
1871 struct pmu_i2c_hdr
*hdr
= (struct pmu_i2c_hdr
*)&req
.data
[1];
1875 for (retry
=0; retry
<16; retry
++) {
1876 memset(&req
, 0, sizeof(req
));
1879 hdr
->address
= addr
& 0xfe;
1880 hdr
->mode
= PMU_I2C_MODE_STDSUB
;
1882 hdr
->sub_addr
= subaddr
;
1883 hdr
->comb_addr
= addr
& 0xfe;
1886 req
.data
[0] = PMU_I2C_CMD
;
1887 memcpy(&req
.data
[sizeof(struct pmu_i2c_hdr
) + 1], data
, len
);
1888 req
.nbytes
= sizeof(struct pmu_i2c_hdr
) + len
+ 1;
1889 req
.reply_expected
= 0;
1891 req
.reply
[0] = 0xff;
1892 rc
= pmu_queue_request(&req
);
1895 while(!req
.complete
)
1897 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
1901 if (req
.reply
[0] != PMU_I2C_STATUS_OK
)
1904 for (retry
=0; retry
<16; retry
++) {
1905 memset(&req
, 0, sizeof(req
));
1909 hdr
->bus
= PMU_I2C_BUS_STATUS
;
1910 req
.reply
[0] = 0xff;
1913 req
.reply_expected
= 0;
1915 req
.data
[0] = PMU_I2C_CMD
;
1916 rc
= pmu_queue_request(&req
);
1919 while(!req
.complete
)
1921 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
1928 pmu_i2c_simple_read(int bus
, int addr
, u8
* data
, int len
)
1930 struct adb_request req
;
1931 struct pmu_i2c_hdr
*hdr
= (struct pmu_i2c_hdr
*)&req
.data
[1];
1935 for (retry
=0; retry
<16; retry
++) {
1936 memset(&req
, 0, sizeof(req
));
1939 hdr
->address
= addr
| 1;
1940 hdr
->mode
= PMU_I2C_MODE_SIMPLE
;
1946 req
.data
[0] = PMU_I2C_CMD
;
1947 req
.nbytes
= sizeof(struct pmu_i2c_hdr
) + 1;
1948 req
.reply_expected
= 0;
1950 req
.reply
[0] = 0xff;
1951 rc
= pmu_queue_request(&req
);
1954 while(!req
.complete
)
1956 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
1960 if (req
.reply
[0] != PMU_I2C_STATUS_OK
)
1963 for (retry
=0; retry
<16; retry
++) {
1964 memset(&req
, 0, sizeof(req
));
1968 hdr
->bus
= PMU_I2C_BUS_STATUS
;
1969 req
.reply
[0] = 0xff;
1972 req
.reply_expected
= 0;
1974 req
.data
[0] = PMU_I2C_CMD
;
1975 rc
= pmu_queue_request(&req
);
1978 while(!req
.complete
)
1980 if (req
.reply
[0] == PMU_I2C_STATUS_DATAREAD
) {
1981 memcpy(data
, &req
.reply
[1], req
.reply_len
- 1);
1982 return req
.reply_len
- 1;
1989 pmu_i2c_simple_write(int bus
, int addr
, u8
* data
, int len
)
1991 struct adb_request req
;
1992 struct pmu_i2c_hdr
*hdr
= (struct pmu_i2c_hdr
*)&req
.data
[1];
1996 for (retry
=0; retry
<16; retry
++) {
1997 memset(&req
, 0, sizeof(req
));
2000 hdr
->address
= addr
& 0xfe;
2001 hdr
->mode
= PMU_I2C_MODE_SIMPLE
;
2007 req
.data
[0] = PMU_I2C_CMD
;
2008 memcpy(&req
.data
[sizeof(struct pmu_i2c_hdr
) + 1], data
, len
);
2009 req
.nbytes
= sizeof(struct pmu_i2c_hdr
) + len
+ 1;
2010 req
.reply_expected
= 0;
2012 req
.reply
[0] = 0xff;
2013 rc
= pmu_queue_request(&req
);
2016 while(!req
.complete
)
2018 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
2022 if (req
.reply
[0] != PMU_I2C_STATUS_OK
)
2025 for (retry
=0; retry
<16; retry
++) {
2026 memset(&req
, 0, sizeof(req
));
2030 hdr
->bus
= PMU_I2C_BUS_STATUS
;
2031 req
.reply
[0] = 0xff;
2034 req
.reply_expected
= 0;
2036 req
.data
[0] = PMU_I2C_CMD
;
2037 rc
= pmu_queue_request(&req
);
2040 while(!req
.complete
)
2042 if (req
.reply
[0] == PMU_I2C_STATUS_OK
)
2050 static LIST_HEAD(sleep_notifiers
