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  3. Barometric Pressure Sensor Using MS5637

Barometric Pressure Sensor Using MS5637

Scheduled Pinned Locked Moved Development
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  • BulldogLowellB Offline
    BulldogLowellB Offline
    BulldogLowell
    Contest Winner
    wrote on last edited by
    #7

    maybe i missed it, but did you have a sketch that worked (with the appropriate libraries) at least outputting the sensor data to the serial monitor?

    If you have that, post it. It will be easy to add to that the 'stuff' you need for MySensors, I believe.

    1 Reply Last reply
    0
    • M Offline
      M Offline
      Myles L
      wrote on last edited by
      #8

      Yes, I have that. It is just a really a really basic sketch that prints the sensor data to a serial output. I am also very interested in the weather forecast part of the MySensors sketch which is why I was trying to mod it.

      #include <Wire.h>
      #include <BaroSensor.h>

      void setup()
      {
      Serial.begin(9600);
      BaroSensor.begin();
      }

      void loop()
      {
      if(!BaroSensor.isOK()) {
      Serial.print("Sensor not Found/OK. Error: ");
      Serial.println(BaroSensor.getError());
      BaroSensor.begin(); // Try to reinitialise the sensor if we can
      }
      else {
      Serial.print("Temperature: ");
      Serial.println(BaroSensor.getTemperature());
      Serial.print("Pressure: ");
      Serial.println(BaroSensor.getPressure());
      }
      delay(1000);
      }

      BulldogLowellB 1 Reply Last reply
      0
      • M Myles L

        Yes, I have that. It is just a really a really basic sketch that prints the sensor data to a serial output. I am also very interested in the weather forecast part of the MySensors sketch which is why I was trying to mod it.

        #include <Wire.h>
        #include <BaroSensor.h>

        void setup()
        {
        Serial.begin(9600);
        BaroSensor.begin();
        }

        void loop()
        {
        if(!BaroSensor.isOK()) {
        Serial.print("Sensor not Found/OK. Error: ");
        Serial.println(BaroSensor.getError());
        BaroSensor.begin(); // Try to reinitialise the sensor if we can
        }
        else {
        Serial.print("Temperature: ");
        Serial.println(BaroSensor.getTemperature());
        Serial.print("Pressure: ");
        Serial.println(BaroSensor.getPressure());
        }
        delay(1000);
        }

        BulldogLowellB Offline
        BulldogLowellB Offline
        BulldogLowell
        Contest Winner
        wrote on last edited by BulldogLowell
        #9

        @Myles-L

        this compiles, but I could not test it:

        #include <SPI.h>
        #include <MySensor.h>  
        #include <Wire.h>
        #include <BaroSensor.h>
        
        #define BARO_CHILD 0
        #define TEMP_CHILD 1
        
        unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)
        
        MySensor gw;
        
        float lastPressure = -1;
        float lastTemp = -1;
        int lastForecast = -1;
        const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
        int minutes;
        float pressureSamples[180];
        int minuteCount = 0;
        bool firstRound = true;
        float pressureAvg[7];
        float dP_dt;
        boolean metric; 
        MyMessage tempMsg(TEMP_CHILD, V_TEMP);
        MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
        MyMessage forecastMsg(BARO_CHILD, V_FORECAST);
        
        void setup() {
          gw.begin();
        
          // Send the sketch version information to the gateway and Controller
          gw.sendSketchInfo("Pressure Sensor", "1.0");
        
          BaroSensor.begin();
        
          // Register sensors to gw (they will be created as child devices)
          gw.present(BARO_CHILD, S_BARO);
          gw.present(TEMP_CHILD, S_TEMP);
          metric =  gw.getConfig().isMetric;
        }
        
        void loop() 
        {
          if(!BaroSensor.isOK()) 
          {
            Serial.print("Sensor not Found/OK. Error: "); 
            Serial.println(BaroSensor.getError());
            BaroSensor.begin(); // Try to reinitialise the sensor if we can
          }
          
          float pressure = BaroSensor.getPressure()/100;
          float temperature = BaroSensor.getTemperature();
          if (!metric) 
          {
            // Convert to fahrenheit
            temperature = temperature * 9.0 / 5.0 + 32.0;
          }
          
          int forecast = sample(pressure);
        
