233 lines
6.5 KiB
C
233 lines
6.5 KiB
C
#define F_CPU 16000000UL
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#define I2C_FREQ 100000UL
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#define I2C_PRESCALER 1
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#define I2C_BITRATE ((F_CPU / I2C_FREQ) - 16) / (2 * I2C_PRESCALER)
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#include <avr/io.h>
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#include <avr/interrupt.h>
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#include <util/delay.h>
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float pwm_frequency = 1.0;
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float pwm_duty_cycle = 0.5;
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volatile uint8_t pwm_enabled = 0;
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volatile uint8_t pwm_changed = 0;
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void i2c_init() {
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TWBR = I2C_BITRATE;
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}
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void i2c_start() {
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TWCR = (1 << TWINT) | (1 << TWSTA) | (1 << TWEN);
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while (!(TWCR & (1 << TWINT)))
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;
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}
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void i2c_stop() {
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TWCR = (1 << TWINT) | (1 << TWSTO) | (1 << TWEN);
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while (TWCR & (1 << TWSTO))
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;
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}
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void i2c_write(uint8_t data) {
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TWDR = data;
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TWCR = (1 << TWINT) | (1 << TWEN);
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while (!(TWCR & (1 << TWINT)))
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;
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}
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uint8_t i2c_read_ack() {
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TWCR = (1 << TWINT) | (1 << TWEN) | (1 << TWEA);
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while (!(TWCR & (1 << TWINT)))
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;
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return TWDR;
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}
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uint8_t i2c_read_nack() {
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TWCR = (1 << TWINT) | (1 << TWEN);
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while (!(TWCR & (1 << TWINT)))
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;
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return TWDR;
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}
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const uint8_t PWM_SLAVE_ADDR = 9;
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void pwm_enable() {
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pwm_enabled = 1;
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pwm_changed = 1;
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}
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void pwm_disable() {
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pwm_enabled = 0;
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pwm_changed = 1;
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}
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void setPWMFrequency(float frequency) {
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if (frequency < 1.0 || frequency > 50000.0) {
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return; // Недопустимая частота
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}
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pwm_frequency = frequency;
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pwm_changed = 1;
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}
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void setPWMDutyCycle(float duty_cycle) {
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if (duty_cycle < 0.0 || duty_cycle > 1.0) {
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return; // Недопустимый коэффициент заполнения
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}
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pwm_duty_cycle = duty_cycle;
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pwm_changed = 1;
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}
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void pwm_check_state() {
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if (pwm_enabled) {
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// Включаем пин ШИМ - реализация зависит от аппаратной платформы
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Serial.print("PWM enabled. Frequency: ");
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Serial.print(pwm_frequency);
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Serial.print(" Hz, duty cycle: ");
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Serial.println(pwm_duty_cycle);
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} else {
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// Выключаем пин ШИМ - реализация зависит от аппаратной платформы
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Serial.println("PWM disabled");
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}
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}
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void pwm_set_frequency(float frequency) {
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// Устанавливаем частоту ШИМ - реализация зависит от аппаратной платформы
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Serial.print("Setting PWM frequency to: ");
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Serial.println(frequency);
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}
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void pwm_set_duty_cycle(float duty_cycle) {
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// Устанавливаем коэффициент заполнения ШИМ - реализация зависит от аппаратной платформы
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Serial.print("Setting PWM duty cycle to: ");
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Serial.println(duty_cycle);
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}
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void enablePWM() {
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pwm_enable();
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// Включаем ШИМ
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sendCommand(0x01, 0.0);
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}
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void disablePWM() {
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// Выключаем ШИМ
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sendCommand(0x02, 0.0);
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pwm_disable();
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}
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void increaseFrequency() {
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setPWMFrequency(pwm_frequency * 1.25);
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// Выключаем ШИМ, отправляем команду и включаем обратно
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disablePWM();
