mirror of
https://github.com/adafruit/RTClib.git
synced 2026-07-28 04:05:31 +00:00
1675 lines
59 KiB
C++
1675 lines
59 KiB
C++
/**************************************************************************/
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/*!
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@file RTClib.cpp
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@mainpage Adafruit RTClib
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@section intro Introduction
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This is a fork of JeeLab's fantastic real time clock library for Arduino.
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For details on using this library with an RTC module like the DS1307, PCF8523,
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or DS3231, see the guide at:
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https://learn.adafruit.com/ds1307-real-time-clock-breakout-board-kit/overview
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Adafruit invests time and resources providing this open source code,
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please support Adafruit and open-source hardware by purchasing
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products from Adafruit!
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@section classes Available classes
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This library provides the following classes:
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- Classes for manipulating dates, times and durations:
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- DateTime represents a specific point in time; this is the data
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type used for setting and reading the supported RTCs
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- TimeSpan represents the length of a time interval
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- Interfacing specific RTC chips:
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- RTC_DS1307
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- RTC_DS3231
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- RTC_PCF8523
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- RTC emulated in software; do not expect much accuracy out of these:
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- RTC_Millis is based on `millis()`
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- RTC_Micros is based on `micros()`; its drift rate can be tuned by
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the user
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@section license License
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Original library by JeeLabs https://jeelabs.org/pub/docs/rtclib/, released to
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the public domain.
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This version: MIT (see LICENSE)
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*/
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/**************************************************************************/
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#ifdef __AVR_ATtiny85__
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#include <TinyWireM.h>
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#define Wire TinyWireM
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#else
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#include <Wire.h>
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#endif
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#include "RTClib.h"
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#ifdef __AVR__
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#include <avr/pgmspace.h>
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#elif defined(ESP8266)
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#include <pgmspace.h>
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#elif defined(ARDUINO_ARCH_SAMD)
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// nothing special needed
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#elif defined(ARDUINO_SAM_DUE)
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#define PROGMEM
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#define pgm_read_byte(addr) (*(const unsigned char *)(addr))
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#define Wire Wire1
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#endif
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#if (ARDUINO >= 100)
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#include <Arduino.h> // capital A so it is error prone on case-sensitive filesystems
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// Macro to deal with the difference in I2C write functions from old and new
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// Arduino versions.
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#define _I2C_WRITE write ///< Modern I2C write
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#define _I2C_READ read ///< Modern I2C read
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#else
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#include <WProgram.h>
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#define _I2C_WRITE send ///< Legacy I2C write
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#define _I2C_READ receive ///< legacy I2C read
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#endif
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/**************************************************************************/
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/*!
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@brief Read a byte from an I2C register
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@param addr I2C address
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@param reg Register address
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@return Register value
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*/
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/**************************************************************************/
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static uint8_t read_i2c_register(uint8_t addr, uint8_t reg) {
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Wire.beginTransmission(addr);
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Wire._I2C_WRITE((byte)reg);
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Wire.endTransmission();
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Wire.requestFrom(addr, (byte)1);
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return Wire._I2C_READ();
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}
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/**************************************************************************/
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/*!
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@brief Write a byte to an I2C register
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@param addr I2C address
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@param reg Register address
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@param val Value to write
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*/
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/**************************************************************************/
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static void write_i2c_register(uint8_t addr, uint8_t reg, uint8_t val) {
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Wire.beginTransmission(addr);
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Wire._I2C_WRITE((byte)reg);
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Wire._I2C_WRITE((byte)val);
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Wire.endTransmission();
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}
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/**************************************************************************/
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// utility code, some of this could be exposed in the DateTime API if needed
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/**************************************************************************/
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/**
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Number of days in each month, from January to November. December is not
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needed. Omitting it avoids an incompatibility with Paul Stoffregen's Time
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library. C.f. https://github.com/adafruit/RTClib/issues/114
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*/
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const uint8_t daysInMonth[] PROGMEM = {31, 28, 31, 30, 31, 30,
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31, 31, 30, 31, 30};
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/**************************************************************************/
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/*!
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@brief Given a date, return number of days since 2000/01/01,
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valid for 2000--2099
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@param y Year
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@param m Month
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@param d Day
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@return Number of days
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*/
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/**************************************************************************/
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static uint16_t date2days(uint16_t y, uint8_t m, uint8_t d) {
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if (y >= 2000)
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y -= 2000;
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uint16_t days = d;
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for (uint8_t i = 1; i < m; ++i)
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days += pgm_read_byte(daysInMonth + i - 1);
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if (m > 2 && y % 4 == 0)
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++days;
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return days + 365 * y + (y + 3) / 4 - 1;
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}
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/**************************************************************************/
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/*!
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@brief Given a number of days, hours, minutes, and seconds, return the
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total seconds
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@param days Days
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@param h Hours
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@param m Minutes
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@param s Seconds
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@return Number of seconds total
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*/
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/**************************************************************************/
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static uint32_t time2ulong(uint16_t days, uint8_t h, uint8_t m, uint8_t s) {
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return ((days * 24UL + h) * 60 + m) * 60 + s;
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}
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/**************************************************************************/
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/*!
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@brief Constructor from
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[Unix time](https://en.wikipedia.org/wiki/Unix_time).
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This builds a DateTime from an integer specifying the number of seconds
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elapsed since the epoch: 1970-01-01 00:00:00. This number is analogous
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to Unix time, with two small differences:
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- The Unix epoch is specified to be at 00:00:00
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[UTC](https://en.wikipedia.org/wiki/Coordinated_Universal_Time),
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whereas this class has no notion of time zones. The epoch used in
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this class is then at 00:00:00 on whatever time zone the user chooses
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to use, ignoring changes in DST.
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- Unix time is conventionally represented with signed numbers, whereas
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this constructor takes an unsigned argument. Because of this, it does
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_not_ suffer from the
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[year 2038 problem](https://en.wikipedia.org/wiki/Year_2038_problem).
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If called without argument, it returns the earliest time representable
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by this class: 2000-01-01 00:00:00.
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@see The `unixtime()` method is the converse of this constructor.
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@param t Time elapsed in seconds since 1970-01-01 00:00:00.
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*/
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/**************************************************************************/
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DateTime::DateTime(uint32_t t) {
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t -= SECONDS_FROM_1970_TO_2000; // bring to 2000 timestamp from 1970
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ss = t % 60;
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t /= 60;
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mm = t % 60;
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t /= 60;
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hh = t % 24;
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uint16_t days = t / 24;
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uint8_t leap;
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for (yOff = 0;; ++yOff) {
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leap = yOff % 4 == 0;
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if (days < 365U + leap)
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break;
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days -= 365 + leap;
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}
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for (m = 1; m < 12; ++m) {
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uint8_t daysPerMonth = pgm_read_byte(daysInMonth + m - 1);
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if (leap && m == 2)
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++daysPerMonth;
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if (days < daysPerMonth)
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break;
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days -= daysPerMonth;
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}
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d = days + 1;
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}
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/**************************************************************************/
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/*!