          Serial.print("Temperature = ");
          Serial.print(temperature);
          Serial.println(metric?" *C":" *F");
          Serial.print("Pressure = ");
          Serial.print(pressure);
          Serial.println(" Pa");
          Serial.println(weather[forecast]);
        
        
          if (temperature != lastTemp) {
            gw.send(tempMsg.set(temperature,1));
            lastTemp = temperature;
          }
        
          if (pressure != lastPressure) {
            gw.send(pressureMsg.set(pressure, 0));
            lastPressure = pressure;
          }
        
          if (forecast != lastForecast) 
          {
            gw.send(forecastMsg.set(weather[forecast]));
            lastForecast = forecast;
          }
          
          /*
           DP/Dt explanation
        
           0 = "Stable Weather Pattern"
           1 = "Slowly rising Good Weather", "Clear/Sunny "
           2 = "Slowly falling L-Pressure ", "Cloudy/Rain "
           3 = "Quickly rising H-Press",     "Not Stable"
           4 = "Quickly falling L-Press",    "Thunderstorm"
           5 = "Unknown (More Time needed) 
          */
        
          gw.sleep(SLEEP_TIME);
        }
        
        int sample(float pressure) {
        	// Algorithm found here
        	// http://www.freescale.com/files/sensors/doc/app_note/AN3914.pdf
        	if (minuteCount > 180)
        		minuteCount = 6;
        
        	pressureSamples[minuteCount] = pressure;
        	minuteCount++;
        
        	if (minuteCount == 5) {
        		// Avg pressure in first 5 min, value averaged from 0 to 5 min.
        		pressureAvg[0] = ((pressureSamples[1] + pressureSamples[2]
        				+ pressureSamples[3] + pressureSamples[4] + pressureSamples[5])
        				/ 5);
        	} else if (minuteCount == 35) {
        		// Avg pressure in 30 min, value averaged from 0 to 5 min.
        		pressureAvg[1] = ((pressureSamples[30] + pressureSamples[31]
        				+ pressureSamples[32] + pressureSamples[33]
        				+ pressureSamples[34]) / 5);
        		float change = (pressureAvg[1] - pressureAvg[0]);
        		if (firstRound) // first time initial 3 hour
        			dP_dt = ((65.0 / 1023.0) * 2 * change); // note this is for t = 0.5hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 1.5); // divide by 1.5 as this is the difference in time from 0 value.
        	} else if (minuteCount == 60) {
        		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
        		pressureAvg[2] = ((pressureSamples[55] + pressureSamples[56]
        				+ pressureSamples[57] + pressureSamples[58]
        				+ pressureSamples[59]) / 5);
        		float change = (pressureAvg[2] - pressureAvg[0]);
        		if (firstRound) //first time initial 3 hour
        			dP_dt = ((65.0 / 1023.0) * change); //note this is for t = 1 hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 2); //divide by 2 as this is the difference in time from 0 value
        	} else if (minuteCount == 95) {
        		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
        		pressureAvg[3] = ((pressureSamples[90] + pressureSamples[91]
        				+ pressureSamples[92] + pressureSamples[93]
        				+ pressureSamples[94]) / 5);
        		float change = (pressureAvg[3] - pressureAvg[0]);
        		if (firstRound) // first time initial 3 hour
        			dP_dt = (((65.0 / 1023.0) * change) / 1.5); // note this is for t = 1.5 hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 2.5); // divide by 2.5 as this is the difference in time from 0 value
        	} else if (minuteCount == 120) {
        		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
        		pressureAvg[4] = ((pressureSamples[115] + pressureSamples[116]
        				+ pressureSamples[117] + pressureSamples[118]
        				+ pressureSamples[119]) / 5);
        		float change = (pressureAvg[4] - pressureAvg[0]);
        		if (firstRound) // first time initial 3 hour
        			dP_dt = (((65.0 / 1023.0) * change) / 2); // note this is for t = 2 hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 3); // divide by 3 as this is the difference in time from 0 value
        	} else if (minuteCount == 155) {
        		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
        		pressureAvg[5] = ((pressureSamples[150] + pressureSamples[151]
        				+ pressureSamples[152] + pressureSamples[153]
        				+ pressureSamples[154]) / 5);
        		float change = (pressureAvg[5] - pressureAvg[0]);
        		if (firstRound) // first time initial 3 hour
        			dP_dt = (((65.0 / 1023.0) * change) / 2.5); // note this is for t = 2.5 hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 3.5); // divide by 3.5 as this is the difference in time from 0 value
        	} else if (minuteCount == 180) {
        		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
        		pressureAvg[6] = ((pressureSamples[175] + pressureSamples[176]
        				+ pressureSamples[177] + pressureSamples[178]
        				+ pressureSamples[179]) / 5);
        		float change = (pressureAvg[6] - pressureAvg[0]);
        		if (firstRound) // first time initial 3 hour
        			dP_dt = (((65.0 / 1023.0) * change) / 3); // note this is for t = 3 hour
        		else
        			dP_dt = (((65.0 / 1023.0) * change) / 4); // divide by 4 as this is the difference in time from 0 value
        		pressureAvg[0] = pressureAvg[5]; // Equating the pressure at 0 to the pressure at 2 hour after 3 hours have past.
        		firstRound = false; // flag to let you know that this is on the past 3 hour mark. Initialized to 0 outside main loop.
        	}
        
