mirror of https://github.com/arendst/Tasmota.git
287 lines
6.5 KiB
C++
287 lines
6.5 KiB
C++
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/***************************************************
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This is a library for the Adafruit PT100/P1000 RTD Sensor w/MAX31865
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Designed specifically to work with the Adafruit RTD Sensor
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----> https://www.adafruit.com/products/3328
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This sensor uses SPI to communicate, 4 pins are required to
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interface
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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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Written by Limor Fried/Ladyada for Adafruit Industries.
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BSD license, all text above must be included in any redistribution
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****************************************************/
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#include "Adafruit_MAX31865.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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#endif
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#include <stdlib.h>
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#include <SPI.h>
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static SPISettings max31865_spisettings = SPISettings(500000, MSBFIRST, SPI_MODE1);
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// Software (bitbang) SPI
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Adafruit_MAX31865::Adafruit_MAX31865(int8_t spi_cs, int8_t spi_mosi, int8_t spi_miso, int8_t spi_clk) {
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setPins( spi_cs, spi_mosi, spi_miso, spi_clk);
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}
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void Adafruit_MAX31865::setPins(int8_t spi_cs, int8_t spi_mosi, int8_t spi_miso, int8_t spi_clk) {
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_sclk = spi_clk;
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_cs = spi_cs;
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_miso = spi_miso;
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_mosi = spi_mosi;
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}
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// Hardware SPI init
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Adafruit_MAX31865::Adafruit_MAX31865(int8_t spi_cs) {
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_cs = spi_cs;
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_sclk = _miso = _mosi = -1;
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}
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// Default constructor
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Adafruit_MAX31865::Adafruit_MAX31865(void) {
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_cs = _sclk = _miso = _mosi = -1;
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}
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boolean Adafruit_MAX31865::begin(max31865_numwires_t wires) {
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pinMode(_cs, OUTPUT);
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digitalWrite(_cs, HIGH);
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if (_sclk != -1) {
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//define pin modes
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pinMode(_sclk, OUTPUT);
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digitalWrite(_sclk, LOW);
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pinMode(_mosi, OUTPUT);
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pinMode(_miso, INPUT);
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} else {
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//start and configure hardware SPI
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SPI.begin();
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}
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for (uint8_t i=0; i<16; i++) {
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// readRegister8(i);
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}
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setWires(wires);
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enableBias(false);
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autoConvert(false);
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clearFault();
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//Serial.print("config: "); Serial.println(readRegister8(MAX31856_CONFIG_REG), HEX);
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return true;
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}
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uint8_t Adafruit_MAX31865::readFault(void) {
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return readRegister8(MAX31856_FAULTSTAT_REG);
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}
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void Adafruit_MAX31865::clearFault(void) {
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uint8_t t = readRegister8(MAX31856_CONFIG_REG);
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t &= ~0x2C;
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t |= MAX31856_CONFIG_FAULTSTAT;
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writeRegister8(MAX31856_CONFIG_REG, t);
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}
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void Adafruit_MAX31865::enableBias(boolean b) {
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uint8_t t = readRegister8(MAX31856_CONFIG_REG);
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if (b) {
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t |= MAX31856_CONFIG_BIAS; // enable bias
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} else {
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t &= ~MAX31856_CONFIG_BIAS; // disable bias
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}
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writeRegister8(MAX31856_CONFIG_REG, t);
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}
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void Adafruit_MAX31865::autoConvert(boolean b) {
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uint8_t t = readRegister8(MAX31856_CONFIG_REG);
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if (b) {
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t |= MAX31856_CONFIG_MODEAUTO; // enable autoconvert
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} else {
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t &= ~MAX31856_CONFIG_MODEAUTO; // disable autoconvert
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}
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writeRegister8(MAX31856_CONFIG_REG, t);
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}
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void Adafruit_MAX31865::setWires(max31865_numwires_t wires ) {
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uint8_t t = readRegister8(MAX31856_CONFIG_REG);
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if (wires == MAX31865_3WIRE) {
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t |= MAX31856_CONFIG_3WIRE;
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} else {
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// 2 or 4 wire
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t &= ~MAX31856_CONFIG_3WIRE;
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}
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writeRegister8(MAX31856_CONFIG_REG, t);
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}
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float Adafruit_MAX31865::rtd_to_temperature(uint16_t rtd, float RTDnominal, float refResistor) {
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//float Adafruit_MAX31865::temperature(float RTDnominal, float refResistor) {
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// http://www.analog.com/media/en/technical-documentation/application-notes/AN709_0.pdf
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float Z1, Z2, Z3, Z4, Rt, temp;
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Rt = rtd;
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Rt /= 32768;
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Rt *= refResistor;
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// Serial.print("\nResistance: "); Serial.println(Rt, 8);
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Z1 = -RTD_A;
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Z2 = RTD_A * RTD_A - (4 * RTD_B);
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Z3 = (4 * RTD_B) / RTDnominal;
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Z4 = 2 * RTD_B;
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temp = Z2 + (Z3 * Rt);
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temp = (sqrt(temp) + Z1) / Z4;
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if (temp >= 0) return temp;
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// ugh.