);
2053 pmu_register_sleep_notifier(struct pmu_sleep_notifier
*n
)
2055 struct list_head
*list
;
2056 struct pmu_sleep_notifier
*notifier
;
2058 for (list
= sleep_notifiers
.next
; list
!= &sleep_notifiers
;
2059 list
= list
->next
) {
2060 notifier
= list_entry(list
, struct pmu_sleep_notifier
, list
);
2061 if (n
->priority
> notifier
->priority
)
2064 __list_add(&n
->list
, list
->prev
, list
);
2069 pmu_unregister_sleep_notifier(struct pmu_sleep_notifier
* n
)
2071 if (n
->list
.next
== 0)
2074 n
->list
.next
= NULL
;
2078 /* Sleep is broadcast last-to-first */
2080 broadcast_sleep(int when
, int fallback
)
2082 int ret
= PBOOK_SLEEP_OK
;
2083 struct list_head
*list
;
2084 struct pmu_sleep_notifier
*notifier
;
2086 for (list
= sleep_notifiers
.prev
; list
!= &sleep_notifiers
;
2087 list
= list
->prev
) {
2088 notifier
= list_entry(list
, struct pmu_sleep_notifier
, list
);
2089 ret
= notifier
->notifier_call(notifier
, when
);
2090 if (ret
!= PBOOK_SLEEP_OK
) {
2091 printk(KERN_DEBUG
"sleep %d rejected by %p (%p)\n",
2092 when
, notifier
, notifier
->notifier_call
);
2093 for (; list
!= &sleep_notifiers
; list
= list
->next
) {
2094 notifier
= list_entry(list
, struct pmu_sleep_notifier
, list
);
2095 notifier
->notifier_call(notifier
, fallback
);
2103 /* Wake is broadcast first-to-last */
2105 broadcast_wake(void)
2107 int ret
= PBOOK_SLEEP_OK
;
2108 struct list_head
*list
;
2109 struct pmu_sleep_notifier
*notifier
;
2111 for (list
= sleep_notifiers
.next
; list
!= &sleep_notifiers
;
2112 list
= list
->next
) {
2113 notifier
= list_entry(list
, struct pmu_sleep_notifier
, list
);
2114 notifier
->notifier_call(notifier
, PBOOK_WAKE
);
2120 * This struct is used to store config register values for
2121 * PCI devices which may get powered off when we sleep.
2123 static struct pci_save
{
2124 #ifndef HACKED_PCI_SAVE
2133 static int pbook_npci_saves
;
2136 pbook_alloc_pci_save(void)
2139 struct pci_dev
*pd
= NULL
;
2142 while ((pd
= pci_find_device(PCI_ANY_ID
, PCI_ANY_ID
, pd
)) != NULL
) {
2147 pbook_pci_saves
= (struct pci_save
*)
2148 kmalloc(npci
* sizeof(struct pci_save
), GFP_KERNEL
);
2149 pbook_npci_saves
= npci
;
2153 pbook_free_pci_save(void)
2155 if (pbook_pci_saves
== NULL
)
2157 kfree(pbook_pci_saves
);
2158 pbook_pci_saves
= NULL
;
2159 pbook_npci_saves
= 0;
2163 pbook_pci_save(void)
2165 struct pci_save
*ps
= pbook_pci_saves
;
2166 struct pci_dev
*pd
= NULL
;
2167 int npci
= pbook_npci_saves
;
2172 while ((pd
= pci_find_device(PCI_ANY_ID
, PCI_ANY_ID
, pd
)) != NULL
) {
2175 #ifndef HACKED_PCI_SAVE
2176 pci_read_config_word(pd
, PCI_COMMAND
, &ps
->command
);
2177 pci_read_config_word(pd
, PCI_CACHE_LINE_SIZE
, &ps
->cache_lat
);
2178 pci_read_config_word(pd
, PCI_INTERRUPT_LINE
, &ps
->intr
);
2179 pci_read_config_dword(pd
, PCI_ROM_ADDRESS
, &ps
->rom_address
);
2183 pci_read_config_dword(pd
, i
<<4, &ps
->config
[i
]);
2189 /* For this to work, we must take care of a few things: If gmac was enabled
2190 * during boot, it will be in the pci dev list. If it's disabled at this point
2191 * (and it will probably be), then you can't access it's config space.