        	if (minuteCount < 35 && firstRound) //if time is less than 35 min on the first 3 hour interval.
        		return 5; // Unknown, more time needed
        	else if (dP_dt < (-0.25))
        		return 4; // Quickly falling LP, Thunderstorm, not stable
        	else if (dP_dt > 0.25)
        		return 3; // Quickly rising HP, not stable weather
        	else if ((dP_dt > (-0.25)) && (dP_dt < (-0.05)))
        		return 2; // Slowly falling Low Pressure System, stable rainy weather
        	else if ((dP_dt > 0.05) && (dP_dt < 0.25))
        		return 1; // Slowly rising HP stable good weather
        	else if ((dP_dt > (-0.05)) && (dP_dt < 0.05))
        		return 0; // Stable weather
        	else
        		return 5; // Unknown
        }
        
        M 1 Reply Last reply
        0
        • BulldogLowellB BulldogLowell

          @Myles-L

          this compiles, but I could not test it:

          #include <SPI.h>
          #include <MySensor.h>  
          #include <Wire.h>
          #include <BaroSensor.h>
          
          #define BARO_CHILD 0
          #define TEMP_CHILD 1
          
          unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)
          
          MySensor gw;
          
          float lastPressure = -1;
          float lastTemp = -1;
          int lastForecast = -1;
          const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
          int minutes;
          float pressureSamples[180];
          int minuteCount = 0;
          bool firstRound = true;
          float pressureAvg[7];
          float dP_dt;
          boolean metric; 
          MyMessage tempMsg(TEMP_CHILD, V_TEMP);
          MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
          MyMessage forecastMsg(BARO_CHILD, V_FORECAST);
          
          void setup() {
            gw.begin();
          
            // Send the sketch version information to the gateway and Controller
            gw.sendSketchInfo("Pressure Sensor", "1.0");
          
            BaroSensor.begin();
          
            // Register sensors to gw (they will be created as child devices)
            gw.present(BARO_CHILD, S_BARO);
            gw.present(TEMP_CHILD, S_TEMP);
            metric =  gw.getConfig().isMetric;
          }
          
          void loop() 
          {
            if(!BaroSensor.isOK()) 
            {
              Serial.print("Sensor not Found/OK. Error: "); 
              Serial.println(BaroSensor.getError());
              BaroSensor.begin(); // Try to reinitialise the sensor if we can
            }
            
            float pressure = BaroSensor.getPressure()/100;
            float temperature = BaroSensor.getTemperature();
            if (!metric) 
            {
              // Convert to fahrenheit
              temperature = temperature * 9.0 / 5.0 + 32.0;
            }
            
            int forecast = sample(pressure);
          
