/* Pin layout used: * ----------------------------------------------------------------------------------------- * MFRC522 ESP8266 * Reader/PCD Feather Huzzah * Signal Pin Pin * ----------------------------------------------------------------------------------------- * SPI SS 1 SDA(SS) SDA/4 * SPI SCK SCK 14 / SCK * SPI MOSI MOSI 13 / MOSI * SPI MISO MISO 12 / MISO * */ #include // https://github.com/tzapu/WiFiManager #include #include #include #include #include #include #include #define LED_PIN 16 MFRC522DriverPinSimple ss_1_pin(4); // Configurable, take an unused pin, only HIGH/LOW required, must be different to SS 2. MFRC522DriverSPI driver_1{ss_1_pin}; MFRC522 reader{driver_1}; // Create MFRC522 instance. void setup() { // WiFi.mode(WIFI_STA); // explicitly set mode, esp defaults to STA+AP // it is a good practice to make sure your code sets wifi mode how you want it. // put your setup code here, to run once: Serial.begin(115200); pinMode(LED_PIN, OUTPUT); displaySuccess(); //WiFiManager, Local intialization. Once its business is done, there is no need to keep it around WiFiManager wm; // reset settings - wipe stored credentials for testing // these are stored by the esp library // wm.resetSettings(); // Automatically connect using saved credentials, // if connection fails, it starts an access point with the specified name ( "AutoConnectAP"), // if empty will auto generate SSID, if password is blank it will be anonymous AP (wm.autoConnect()) // then goes into a blocking loop awaiting configuration and will return success result bool res; // res = wm.autoConnect(); // auto generated AP name from chipid // res = wm.autoConnect("AutoConnectAP"); // anonymous ap res = wm.autoConnect("KLUK"); // password protected ap if(!res) { Serial.println("Failed to connect"); displayError(); // ESP.restart(); } else { //if you get here you have connected to the WiFi Serial.println("connected...yeey :)"); displaySuccess(); } reader.PCD_Init(); // Init each MFRC522 card. } void loop() { auto client = std::make_unique(); if (reader.PICC_IsNewCardPresent() && reader.PICC_ReadCardSerial()) { // Halt PICC. reader.PICC_HaltA(); // Stop encryption on PCD. reader.PCD_StopCrypto1(); client->setInsecure(); HTTPClient https; Serial.print("[HTTPS] begin...\n"); // configure traged server and url https.begin(*client, "https://mood.robiweb.net/rfid_tags"); // HTTP https.addHeader("Content-Type", "application/json"); char str[32] = ""; array_to_string(reader.uid.uidByte, 4, str); //Insert (byte array, length, char array for output) Serial.println(str); //Print the output uid string // start connection and send HTTP header and body int httpCode = https.POST("{\"identifier\":\"" + String(str) + "\"}"); Serial.print("httpCode: "); Serial.print(httpCode); // httpCode will be negative on error if (httpCode > 0) { // HTTP header has been send and Server response header has been handled // file found at server // if (httpCode == HTTP_CODE_OK) { if (httpCode == HTTP_CODE_CREATED) { displaySuccess(); } else { displayError(); } } https.end(); Serial.print("[HTTPS] ended...\n"); } } void array_to_string(byte array[], unsigned int len, char buffer[]) { for (unsigned int i = 0; i < len; i++) { byte nib1 = (array[i] >> 4) & 0x0F; byte nib2 = (array[i] >> 0) & 0x0F; buffer[i*2+0] = nib1 < 0xA ? '0' + nib1 : 'A' + nib1 - 0xA; buffer[i*2+1] = nib2 < 0xA ? '0' + nib2 : 'A' + nib2 - 0xA; } buffer[len*2] = '\0'; } void displayError() { for (unsigned int i = 0; i < 6; i++) { digitalWrite(LED_PIN, HIGH); delay(600); digitalWrite(LED_PIN, LOW); delay(300); } } void displaySuccess() { digitalWrite(LED_PIN, HIGH); delay(1000); digitalWrite(LED_PIN, LOW); delay(300); }