2194 pbook_pci_restore(void)
2197 struct pci_save
*ps
= pbook_pci_saves
- 1;
2198 struct pci_dev
*pd
= NULL
;
2199 int npci
= pbook_npci_saves
;
2202 while ((pd
= pci_find_device(PCI_ANY_ID
, PCI_ANY_ID
, pd
)) != NULL
) {
2203 #ifdef HACKED_PCI_SAVE
2209 pci_write_config_dword(pd
, i
<<4, ps
->config
[i
]);
2210 pci_write_config_dword(pd
, 4, ps
->config
[1]);
2215 if (ps
->command
== 0)
2217 pci_read_config_word(pd
, PCI_COMMAND
, &cmd
);
2218 if ((ps
->command
& ~cmd
) == 0)
2220 switch (pd
->hdr_type
) {
2221 case PCI_HEADER_TYPE_NORMAL
:
2222 for (j
= 0; j
< 6; ++j
)
2223 pci_write_config_dword(pd
,
2224 PCI_BASE_ADDRESS_0
+ j
*4,
2225 pd
->resource
[j
].start
);
2226 pci_write_config_dword(pd
, PCI_ROM_ADDRESS
,
2228 pci_write_config_word(pd
, PCI_CACHE_LINE_SIZE
,
2230 pci_write_config_word(pd
, PCI_INTERRUPT_LINE
,
2232 pci_write_config_word(pd
, PCI_COMMAND
, ps
->command
);
2240 /* N.B. This doesn't work on the 3400 */
2244 struct adb_request req
;
2246 memset(&req
, 0, sizeof(req
));
2248 for (; n
> 0; --n
) {
2255 req
.reply
[0] = ADB_RET_OK
;
2257 req
.reply_expected
= 0;
2258 pmu_polled_request(&req
);
2266 req
.reply
[0] = ADB_RET_OK
;
2268 req
.reply_expected
= 0;
2269 pmu_polled_request(&req
);
2277 * Put the powerbook to sleep.
2280 static u32 save_via
[8] __pmacdata
;
2283 save_via_state(void)
2285 save_via
[0] = in_8(&via
[ANH
]);
2286 save_via
[1] = in_8(&via
[DIRA
]);
2287 save_via
[2] = in_8(&via
[B
]);
2288 save_via
[3] = in_8(&via
[DIRB
]);
2289 save_via
[4] = in_8(&via
[PCR
]);
2290 save_via
[5] = in_8(&via
[ACR
]);
2291 save_via
[6] = in_8(&via
[T1CL
]);
2292 save_via
[7] = in_8(&via
[T1CH
]);
2295 restore_via_state(void)
2297 out_8(&via
[ANH
], save_via
[0]);
2298 out_8(&via
[DIRA
], save_via
[1]);
2299 out_8(&via
[B
], save_via
[2]);
2300 out_8(&via
[DIRB
], save_via
[3]);
2301 out_8(&via
[PCR
], save_via
[4]);
2302 out_8(&via
[ACR
], save_via
[5]);
2303 out_8(&via
[T1CL
], save_via
[6]);
2304 out_8(&via
[T1CH
], save_via
[7]);
2305 out_8(&via
[IER
], IER_CLR
| 0x7f); /* disable all intrs */
2306 out_8(&via
[IFR
], 0x7f); /* clear IFR */
2307 out_8(&via
[IER
], IER_SET
| SR_INT
| CB1_INT
);
2311 pmac_suspend_devices(void)
2315 pm_prepare_console();
2317 /* Notify old-style device drivers & userland */
2318 ret
= broadcast_sleep(PBOOK_SLEEP_REQUEST
, PBOOK_SLEEP_REJECT
);
2319 if (ret
!= PBOOK_SLEEP_OK
) {
2320 printk(KERN_ERR
"Sleep rejected by drivers\n");
2324 /* Sync the disks. */
2325 /* XXX It would be nice to have some way to ensure that
2326 * nobody is dirtying any new buffers while we wait. That
2327 * could be achieved using the refrigerator for processes
2332 /* Sleep can fail now. May not be very robust but useful for debugging */
2333 ret
= broadcast_sleep(PBOOK_SLEEP_NOW
, PBOOK_WAKE
);
2334 if (ret
!= PBOOK_SLEEP_OK
) {
2335 printk(KERN_ERR
"Driver sleep failed\n");
2339 /* Send suspend call to devices, hold the device core's dpm_sem */
2340 ret
= device_suspend(PMSG_SUSPEND
);
2343 printk(KERN_ERR
"Driver sleep failed\n");
2347 /* Disable clock spreading on some machines */
2348 pmac_tweak_clock_spreading(0);
2350 /* Stop preemption */
2353 /* Make sure the decrementer won't interrupt us */
2354 asm volatile("mtdec %0" : : "r" (0x7fffffff));
2355 /* Make sure any pending DEC interrupt occurring while we did
2356 * the above didn't re-enable the DEC */
2358 asm volatile("mtdec %0" : : "r" (0x7fffffff));
2360 /* We can now disable MSR_EE. This code of course works properly only
2361 * on UP machines... For SMP, if we ever implement sleep, we'll have to
2362 * stop the "other" CPUs way before we do all that stuff.
2364 local_irq_disable();
2366 /* Broadcast power down irq
2367 * This isn't that useful in most cases (only directly wired devices can
2368 * use this but still... This will take care of sysdev's as well, so
2369 * we exit from here with local irqs disabled and PIC off.