            Serial.print("Temperature = ");
            Serial.print(temperature);
            Serial.println(metric?" *C":" *F");
            Serial.print("Pressure = ");
            Serial.print(pressure);
            Serial.println(" Pa");
            Serial.println(weather[forecast]);
          
          
            if (temperature != lastTemp) {
              gw.send(tempMsg.set(temperature,1));
              lastTemp = temperature;
            }
          
            if (pressure != lastPressure) {
              gw.send(pressureMsg.set(pressure, 0));
              lastPressure = pressure;
            }
          
            if (forecast != lastForecast) 
            {
              gw.send(forecastMsg.set(weather[forecast]));
              lastForecast = forecast;
            }
            
            /*
             DP/Dt explanation
          
             0 = "Stable Weather Pattern"
             1 = "Slowly rising Good Weather", "Clear/Sunny "
             2 = "Slowly falling L-Pressure ", "Cloudy/Rain "
             3 = "Quickly rising H-Press",     "Not Stable"
             4 = "Quickly falling L-Press",    "Thunderstorm"
             5 = "Unknown (More Time needed) 
            */
          
            gw.sleep(SLEEP_TIME);
          }
          
          int sample(float pressure) {
          	// Algorithm found here
          	// http://www.freescale.com/files/sensors/doc/app_note/AN3914.pdf
          	if (minuteCount > 180)
          		minuteCount = 6;
          
          	pressureSamples[minuteCount] = pressure;
          	minuteCount++;
          
          	if (minuteCount == 5) {
          		// Avg pressure in first 5 min, value averaged from 0 to 5 min.
          		pressureAvg[0] = ((pressureSamples[1] + pressureSamples[2]
          				+ pressureSamples[3] + pressureSamples[4] + pressureSamples[5])
          				/ 5);
          	} else if (minuteCount == 35) {
          		// Avg pressure in 30 min, value averaged from 0 to 5 min.
          		pressureAvg[1] = ((pressureSamples[30] + pressureSamples[31]
          				+ pressureSamples[32] + pressureSamples[33]
          				+ pressureSamples[34]) / 5);
          		float change = (pressureAvg[1] - pressureAvg[0]);
          		if (firstRound) // first time initial 3 hour
          			dP_dt = ((65.0 / 1023.0) * 2 * change); // note this is for t = 0.5hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 1.5); // divide by 1.5 as this is the difference in time from 0 value.
          	} else if (minuteCount == 60) {
          		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
          		pressureAvg[2] = ((pressureSamples[55] + pressureSamples[56]
          				+ pressureSamples[57] + pressureSamples[58]
          				+ pressureSamples[59]) / 5);
          		float change = (pressureAvg[2] - pressureAvg[0]);
          		if (firstRound) //first time initial 3 hour
          			dP_dt = ((65.0 / 1023.0) * change); //note this is for t = 1 hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 2); //divide by 2 as this is the difference in time from 0 value
          	} else if (minuteCount == 95) {
          		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
          		pressureAvg[3] = ((pressureSamples[90] + pressureSamples[91]
          				+ pressureSamples[92] + pressureSamples[93]
          				+ pressureSamples[94]) / 5);
          		float change = (pressureAvg[3] - pressureAvg[0]);
          		if (firstRound) // first time initial 3 hour
          			dP_dt = (((65.0 / 1023.0) * change) / 1.5); // note this is for t = 1.5 hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 2.5); // divide by 2.5 as this is the difference in time from 0 value
          	} else if (minuteCount == 120) {
          		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
          		pressureAvg[4] = ((pressureSamples[115] + pressureSamples[116]
          				+ pressureSamples[117] + pressureSamples[118]
          				+ pressureSamples[119]) / 5);
          		float change = (pressureAvg[4] - pressureAvg[0]);
          		if (firstRound) // first time initial 3 hour
          			dP_dt = (((65.0 / 1023.0) * change) / 2); // note this is for t = 2 hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 3); // divide by 3 as this is the difference in time from 0 value
          	} else if (minuteCount == 155) {
          		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
          		pressureAvg[5] = ((pressureSamples[150] + pressureSamples[151]
          				+ pressureSamples[152] + pressureSamples[153]
          				+ pressureSamples[154]) / 5);
          		float change = (pressureAvg[5] - pressureAvg[0]);
          		if (firstRound) // first time initial 3 hour
          			dP_dt = (((65.0 / 1023.0) * change) / 2.5); // note this is for t = 2.5 hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 3.5); // divide by 3.5 as this is the difference in time from 0 value
          	} else if (minuteCount == 180) {
          		// Avg pressure at end of the hour, value averaged from 0 to 5 min.
          		pressureAvg[6] = ((pressureSamples[175] + pressureSamples[176]
          				+ pressureSamples[177] + pressureSamples[178]
          				+ pressureSamples[179]) / 5);
          		float change = (pressureAvg[6] - pressureAvg[0]);
          		if (firstRound) // first time initial 3 hour
          			dP_dt = (((65.0 / 1023.0) * change) / 3); // note this is for t = 3 hour
          		else
          			dP_dt = (((65.0 / 1023.0) * change) / 4); // divide by 4 as this is the difference in time from 0 value
          		pressureAvg[0] = pressureAvg[5]; // Equating the pressure at 0 to the pressure at 2 hour after 3 hours have past.
          		firstRound = false; // flag to let you know that this is on the past 3 hour mark. Initialized to 0 outside main loop.
          	}
          
