140 lines
3.9 KiB
C
140 lines
3.9 KiB
C
/* SPDX-License-Identifier: GPL-2.0-or-later */
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/*
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* From U-Boot 2016.05
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*/
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#include <console/console.h>
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#include <rtc.h>
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#define FEBRUARY 2
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#define STARTOFTIME 1970
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#define SECDAY 86400L
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#define SECYR (SECDAY * 365)
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#define LEAP_YEAR(year) (((year) % 4 == 0 && (year) % 100 != 0) || (year) % 400 == 0)
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#define DAYS_IN_YEAR(a) (LEAP_YEAR(a) ? 366 : 365)
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#define DAYS_IN_MONTH(a) (month_days[(a) - 1])
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static const char *const weekdays[] = {
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"Sun", "Mon", "Tues", "Wednes", "Thurs", "Fri", "Satur"
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};
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/* Zeller's rule */
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static int rtc_calc_weekday(struct rtc_time *tm)
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{
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/* In Zeller's rule, January and February are treated as if they
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are months 13 and 14 of the previous year (March is still month 3) */
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const int zyear = ((tm->mon < 3) ? tm->year - 1 : tm->year);
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const int q = tm->mday;
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const int m = (tm->mon < 3) ? tm->mon + 12 : tm->mon;
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const int K = zyear % 100;
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const int J = zyear / 100;
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/*
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* Because of the way the modulo operator works with negative numbers,
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* the traditional formulation of Zeller's rule must be modified
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* slightly to make the numerator positive (i.e., add 5J instead of
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* subtracting 2J). Also subtract 1 so that Sunday is day 0.
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*/
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const int h = (q + (13 * (m + 1)) / 5
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+ K + (K / 4) + (J / 4) + (5 * J) - 1) % 7;
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tm->wday = h;
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return 0;
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}
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int rtc_to_tm(int tim, struct rtc_time *tm)
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{
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int month_days[12] = {
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31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31
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};
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register int i;
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register long hms, day;
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day = tim / SECDAY;
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hms = tim % SECDAY;
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/* Hours, minutes, seconds are easy */
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tm->hour = hms / 3600;
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tm->min = (hms % 3600) / 60;
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tm->sec = (hms % 3600) % 60;
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/* Number of years in days */
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for (i = STARTOFTIME; day >= DAYS_IN_YEAR(i); i++)
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day -= DAYS_IN_YEAR(i);
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tm->year = i;
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/* Number of months in days left */
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if (LEAP_YEAR(tm->year))
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DAYS_IN_MONTH(FEBRUARY) = 29;
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for (i = 1; day >= DAYS_IN_MONTH(i); i++)
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day -= DAYS_IN_MONTH(i);
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DAYS_IN_MONTH(FEBRUARY) = 28;
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tm->mon = i;
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/* Days are what is left over (+1) from all that */
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tm->mday = day + 1;
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/* Determine the day of week */
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return rtc_calc_weekday(tm);
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}
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/*
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* Converts Gregorian date to seconds since 1970-01-01 00:00:00.
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* Assumes input in normal date format, i.e. 1980-12-31 23:59:59
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* => year=1980, mon=12, day=31, hour=23, min=59, sec=59.
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*
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* [For the Julian calendar (which was used in Russia before 1917,
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* Britain & colonies before 1752, anywhere else before 1582,
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* and is still in use by some communities) leave out the
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* -year / 100 + year / 400 terms, and add 10.]
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*
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* This algorithm was first published by Gauss (I think).
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*
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* WARNING: this function will overflow on 2106-02-07 06:28:16 on
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* machines where long is 32-bit! (However, as time_t is signed, we
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* will already get problems at other places on 2038-01-19 03:14:08)
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*/
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unsigned long rtc_mktime(const struct rtc_time *tm)
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{
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int mon = tm->mon;
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int year = tm->year;
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int days, hours;
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mon -= 2;
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if (0 >= (int)mon) { /* 1..12 -> 11, 12, 1..10 */
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mon += 12; /* Puts Feb last since it has leap day */
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year -= 1;
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}
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days = (unsigned long)(year / 4 - year / 100 + year / 400 +
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367 * mon / 12 + tm->mday) +
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year * 365 - 719499;
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hours = days * 24 + tm->hour;
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return (hours * 60 + tm->min) * 60 + tm->sec;
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}
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void rtc_display(const struct rtc_time *tm)
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{
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printk(BIOS_INFO, "Date: %5d-%02d-%02d (%sday) Time: %2d:%02d:%02d\n",
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tm->year, tm->mon, tm->mday,
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(tm->wday < 0 || tm->wday > 6) ? "unknown " : weekdays[tm->wday],
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tm->hour, tm->min, tm->sec);
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}
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static int rtc_month_days(unsigned int month, unsigned int year)
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{
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int month_days[12] = { 31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31 };
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return month_days[month] + (LEAP_YEAR(year) && month == 2);
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}
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int rtc_invalid(const struct rtc_time *tm)
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{
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if (tm->sec > 59 || tm->min > 59 || tm->hour > 23 || tm->mon == 0 || tm->mon > 12 ||
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tm->year < 1970 || tm->mday > rtc_month_days(tm->mon - 1, tm->year))
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return 1;
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else
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return 0;
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}
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