2017-03-16 15:23:11 +00:00
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/*
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2019-10-27 10:13:24 +00:00
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xsns_07_sht1x.ino - SHT1x temperature and sensor support for Tasmota
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2017-03-16 15:23:11 +00:00
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2021-01-01 12:44:04 +00:00
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Copyright (C) 2021 Theo Arends
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2017-03-16 15:23:11 +00:00
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2017-05-13 12:02:10 +01:00
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This program is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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2017-03-16 15:23:11 +00:00
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2017-05-13 12:02:10 +01:00
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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2017-03-16 15:23:11 +00:00
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*/
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#ifdef USE_I2C
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#ifdef USE_SHT
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/*********************************************************************************************\
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2020-11-29 20:08:08 +00:00
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* SHT1x - Temperature and Humidity
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2017-03-16 15:23:11 +00:00
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*
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* Reading temperature and humidity takes about 320 milliseconds!
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* Source: Marinus vd Broek https://github.com/ESP8266nu/ESPEasy
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2017-11-11 11:33:30 +00:00
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*
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* I2C Address: None
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2017-03-16 15:23:11 +00:00
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\*********************************************************************************************/
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2018-11-06 16:33:51 +00:00
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#define XSNS_07 7
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2019-11-03 16:54:39 +00:00
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#define XI2C_08 8 // See I2CDEVICES.md
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2018-11-06 16:33:51 +00:00
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2017-03-16 15:23:11 +00:00
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enum {
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SHT1X_CMD_MEASURE_TEMP = B00000011,
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SHT1X_CMD_MEASURE_RH = B00000101,
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SHT1X_CMD_SOFT_RESET = B00011110
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};
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2017-04-25 17:24:42 +01:00
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uint8_t sht_sda_pin;
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uint8_t sht_scl_pin;
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2017-10-18 17:22:34 +01:00
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uint8_t sht_type = 0;
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2018-07-10 21:12:16 +01:00
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char sht_types[] = "SHT1X";
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2018-07-10 14:50:07 +01:00
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uint8_t sht_valid = 0;
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float sht_temperature = 0;
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float sht_humidity = 0;
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2017-03-16 15:23:11 +00:00
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2019-01-28 13:08:33 +00:00
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bool ShtReset(void)
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2017-03-16 15:23:11 +00:00
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{
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pinMode(sht_sda_pin, INPUT_PULLUP);
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pinMode(sht_scl_pin, OUTPUT);
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delay(11);
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2019-06-30 15:44:36 +01:00
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for (uint32_t i = 0; i < 9; i++) {
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2017-03-16 15:23:11 +00:00
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digitalWrite(sht_scl_pin, HIGH);
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digitalWrite(sht_scl_pin, LOW);
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}
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2019-01-28 13:08:33 +00:00
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bool success = ShtSendCommand(SHT1X_CMD_SOFT_RESET);
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2017-03-16 15:23:11 +00:00
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delay(11);
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return success;
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}
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2019-01-28 13:08:33 +00:00
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bool ShtSendCommand(const uint8_t cmd)
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2017-03-16 15:23:11 +00:00
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{
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pinMode(sht_sda_pin, OUTPUT);
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// Transmission Start sequence
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digitalWrite(sht_sda_pin, HIGH);
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digitalWrite(sht_scl_pin, HIGH);
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digitalWrite(sht_sda_pin, LOW);
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digitalWrite(sht_scl_pin, LOW);
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digitalWrite(sht_scl_pin, HIGH);
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digitalWrite(sht_sda_pin, HIGH);
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digitalWrite(sht_scl_pin, LOW);
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// Send the command (address must be 000b)
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shiftOut(sht_sda_pin, sht_scl_pin, MSBFIRST, cmd);
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// Wait for ACK
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2019-01-28 13:08:33 +00:00
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bool ackerror = false;
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2017-03-16 15:23:11 +00:00
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digitalWrite(sht_scl_pin, HIGH);
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pinMode(sht_sda_pin, INPUT_PULLUP);
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2017-04-25 17:24:42 +01:00
