x86: platform: Fix section annotations
[linux-2.6-block.git] / arch / x86 / kernel / rtc.c
CommitLineData
1da177e4 1/*
fe599f9f 2 * RTC related functions
1da177e4 3 */
8383d821
JSR
4#include <linux/platform_device.h>
5#include <linux/mc146818rtc.h>
1122b134 6#include <linux/acpi.h>
fe599f9f 7#include <linux/bcd.h>
1da2e3d6 8#include <linux/pnp.h>
1da177e4 9
cdc7957d 10#include <asm/vsyscall.h>
8383d821 11#include <asm/time.h>
1da177e4 12
1122b134 13#ifdef CONFIG_X86_32
1122b134
TG
14/*
15 * This is a special lock that is owned by the CPU and holds the index
16 * register we are working with. It is required for NMI access to the
17 * CMOS/RTC registers. See include/asm-i386/mc146818rtc.h for details.
18 */
8383d821 19volatile unsigned long cmos_lock;
1122b134 20EXPORT_SYMBOL(cmos_lock);
8383d821 21#endif /* CONFIG_X86_32 */
1122b134 22
b62576a2
AK
23/* For two digit years assume time is always after that */
24#define CMOS_YEARS_OFFS 2000
25
1122b134
TG
26DEFINE_SPINLOCK(rtc_lock);
27EXPORT_SYMBOL(rtc_lock);
28
1da177e4
LT
29/*
30 * In order to set the CMOS clock precisely, set_rtc_mmss has to be
31 * called 500 ms after the second nowtime has started, because when
32 * nowtime is written into the registers of the CMOS clock, it will
33 * jump to the next second precisely 500 ms later. Check the Motorola
34 * MC146818A or Dallas DS12887 data sheet for details.
35 *
36 * BUG: This routine does not handle hour overflow properly; it just
37 * sets the minutes. Usually you'll only notice that after reboot!
38 */
fe599f9f 39int mach_set_rtc_mmss(unsigned long nowtime)
1da177e4 40{
1da177e4
LT
41 int real_seconds, real_minutes, cmos_minutes;
42 unsigned char save_control, save_freq_select;
8383d821 43 int retval = 0;
1da177e4 44
1122b134
TG
45 /* tell the clock it's being set */
46 save_control = CMOS_READ(RTC_CONTROL);
1da177e4
LT
47 CMOS_WRITE((save_control|RTC_SET), RTC_CONTROL);
48
1122b134
TG
49 /* stop and reset prescaler */
50 save_freq_select = CMOS_READ(RTC_FREQ_SELECT);
1da177e4
LT
51 CMOS_WRITE((save_freq_select|RTC_DIV_RESET2), RTC_FREQ_SELECT);
52
53 cmos_minutes = CMOS_READ(RTC_MINUTES);
54 if (!(save_control & RTC_DM_BINARY) || RTC_ALWAYS_BCD)
357c6e63 55 cmos_minutes = bcd2bin(cmos_minutes);
1da177e4
LT
56
57 /*
58 * since we're only adjusting minutes and seconds,
59 * don't interfere with hour overflow. This avoids
60 * messing with unknown time zones but requires your
61 * RTC not to be off by more than 15 minutes
62 */
63 real_seconds = nowtime % 60;
64 real_minutes = nowtime / 60;
1122b134 65 /* correct for half hour time zone */
1da177e4 66 if (((abs(real_minutes - cmos_minutes) + 15)/30) & 1)
1122b134 67 real_minutes += 30;
1da177e4
LT
68 real_minutes %= 60;
69
70 if (abs(real_minutes - cmos_minutes) < 30) {
71 if (!(save_control & RTC_DM_BINARY) || RTC_ALWAYS_BCD) {
357c6e63
AB
72 real_seconds = bin2bcd(real_seconds);
73 real_minutes = bin2bcd(real_minutes);
1da177e4 74 }
8383d821
JSR
75 CMOS_WRITE(real_seconds, RTC_SECONDS);
76 CMOS_WRITE(real_minutes, RTC_MINUTES);
1da177e4
LT
77 } else {
78 printk(KERN_WARNING
79 "set_rtc_mmss: can't update from %d to %d\n",
80 cmos_minutes, real_minutes);
81 retval = -1;
82 }
83
84 /* The following flags have to be released exactly in this order,
85 * otherwise the DS12887 (popular MC146818A clone with integrated
86 * battery and quartz) will not reset the oscillator and will not
87 * update precisely 500 ms later. You won't find this mentioned in
88 * the Dallas Semiconductor data sheets, but who believes data
89 * sheets anyway ... -- Markus Kuhn
90 */
91 CMOS_WRITE(save_control, RTC_CONTROL);
92 CMOS_WRITE(save_freq_select, RTC_FREQ_SELECT);
93
94 return retval;
95}
96
fe599f9f 97unsigned long mach_get_cmos_time(void)
1da177e4 98{
068c9222 99 unsigned int status, year, mon, day, hour, min, sec, century = 0;
1122b134
TG
100
101 /*
102 * If UIP is clear, then we have >= 244 microseconds before
103 * RTC registers will be updated. Spec sheet says that this
104 * is the reliable way to read RTC - registers. If UIP is set
105 * then the register access might be invalid.