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@brief Constructor from (year, month, day, hour, minute, second).
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@warning If the provided parameters are not valid (e.g. 31 February),
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the constructed DateTime will be invalid.
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@see The `isValid()` method can be used to test whether the
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constructed DateTime is valid.
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@param year Either the full year (range: 2000--2099) or the offset from
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year 2000 (range: 0--99).
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@param month Month number (1--12).
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@param day Day of the month (1--31).
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@param hour,min,sec Hour (0--23), minute (0--59) and second (0--59).
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*/
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/**************************************************************************/
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DateTime::DateTime(uint16_t year, uint8_t month, uint8_t day, uint8_t hour,
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uint8_t min, uint8_t sec) {
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if (year >= 2000)
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year -= 2000;
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yOff = year;
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m = month;
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d = day;
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hh = hour;
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mm = min;
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ss = sec;
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}
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/**************************************************************************/
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/*!
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@brief Copy constructor.
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@param copy DateTime to copy.
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*/
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/**************************************************************************/
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DateTime::DateTime(const DateTime ©)
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: yOff(copy.yOff), m(copy.m), d(copy.d), hh(copy.hh), mm(copy.mm),
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ss(copy.ss) {}
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/**************************************************************************/
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/*!
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@brief Convert a string containing two digits to uint8_t, e.g. "09" returns
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9
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@param p Pointer to a string containing two digits
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*/
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/**************************************************************************/
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static uint8_t conv2d(const char *p) {
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uint8_t v = 0;
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if ('0' <= *p && *p <= '9')
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v = *p - '0';
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return 10 * v + *++p - '0';
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}
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/**************************************************************************/
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/*!
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@brief Constructor for generating the build time.
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This constructor expects its parameters to be strings in the format
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generated by the compiler's preprocessor macros `__DATE__` and
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`__TIME__`. Usage:
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```
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DateTime buildTime(__DATE__, __TIME__);
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```
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@note The `F()` macro can be used to reduce the RAM footprint, see
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the next constructor.
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@param date Date string, e.g. "Apr 16 2020".
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@param time Time string, e.g. "18:34:56".
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*/
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/**************************************************************************/
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DateTime::DateTime(const char *date, const char *time) {
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yOff = conv2d(date + 9);
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// Jan Feb Mar Apr May Jun Jul Aug Sep Oct Nov Dec
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switch (date[0]) {
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case 'J':
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m = (date[1] == 'a') ? 1 : ((date[2] == 'n') ? 6 : 7);
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break;
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case 'F':
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m = 2;
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break;
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case 'A':
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m = date[2] == 'r' ? 4 : 8;
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break;
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case 'M':
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m = date[2] == 'r' ? 3 : 5;
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break;
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case 'S':
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m = 9;
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break;
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case 'O':
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m = 10;
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break;
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case 'N':
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m = 11;
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break;
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case 'D':
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m = 12;
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break;
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}
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d = conv2d(date + 4);
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hh = conv2d(time);
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mm = conv2d(time + 3);
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ss = conv2d(time + 6);
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}
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/**************************************************************************/
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/*!
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@brief Memory friendly constructor for generating the build time.
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This version is intended to save RAM by keeping the date and time
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strings in program memory. Use it with the `F()` macro:
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```
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DateTime buildTime(F(__DATE__), F(__TIME__));
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```
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@param date Date PROGMEM string, e.g. F("Apr 16 2020").
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@param time Time PROGMEM string, e.g. F("18:34:56").
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*/
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/**************************************************************************/
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DateTime::DateTime(const __FlashStringHelper *date,
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const __FlashStringHelper *time) {
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char buff[11];
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memcpy_P(buff, date, 11);
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yOff = conv2d(buff + 9);
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// Jan Feb Mar Apr May Jun Jul Aug Sep Oct Nov Dec
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switch (buff[0]) {
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case 'J':
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m = (buff[1] == 'a') ? 1 : ((buff[2] == 'n') ? 6 : 7);
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break;
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case 'F':
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m = 2;
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break;
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case 'A':
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m = buff[2] == 'r' ? 4 : 8;
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break;
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case 'M':
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m = buff[2] == 'r' ? 3 : 5;
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break;
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case 'S':
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m = 9;
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break;
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case 'O':
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m = 10;
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break;
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case 'N':
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m = 11;
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break;
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case 'D':
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m = 12;
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break;
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}
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d = conv2d(buff + 4);
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memcpy_P(buff, time, 8);
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hh = conv2d(buff);
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mm = conv2d(buff + 3);
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ss = conv2d(buff + 6);
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}
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/**************************************************************************/
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/*!
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@brief Constructor for creating a DateTime from an ISO8601 date string.
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This constructor expects its parameters to be a string in the
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https://en.wikipedia.org/wiki/ISO_8601 format, e.g:
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"2020-06-25T15:29:37"
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Usage:
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```
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DateTime dt("2020-06-25T15:29:37");
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```
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@note The year must be > 2000, as only the yOff is considered.
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@param iso8601dateTime
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A dateTime string in iso8601 format,
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e.g. "2020-06-25T15:29:37".
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*/
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/**************************************************************************/
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DateTime::DateTime(const char *iso8601dateTime) {
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char ref[] = "2000-01-01T00:00:00";
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memcpy(ref, iso8601dateTime, min(strlen(ref), strlen(iso8601dateTime)));
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yOff = conv2d(ref + 2);
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m = conv2d(ref + 5);
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d = conv2d(ref + 8);
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hh = conv2d(ref + 11);
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mm = conv2d(ref + 14);
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ss = conv2d(ref + 17);
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}
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/**************************************************************************/
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/*!
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@brief Check whether this DateTime is valid.
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@return true if valid, false if not.
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*/
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/**************************************************************************/
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bool DateTime::isValid() const {
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if (yOff >= 100)
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return false;
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DateTime other(unixtime());
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return yOff == other.yOff && m == other.m && d == other.d && hh == other.hh &&
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mm == other.mm && ss == other.ss;
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}
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/**************************************************************************/
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/*!
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@brief Writes the DateTime as a string in a user-defined format.
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The _buffer_ parameter should be initialized by the caller with a string
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specifying the requested format. This format string may contain any of
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the following specifiers:
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|
| specifier | output |
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|-----------|--------------------------------------------------------|
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| YYYY | the year as a 4-digit number (2000--2099) |
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| YY | the year as a 2-digit number (00--99) |
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| MM | the month as a 2-digit number (01--12) |
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| MMM | the abbreviated English month name ("Jan"--"Dec") |
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| DD | the day as a 2-digit number (01--31) |
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| DDD | the abbreviated English day of the week ("Mon"--"Sun") |
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| AP | either "AM" or "PM" |
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| ap | either "am" or "pm" |
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| hh | the hour as a 2-digit number (00--23 or 01--12) |
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| mm | the minute as a 2-digit number (00--59) |
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| ss | the second as a 2-digit number (00--59) |
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If either "AP" or "ap" is used, the "hh" specifier uses 12-hour mode
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(range: 01--12). Otherwise it works in 24-hour mode (range: 00--23).