2371 ret
= device_power_down(PMSG_SUSPEND
);
2373 wakeup_decrementer();
2378 printk(KERN_ERR
"Driver powerdown failed\n");
2382 /* Wait for completion of async backlight requests */
2383 while (!bright_req_1
.complete
|| !bright_req_2
.complete
||
2387 /* Giveup the lazy FPU & vec so we don't have to back them
2388 * up from the low level code
2392 #ifdef CONFIG_ALTIVEC
2393 if (cpu_has_feature(CPU_FTR_ALTIVEC
))
2394 enable_kernel_altivec();
2395 #endif /* CONFIG_ALTIVEC */
2401 pmac_wakeup_devices(void)
2405 /* Power back up system devices (including the PIC) */
2408 /* Force a poll of ADB interrupts */
2409 adb_int_pending
= 1;
2410 via_pmu_interrupt(0, NULL
, NULL
);
2412 /* Restart jiffies & scheduling */
2413 wakeup_decrementer();
2415 /* Re-enable local CPU interrupts */
2420 /* Re-enable clock spreading on some machines */
2421 pmac_tweak_clock_spreading(1);
2423 /* Resume devices */
2426 /* Notify old style drivers */
2429 pm_restore_console();
2434 #define GRACKLE_PM (1<<7)
2435 #define GRACKLE_DOZE (1<<5)
2436 #define GRACKLE_NAP (1<<4)
2437 #define GRACKLE_SLEEP (1<<3)
2440 powerbook_sleep_grackle(void)
2442 unsigned long save_l2cr
;
2443 unsigned short pmcr1
;
2444 struct adb_request req
;
2446 struct pci_dev
*grackle
;
2448 grackle
= pci_find_slot(0, 0);
2452 ret
= pmac_suspend_devices();
2454 printk(KERN_ERR
"Sleep rejected by devices\n");
2458 /* Turn off various things. Darwin does some retry tests here... */
2459 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL0
, PMU_POW0_OFF
|PMU_POW0_HARD_DRIVE
);
2460 pmu_wait_complete(&req
);
2461 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL
,
2462 PMU_POW_OFF
|PMU_POW_BACKLIGHT
|PMU_POW_IRLED
|PMU_POW_MEDIABAY
);
2463 pmu_wait_complete(&req
);
2465 /* For 750, save backside cache setting and disable it */
2466 save_l2cr
= _get_L2CR(); /* (returns -1 if not available) */
2468 if (!__fake_sleep
) {
2469 /* Ask the PMU to put us to sleep */
2470 pmu_request(&req
, NULL
, 5, PMU_SLEEP
, 'M', 'A', 'T', 'T');
2471 pmu_wait_complete(&req
);
2474 /* The VIA is supposed not to be restored correctly*/
2476 /* We shut down some HW */
2477 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,1);
2479 pci_read_config_word(grackle
, 0x70, &pmcr1
);
2480 /* Apparently, MacOS uses NAP mode for Grackle ??? */
2481 pmcr1
&= ~(GRACKLE_DOZE
|GRACKLE_SLEEP
);
2482 pmcr1
|= GRACKLE_PM
|GRACKLE_NAP
;
2483 pci_write_config_word(grackle
, 0x70, pmcr1
);
2485 /* Call low-level ASM sleep handler */
2489 low_sleep_handler();
2491 /* We're awake again, stop grackle PM */
2492 pci_read_config_word(grackle
, 0x70, &pmcr1
);
2493 pmcr1
&= ~(GRACKLE_PM
|GRACKLE_DOZE
|GRACKLE_SLEEP
|GRACKLE_NAP
);
2494 pci_write_config_word(grackle
, 0x70, pmcr1
);
2496 /* Make sure the PMU is idle */
2497 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,0);
2498 restore_via_state();
2500 /* Restore L2 cache */
2501 if (save_l2cr
!= 0xffffffff && (save_l2cr
& L2CR_L2E
) != 0)
2502 _set_L2CR(save_l2cr
);
2504 /* Restore userland MMU context */
2505 set_context(current
->active_mm
->context
, current
->active_mm
->pgd
);
2507 /* Power things up */
2509 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, pmu_intr_mask
);
2510 pmu_wait_complete(&req
);
2511 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL0
,
2512 PMU_POW0_ON
|PMU_POW0_HARD_DRIVE
);
2513 pmu_wait_complete(&req
);
2514 pmu_request(&req
, NULL
, 2, PMU_POWER_CTRL
,
2515 PMU_POW_ON
|PMU_POW_BACKLIGHT
|PMU_POW_CHARGER
