Innymi słowy, zwraca dwie wartości: wartość = 1,0 lub wartość = 0,0. W ten sposób przesyłam informacje do Supla za pośrednictwem SuplaDevice.addSensorNO, jednak aplikacja zawsze obserwuje je jako pełne. Reszta czujników działa poprawnie, więc jest to kod w ogólnych wierszach.
Code: Select all
#include <srpc.h>
#include <log.h>
#include <eh.h>
#include <proto.h>
#include <IEEE754tools.h>
// We define our own ethernet layer
#define SUPLADEVICE_CPP
#include <SuplaDevice.h>
#include <lck.h>
#include <WiFiClient.h>
#include <ESP8266WiFiType.h>
#include <ESP8266WiFi.h>
#include <ESP8266WiFiScan.h>
#include <ESP8266WiFiMulti.h>
#include <WiFiServer.h>
#include <ESP8266WiFiGeneric.h>
#include <WiFiClientSecure.h>
#include <ESP8266WiFiAP.h>
#include <ESP8266WiFiSTA.h>
#include <WiFiUdp.h>
WiFiClient client;
// Setup Supla connection
const char* ssid = "MyWiFiNetwork";
const char* password = "MyWiFiPassword";
float value;
void setup() {
Serial.begin(115200);
delay(10);
// Replace the falowing GUID
char GUID[SUPLA_GUID_SIZE] = {0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00,0x00};
// with GUID that you can retrieve from https://www.supla.org/arduino/get-guid
// Ethernet MAC address
uint8_t mac[6] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
SuplaDevice.addDHT22();
SuplaDevice.addDS18B20Thermometer();
//CHANNEL2
SuplaDevice.addRelay(13);
// CHANNEL3
SuplaDevice.addRelay(12);
//CHANNEL4
SuplaDevice.addRelay(10);
//CHANNEL5
SuplaDevice.addRelay(9);
//CHANNEL6
SuplaDevice.addRelay(2);
// CHANNEL7 (Normal Open)
SuplaDevice.addSensorNO(value);
SuplaDevice.begin(GUID, // Global Unique Identifier
mac, // Ethernet MAC address
"svr1.supla.org", // SUPLA server address
0, // Location ID
""); // Location Password
}
void loop() {
SuplaDevice.iterate();
value=sensor();
}
// Supla.org ethernet layer
int supla_arduino_tcp_read(void *buf, int count) {
_supla_int_t size = client.available();
if ( size > 0 ) {
if ( size > count ) size = count;
return client.read((uint8_t *)buf, size);
};
return -1;
};
int supla_arduino_tcp_write(void *buf, int count) {
return client.write((const uint8_t *)buf, count);
};
bool supla_arduino_svr_connect(const char *server, int port) {
return client.connect(server, 2015);
}
bool supla_arduino_svr_connected(void) {
return client.connected();
}
void supla_arduino_svr_disconnect(void) {
client.stop();
}
void supla_arduino_eth_setup(uint8_t mac[6], IPAddress *ip) {
// Serial.println("WiFi init");
WiFi.begin(ssid, password);
while (WiFi.status() != WL_CONNECTED) {
delay(500);
// Serial.print(".");
}
//Serial.print("\nlocalIP: ");
//Serial.println(WiFi.localIP());
//Serial.print("subnetMask: ");
//Serial.println(WiFi.subnetMask());
//Serial.print("gatewayIP: ");
//Serial.println(WiFi.gatewayIP());
}
SuplaDeviceCallbacks supla_arduino_get_callbacks(void) {
SuplaDeviceCallbacks cb;
cb.tcp_read = &supla_arduino_tcp_read;
cb.tcp_write = &supla_arduino_tcp_write;
cb.eth_setup = &supla_arduino_eth_setup;
cb.svr_connected = &supla_arduino_svr_connected;
cb.svr_connect = &supla_arduino_svr_connect;
cb.svr_disconnect = &supla_arduino_svr_disconnect;
cb.get_temperature = &get_temperature;
cb.get_temperature_and_humidity = &get_temperature_and_humidity;
cb.get_rgbw_value = NULL;
cb.set_rgbw_value = NULL;
return cb;
}
void sensor(){
....
return value; //(value=1.0 , value=2.0)
}
