231 lines
7.1 KiB
C++
231 lines
7.1 KiB
C++
// Programma voor het sturen van patronen benodigd voor LATCH-UP.
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// I2C : LETOP Little Endian ! , I2C is normaalgesproken Big Endian
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// Benodigd : OpzetBord met Logic Level Converter TXS108E.
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// : Relay Bord 8-CH
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// SENCURE SPECIFIEK
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// Direct na startup is REG 0x15 = 0x00003;
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// Wanneer 0x00001 naar REG 0xBF word gestuurd zal de chip rond de ~60uA gaan trekken (geverifieerd!).
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// Na het script zal de chip rond de 1.5mA trekken.
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//Duur van het script in DEBUG_MODE met serial op 115200 baud ~220ms + 20ms opstarttijd chip = 240ms ==> 300ms settling time scimitar
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//Duur van het script NOT in DEBUG_MODE mode ~40ms + 20ms opstarttijd chip = 60ms ==> 100ms settling time scimitar
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#include <Wire.h>
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#define DEBUG_MODE // Uncomment this line to enable debug mode
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const int deviceAddress = 0x68; // I2C address of the device (change as needed)
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const uint8_t relay1 = 2; // LOW ACTIVE
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const uint8_t relay2 = 3; // LOW ACTIVE
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const uint8_t oe = 5;
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const uint8_t d6 = 6; // Define pin D6
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bool actionPerformed = false; // Flag to track if the action has been performed
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// I2C Register Write Structure
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struct I2C_Write {
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uint8_t reg;
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uint16_t data;
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};
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// Configuration Patterns
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I2C_Write pattern1[] = {
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{0xBF, 0x0001}, {0x00, 0x0143}, {0x01, 0x0143}, {0x02, 0x0143}, {0x03, 0x0143},
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{0x04, 0x0143}, {0x05, 0x0143}, {0x06, 0x0143}, {0x07, 0x0143},
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{0x11, 0x00C0}, {0x12, 0x0001}, {0x14, 0x0028}, {0x15, 0x000D},
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{0x16, 0x0100}, {0x1F, 0x0007}, {0x53, 0x0170}
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};
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I2C_Write pattern2[] = {
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{0x46, 0x0902}, {0x47, 0x0021}, {0x48, 0x0023}, {0x49, 0x0023}, {0x4A, 0x0023},
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{0x4B, 0x0023}, {0x4C, 0x0023}, {0x4D, 0x0023}, {0x4E, 0x0023}, {0x4F, 0x005F},
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{0x44, 0x0FF8}, {0x52, 0x0001}, {0x2B, 0x0001}
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};
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I2C_Write intermediateData[] = {
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{0x55, 0x0000}, {0x56, 0x0000}, {0x57, 0x0000}, {0x58, 0x0000}
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};
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void relaysOn()
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{
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//Relays are low active
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digitalWrite(relay1,LOW);
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digitalWrite(relay2,LOW);
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delay(5);
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}
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void relaysOff()
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{
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//Relays are low active
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digitalWrite(relay1,HIGH);
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digitalWrite(relay2,HIGH);
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delay(5);
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}
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// Function to transmit 16-bit data in little-endian format
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void transmitData(uint8_t registerAddress, uint16_t data) {
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digitalWrite(oe,HIGH);
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Wire.beginTransmission(deviceAddress);
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Wire.write(registerAddress); // Send the register address
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Wire.write(data & 0xFF); // Send the low byte (LSB)
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Wire.write((data >> 8) & 0xFF); // Send the high byte (MSB)
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Wire.endTransmission();
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digitalWrite(oe,LOW);
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}
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// Function to read back data from the register
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uint16_t readData(uint8_t registerAddress) {
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uint16_t receivedData = 0;
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digitalWrite(oe,HIGH);
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// First, send the register address to read from
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Wire.beginTransmission(deviceAddress);
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Wire.write(registerAddress); // Send the register address
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Wire.endTransmission();
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if (Wire.endTransmission() != 0) {
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#ifdef DEBUG_MODE
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Serial.println("Device not found");
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#endif
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digitalWrite(oe,LOW);
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return 0; // Return 0 or some error code
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}
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// Now request 2 bytes from the device
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Wire.requestFrom(deviceAddress, 2);
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if (Wire.available() == 2) {
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receivedData |= Wire.read(); // Read low byte (LSB)
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receivedData |= Wire.read() << 8; // Read high byte (MSB)
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}
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digitalWrite(oe,LOW);
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return receivedData;
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}
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void setup() {
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#ifdef DEBUG_MODE
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Serial.begin(115200);
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#endif
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Wire.begin(); // Initialize I2C
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pinMode(relay1, OUTPUT);
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pinMode(relay2, OUTPUT);
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pinMode(oe, OUTPUT);
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pinMode(d6, INPUT); // Set D6 as input