|PMU_POW_IRLED
|PMU_POW_MEDIABAY
);
2516 pmu_wait_complete(&req
);
2518 pmac_wakeup_devices();
2524 powerbook_sleep_Core99(void)
2526 unsigned long save_l2cr
;
2527 unsigned long save_l3cr
;
2528 struct adb_request req
;
2531 if (pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,-1) < 0) {
2532 printk(KERN_ERR
"Sleep mode not supported on this machine\n");
2536 if (num_online_cpus() > 1 || cpu_is_offline(0))
2539 ret
= pmac_suspend_devices();
2541 printk(KERN_ERR
"Sleep rejected by devices\n");
2545 /* Stop environment and ADB interrupts */
2546 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, 0);
2547 pmu_wait_complete(&req
);
2549 /* Tell PMU what events will wake us up */
2550 pmu_request(&req
, NULL
, 4, PMU_POWER_EVENTS
, PMU_PWR_CLR_WAKEUP_EVENTS
,
2552 pmu_wait_complete(&req
);
2553 pmu_request(&req
, NULL
, 4, PMU_POWER_EVENTS
, PMU_PWR_SET_WAKEUP_EVENTS
,
2554 0, PMU_PWR_WAKEUP_KEY
|
2555 (option_lid_wakeup
? PMU_PWR_WAKEUP_LID_OPEN
: 0));
2556 pmu_wait_complete(&req
);
2558 /* Save the state of the L2 and L3 caches */
2559 save_l3cr
= _get_L3CR(); /* (returns -1 if not available) */
2560 save_l2cr
= _get_L2CR(); /* (returns -1 if not available) */
2562 if (!__fake_sleep
) {
2563 /* Ask the PMU to put us to sleep */
2564 pmu_request(&req
, NULL
, 5, PMU_SLEEP
, 'M', 'A', 'T', 'T');
2565 pmu_wait_complete(&req
);
2568 /* The VIA is supposed not to be restored correctly*/
2571 /* Shut down various ASICs. There's a chance that we can no longer
2572 * talk to the PMU after this, so I moved it to _after_ sending the
2573 * sleep command to it. Still need to be checked.
2575 pmac_call_feature(PMAC_FTR_SLEEP_STATE
, NULL
, 0, 1);
2577 /* Call low-level ASM sleep handler */
2581 low_sleep_handler();
2583 /* Restore Apple core ASICs state */
2584 pmac_call_feature(PMAC_FTR_SLEEP_STATE
, NULL
, 0, 0);
2587 restore_via_state();
2589 /* tweak LPJ before cpufreq is there */
2590 loops_per_jiffy
*= 2;
2593 pmac_call_early_video_resume();
2595 /* Restore L2 cache */
2596 if (save_l2cr
!= 0xffffffff && (save_l2cr
& L2CR_L2E
) != 0)
2597 _set_L2CR(save_l2cr
);
2598 /* Restore L3 cache */
2599 if (save_l3cr
!= 0xffffffff && (save_l3cr
& L3CR_L3E
) != 0)
2600 _set_L3CR(save_l3cr
);
2602 /* Restore userland MMU context */
2603 set_context(current
->active_mm
->context
, current
->active_mm
->pgd
);
2605 /* Tell PMU we are ready */
2607 pmu_request(&req
, NULL
, 2, PMU_SYSTEM_READY
, 2);
2608 pmu_wait_complete(&req
);
2609 pmu_request(&req
, NULL
, 2, PMU_SET_INTR_MASK
, pmu_intr_mask
);
2610 pmu_wait_complete(&req
);
2612 /* Restore LPJ, cpufreq will adjust the cpu frequency */
2613 loops_per_jiffy
/= 2;
2615 pmac_wakeup_devices();
2620 #define PB3400_MEM_CTRL 0xf8000000
2621 #define PB3400_MEM_CTRL_SLEEP 0x70
2624 powerbook_sleep_3400(void)
2629 struct adb_request sleep_req
;
2630 void __iomem
*mem_ctrl
;
2631 unsigned int __iomem
*mem_ctrl_sleep
;
2633 /* first map in the memory controller registers */
2634 mem_ctrl
= ioremap(PB3400_MEM_CTRL
, 0x100);
2635 if (mem_ctrl
== NULL
) {
2636 printk("powerbook_sleep_3400: ioremap failed\n");
2639 mem_ctrl_sleep
= mem_ctrl
+ PB3400_MEM_CTRL_SLEEP
;
2641 /* Allocate room for PCI save */
2642 pbook_alloc_pci_save();
2644 ret
= pmac_suspend_devices();
2646 pbook_free_pci_save();
2647 printk(KERN_ERR
"Sleep rejected by devices\n");
2651 /* Save the state of PCI config space for some slots */
2654 /* Set the memory controller to keep the memory refreshed
2655 while we're asleep */
2656 for (i