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The specifiers within _buffer_ will be overwritten with the appropriate
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values from the DateTime. Any characters not belonging to one of the
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above specifiers are left as-is.
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__Example__: The format "DDD, DD MMM YYYY hh:mm:ss" generates an output
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of the form "Thu, 16 Apr 2020 18:34:56.
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|
|
@see The `timestamp()` method provides similar functionnality, but it
|
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returns a `String` object and supports a limited choice of
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predefined formats.
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@param[in,out] buffer Array of `char` for holding the format description
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and the formatted DateTime. Before calling this method, the buffer
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should be initialized by the user with the format string. The method
|
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will overwrite the buffer with the formatted date and/or time.
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|
|
@return A pointer to the provided buffer. This is returned for
|
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convenience, in order to enable idioms such as
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`Serial.println(now.toString(buffer));`
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*/
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/**************************************************************************/
|
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char *DateTime::toString(char *buffer) {
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uint8_t apTag =
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(strstr(buffer, "ap") != nullptr) || (strstr(buffer, "AP") != nullptr);
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uint8_t hourReformatted, isPM;
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if (apTag) { // 12 Hour Mode
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if (hh == 0) { // midnight
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isPM = false;
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hourReformatted = 12;
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} else if (hh == 12) { // noon
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isPM = true;
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hourReformatted = 12;
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} else if (hh < 12) { // morning
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isPM = false;
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hourReformatted = hh;
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} else { // 1 o'clock or after
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isPM = true;
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hourReformatted = hh - 12;
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}
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|
}
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|
for (size_t i = 0; i < strlen(buffer) - 1; i++) {
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if (buffer[i] == 'h' && buffer[i + 1] == 'h') {
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if (!apTag) { // 24 Hour Mode
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|
buffer[i] = '0' + hh / 10;
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buffer[i + 1] = '0' + hh % 10;
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} else { // 12 Hour Mode
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buffer[i] = '0' + hourReformatted / 10;
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buffer[i + 1] = '0' + hourReformatted % 10;
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}
|
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}
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if (buffer[i] == 'm' && buffer[i + 1] == 'm') {
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buffer[i] = '0' + mm / 10;
|
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buffer[i + 1] = '0' + mm % 10;
|
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}
|
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if (buffer[i] == 's' && buffer[i + 1] == 's') {
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buffer[i] = '0' + ss / 10;
|
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buffer[i + 1] = '0' + ss % 10;
|
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}
|
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if (buffer[i] == 'D' && buffer[i + 1] == 'D' && buffer[i + 2] == 'D') {
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static PROGMEM const char day_names[] = "SunMonTueWedThuFriSat";
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const char *p = &day_names[3 * dayOfTheWeek()];
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buffer[i] = pgm_read_byte(p);
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buffer[i + 1] = pgm_read_byte(p + 1);
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buffer[i + 2] = pgm_read_byte(p + 2);
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} else if (buffer[i] == 'D' && buffer[i + 1] == 'D') {
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buffer[i] = '0' + d / 10;
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buffer[i + 1] = '0' + d % 10;
|
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}
|
|
if (buffer[i] == 'M' && buffer[i + 1] == 'M' && buffer[i + 2] == 'M') {
|
|
static PROGMEM const char month_names[] =
|
|
"JanFebMarAprMayJunJulAugSepOctNovDec";
|
|
const char *p = &month_names[3 * (m - 1)];
|
|
buffer[i] = pgm_read_byte(p);
|
|
buffer[i + 1] = pgm_read_byte(p + 1);
|
|
buffer[i + 2] = pgm_read_byte(p + 2);
|
|
} else if (buffer[i] == 'M' && buffer[i + 1] == 'M') {
|
|
buffer[i] = '0' + m / 10;
|
|
buffer[i + 1] = '0' + m % 10;
|
|
}
|
|
if (buffer[i] == 'Y' && buffer[i + 1] == 'Y' && buffer[i + 2] == 'Y' &&
|
|
buffer[i + 3] == 'Y') {
|
|
buffer[i] = '2';
|
|
buffer[i + 1] = '0';
|
|
buffer[i + 2] = '0' + (yOff / 10) % 10;
|
|
buffer[i + 3] = '0' + yOff % 10;
|
|
} else if (buffer[i] == 'Y' && buffer[i + 1] == 'Y') {
|
|
buffer[i] = '0' + (yOff / 10) % 10;
|
|
buffer[i + 1] = '0' + yOff % 10;
|
|
}
|
|
if (buffer[i] == 'A' && buffer[i + 1] == 'P') {
|
|
if (isPM) {
|
|
buffer[i] = 'P';
|
|
buffer[i + 1] = 'M';
|
|
} else {
|
|
buffer[i] = 'A';
|
|
buffer[i + 1] = 'M';
|
|
}
|
|
} else if (buffer[i] == 'a' && buffer[i + 1] == 'p') {
|
|
if (isPM) {
|
|
buffer[i] = 'p';
|
|
buffer[i + 1] = 'm';
|
|
} else {
|
|
buffer[i] = 'a';
|
|
buffer[i + 1] = 'm';
|
|
}
|
|
}
|
|
}
|
|
return buffer;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Return the hour in 12-hour format.
|
|
@return Hour (1--12).
|
|
*/
|
|
/**************************************************************************/
|
|
uint8_t DateTime::twelveHour() const {
|
|
if (hh == 0 || hh == 12) { // midnight or noon
|
|
return 12;
|
|
} else if (hh > 12) { // 1 o'clock or later
|
|
return hh - 12;
|
|
} else { // morning
|
|
return hh;
|
|
}
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Return the day of the week.
|
|
@return Day of week as an integer from 0 (Sunday) to 6 (Saturday).
|
|
*/
|
|
/**************************************************************************/
|
|
uint8_t DateTime::dayOfTheWeek() const {
|
|
uint16_t day = date2days(yOff, m, d);
|
|
return (day + 6) % 7; // Jan 1, 2000 is a Saturday, i.e. returns 6
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Return Unix time: seconds since 1 Jan 1970.
|
|
|
|
@see The `DateTime::DateTime(uint32_t)` constructor is the converse of
|
|
this method.
|
|
|
|
@return Number of seconds since 1970-01-01 00:00:00.
|
|
*/
|
|
/**************************************************************************/
|
|
uint32_t DateTime::unixtime(void) const {
|
|
uint32_t t;
|
|
uint16_t days = date2days(yOff, m, d);
|
|
t = time2ulong(days, hh, mm, ss);
|
|
t += SECONDS_FROM_1970_TO_2000; // seconds from 1970 to 2000
|
|
|
|
return t;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Convert the DateTime to seconds since 1 Jan 2000
|
|
|
|
The result can be converted back to a DateTime with:
|
|
|
|
```cpp
|
|
DateTime(SECONDS_FROM_1970_TO_2000 + value)
|
|
```
|
|
|
|
@return Number of seconds since 2000-01-01 00:00:00.
|
|
*/
|
|
/**************************************************************************/
|
|
uint32_t DateTime::secondstime(void) const {
|
|
uint32_t t;
|
|
uint16_t days = date2days(yOff, m, d);
|
|
t = time2ulong(days, hh, mm, ss);
|
|
return t;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Add a TimeSpan to the DateTime object
|
|
@param span TimeSpan object
|
|
@return New DateTime object with span added to it.
