163 lines
5.8 KiB
C++
163 lines
5.8 KiB
C++
#include "pcf85063.h"
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#include "esphome/core/log.h"
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// Datasheet:
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// - https://datasheets.maximintegrated.com/en/ds/DS1307.pdf
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namespace esphome {
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namespace pcf85063 {
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static const char *const TAG = "pcf85063";
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void PCF85063Component::setup() {
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ESP_LOGCONFIG(TAG, "Setting up PCF85063...");
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if (!this->read_rtc_()) {
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this->mark_failed();
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}
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}
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void PCF85063Component::update() { this->read_time(); }
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void PCF85063Component::dump_config() {
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ESP_LOGCONFIG(TAG, "PCF85063:");
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LOG_I2C_DEVICE(this);
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if (this->is_failed()) {
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ESP_LOGE(TAG, "Communication with PCF85063 failed!");
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}
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ESP_LOGCONFIG(TAG, " Timezone: '%s'", this->timezone_.c_str());
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}
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float PCF85063Component::get_setup_priority() const { return setup_priority::DATA; }
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void PCF85063Component::read_time() {
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if (!this->read_rtc_()) {
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return;
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}
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if (pcf85063_.reg.osc_stop) {
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ESP_LOGW(TAG, "RTC halted, not syncing to system clock.");
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return;
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}
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ESPTime rtc_time{
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.second = uint8_t(pcf85063_.reg.second + 10 * pcf85063_.reg.second_10),
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.minute = uint8_t(pcf85063_.reg.minute + 10u * pcf85063_.reg.minute_10),
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.hour = uint8_t(pcf85063_.reg.hour + 10u * pcf85063_.reg.hour_10),
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.day_of_week = uint8_t(pcf85063_.reg.weekday),
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.day_of_month = uint8_t(pcf85063_.reg.day + 10u * pcf85063_.reg.day_10),
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.day_of_year = 1, // ignored by recalc_timestamp_utc(false)
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.month = uint8_t(pcf85063_.reg.month + 10u * pcf85063_.reg.month_10),
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.year = uint16_t(pcf85063_.reg.year + 10u * pcf85063_.reg.year_10 + 2000),
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.is_dst = false, // not used
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.timestamp = 0, // overwritten by recalc_timestamp_utc(false)
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};
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rtc_time.recalc_timestamp_utc(false);
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if (!rtc_time.is_valid()) {
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ESP_LOGE(TAG, "Invalid RTC time, not syncing to system clock.");
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return;
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}
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time::RealTimeClock::synchronize_epoch_(rtc_time.timestamp);
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}
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void PCF85063Component::write_time() {
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auto now = time::RealTimeClock::utcnow();
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if (!now.is_valid()) {
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ESP_LOGE(TAG, "Invalid system time, not syncing to RTC.");
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return;
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}
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pcf85063_.reg.year = (now.year - 2000) % 10;
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pcf85063_.reg.year_10 = (now.year - 2000) / 10 % 10;
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pcf85063_.reg.month = now.month % 10;
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pcf85063_.reg.month_10 = now.month / 10;
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pcf85063_.reg.day = now.day_of_month % 10;
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pcf85063_.reg.day_10 = now.day_of_month / 10;
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pcf85063_.reg.weekday = now.day_of_week;
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pcf85063_.reg.hour = now.hour % 10;
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pcf85063_.reg.hour_10 = now.hour / 10;
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pcf85063_.reg.minute = now.minute % 10;
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pcf85063_.reg.minute_10 = now.minute / 10;
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pcf85063_.reg.second = now.second % 10;
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pcf85063_.reg.second_10 = now.second / 10;
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pcf85063_.reg.osc_stop = false;
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this->write_rtc_();
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}
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void PCF85063Component::write_nvram(uint8_t data) {
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pcf85063_.reg.nvram = data;