106 */
107 while ((CMOS_READ(RTC_FREQ_SELECT) & RTC_UIP))
108 cpu_relax();
109
110 sec = CMOS_READ(RTC_SECONDS);
111 min = CMOS_READ(RTC_MINUTES);
112 hour = CMOS_READ(RTC_HOURS);
113 day = CMOS_READ(RTC_DAY_OF_MONTH);
114 mon = CMOS_READ(RTC_MONTH);
115 year = CMOS_READ(RTC_YEAR);
116
45de7079 117#ifdef CONFIG_ACPI
1122b134
TG
118 if (acpi_gbl_FADT.header.revision >= FADT2_REVISION_ID &&
119 acpi_gbl_FADT.century)
120 century = CMOS_READ(acpi_gbl_FADT.century);
121#endif
122
068c9222 123 status = CMOS_READ(RTC_CONTROL);
45de7079 124 WARN_ON_ONCE(RTC_ALWAYS_BCD && (status & RTC_DM_BINARY));
068c9222
AK
125
126 if (RTC_ALWAYS_BCD || !(status & RTC_DM_BINARY)) {
357c6e63
AB
127 sec = bcd2bin(sec);
128 min = bcd2bin(min);
129 hour = bcd2bin(hour);
130 day = bcd2bin(day);
131 mon = bcd2bin(mon);
132 year = bcd2bin(year);
41623b06
MM
133 }
134
1122b134 135 if (century) {
357c6e63 136 century = bcd2bin(century);
1122b134
TG
137 year += century * 100;
138 printk(KERN_INFO "Extended CMOS year: %d\n", century * 100);
b62576a2 139 } else
1122b134 140 year += CMOS_YEARS_OFFS;
1da177e4
LT
141
142 return mktime(year, mon, day, hour, min, sec);
143}
144
fe599f9f
TG
145/* Routines for accessing the CMOS RAM/RTC. */
146unsigned char rtc_cmos_read(unsigned char addr)
147{
148 unsigned char val;
149
150 lock_cmos_prefix(addr);
04aaa7ba
DR
151 outb(addr, RTC_PORT(0));
152 val = inb(RTC_PORT(1));
fe599f9f 153 lock_cmos_suffix(addr);
8383d821 154
fe599f9f
TG
155 return val;
156}
157EXPORT_SYMBOL(rtc_cmos_read);
158
159void rtc_cmos_write(unsigned char val, unsigned char addr)
160{
161 lock_cmos_prefix(addr);
04aaa7ba
DR
162 outb(addr, RTC_PORT(0));
163 outb(val, RTC_PORT(1));
fe599f9f
TG
164 lock_cmos_suffix(addr);
165}
166EXPORT_SYMBOL(rtc_cmos_write);
167
168static int set_rtc_mmss(unsigned long nowtime)
169{
fe599f9f 170 unsigned long flags;
8383d821 171 int retval;
fe599f9f 172
fe599f9f
TG
173 spin_lock_irqsave(&rtc_lock, flags);
174 retval = set_wallclock(nowtime);
175 spin_unlock_irqrestore(&rtc_lock, flags);
176
177 return retval;
178}
179
180/* not static: needed by APM */
181unsigned long read_persistent_clock(void)
182{
1122b134 183 unsigned long retval, flags;
fe599f9f
TG
184
185 spin_lock_irqsave(&rtc_lock, flags);
186 retval = get_wallclock();
187 spin_unlock_irqrestore(&rtc_lock, flags);
188
189 return retval;
190}
191
192int update_persistent_clock(struct timespec now)
193{
194 return set_rtc_mmss(now.tv_sec);
195}
cdc7957d 196
92767af0 197unsigned long long native_read_tsc(void)
cdc7957d 198{
92767af0 199 return __native_read_tsc();
cdc7957d 200}
92767af0
IM
201EXPORT_SYMBOL(native_read_tsc);
202
1da2e3d6
SS
203
204static struct resource rtc_resources[] = {
205 [0] = {
206 .start = RTC_PORT(0),
207 .end = RTC_PORT(1),
208 .flags = IORESOURCE_IO,
209 },
210 [1] = {
211 .start = RTC_IRQ,
212 .end = RTC_IRQ,
213 .flags = IORESOURCE_IRQ,
214 }
215};
216
217static struct platform_device rtc_device = {
218 .name = "rtc_cmos",
219 .id = -1,
220 .resource = rtc_resources,
221 .num_resources = ARRAY_SIZE(rtc_resources),
222};
223
224static __init int add_rtc_cmos(void)
225{
226#ifdef CONFIG_PNP
758a7f7b
BH
227 static const char *ids[] __initconst =
228 { "PNP0b00", "PNP0b01", "PNP0b02", };
229 struct pnp_dev *dev;
230 struct pnp_id *id;
231 int i;
232
233 pnp_for_each_dev(dev) {
234 for (id = dev->id; id; id = id->next) {
235 for (i = 0; i < ARRAY_SIZE(ids); i++) {
236 if (compare_pnp_id(id, ids[i]) != 0)
237 return 0;
238 }
239 }
240 }
241#endif
242
1da2e3d6 243 platform_device_register(&rtc_device);
758a7f7b
BH
244 dev_info(&rtc_device.dev,
245 "registered platform RTC device (no PNP device found)\n");
8383d821 246
1da2e3d6
SS
247 return 0;
248}
249device_initcall(add_rtc_cmos);