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime DateTime::operator+(const TimeSpan &span) {
|
|
return DateTime(unixtime() + span.totalseconds());
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Subtract a TimeSpan from the DateTime object
|
|
@param span TimeSpan object
|
|
@return New DateTime object with span subtracted from it.
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime DateTime::operator-(const TimeSpan &span) {
|
|
return DateTime(unixtime() - span.totalseconds());
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Subtract one DateTime from another
|
|
|
|
@note Since a TimeSpan cannot be negative, the subtracted DateTime
|
|
should be less (earlier) than or equal to the one it is
|
|
subtracted from.
|
|
|
|
@param right The DateTime object to subtract from self (the left object)
|
|
@return TimeSpan of the difference between DateTimes.
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan DateTime::operator-(const DateTime &right) {
|
|
return TimeSpan(unixtime() - right.unixtime());
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@author Anton Rieutskyi
|
|
@brief Test if one DateTime is less (earlier) than another.
|
|
@warning if one or both DateTime objects are invalid, returned value is
|
|
meaningless
|
|
@see use `isValid()` method to check if DateTime object is valid
|
|
@param right Comparison DateTime object
|
|
@return True if the left DateTime is earlier than the right one,
|
|
false otherwise.
|
|
*/
|
|
/**************************************************************************/
|
|
bool DateTime::operator<(const DateTime &right) const {
|
|
return (yOff + 2000 < right.year() ||
|
|
(yOff + 2000 == right.year() &&
|
|
(m < right.month() ||
|
|
(m == right.month() &&
|
|
(d < right.day() ||
|
|
(d == right.day() &&
|
|
(hh < right.hour() ||
|
|
(hh == right.hour() &&
|
|
(mm < right.minute() ||
|
|
(mm == right.minute() && ss < right.second()))))))))));
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@author Anton Rieutskyi
|
|
@brief Test if two DateTime objects are equal.
|
|
@warning if one or both DateTime objects are invalid, returned value is
|
|
meaningless
|
|
@see use `isValid()` method to check if DateTime object is valid
|
|
@param right Comparison DateTime object
|
|
@return True if both DateTime objects are the same, false otherwise.
|
|
*/
|
|
/**************************************************************************/
|
|
bool DateTime::operator==(const DateTime &right) const {
|
|
return (right.year() == yOff + 2000 && right.month() == m &&
|
|
right.day() == d && right.hour() == hh && right.minute() == mm &&
|
|
right.second() == ss);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Return a ISO 8601 timestamp as a `String` object.
|
|
|
|
The generated timestamp conforms to one of the predefined, ISO
|
|
8601-compatible formats for representing the date (if _opt_ is
|
|
`TIMESTAMP_DATE`), the time (`TIMESTAMP_TIME`), or both
|
|
(`TIMESTAMP_FULL`).
|
|
|
|
@see The `toString()` method provides more general string formatting.
|
|
|
|
@param opt Format of the timestamp
|
|
@return Timestamp string, e.g. "2020-04-16T18:34:56".
|
|
*/
|
|
/**************************************************************************/
|
|
String DateTime::timestamp(timestampOpt opt) {
|
|
char buffer[25]; // large enough for any DateTime, including invalid ones
|
|
|
|
// Generate timestamp according to opt
|
|
switch (opt) {
|
|
case TIMESTAMP_TIME:
|
|
// Only time
|
|
sprintf(buffer, "%02d:%02d:%02d", hh, mm, ss);
|
|
break;
|
|
case TIMESTAMP_DATE:
|
|
// Only date
|
|
sprintf(buffer, "%d-%02d-%02d", 2000 + yOff, m, d);
|
|
break;
|
|
default:
|
|
// Full
|
|
sprintf(buffer, "%d-%02d-%02dT%02d:%02d:%02d", 2000 + yOff, m, d, hh, mm,
|
|
ss);
|
|
}
|
|
return String(buffer);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Create a new TimeSpan object in seconds
|
|
@param seconds Number of seconds
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan::TimeSpan(int32_t seconds) : _seconds(seconds) {}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Create a new TimeSpan object using a number of
|
|
days/hours/minutes/seconds e.g. Make a TimeSpan of 3 hours and 45 minutes:
|
|
new TimeSpan(0, 3, 45, 0);
|
|
@param days Number of days
|
|
@param hours Number of hours
|
|
@param minutes Number of minutes
|
|
@param seconds Number of seconds
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan::TimeSpan(int16_t days, int8_t hours, int8_t minutes, int8_t seconds)
|
|
: _seconds((int32_t)days * 86400L + (int32_t)hours * 3600 +
|
|
(int32_t)minutes * 60 + seconds) {}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Copy constructor, make a new TimeSpan using an existing one
|
|
@param copy The TimeSpan to copy
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan::TimeSpan(const TimeSpan ©) : _seconds(copy._seconds) {}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Add two TimeSpans
|
|
@param right TimeSpan to add
|
|
@return New TimeSpan object, sum of left and right
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan TimeSpan::operator+(const TimeSpan &right) {
|
|
return TimeSpan(_seconds + right._seconds);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Subtract a TimeSpan
|
|
@param right TimeSpan to subtract
|
|
@return New TimeSpan object, right subtracted from left
|
|
*/
|
|
/**************************************************************************/
|
|
TimeSpan TimeSpan::operator-(const TimeSpan &right) {
|
|
return TimeSpan(_seconds - right._seconds);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Convert a binary coded decimal value to binary. RTC stores time/date
|
|
values as BCD.
|
|
@param val BCD value
|
|
@return Binary value
|
|
*/
|
|
/**************************************************************************/
|
|
static uint8_t bcd2bin(uint8_t val) { return val - 6 * (val >> 4); }
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Convert a binary value to BCD format for the RTC registers
|
|
@param val Binary value
|
|
@return BCD value
|
|
*/
|
|
/**************************************************************************/
|
|
static uint8_t bin2bcd(uint8_t val) { return val + 6 * (val / 10); }
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Start I2C for the DS1307 and test succesful connection
|
|
@return True if Wire can find DS1307 or false otherwise.