          	if (minuteCount < 35 && firstRound) //if time is less than 35 min on the first 3 hour interval.
          		return 5; // Unknown, more time needed
          	else if (dP_dt < (-0.25))
          		return 4; // Quickly falling LP, Thunderstorm, not stable
          	else if (dP_dt > 0.25)
          		return 3; // Quickly rising HP, not stable weather
          	else if ((dP_dt > (-0.25)) && (dP_dt < (-0.05)))
          		return 2; // Slowly falling Low Pressure System, stable rainy weather
          	else if ((dP_dt > 0.05) && (dP_dt < 0.25))
          		return 1; // Slowly rising HP stable good weather
          	else if ((dP_dt > (-0.05)) && (dP_dt < 0.05))
          		return 0; // Stable weather
          	else
          		return 5; // Unknown
          }
          
          M Offline
          M Offline
          Myles L
          wrote on last edited by
          #10

          Thank you so much, it is so close. Code compiles, uploads and there is output from the serial monitor but when adding the device to Vera only a repeater node gets added and not the actual pressure sensor.

          The additional pressure sensor files have been uploaded to Vera.

          BulldogLowellB 1 Reply Last reply
          0
          • M Myles L

            Thank you so much, it is so close. Code compiles, uploads and there is output from the serial monitor but when adding the device to Vera only a repeater node gets added and not the actual pressure sensor.

            The additional pressure sensor files have been uploaded to Vera.

            BulldogLowellB Offline
            BulldogLowellB Offline
            BulldogLowell
            Contest Winner
            wrote on last edited by
            #11

            put some delays in here... especially if you do not have the caps on the radio!!!

            BaroSensor.begin();
            // Register sensors to gw (they will be created as child devices)
            gw.sendSketchInfo("Pressure Sensor", "1.0");
            delay(250);
            gw.present(BARO_CHILD, S_BARO);
            delay(250);
            gw.present(TEMP_CHILD, S_TEMP);
            delay(250);
            metric =  gw.getConfig().isMetric;
            

            if that isn't enough, you can try to add a little more time to the delays....