= 0x403f; i
>= 0x4000; --i
) {
2657 out_be32(mem_ctrl_sleep
, i
);
2659 x
= (in_be32(mem_ctrl_sleep
) >> 16) & 0x3ff;
2665 /* Ask the PMU to put us to sleep */
2666 pmu_request(&sleep_req
, NULL
, 5, PMU_SLEEP
, 'M', 'A', 'T', 'T');
2667 while (!sleep_req
.complete
)
2670 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,1);
2672 /* displacement-flush the L2 cache - necessary? */
2673 for (p
= KERNELBASE
; p
< KERNELBASE
+ 0x100000; p
+= 0x1000)
2674 i
= *(volatile int *)p
;
2677 /* Put the CPU into sleep mode */
2678 asm volatile("mfspr %0,1008" : "=r" (hid0
) :);
2679 hid0
= (hid0
& ~(HID0_NAP
| HID0_DOZE
)) | HID0_SLEEP
;
2680 asm volatile("mtspr 1008,%0" : : "r" (hid0
));
2681 _nmask_and_or_msr(0, MSR_POW
| MSR_EE
);
2684 /* OK, we're awake again, start restoring things */
2685 out_be32(mem_ctrl_sleep
, 0x3f);
2686 pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,0);
2687 pbook_pci_restore();
2690 /* wait for the PMU interrupt sequence to complete */
2694 pmac_wakeup_devices();
2695 pbook_free_pci_save();
2701 #endif /* CONFIG_PM */
2704 * Support for /dev/pmu device
2706 #define RB_SIZE 0x10
2707 struct pmu_private
{
2708 struct list_head list
;
2713 unsigned char data
[16];
2715 wait_queue_head_t wait
;
2717 #if defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT)
2718 int backlight_locker
;
2719 #endif /* defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT) */
2722 static LIST_HEAD(all_pmu_pvt
);
2723 static DEFINE_SPINLOCK(all_pvt_lock __pmacdata
);
2726 pmu_pass_intr(unsigned char *data
, int len
)
2728 struct pmu_private
*pp
;
2729 struct list_head
*list
;
2731 unsigned long flags
;
2733 if (len
> sizeof(pp
->rb_buf
[0].data
))
2734 len
= sizeof(pp
->rb_buf
[0].data
);
2735 spin_lock_irqsave(&all_pvt_lock
, flags
);
2736 for (list
= &all_pmu_pvt
; (list
= list
->next
) != &all_pmu_pvt
; ) {
2737 pp
= list_entry(list
, struct pmu_private
, list
);
2738 spin_lock(&pp
->lock
);
2742 if (i
!= pp
->rb_get
) {
2743 struct rb_entry
*rp
= &pp
->rb_buf
[pp
->rb_put
];
2745 memcpy(rp
->data
, data
, len
);
2747 wake_up_interruptible(&pp
->wait
);
2749 spin_unlock(&pp
->lock
);
2751 spin_unlock_irqrestore(&all_pvt_lock
, flags
);
2755 pmu_open(struct inode
*inode
, struct file
*file
)
2757 struct pmu_private
*pp
;
2758 unsigned long flags
;
2760 pp
= kmalloc(sizeof(struct pmu_private
), GFP_KERNEL
);
2763 pp
->rb_get
= pp
->rb_put
= 0;
2764 spin_lock_init(&pp
->lock
);
2765 init_waitqueue_head(&pp
->wait
);
2766 spin_lock_irqsave(&all_pvt_lock
, flags
);
2767 #if defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT)
2768 pp
->backlight_locker
= 0;
2769 #endif /* defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT) */
2770 list_add(&pp
->list
, &all_pmu_pvt
);
2771 spin_unlock_irqrestore(&all_pvt_lock
, flags
);
2772 file
->private_data
= pp
;
2776 static ssize_t __pmac
2777 pmu_read(struct file
*file
, char __user
*buf
,
2778 size_t count
, loff_t
*ppos
)
2780 struct pmu_private
*pp
= file
->private_data
;
2781 DECLARE_WAITQUEUE(wait
, current
);
2782 unsigned long flags
;
2785 if (count
< 1 || pp
== 0)
2787 if (!access_ok(VERIFY_WRITE
, buf
, count
))
2790 spin_lock_irqsave(&pp
->lock
, flags
);
2791 add_wait_queue(&pp
->wait
, &wait
);
2792 current
->state
= TASK_INTERRUPTIBLE
;
2796 if (pp
->rb_get
!= pp
->rb_put
) {
2798 struct rb_entry
*rp
= &pp
->rb_buf
[i
];
2800 spin_unlock_irqrestore(&pp
->lock
, flags
);
2803 if (ret
> 0 && copy_to_user(buf
, rp
->data
, ret
))