|
|
*/
|
|
/**************************************************************************/
|
|
boolean RTC_DS1307::begin(void) {
|
|
Wire.begin();
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
if (Wire.endTransmission() == 0)
|
|
return true;
|
|
return false;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Is the DS1307 running? Check the Clock Halt bit in register 0
|
|
@return 1 if the RTC is running, 0 if not
|
|
*/
|
|
/**************************************************************************/
|
|
uint8_t RTC_DS1307::isrunning(void) {
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE((byte)0);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(DS1307_ADDRESS, 1);
|
|
uint8_t ss = Wire._I2C_READ();
|
|
return !(ss >> 7);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the date and time in the DS1307
|
|
@param dt DateTime object containing the desired date/time
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS1307::adjust(const DateTime &dt) {
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE((byte)0); // start at location 0
|
|
Wire._I2C_WRITE(bin2bcd(dt.second()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.minute()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.hour()));
|
|
Wire._I2C_WRITE(bin2bcd(0));
|
|
Wire._I2C_WRITE(bin2bcd(dt.day()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.month()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.year() - 2000));
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get the current date and time from the DS1307
|
|
@return DateTime object containing the current date and time
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime RTC_DS1307::now() {
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE((byte)0);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(DS1307_ADDRESS, 7);
|
|
uint8_t ss = bcd2bin(Wire._I2C_READ() & 0x7F);
|
|
uint8_t mm = bcd2bin(Wire._I2C_READ());
|
|
uint8_t hh = bcd2bin(Wire._I2C_READ());
|
|
Wire._I2C_READ();
|
|
uint8_t d = bcd2bin(Wire._I2C_READ());
|
|
uint8_t m = bcd2bin(Wire._I2C_READ());
|
|
uint16_t y = bcd2bin(Wire._I2C_READ()) + 2000;
|
|
|
|
return DateTime(y, m, d, hh, mm, ss);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Read the current mode of the SQW pin
|
|
@return Mode as Ds1307SqwPinMode enum
|
|
*/
|
|
/**************************************************************************/
|
|
Ds1307SqwPinMode RTC_DS1307::readSqwPinMode() {
|
|
int mode;
|
|
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE(DS1307_CONTROL);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom((uint8_t)DS1307_ADDRESS, (uint8_t)1);
|
|
mode = Wire._I2C_READ();
|
|
|
|
mode &= 0x93;
|
|
return static_cast<Ds1307SqwPinMode>(mode);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Change the SQW pin mode
|
|
@param mode The mode to use
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS1307::writeSqwPinMode(Ds1307SqwPinMode mode) {
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE(DS1307_CONTROL);
|
|
Wire._I2C_WRITE(mode);
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Read data from the DS1307's NVRAM
|
|
@param buf Pointer to a buffer to store the data - make sure it's large
|
|
enough to hold size bytes
|
|
@param size Number of bytes to read
|
|
@param address Starting NVRAM address, from 0 to 55
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS1307::readnvram(uint8_t *buf, uint8_t size, uint8_t address) {
|
|
int addrByte = DS1307_NVRAM + address;
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE(addrByte);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom((uint8_t)DS1307_ADDRESS, size);
|
|
for (uint8_t pos = 0; pos < size; ++pos) {
|
|
buf[pos] = Wire._I2C_READ();
|
|
}
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Write data to the DS1307 NVRAM
|
|
@param address Starting NVRAM address, from 0 to 55
|
|
@param buf Pointer to buffer containing the data to write
|
|
@param size Number of bytes in buf to write to NVRAM
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS1307::writenvram(uint8_t address, uint8_t *buf, uint8_t size) {
|
|
int addrByte = DS1307_NVRAM + address;
|
|
Wire.beginTransmission(DS1307_ADDRESS);
|
|
Wire._I2C_WRITE(addrByte);
|
|
for (uint8_t pos = 0; pos < size; ++pos) {
|
|
Wire._I2C_WRITE(buf[pos]);
|
|
}
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Shortcut to read one byte from NVRAM
|
|
@param address NVRAM address, 0 to 55
|
|
@return The byte read from NVRAM
|
|
*/
|
|
/**************************************************************************/
|
|
uint8_t RTC_DS1307::readnvram(uint8_t address) {
|
|
uint8_t data;
|
|
readnvram(&data, 1, address);
|
|
return data;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Shortcut to write one byte to NVRAM
|
|
@param address NVRAM address, 0 to 55
|
|
@param data One byte to write
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS1307::writenvram(uint8_t address, uint8_t data) {
|
|
writenvram(address, &data, 1);
|
|
}
|
|
|
|
/** Alignment between the milis() timescale and the Unix timescale. These
|
|
two variables are updated on each call to now(), which prevents
|
|
rollover issues. Note that lastMillis is **not** the millis() value
|
|
of the last call to now(): it's the millis() value corresponding to
|
|
the last **full second** of Unix time. */
|
|
uint32_t RTC_Millis::lastMillis;
|
|
uint32_t RTC_Millis::lastUnix;
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the current date/time of the RTC_Millis clock.
|
|
@param dt DateTime object with the desired date and time
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_Millis::adjust(const DateTime &dt) {
|
|
lastMillis = millis();
|
|
lastUnix = dt.unixtime();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Return a DateTime object containing the current date/time.
|
|
Note that computing (millis() - lastMillis) is rollover-safe as long
|
|
as this method is called at least once every 49.7 days.
|
|
@return DateTime object containing current time
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime RTC_Millis::now() {
|
|
uint32_t elapsedSeconds = (millis() - lastMillis) / 1000;
|
|
lastMillis += elapsedSeconds * 1000;
|
|
lastUnix += elapsedSeconds;
|
|
return lastUnix;
|
|
}
|
|
|
|
/** Number of microseconds reported by micros() per "true" (calibrated) second.
|
|
*/
|
|
uint32_t RTC_Micros::microsPerSecond = 1000000;
|
|
|
|
/** The timing logic is identical to RTC_Millis. */
|
|
uint32_t RTC_Micros::lastMicros;
|
|
uint32_t RTC_Micros::lastUnix;
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the current date/time of the RTC_Micros clock.
|
|
@param dt DateTime object with the desired date and time
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_Micros::adjust(const DateTime &dt) {
|
|
lastMicros = micros();
|
|
lastUnix = dt.unixtime();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Adjust the RTC_Micros clock to compensate for system clock drift
|
|
@param ppm Adjustment to make
|
|
*/
|
|
/**************************************************************************/
|
|
// A positive adjustment makes the clock faster.
|
|
void RTC_Micros::adjustDrift(int ppm) { microsPerSecond = 1000000 - ppm; }
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get the current date/time from the RTC_Micros clock.
|
|
@return DateTime object containing the current date/time
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime RTC_Micros::now() {
|
|
uint32_t elapsedSeconds = (micros() - lastMicros) / microsPerSecond;
|
|
lastMicros += elapsedSeconds * microsPerSecond;
|
|
lastUnix += elapsedSeconds;
|
|
return lastUnix;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Start I2C for the PCF8523 and test succesful connection
|
|
@return True if Wire can find PCF8523 or false otherwise.
|
|
*/
|
|
/**************************************************************************/
|
|
boolean RTC_PCF8523::begin(void) {
|
|
Wire.begin();
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
if (Wire.endTransmission() == 0)
|
|
return true;
|
|
return false;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Check the status register Oscillator Stop flag to see if the PCF8523
|
|
stopped due to power loss
|
|
@details When battery or external power is first applied, the PCF8523's
|
|
crystal oscillator takes up to 2s to stabilize. During this time adjust()
|
|
cannot clear the 'OS' flag. See datasheet OS flag section for details.
