2 Real Time Clock Driver for Linux
3 ================================
5 All PCs (even Alpha machines) have a Real Time Clock built into them.
6 Usually they are built into the chipset of the computer, but some may
7 actually have a Motorola MC146818 (or clone) on the board. This is the
8 clock that keeps the date and time while your computer is turned off.
10 However it can also be used to generate signals from a slow 2Hz to a
11 relatively fast 8192Hz, in increments of powers of two. These signals
12 are reported by interrupt number 8. (Oh! So *that* is what IRQ 8 is
13 for...) It can also function as a 24hr alarm, raising IRQ 8 when the
14 alarm goes off. The alarm can also be programmed to only check any
15 subset of the three programmable values, meaning that it could be set to
16 ring on the 30th second of the 30th minute of every hour, for example.
17 The clock can also be set to generate an interrupt upon every clock
18 update, thus generating a 1Hz signal.
20 The interrupts are reported via /dev/rtc (major 10, minor 135, read only
21 character device) in the form of an unsigned long. The low byte contains
22 the type of interrupt (update-done, alarm-rang, or periodic) that was
23 raised, and the remaining bytes contain the number of interrupts since
24 the last read. Status information is reported through the pseudo-file
25 /proc/driver/rtc if the /proc filesystem was enabled. The driver has
26 built in locking so that only one process is allowed to have the /dev/rtc
27 interface open at a time.
29 A user process can monitor these interrupts by doing a read(2) or a
30 select(2) on /dev/rtc -- either will block/stop the user process until
31 the next interrupt is received. This is useful for things like
32 reasonably high frequency data acquisition where one doesn't want to
33 burn up 100% CPU by polling gettimeofday etc. etc.
35 At high frequencies, or under high loads, the user process should check
36 the number of interrupts received since the last read to determine if
37 there has been any interrupt "pileup" so to speak. Just for reference, a
38 typical 486-33 running a tight read loop on /dev/rtc will start to suffer
39 occasional interrupt pileup (i.e. > 1 IRQ event since last read) for
40 frequencies above 1024Hz. So you really should check the high bytes
41 of the value you read, especially at frequencies above that of the
42 normal timer interrupt, which is 100Hz.
44 Programming and/or enabling interrupt frequencies greater than 64Hz is
45 only allowed by root. This is perhaps a bit conservative, but we don't want
46 an evil user generating lots of IRQs on a slow 386sx-16, where it might have
47 a negative impact on performance. Note that the interrupt handler is only
48 a few lines of code to minimize any possibility of this effect.
50 Also, if the kernel time is synchronized with an external source, the
51 kernel will write the time back to the CMOS clock every 11 minutes. In
52 the process of doing this, the kernel briefly turns off RTC periodic
53 interrupts, so be aware of this if you are doing serious work. If you
54 don't synchronize the kernel time with an external source (via ntp or
55 whatever) then the kernel will keep its hands off the RTC, allowing you
56 exclusive access to the device for your applications.
58 The alarm and/or interrupt frequency are programmed into the RTC via
59 various ioctl(2) calls as listed in ./include/linux/rtc.h
60 Rather than write 50 pages describing the ioctl() and so on, it is
61 perhaps more useful to include a small test program that demonstrates
62 how to use them, and demonstrates the features of the driver. This is
63 probably a lot more useful to people interested in writing applications
64 that will be using this driver.
68 -------------------- 8< ---------------- 8< -----------------------------
71 * Real Time Clock Driver Test/Example Program
74 * gcc -s -Wall -Wstrict-prototypes rtctest.c -o rtctest
76 * Copyright (C) 1996, Paul Gortmaker.
78 * Released under the GNU General Public License, version 2,
79 * included herein by reference.