2807 spin_lock_irqsave(&pp
->lock
, flags
);
2812 if (file
->f_flags
& O_NONBLOCK
)
2815 if (signal_pending(current
))
2817 spin_unlock_irqrestore(&pp
->lock
, flags
);
2819 spin_lock_irqsave(&pp
->lock
, flags
);
2821 current
->state
= TASK_RUNNING
;
2822 remove_wait_queue(&pp
->wait
, &wait
);
2823 spin_unlock_irqrestore(&pp
->lock
, flags
);
2828 static ssize_t __pmac
2829 pmu_write(struct file
*file
, const char __user
*buf
,
2830 size_t count
, loff_t
*ppos
)
2835 static unsigned int __pmac
2836 pmu_fpoll(struct file
*filp
, poll_table
*wait
)
2838 struct pmu_private
*pp
= filp
->private_data
;
2839 unsigned int mask
= 0;
2840 unsigned long flags
;
2844 poll_wait(filp
, &pp
->wait
, wait
);
2845 spin_lock_irqsave(&pp
->lock
, flags
);
2846 if (pp
->rb_get
!= pp
->rb_put
)
2848 spin_unlock_irqrestore(&pp
->lock
, flags
);
2853 pmu_release(struct inode
*inode
, struct file
*file
)
2855 struct pmu_private
*pp
= file
->private_data
;
2856 unsigned long flags
;
2860 file
->private_data
= NULL
;
2861 spin_lock_irqsave(&all_pvt_lock
, flags
);
2862 list_del(&pp
->list
);
2863 spin_unlock_irqrestore(&all_pvt_lock
, flags
);
2864 #if defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT)
2865 if (pp
->backlight_locker
) {
2866 spin_lock_irqsave(&pmu_lock
, flags
);
2867 disable_kernel_backlight
--;
2868 spin_unlock_irqrestore(&pmu_lock
, flags
);
2870 #endif /* defined(CONFIG_INPUT_ADBHID) && defined(CONFIG_PMAC_BACKLIGHT) */
2877 /* Note: removed __openfirmware here since it causes link errors */
2879 pmu_ioctl(struct inode
* inode
, struct file
*filp
,
2880 u_int cmd
, u_long arg
)
2882 __u32 __user
*argp
= (__u32 __user
*)arg
;
2883 int error
= -EINVAL
;
2888 if (!capable(CAP_SYS_ADMIN
))
2890 if (sleep_in_progress
)
2892 sleep_in_progress
= 1;
2894 case PMU_OHARE_BASED
:
2895 error
= powerbook_sleep_3400();
2897 case PMU_HEATHROW_BASED
:
2898 case PMU_PADDINGTON_BASED
:
2899 error
= powerbook_sleep_grackle();
2901 case PMU_KEYLARGO_BASED
:
2902 error
= powerbook_sleep_Core99();
2907 sleep_in_progress
= 0;
2909 case PMU_IOC_CAN_SLEEP
:
2910 if (pmac_call_feature(PMAC_FTR_SLEEP_STATE
,NULL
,0,-1) < 0)
2911 return put_user(0, argp
);
2913 return put_user(1, argp
);
2914 #endif /* CONFIG_PM */
2916 #ifdef CONFIG_PMAC_BACKLIGHT
2917 /* Backlight should have its own device or go via
2920 case PMU_IOC_GET_BACKLIGHT
:
2921 if (sleep_in_progress
)
2923 error
= get_backlight_level();
2926 return put_user(error
, argp
);
2927 case PMU_IOC_SET_BACKLIGHT
:
2930 if (sleep_in_progress
)
2932 error
= get_user(value
, argp
);
2934 error
= set_backlight_level(value
);
2937 #ifdef CONFIG_INPUT_ADBHID
2938 case PMU_IOC_GRAB_BACKLIGHT
: {
2939 struct pmu_private
*pp
= filp
->private_data
;
2940 unsigned long flags
;
2942 if (pp
->backlight_locker
)
2944 pp
->backlight_locker
= 1;
2945 spin_lock_irqsave(&pmu_lock
, flags
);
2946 disable_kernel_backlight
++;
2947 spin_unlock_irqrestore(&pmu_lock
, flags
);
2950 #endif /* CONFIG_INPUT_ADBHID */
2951 #endif /* CONFIG_PMAC_BACKLIGHT */
2952 case PMU_IOC_GET_MODEL
:
2953 return put_user(pmu_kind
, argp
);
2954 case PMU_IOC_HAS_ADB
:
2955 return put_user(pmu_has_adb
, argp
);
2960 static struct file_operations pmu_device_fops __pmacdata
= {
2966 .release
= pmu_release
,
2969 static struct miscdevice pmu_device __pmacdata
= {
2970 PMU_MINOR
, "pmu", &pmu_device_fops
2973 static int pmu_device_init(void)
2977 if (misc_register(&pmu_device
) < 0)
2978 printk(KERN_ERR
"via-pmu: cannot register misc device.\n");