|
|
@return True if the bit is set (oscillator is or has stopped) and false only
|
|
after the bit is cleared, for instance with adjust()
|
|
*/
|
|
/**************************************************************************/
|
|
boolean RTC_PCF8523::lostPower(void) {
|
|
return (read_i2c_register(PCF8523_ADDRESS, PCF8523_STATUSREG) >> 7);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Check control register 3 to see if we've run adjust() yet (setting
|
|
the date/time and battery switchover mode)
|
|
@return True if the PCF8523 has been set up, false if not
|
|
*/
|
|
/**************************************************************************/
|
|
boolean RTC_PCF8523::initialized(void) {
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE((byte)PCF8523_CONTROL_3);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(PCF8523_ADDRESS, 1);
|
|
uint8_t ss = Wire._I2C_READ();
|
|
return ((ss & 0xE0) != 0xE0); // 0xE0 = standby mode, set after power out
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the date and time, set battery switchover mode
|
|
@param dt DateTime to set
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::adjust(const DateTime &dt) {
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE((byte)3); // start at location 3
|
|
Wire._I2C_WRITE(bin2bcd(dt.second()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.minute()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.hour()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.day()));
|
|
Wire._I2C_WRITE(bin2bcd(0)); // skip weekdays
|
|
Wire._I2C_WRITE(bin2bcd(dt.month()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.year() - 2000));
|
|
Wire.endTransmission();
|
|
|
|
// set to battery switchover mode
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE((byte)PCF8523_CONTROL_3);
|
|
Wire._I2C_WRITE((byte)0x00);
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get the current date/time
|
|
@return DateTime object containing the current date/time
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime RTC_PCF8523::now() {
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE((byte)3);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(PCF8523_ADDRESS, 7);
|
|
uint8_t ss = bcd2bin(Wire._I2C_READ() & 0x7F);
|
|
uint8_t mm = bcd2bin(Wire._I2C_READ());
|
|
uint8_t hh = bcd2bin(Wire._I2C_READ());
|
|
uint8_t d = bcd2bin(Wire._I2C_READ());
|
|
Wire._I2C_READ(); // skip 'weekdays'
|
|
uint8_t m = bcd2bin(Wire._I2C_READ());
|
|
uint16_t y = bcd2bin(Wire._I2C_READ()) + 2000;
|
|
|
|
return DateTime(y, m, d, hh, mm, ss);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Resets the STOP bit in register Control_1
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::start(void) {
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1);
|
|
if (ctlreg & (1 << 5)) {
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1, ctlreg & ~(1 << 5));
|
|
}
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Sets the STOP bit in register Control_1
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::stop(void) {
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1);
|
|
if (!(ctlreg & (1 << 5))) {
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1, ctlreg | (1 << 5));
|
|
}
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Is the PCF8523 running? Check the STOP bit in register Control_1
|
|
@return 1 if the RTC is running, 0 if not
|
|
*/
|
|
/**************************************************************************/
|
|
uint8_t RTC_PCF8523::isrunning() {
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1);
|
|
return !((ctlreg >> 5) & 1);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Read the mode of the INT/SQW pin on the PCF8523
|
|
@return SQW pin mode as a #Pcf8523SqwPinMode enum
|
|
*/
|
|
/**************************************************************************/
|
|
Pcf8523SqwPinMode RTC_PCF8523::readSqwPinMode() {
|
|
int mode;
|
|
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE(PCF8523_CLKOUTCONTROL);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom((uint8_t)PCF8523_ADDRESS, (uint8_t)1);
|
|
mode = Wire._I2C_READ();
|
|
|
|
mode >>= 3;
|
|
mode &= 0x7;
|
|
return static_cast<Pcf8523SqwPinMode>(mode);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the INT/SQW pin mode on the PCF8523
|
|
@param mode The mode to set, see the #Pcf8523SqwPinMode enum for options
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::writeSqwPinMode(Pcf8523SqwPinMode mode) {
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE(PCF8523_CLKOUTCONTROL);
|
|
Wire._I2C_WRITE(mode << 3); // disables other timers
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Enable the Second Timer (1Hz) Interrupt on the PCF8523.
|
|
@details The INT/SQW pin will pull low for a brief pulse once per second.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::enableSecondTimer() {
|
|
// Leave compatible settings intact
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1);
|
|
uint8_t clkreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL);
|
|
|
|
// TAM pulse int. mode (shared with Timer A), CLKOUT (aka SQW) disabled
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL, clkreg | 0xB8);
|
|
|
|
// SIE Second timer int. enable
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1, ctlreg | (1 << 2));
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Disable the Second Timer (1Hz) Interrupt on the PCF8523.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::disableSecondTimer() {
|
|
// Leave compatible settings intact
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1);
|
|
|
|
// SIE Second timer int. disable
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_1, ctlreg & ~(1 << 2));
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Enable the Countdown Timer Interrupt on the PCF8523.
|
|
@details The INT/SQW pin will be pulled low at the end of a specified
|
|
countdown period ranging from 244 microseconds to 10.625 days.
|
|
Uses PCF8523 Timer B. Any existing CLKOUT square wave, configured with
|
|
writeSqwPinMode(), will halt. The interrupt low pulse width is adjustable
|
|
from 3/64ths (default) to 14/64ths of a second.
|
|
@param clkFreq One of the PCF8523's Timer Source Clock Frequencies.
|
|
See the #PCF8523TimerClockFreq enum for options and associated time ranges.
|
|
@param numPeriods The number of clkFreq periods (1-255) to count down.
|
|
@param lowPulseWidth Optional: the length of time for the interrupt pin
|
|
low pulse. See the #PCF8523TimerIntPulse enum for options.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::enableCountdownTimer(PCF8523TimerClockFreq clkFreq,
|
|
uint8_t numPeriods,
|
|
uint8_t lowPulseWidth) {
|
|
// Datasheet cautions against updating countdown value while it's running,
|
|
// so disabling allows repeated calls with new values to set new countdowns
|
|
disableCountdownTimer();
|
|
|
|
// Leave compatible settings intact
|
|
uint8_t ctlreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_2);
|
|
uint8_t clkreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL);
|
|
|
|
// CTBIE Countdown Timer B Interrupt Enabled
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_2, ctlreg |= 0x01);
|
|
|
|
// Timer B source clock frequency, optionally int. low pulse width
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_TIMER_B_FRCTL,
|
|
lowPulseWidth << 4 | clkFreq);
|
|
|
|
// Timer B value (number of source clock periods)
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_TIMER_B_VALUE, numPeriods);
|
|
|
|
// TBM Timer B pulse int. mode, CLKOUT (aka SQW) disabled, TBC start Timer B
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL, clkreg | 0x79);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@overload
|
|
@brief Enable Countdown Timer using default interrupt low pulse width.
|
|
@param clkFreq One of the PCF8523's Timer Source Clock Frequencies.
|
|
See the #PCF8523TimerClockFreq enum for options and associated time ranges.
|
|
@param numPeriods The number of clkFreq periods (1-255) to count down.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::enableCountdownTimer(PCF8523TimerClockFreq clkFreq,
|
|
uint8_t numPeriods) {
|
|
enableCountdownTimer(clkFreq, numPeriods, 0);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Disable the Countdown Timer Interrupt on the PCF8523.