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if (digitalRead(sht_sda_pin) != LOW) {
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ackerror = true;
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}
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2017-03-16 15:23:11 +00:00
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digitalWrite(sht_scl_pin, LOW);
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delayMicroseconds(1); // Give the sensor time to release the data line
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2017-04-25 17:24:42 +01:00
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if (digitalRead(sht_sda_pin) != HIGH) {
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ackerror = true;
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}
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2017-03-16 15:23:11 +00:00
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if (ackerror) {
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2019-11-11 16:32:44 +00:00
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// sht_type = 0;
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2021-01-23 16:10:06 +00:00
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AddLog(LOG_LEVEL_DEBUG, PSTR(D_LOG_SHT1 D_SENSOR_DID_NOT_ACK_COMMAND));
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2017-03-16 15:23:11 +00:00
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}
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return (!ackerror);
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}
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2019-01-28 13:08:33 +00:00
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bool ShtAwaitResult(void)
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2017-03-16 15:23:11 +00:00
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{
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// Maximum 320ms for 14 bit measurement
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2019-06-30 15:44:36 +01:00
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for (uint32_t i = 0; i < 16; i++) {
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2017-04-25 17:24:42 +01:00
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if (LOW == digitalRead(sht_sda_pin)) {
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return true;
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}
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2017-03-16 15:23:11 +00:00
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delay(20);
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}
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2021-01-23 16:10:06 +00:00
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AddLog(LOG_LEVEL_DEBUG, PSTR(D_LOG_SHT1 D_SENSOR_BUSY));
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2019-11-11 16:32:44 +00:00
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// sht_type = 0;
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2017-03-16 15:23:11 +00:00
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return false;
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}
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2018-11-14 13:32:09 +00:00
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int ShtReadData(void)
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2017-03-16 15:23:11 +00:00
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{
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int val = 0;
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// Read most significant byte
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val = shiftIn(sht_sda_pin, sht_scl_pin, 8);
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val <<= 8;
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// Send ACK
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pinMode(sht_sda_pin, OUTPUT);
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digitalWrite(sht_sda_pin, LOW);
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digitalWrite(sht_scl_pin, HIGH);
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digitalWrite(sht_scl_pin, LOW);
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pinMode(sht_sda_pin, INPUT_PULLUP);
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// Read least significant byte
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val |= shiftIn(sht_sda_pin, sht_scl_pin, 8);
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// Keep DATA pin high to skip CRC
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digitalWrite(sht_scl_pin, HIGH);
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digitalWrite(sht_scl_pin, LOW);
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return val;
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}
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2019-01-28 13:08:33 +00:00
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bool ShtRead(void)
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2017-03-16 15:23:11 +00:00
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{
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2018-07-10 14:50:07 +01:00
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if (sht_valid) { sht_valid--; }
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if (!ShtReset()) { return false; }
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if (!ShtSendCommand(SHT1X_CMD_MEASURE_TEMP)) { return false; }
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if (!ShtAwaitResult()) { return false; }
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float tempRaw = ShtReadData();
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if (!ShtSendCommand(SHT1X_CMD_MEASURE_RH)) { return false; }
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if (!ShtAwaitResult()) { return false; }
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float humRaw = ShtReadData();
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2017-03-16 15:23:11 +00:00
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// Temperature conversion coefficients from SHT1X datasheet for version 4
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const float d1 = -39.7; // 3.5V
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const float d2 = 0.01; // 14-bit
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2018-07-10 14:50:07 +01:00
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sht_temperature = d1 + (tempRaw * d2);
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2017-03-16 15:23:11 +00:00
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const float c1 = -2.0468;
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const float c2 = 0.0367;
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const float c3 = -1.5955E-6;
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const float t1 = 0.01;
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const float t2 = 0.00008;
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2018-07-10 14:50:07 +01:00
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float rhLinear = c1 + c2 * humRaw + c3 * humRaw * humRaw;
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sht_humidity = (sht_temperature - 25) * (t1 + t2 * humRaw) + rhLinear;
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sht_temperature = ConvertTemp(sht_temperature);
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2020-03-18 10:23:00 +00:00
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sht_humidity = ConvertHumidity(sht_humidity);