2981 device_initcall(pmu_device_init
);
2985 static inline void __pmac
2986 polled_handshake(volatile unsigned char __iomem
*via
)
2988 via
[B
] &= ~TREQ
; eieio();
2989 while ((via
[B
] & TACK
) != 0)
2991 via
[B
] |= TREQ
; eieio();
2992 while ((via
[B
] & TACK
) == 0)
2996 static inline void __pmac
2997 polled_send_byte(volatile unsigned char __iomem
*via
, int x
)
2999 via
[ACR
] |= SR_OUT
| SR_EXT
; eieio();
3000 via
[SR
] = x
; eieio();
3001 polled_handshake(via
);
3004 static inline int __pmac
3005 polled_recv_byte(volatile unsigned char __iomem
*via
)
3009 via
[ACR
] = (via
[ACR
] & ~SR_OUT
) | SR_EXT
; eieio();
3010 x
= via
[SR
]; eieio();
3011 polled_handshake(via
);
3012 x
= via
[SR
]; eieio();
3017 pmu_polled_request(struct adb_request
*req
)
3019 unsigned long flags
;
3021 volatile unsigned char __iomem
*v
= via
;
3025 l
= pmu_data_len
[c
][0];
3026 if (l
>= 0 && req
->nbytes
!= l
+ 1)
3029 local_irq_save(flags
);
3030 while (pmu_state
!= idle
)
3033 while ((via
[B
] & TACK
) == 0)
3035 polled_send_byte(v
, c
);
3037 l
= req
->nbytes
- 1;
3038 polled_send_byte(v
, l
);
3040 for (i
= 1; i
<= l
; ++i
)
3041 polled_send_byte(v
, req
->data
[i
]);
3043 l
= pmu_data_len
[c
][1];
3045 l
= polled_recv_byte(v
);
3046 for (i
= 0; i
< l
; ++i
)
3047 req
->reply
[i
+ req
->reply_len
] = polled_recv_byte(v
);
3052 local_irq_restore(flags
);
3055 #endif /* DEBUG_SLEEP */
3058 /* FIXME: This is a temporary set of callbacks to enable us
3059 * to do suspend-to-disk.
3064 static int pmu_sys_suspended
= 0;
3066 static int pmu_sys_suspend(struct sys_device
*sysdev
, pm_message_t state
)
3068 if (state
.event
!= PM_EVENT_SUSPEND
|| pmu_sys_suspended
)
3071 /* Suspend PMU event interrupts */
3074 pmu_sys_suspended
= 1;
3078 static int pmu_sys_resume(struct sys_device
*sysdev
)
3080 struct adb_request req
;
3082 if (!pmu_sys_suspended
)
3085 /* Tell PMU we are ready */
3086 pmu_request(&req
, NULL
, 2, PMU_SYSTEM_READY
, 2);
3087 pmu_wait_complete(&req
);
3089 /* Resume PMU event interrupts */
3092 pmu_sys_suspended
= 0;
3097 #endif /* CONFIG_PM */
3099 static struct sysdev_class pmu_sysclass
= {
3100 set_kset_name("pmu"),
3103 static struct sys_device device_pmu
= {
3105 .cls
= &pmu_sysclass
,
3108 static struct sysdev_driver driver_pmu
= {
3110 .suspend
= &pmu_sys_suspend
,
3111 .resume
= &pmu_sys_resume
,
3112 #endif /* CONFIG_PM */
3115 static int __init
init_pmu_sysfs(void)
3119 rc
= sysdev_class_register(&pmu_sysclass
);
3121 printk(KERN_ERR
"Failed registering PMU sys class\n");
3124 rc
= sysdev_register(&device_pmu
);
3126 printk(KERN_ERR
"Failed registering PMU sys device\n");
3129 rc
= sysdev_driver_register(&pmu_sysclass
, &driver_pmu
);
3131 printk(KERN_ERR
"Failed registering PMU sys driver\n");
3137 subsys_initcall(init_pmu_sysfs
);
3139 EXPORT_SYMBOL(pmu_request
);
3140 EXPORT_SYMBOL(pmu_poll
);
3141 EXPORT_SYMBOL(pmu_poll_adb
);
3142 EXPORT_SYMBOL(pmu_wait_complete
);
3143 EXPORT_SYMBOL(pmu_suspend
);
3144 EXPORT_SYMBOL(pmu_resume
);
3145 EXPORT_SYMBOL(pmu_unlock
);
3146 EXPORT_SYMBOL(pmu_i2c_combined_read
);
3147 EXPORT_SYMBOL(pmu_i2c_stdsub_write
);
3148 EXPORT_SYMBOL(pmu_i2c_simple_read
);
3149 EXPORT_SYMBOL(pmu_i2c_simple_write
);
3151 EXPORT_SYMBOL(pmu_register_sleep_notifier
);
3152 EXPORT_SYMBOL(pmu_unregister_sleep_notifier
);
3153 EXPORT_SYMBOL(pmu_enable_irled
);
3154 EXPORT_SYMBOL(pmu_battery_count
);
3155 EXPORT_SYMBOL(pmu_batteries
);
3156 EXPORT_SYMBOL(pmu_power_flags
);
3157 #endif /* CONFIG_PM */