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Rt /= RTDnominal;
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Rt *= 100; // normalize to 100 ohm
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float rpoly = Rt;
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temp = -242.02;
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temp += 2.2228 * rpoly;
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rpoly *= Rt; // square
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temp += 2.5859e-3 * rpoly;
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rpoly *= Rt; // ^3
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temp -= 4.8260e-6 * rpoly;
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rpoly *= Rt; // ^4
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temp -= 2.8183e-8 * rpoly;
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rpoly *= Rt; // ^5
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temp += 1.5243e-10 * rpoly;
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return temp;
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}
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float Adafruit_MAX31865::rtd_to_resistance(uint16_t rtd, float refResistor) {
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float Rt;
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Rt = rtd;
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Rt /= 32768;
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Rt *= refResistor;
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return Rt;
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}
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float Adafruit_MAX31865::temperature(float RTDnominal, float refResistor) {
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uint16_t rtd = readRTD();
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return rtd_to_temperature(rtd, RTDnominal, refResistor);
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}
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uint16_t Adafruit_MAX31865::readRTD (void) {
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clearFault();
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enableBias(true);
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delay(10);
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uint8_t t = readRegister8(MAX31856_CONFIG_REG);
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t |= MAX31856_CONFIG_1SHOT;
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writeRegister8(MAX31856_CONFIG_REG, t);
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delay(65);
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uint16_t rtd = readRegister16(MAX31856_RTDMSB_REG);
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// remove fault
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rtd >>= 1;
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return rtd;
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}
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/**********************************************/
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uint8_t Adafruit_MAX31865::readRegister8(uint8_t addr) {
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uint8_t ret = 0;
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readRegisterN(addr, &ret, 1);
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return ret;
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}
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uint16_t Adafruit_MAX31865::readRegister16(uint8_t addr) {
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uint8_t buffer[2] = {0, 0};
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readRegisterN(addr, buffer, 2);
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uint16_t ret = buffer[0];
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ret <<= 8;
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ret |= buffer[1];
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return ret;
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}
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void Adafruit_MAX31865::readRegisterN(uint8_t addr, uint8_t buffer[], uint8_t n) {
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addr &= 0x7F; // make sure top bit is not set
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if (_sclk == -1)
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SPI.beginTransaction(max31865_spisettings);
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else
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digitalWrite(_sclk, LOW);
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digitalWrite(_cs, LOW);
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spixfer(addr);
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//Serial.print("$"); Serial.print(addr, HEX); Serial.print(": ");
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while (n--) {
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buffer[0] = spixfer(0xFF);
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//Serial.print(" 0x"); Serial.print(buffer[0], HEX);
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buffer++;
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}
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//Serial.println();
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if (_sclk == -1)
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SPI.endTransaction();
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digitalWrite(_cs, HIGH);
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}
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void Adafruit_MAX31865::writeRegister8(uint8_t addr, uint8_t data) {
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if (_sclk == -1)
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SPI.beginTransaction(max31865_spisettings);
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else
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digitalWrite(_sclk, LOW);
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digitalWrite(_cs, LOW);
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spixfer(addr | 0x80); // make sure top bit is set
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spixfer(data);
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//Serial.print("$"); Serial.print(addr, HEX); Serial.print(" = 0x"); Serial.println(data, HEX);
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if (_sclk == -1)
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SPI.endTransaction();
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digitalWrite(_cs, HIGH);
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}
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uint8_t Adafruit_MAX31865::spixfer(uint8_t x) {
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if (_sclk == -1)
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return SPI.transfer(x);
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// software spi
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//Serial.println("Software SPI");
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uint8_t reply = 0;
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for (int i=7; i>=0; i--) {
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reply <<= 1;
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digitalWrite(_sclk, HIGH);
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digitalWrite(_mosi, x & (1<<i));
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digitalWrite(_sclk, LOW);
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if (digitalRead(_miso))
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reply |= 1;
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}
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return reply;
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}
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