84 #include <linux/rtc.h>
85 #include <sys/ioctl.h>
87 #include <sys/types.h>
94 int i, fd, retval, irqcount = 0;
95 unsigned long tmp, data;
96 struct rtc_time rtc_tm;
98 fd = open ("/dev/rtc", O_RDONLY);
105 fprintf(stderr, "\n\t\t\tRTC Driver Test Example.\n\n");
107 /* Turn on update interrupts (one per second) */
108 retval = ioctl(fd, RTC_UIE_ON, 0);
114 fprintf(stderr, "Counting 5 update (1/sec) interrupts from reading /dev/rtc:");
116 for (i=1; i<6; i++) {
117 /* This read will block */
118 retval = read(fd, &data, sizeof(unsigned long));
123 fprintf(stderr, " %d",i);
128 fprintf(stderr, "\nAgain, from using select(2) on /dev/rtc:");
130 for (i=1; i<6; i++) {
131 struct timeval tv = {5, 0}; /* 5 second timeout on select */
135 FD_SET(fd, &readfds);
136 /* The select will wait until an RTC interrupt happens. */
137 retval = select(fd+1, &readfds, NULL, NULL, &tv);
142 /* This read won't block unlike the select-less case above. */
143 retval = read(fd, &data, sizeof(unsigned long));
148 fprintf(stderr, " %d",i);
153 /* Turn off update interrupts */
154 retval = ioctl(fd, RTC_UIE_OFF, 0);
160 /* Read the RTC time/date */
161 retval = ioctl(fd, RTC_RD_TIME, &rtc_tm);
167 fprintf(stderr, "\n\nCurrent RTC date/time is %d-%d-%d, %02d:%02d:%02d.\n",
168 rtc_tm.tm_mday, rtc_tm.tm_mon + 1, rtc_tm.tm_year + 1900,
169 rtc_tm.tm_hour, rtc_tm.tm_min, rtc_tm.tm_sec);
171 /* Set the alarm to 5 sec in the future, and check for rollover */
173 if (rtc_tm.tm_sec >= 60) {
177 if (rtc_tm.tm_min == 60) {
181 if (rtc_tm.tm_hour == 24)
184 retval = ioctl(fd, RTC_ALM_SET, &rtc_tm);
190 /* Read the current alarm settings */
191 retval = ioctl(fd, RTC_ALM_READ, &rtc_tm);
197 fprintf(stderr, "Alarm time now set to %02d:%02d:%02d.\n",
198 rtc_tm.tm_hour, rtc_tm.tm_min, rtc_tm.tm_sec);
200 /* Enable alarm interrupts */
201 retval = ioctl(fd, RTC_AIE_ON, 0);
207 fprintf(stderr, "Waiting 5 seconds for alarm...");
209 /* This blocks until the alarm ring causes an interrupt */
210 retval = read(fd, &data, sizeof(unsigned long));
216 fprintf(stderr, " okay. Alarm rang.\n");
218 /* Disable alarm interrupts */
219 retval = ioctl(fd, RTC_AIE_OFF, 0);
225 /* Read periodic IRQ rate */
226 retval = ioctl(fd, RTC_IRQP_READ, &tmp);
231 fprintf(stderr, "\nPeriodic IRQ rate was %ldHz.\n", tmp);
233 fprintf(stderr, "Counting 20 interrupts at:");
236 /* The frequencies 128Hz, 256Hz, ... 8192Hz are only allowed for root. */
237 for (tmp=2; tmp<=64; tmp*=2) {
239 retval = ioctl(fd, RTC_IRQP_SET, tmp);
245 fprintf(stderr, "\n%ldHz:\t", tmp);
248 /* Enable periodic interrupts */
249 retval = ioctl(fd, RTC_PIE_ON, 0);
255 for (i=1; i<21; i++) {
257 retval = read(fd, &data, sizeof(unsigned long));
262 fprintf(stderr, " %d",i);
267 /* Disable periodic interrupts */
268 retval = ioctl(fd, RTC_PIE_OFF, 0);
275 fprintf(stderr, "\n\n\t\t\t *** Test complete ***\n");
276 fprintf(stderr, "\nTyping \"cat /proc/interrupts\" will show %d more events on IRQ 8.\n\n",