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digitalWrite(oe,LOW);
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for(int i = 8; i <= 13; i++)
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{
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pinMode(i,OUTPUT);
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digitalWrite(i,LOW);
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}
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}
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void sendPattern1() {
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sendPattern(pattern1, sizeof(pattern1) / sizeof(pattern1[0]));
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}
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void sendPattern2() {
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sendPattern(pattern2, sizeof(pattern2) / sizeof(pattern2[0]));
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}
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void sendPattern(const I2C_Write* pattern, size_t size) {
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for (size_t i = 0; i < size; i++) {
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transmitData(pattern[i].reg, pattern[i].data);
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#ifdef DEBUG_MODE
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// Print the register address and data being transmitted using Serial
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Serial.print("Transmitting to Register: 0x");
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Serial.print(pattern[i].reg, HEX); // Print register address in hexadecimal
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Serial.print(", Data: ");
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printHex(pattern[i].data);
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#endif
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}
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}
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void readPatternData(const I2C_Write* pattern, size_t size) {
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for (size_t i = 0; i < size; i++) {
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uint16_t receivedData = readData(pattern[i].reg);
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#ifdef DEBUG_MODE
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//Print the register address and received data
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Serial.print("Reading from Register 0x");
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Serial.print(pattern[i].reg, HEX);
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Serial.print(": ");
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printHex(receivedData);
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#endif
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}
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}
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void readPattern1Data() {
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readPatternData(pattern1, sizeof(pattern1) / sizeof(pattern1[0]));
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}
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void readPattern2Data() {
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readPatternData(pattern2, sizeof(pattern2) / sizeof(pattern2[0]));
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}
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void readIntermediateData() {
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readPatternData(intermediateData, sizeof(intermediateData) / sizeof(intermediateData[0]));
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}
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void printHex(uint16_t value) {
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Serial.print("0x");
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if (value < 0x10) {
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Serial.print("000");
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} else if (value < 0x100) {
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Serial.print("00");
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} else if (value < 0x1000) {
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Serial.print("0");
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}
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Serial.println(value, HEX); // Print the value in hexadecimal
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}
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unsigned long lastDebounceTime = 0; // Last time the pin state changed
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unsigned long debounceDelay = 5; // Debounce delay in milliseconds
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int lastD6State = LOW; // Last stable state of D6
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int currentD6State; // Current state of D6
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void loop() {
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// Read the current state of D6
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int reading = digitalRead(d6);
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// Check if the state has changed
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if (reading != lastD6State) {
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// Reset the debounce timer
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lastDebounceTime = millis();
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}
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// If the state has been stable for the debounce delay, update the state
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if ((millis() - lastDebounceTime) > debounceDelay) {
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// Only proceed if the state has changed
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if (reading != currentD6State) {
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currentD6State = reading;
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// Only act if the new state is HIGH and the action hasn't been performed yet
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if (currentD6State == HIGH && !actionPerformed) {
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// Switch Relay ON
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relaysOn();
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// Send Pattern 1
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sendPattern1();
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// Read Data Pattern 1
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readPattern1Data();
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// Read back intermediat registers
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readIntermediateData();
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// Send Pattern 1
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sendPattern2();
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// Read Data Pattern 1
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readPattern2Data();
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// Switch Relay OFF
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relaysOff();
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// Set the action performed flag to true
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actionPerformed = true;
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}
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}
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}
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// If the state is LOW, reset the action performed flag
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if (currentD6State == LOW) {
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actionPerformed = false;
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}
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// Update the last stable state
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lastD6State = reading;
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}
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