|
|
@details For simplicity, this function strictly disables Timer B by setting
|
|
TBC to 0. The datasheet describes TBC as the Timer B on/off switch.
|
|
Timer B is the only countdown timer implemented at this time.
|
|
The following flags have no effect while TBC is off, they are *not* cleared:
|
|
- TBM: Timer B will still be set to pulsed mode.
|
|
- CTBIE: Timer B interrupt would be triggered if TBC were on.
|
|
- CTBF: Timer B flag indicates that interrupt was triggered. Though
|
|
typically used for non-pulsed mode, user may wish to query this later.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::disableCountdownTimer() {
|
|
// Leave compatible settings intact
|
|
uint8_t clkreg = read_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL);
|
|
|
|
// TBC disable to stop Timer B clock
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL, ~1 & clkreg);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Stop all timers, clear their flags and settings on the PCF8523.
|
|
@details This includes the Countdown Timer, Second Timer, and any CLKOUT
|
|
square wave configured with writeSqwPinMode().
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::deconfigureAllTimers() {
|
|
disableSecondTimer(); // Surgically clears CONTROL_1
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CONTROL_2, 0);
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_CLKOUTCONTROL, 0);
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_TIMER_B_FRCTL, 0);
|
|
write_i2c_register(PCF8523_ADDRESS, PCF8523_TIMER_B_VALUE, 0);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Compensate the drift of the RTC.
|
|
@details This method sets the "offset" register of the PCF8523,
|
|
which can be used to correct a previously measured drift rate.
|
|
Two correction modes are available:
|
|
|
|
- **PCF8523\_TwoHours**: Clock adjustments are performed on
|
|
`offset` consecutive minutes every two hours. This is the most
|
|
energy-efficient mode.
|
|
|
|
- **PCF8523\_OneMinute**: Clock adjustments are performed on
|
|
`offset` consecutive seconds every minute. Extra adjustments are
|
|
performed on the last second of the minute is `abs(offset)>60`.
|
|
|
|
The `offset` parameter sets the correction amount in units of
|
|
roughly 4 ppm. The exact unit depends on the selected mode:
|
|
|
|
| mode | offset unit |
|
|
|---------------------|----------------------------------------|
|
|
| `PCF8523_TwoHours` | 4.340 ppm = 0.375 s/day = 2.625 s/week |
|
|
| `PCF8523_OneMinute` | 4.069 ppm = 0.352 s/day = 2.461 s/week |
|
|
|
|
See the accompanying sketch pcf8523.ino for an example on how to
|
|
use this method.
|
|
|
|
@param mode Correction mode, either `PCF8523_TwoHours` or
|
|
`PCF8523_OneMinute`.
|
|
@param offset Correction amount, from -64 to +63. A positive offset
|
|
makes the clock slower.
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_PCF8523::calibrate(Pcf8523OffsetMode mode, int8_t offset) {
|
|
uint8_t reg = (uint8_t)offset & 0x7F;
|
|
reg |= mode;
|
|
|
|
Wire.beginTransmission(PCF8523_ADDRESS);
|
|
Wire._I2C_WRITE(PCF8523_OFFSET);
|
|
Wire._I2C_WRITE(reg);
|
|
Wire.endTransmission();
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Convert the day of the week to a representation suitable for
|
|
storing in the DS3231: from 1 (Monday) to 7 (Sunday).
|
|
@param d Day of the week as represented by the library:
|
|
from 0 (Sunday) to 6 (Saturday).
|
|
*/
|
|
/**************************************************************************/
|
|
static uint8_t dowToDS3231(uint8_t d) { return d == 0 ? 7 : d; }
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Start I2C for the DS3231 and test succesful connection
|
|
@return True if Wire can find DS3231 or false otherwise.
|
|
*/
|
|
/**************************************************************************/
|
|
boolean RTC_DS3231::begin(void) {
|
|
Wire.begin();
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
if (Wire.endTransmission() == 0)
|
|
return true;
|
|
return false;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Check the status register Oscillator Stop Flag to see if the DS3231
|
|
stopped due to power loss
|
|
@return True if the bit is set (oscillator stopped) or false if it is
|
|
running
|
|
*/
|
|
/**************************************************************************/
|
|
bool RTC_DS3231::lostPower(void) {
|
|
return (read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG) >> 7);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the date and flip the Oscillator Stop Flag
|
|
@param dt DateTime object containing the date/time to set
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::adjust(const DateTime &dt) {
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE((byte)DS3231_TIME); // start at location 0
|
|
Wire._I2C_WRITE(bin2bcd(dt.second()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.minute()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.hour()));
|
|
// The RTC must know the day of the week for the weekly alarms to work.
|
|
Wire._I2C_WRITE(bin2bcd(dowToDS3231(dt.dayOfTheWeek())));
|
|
Wire._I2C_WRITE(bin2bcd(dt.day()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.month()));
|
|
Wire._I2C_WRITE(bin2bcd(dt.year() - 2000));
|
|
Wire.endTransmission();
|
|
|
|
uint8_t statreg = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
statreg &= ~0x80; // flip OSF bit
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG, statreg);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get the current date/time
|
|
@return DateTime object with the current date/time
|
|
*/
|
|
/**************************************************************************/
|
|
DateTime RTC_DS3231::now() {
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE((byte)0);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(DS3231_ADDRESS, 7);
|
|
uint8_t ss = bcd2bin(Wire._I2C_READ() & 0x7F);
|
|
uint8_t mm = bcd2bin(Wire._I2C_READ());
|
|
uint8_t hh = bcd2bin(Wire._I2C_READ());
|
|
Wire._I2C_READ();
|
|
uint8_t d = bcd2bin(Wire._I2C_READ());
|
|
uint8_t m = bcd2bin(Wire._I2C_READ());
|
|
uint16_t y = bcd2bin(Wire._I2C_READ()) + 2000;
|
|
|
|
return DateTime(y, m, d, hh, mm, ss);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Read the SQW pin mode
|
|
@return Pin mode, see Ds3231SqwPinMode enum
|
|
*/
|
|
/**************************************************************************/
|
|
Ds3231SqwPinMode RTC_DS3231::readSqwPinMode() {
|
|
int mode;
|
|
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE(DS3231_CONTROL);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom((uint8_t)DS3231_ADDRESS, (uint8_t)1);
|
|
mode = Wire._I2C_READ();
|
|
|
|
mode &= 0x93;
|
|
return static_cast<Ds3231SqwPinMode>(mode);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set the SQW pin mode
|
|
@param mode Desired mode, see Ds3231SqwPinMode enum
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::writeSqwPinMode(Ds3231SqwPinMode mode) {
|
|
uint8_t ctrl;
|
|
ctrl = read_i2c_register(DS3231_ADDRESS, DS3231_CONTROL);
|
|
|
|
ctrl &= ~0x04; // turn off INTCON
|
|
ctrl &= ~0x18; // set freq bits to 0
|
|
|
|
if (mode == DS3231_OFF) {
|
|
ctrl |= 0x04; // turn on INTCN
|
|
} else {
|
|
ctrl |= mode;
|
|
}
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_CONTROL, ctrl);
|
|
|
|
// Serial.println( read_i2c_register(DS3231_ADDRESS, DS3231_CONTROL), HEX);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get the current temperature from the DS3231's temperature sensor
|
|
@return Current temperature (float)
|
|
*/
|
|
/**************************************************************************/
|
|
float RTC_DS3231::getTemperature() {
|
|
uint8_t lsb;
|
|
int8_t msb;
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE(DS3231_TEMPERATUREREG);
|
|
Wire.endTransmission();
|
|
|
|
Wire.requestFrom(DS3231_ADDRESS, 2);
|
|
msb = Wire._I2C_READ();
|
|
lsb = Wire._I2C_READ();
|
|
|
|
// Serial.print("msb=");
|
|
// Serial.print(msb,HEX);
|
|
// Serial.print(", lsb=");
|
|
// Serial.println(lsb,HEX);
|
|
|
|
return (float)msb + (lsb >> 6) * 0.25f;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set alarm 1 for DS3231
|
|
@param dt DateTime object
|
|
@param alarm_mode Desired mode, see Ds3231Alarm1Mode enum
|
|
@return False if control register is not set, otherwise true
|
|
*/
|
|
/**************************************************************************/
|
|
bool RTC_DS3231::setAlarm1(const DateTime &dt, Ds3231Alarm1Mode alarm_mode) {
|
|
uint8_t ctrl = read_i2c_register(DS3231_ADDRESS, DS3231_CONTROL);
|
|
if (!(ctrl & 0x04)) {
|
|
return false;
|
|
}
|
|
|
|
uint8_t A1M1 = (alarm_mode & 0x01) << 7; // Seconds bit 7.