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2018-07-24 17:41:50 +01:00
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2018-07-10 21:12:16 +01:00
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sht_valid = SENSOR_MAX_MISS;
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2018-07-10 14:50:07 +01:00
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return true;
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2017-03-16 15:23:11 +00:00
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}
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2017-11-04 15:36:51 +00:00
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/********************************************************************************************/
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2018-11-14 13:32:09 +00:00
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void ShtDetect(void)
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2017-03-16 15:23:11 +00:00
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{
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2020-04-27 11:54:07 +01:00
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sht_sda_pin = Pin(GPIO_I2C_SDA);
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sht_scl_pin = Pin(GPIO_I2C_SCL);
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2018-07-10 14:50:07 +01:00
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if (ShtRead()) {
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2017-10-18 17:22:34 +01:00
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sht_type = 1;
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2021-01-23 16:10:06 +00:00
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AddLog(LOG_LEVEL_DEBUG, PSTR(D_LOG_I2C D_SHT1X_FOUND));
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2017-03-16 15:23:11 +00:00
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} else {
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Wire.begin(sht_sda_pin, sht_scl_pin);
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2017-10-18 17:22:34 +01:00
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sht_type = 0;
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2017-03-16 15:23:11 +00:00
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}
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}
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2018-11-14 13:32:09 +00:00
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void ShtEverySecond(void)
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2018-07-10 14:50:07 +01:00
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{
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2020-10-28 16:32:07 +00:00
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if (!(TasmotaGlobal.uptime %4)) { // Every 4 seconds
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2018-07-12 11:19:08 +01:00
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// 344mS
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2018-07-10 21:12:16 +01:00
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if (!ShtRead()) {
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AddLogMissed(sht_types, sht_valid);
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}
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}
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2018-07-10 14:50:07 +01:00
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}
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2020-03-17 15:29:59 +00:00
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2020-03-16 15:52:22 +00:00
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void ShtShow(bool json)
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{
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if (sht_valid) {
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2020-10-29 12:37:09 +00:00
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TempHumDewShow(json, (0 == TasmotaGlobal.tele_period), sht_types, sht_temperature, sht_humidity);
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2020-03-16 15:52:22 +00:00
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}
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}
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2017-11-03 17:07:25 +00:00
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/*********************************************************************************************\
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* Interface
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\*********************************************************************************************/
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2019-01-28 13:08:33 +00:00
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bool Xsns07(uint8_t function)
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2017-11-03 17:07:25 +00:00
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{
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2019-11-04 09:38:05 +00:00
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if (!I2cEnabled(XI2C_08)) { return false; }
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2019-11-03 16:54:39 +00:00
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2019-01-28 13:08:33 +00:00
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bool result = false;
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2017-11-03 17:07:25 +00:00
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2019-11-11 16:32:44 +00:00
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if (FUNC_INIT == function) {
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ShtDetect();
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}
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else if (sht_type) {
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switch (function) {
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case FUNC_EVERY_SECOND:
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ShtEverySecond();
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break;
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case FUNC_JSON_APPEND:
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ShtShow(1);
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break;
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2017-11-03 17:07:25 +00:00
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#ifdef USE_WEBSERVER
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2019-11-11 16:32:44 +00:00
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case FUNC_WEB_SENSOR:
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ShtShow(0);
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break;
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2017-11-03 17:07:25 +00:00
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#endif // USE_WEBSERVER
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2019-11-11 16:32:44 +00:00
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}
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2017-11-03 17:07:25 +00:00
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}
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return result;
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}
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2017-03-16 15:23:11 +00:00
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#endif // USE_SHT
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#endif // USE_I2C
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