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sendCommand(0x03, pwm_frequency);
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enablePWM();
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}
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void decreaseFrequency() {
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setPWMFrequency(pwm_frequency * 0.8);
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// Выключаем ШИМ, отправляем команду и включаем обратно
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disablePWM();
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sendCommand(0x04, pwm_frequency);
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enablePWM();
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}
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void increaseDutyCycle() {
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if (pwm_duty_cycle < 0.9) {
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setPWMDutyCycle(pwm_duty_cycle * 1.1);
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// Выключаем ШИМ, отправляем команду и включаем обратно
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disablePWM();
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sendCommand(0x05, pwm_duty_cycle);
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enablePWM();
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} else {
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Serial.println("Maximum duty cycle reached!");
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}
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}
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void decreaseDutyCycle() {
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if (pwm_duty_cycle > 0.1) {
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setPWMDutyCycle(pwm_duty_cycle*0.9);
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// Выключаем ШИМ, отправляем команду и включаем обратно
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disablePWM();
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sendCommand(0x06, pwm_duty_cycle);
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enablePWM();
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} else {
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Serial.println("Minimum duty cycle reached!");
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}
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}
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void checkButton(uint8_t pin, const char* message, void (*command)()) {
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if (bit_is_clear(PINC, pin)) {
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Serial.println(message);
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delay(1000);
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command();
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}
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}
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void setup() {
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i2c_init();
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DDRC &= ~(1 << PINC0) & ~(1 << PINC1) & ~(1 << PINC2) & ~(1 << PINC3) & ~(1 << PINC4) & ~(1 << PINC5);
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PORTC |= (1 << PINC0) | (1 << PINC1) | (1 << PINC2) | (1 << PINC3) | (1 << PINC4) | (1 << PINC5);
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Serial.begin(9600);
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Serial.println("PWM Controller started!");
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sendCommand(0x01, 0.0);
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}
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void loop() {
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checkButton(0, "Turn on PWM!", enablePWM);
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checkButton(1, "Turn off PWM!", disablePWM);
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checkButton(2, "Increase frequency by 25%!", increaseFrequency);
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checkButton(3, "Decrease frequency by 20%!", decreaseFrequency);
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checkButton(4, "Increase duty cycle by 10%!", increaseDutyCycle);
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checkButton(5, "Decrease duty cycle by 10%!", decreaseDutyCycle);
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// Обновляем состояние ШИМ, если что-то изменилось
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if (pwm_changed) {
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pwm_changed = 0;
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pwm_check_state();
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if (pwm_enabled) {
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pwm_set_frequency(pwm_frequency);
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pwm_set_duty_cycle(pwm_duty_cycle);
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}
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}
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}
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void sendCommand(uint8_t cmd, float value) {
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// Приводим значение к 12 битам для целой части и 4 битам для дробной части
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uint16_t integer_part = (uint16_t)value;
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uint8_t fractional_part = (uint8_t)((value - integer_part) * 16);
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// Проверяем, чтобы значение не превышало допустимых границ
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if (integer_part > 0xFFF) {
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integer_part = 0xFFF;
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}
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if (fractional_part > 0xF) {
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fractional_part = 0xF;
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}
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// Формируем 4 байта данных для отправки
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uint8_t upper_byte = (integer_part >> 4) & 0xFF;
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uint8_t lower_byte = ((integer_part & 0xF) << 4) | (fractional_part & 0xF);
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i2c_start();
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i2c_write(PWM_SLAVE_ADDR << 1);
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i2c_write(cmd);
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i2c_write(upper_byte);
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i2c_write(lower_byte);
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i2c_stop();
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Serial.print("Sent command: 0x");
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Serial.print(cmd, HEX);
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Serial.print(", value: ");
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Serial.print(value);
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Serial.print(", cmd value: ");
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Serial.print((integer_part << 4) | fractional_part);
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Serial.print(", data bytes: 0x");
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Serial.print(upper_byte, HEX);
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Serial.print(" ");
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Serial.println(lower_byte, HEX);
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}
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