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this->write_bytes(0x03, &pcf85063_.raw[0x03], 1);
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}
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uint8_t PCF85063Component::read_nvram() {
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this->read_bytes(0x03, &pcf85063_.raw[0x03], 1);
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return pcf85063_.reg.nvram;
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}
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/*
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TIMER_CLOCK_MINUTE 60 15300 1m 4h15m
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TIMER_CLOCK_SECOND 1 255 1s 4m15s
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*/
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bool PCF85063Component::write_timer_interval(uint16_t interval_seconds) {
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if (interval_seconds < 256) {
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pcf85063_.reg.timer_clock_frequency = TIMER_CLOCK_SECOND;
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pcf85063_.reg.timer_value = interval_seconds;
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pcf85063_.reg.timer_enable = true;
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return this->write_timer_();
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} else if (interval_seconds > 15300) {
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ESP_LOGE(TAG, "Specified interval is longer than max allowed, clamping to 4h15m.");
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interval_seconds = 15300;
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}
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div_t dm = div(interval_seconds, 60);
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if (dm.rem) {
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ESP_LOGI(TAG, "Interval out of seconds range, rounding down to closest whole minute.");
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}
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pcf85063_.reg.timer_clock_frequency = TIMER_CLOCK_MINUTE;
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pcf85063_.reg.timer_value = dm.quot;
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pcf85063_.reg.timer_enable = true;
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return this->write_timer_();
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}
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void PCF85063Component::set_timer_interrupt_enable_(bool state) {
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pcf85063_.reg.timer_interrupt_enable = state;
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}
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void PCF85063Component::set_timer_interrupt_mode_(PCF85063ATimerInterruptMode_t mode) {
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pcf85063_.reg.timer_interrupt_mode = mode;
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}
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bool PCF85063Component::write_timer_() {
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if (!this->write_bytes(0x10, &this->pcf85063_.raw[0x10], 2)) {
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ESP_LOGE(TAG, "Can't write I2C data.");
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return false;
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}
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ESP_LOGD(TAG, "Write timer %s %0u CLOCK=%0u IR=%s %0u",
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ONOFF(pcf85063_.reg.timer_enable), pcf85063_.reg.timer_value, pcf85063_.reg.timer_clock_frequency,
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ONOFF(pcf85063_.reg.timer_interrupt_enable), pcf85063_.reg.timer_interrupt_mode);
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return true;
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}
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bool PCF85063Component::read_rtc_() {
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if (!this->read_bytes(0, this->pcf85063_.raw, sizeof(this->pcf85063_.raw))) {
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ESP_LOGE(TAG, "Can't read I2C data.");
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return false;
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}
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ESP_LOGD(TAG, "Read %0u%0u:%0u%0u:%0u%0u 20%0u%0u-%0u%0u-%0u%0u OSC:%s CLKOUT:%0u", pcf85063_.reg.hour_10,
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pcf85063_.reg.hour, pcf85063_.reg.minute_10, pcf85063_.reg.minute, pcf85063_.reg.second_10,
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pcf85063_.reg.second, pcf85063_.reg.year_10, pcf85063_.reg.year, pcf85063_.reg.month_10, pcf85063_.reg.month,
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pcf85063_.reg.day_10, pcf85063_.reg.day, ONOFF(!pcf85063_.reg.osc_stop), pcf85063_.reg.clkout_control);
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return true;
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}
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bool PCF85063Component::write_rtc_() {
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if (!this->write_bytes(0, this->pcf85063_.raw, sizeof(this->pcf85063_.raw))) {
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ESP_LOGE(TAG, "Can't write I2C data.");
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return false;
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}
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ESP_LOGD(TAG, "Write %0u%0u:%0u%0u:%0u%0u 20%0u%0u-%0u%0u-%0u%0u OSC:%s CLKOUT:%0u", pcf85063_.reg.hour_10,
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pcf85063_.reg.hour, pcf85063_.reg.minute_10, pcf85063_.reg.minute, pcf85063_.reg.second_10,
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pcf85063_.reg.second, pcf85063_.reg.year_10, pcf85063_.reg.year, pcf85063_.reg.month_10, pcf85063_.reg.month,
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pcf85063_.reg.day_10, pcf85063_.reg.day, ONOFF(!pcf85063_.reg.osc_stop), pcf85063_.reg.clkout_control);
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return true;
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}
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} // namespace pcf85063
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} // namespace esphome
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