|
|
uint8_t A1M2 = (alarm_mode & 0x02) << 6; // Minutes bit 7.
|
|
uint8_t A1M3 = (alarm_mode & 0x04) << 5; // Hour bit 7.
|
|
uint8_t A1M4 = (alarm_mode & 0x08) << 4; // Day/Date bit 7.
|
|
uint8_t DY_DT = (alarm_mode & 0x10)
|
|
<< 2; // Day/Date bit 6. Date when 0, day of week when 1.
|
|
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE(DS3231_ALARM1);
|
|
Wire._I2C_WRITE(bin2bcd(dt.second()) | A1M1);
|
|
Wire._I2C_WRITE(bin2bcd(dt.minute()) | A1M2);
|
|
Wire._I2C_WRITE(bin2bcd(dt.hour()) | A1M3);
|
|
if (DY_DT) {
|
|
Wire._I2C_WRITE(bin2bcd(dowToDS3231(dt.dayOfTheWeek())) | A1M4 | DY_DT);
|
|
} else {
|
|
Wire._I2C_WRITE(bin2bcd(dt.day()) | A1M4 | DY_DT);
|
|
}
|
|
Wire.endTransmission();
|
|
|
|
ctrl |= 0x01; // AI1E
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_CONTROL, ctrl);
|
|
return true;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Set alarm 2 for DS3231
|
|
@param dt DateTime object
|
|
@param alarm_mode Desired mode, see Ds3231Alarm2Mode enum
|
|
@return False if control register is not set, otherwise true
|
|
*/
|
|
/**************************************************************************/
|
|
bool RTC_DS3231::setAlarm2(const DateTime &dt, Ds3231Alarm2Mode alarm_mode) {
|
|
uint8_t ctrl = read_i2c_register(DS3231_ADDRESS, DS3231_CONTROL);
|
|
if (!(ctrl & 0x04)) {
|
|
return false;
|
|
}
|
|
|
|
uint8_t A2M2 = (alarm_mode & 0x01) << 7; // Minutes bit 7.
|
|
uint8_t A2M3 = (alarm_mode & 0x02) << 6; // Hour bit 7.
|
|
uint8_t A2M4 = (alarm_mode & 0x04) << 5; // Day/Date bit 7.
|
|
uint8_t DY_DT = (alarm_mode & 0x8)
|
|
<< 3; // Day/Date bit 6. Date when 0, day of week when 1.
|
|
|
|
Wire.beginTransmission(DS3231_ADDRESS);
|
|
Wire._I2C_WRITE(DS3231_ALARM2);
|
|
Wire._I2C_WRITE(bin2bcd(dt.minute()) | A2M2);
|
|
Wire._I2C_WRITE(bin2bcd(dt.hour()) | A2M3);
|
|
if (DY_DT) {
|
|
Wire._I2C_WRITE(bin2bcd(dowToDS3231(dt.dayOfTheWeek())) | A2M4 | DY_DT);
|
|
} else {
|
|
Wire._I2C_WRITE(bin2bcd(dt.day()) | A2M4 | DY_DT);
|
|
}
|
|
Wire.endTransmission();
|
|
|
|
ctrl |= 0x02; // AI2E
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_CONTROL, ctrl);
|
|
return true;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Disable alarm
|
|
@param alarm_num Alarm number to disable
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::disableAlarm(uint8_t alarm_num) {
|
|
uint8_t ctrl = read_i2c_register(DS3231_ADDRESS, DS3231_CONTROL);
|
|
ctrl &= ~(1 << (alarm_num - 1));
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_CONTROL, ctrl);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Clear status of alarm
|
|
@param alarm_num Alarm number to clear
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::clearAlarm(uint8_t alarm_num) {
|
|
uint8_t status = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
status &= ~(0x1 << (alarm_num - 1));
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG, status);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get status of alarm
|
|
@param alarm_num Alarm number to check status of
|
|
@return True if alarm has been fired otherwise false
|
|
*/
|
|
/**************************************************************************/
|
|
bool RTC_DS3231::alarmFired(uint8_t alarm_num) {
|
|
uint8_t status = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
return (status >> (alarm_num - 1)) & 0x1;
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Enable 32KHz Output
|
|
@details The 32kHz output is enabled by default. It requires an external
|
|
pull-up resistor to function correctly
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::enable32K(void) {
|
|
uint8_t status = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
status |= (0x1 << 0x03);
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG, status);
|
|
// Serial.println(read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG), BIN);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Disable 32KHz Output
|
|
*/
|
|
/**************************************************************************/
|
|
void RTC_DS3231::disable32K(void) {
|
|
uint8_t status = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
status &= ~(0x1 << 0x03);
|
|
write_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG, status);
|
|
// Serial.println(read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG), BIN);
|
|
}
|
|
|
|
/**************************************************************************/
|
|
/*!
|
|
@brief Get status of 32KHz Output
|
|
@return True if enabled otherwise false
|
|
*/
|
|
/**************************************************************************/
|
|
bool RTC_DS3231::isEnabled32K(void) {
|
|
uint8_t status = read_i2c_register(DS3231_ADDRESS, DS3231_STATUSREG);
|
|
return (status >> 0x03) & 0x1;
|
|
}
|