            1 Reply Last reply
            0
            • M Offline
              M Offline
              Myles L
              wrote on last edited by
              #12

              Tried delays right up to 5000 and also added a few others but unfortunately it still only presents the repeater node to Vera

              BulldogLowellB 1 Reply Last reply
              0
              • M Myles L

                Tried delays right up to 5000 and also added a few others but unfortunately it still only presents the repeater node to Vera

                BulldogLowellB Offline
                BulldogLowellB Offline
                BulldogLowell
                Contest Winner
                wrote on last edited by
                #13

                @Myles-L

                Try deleting the devices it created and starting over. Give it a new device number and try it without it being a repeating node:

                change:

                gw.begin();
                

                to:

                gw.begin(NULL, DEVICE_ID, false);
                

                where you defined (added) in the header of the sketch:

                #define DEVICE_ID 10 
                

                or some other number that is non-zero and not greater than 254

                1 Reply Last reply
                0
                • M Offline
                  M Offline
                  Myles L
                  wrote on last edited by
                  #14

                  By adding those changes it went back to not outputting to the serial interface. I was able to get it to output again by removing the DEFINE DEVICE ID and the DEVICE ID section (not sure why that made a difference) but then it goes back to only adding a node to Vera.

                  Really appreciate your determination to solve this and I am learning lots along the way!

                  BulldogLowellB 1 Reply Last reply
                  0
                  • M Myles L

                    By adding those changes it went back to not outputting to the serial interface. I was able to get it to output again by removing the DEFINE DEVICE ID and the DEVICE ID section (not sure why that made a difference) but then it goes back to only adding a node to Vera.

                    Really appreciate your determination to solve this and I am learning lots along the way!

                    BulldogLowellB Offline
                    BulldogLowellB Offline
                    BulldogLowell
                    Contest Winner
                    wrote on last edited by
                    #15

                    @Myles-L

                    you mind posting the code you tried last?

                    Can you confirm that you have deleted the Vera devices that were created (I believe you said it was a relay)

                    1 Reply Last reply
                    0
                    • M Offline
                      M Offline
                      Myles L
                      wrote on last edited by
                      #16

                      I have deleted the Vera devices and I have also tried removing and re-adding the MySensors plugin in Vera. When I add the pressure sensor now it still adds as a node. Code is below:

                      #include <SPI.h>
                      #include <MySensor.h>
                      #include <Wire.h>
                      #include <BaroSensor.h>

                      #define BARO_CHILD 0
                      #define TEMP_CHILD 1

                      unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)

                      MySensor gw;

                      float lastPressure = -1;
                      float lastTemp = -1;
                      int lastForecast = -1;
                      const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
                      int minutes;
                      float pressureSamples[180];
                      int minuteCount = 0;
                      bool firstRound = true;
                      float pressureAvg[7];
                      float dP_dt;
                      boolean metric;
                      MyMessage tempMsg(TEMP_CHILD, V_TEMP);
                      MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
                      MyMessage forecastMsg(BARO_CHILD, V_FORECAST);

                      void setup() {
                      gw.begin(NULL, false);

                      // Send the sketch version information to the gateway and Controller
                      gw.sendSketchInfo("Pressure Sensor", "1.0");
                      delay(1000);
                      BaroSensor.begin();
                      delay(1000);
                      // Register sensors to gw (they will be created as child devices)
                      gw.present(BARO_CHILD, S_BARO);
                      delay(1000);
                      gw.present(TEMP_CHILD, S_TEMP);
                      delay(1000);
                      metric = gw.getConfig().isMetric;
                      }

                      void loop()
                      {
                      if(!BaroSensor.isOK())
                      {
                      Serial.print("Sensor not Found/OK. Error: ");
                      Serial.println(BaroSensor.getError());
                      BaroSensor.begin(); // Try to reinitialise the sensor if we can
                      }

                      float pressure = BaroSensor.getPressure()/100;
                      float temperature = BaroSensor.getTemperature();
                      if (!metric)
                      {
                      // Convert to fahrenheit
                      temperature = temperature * 9.0 / 5.0 + 32.0;
                      }

                      int forecast = sample(pressure);

                      Serial.print("Temperature = ");
                      Serial.print(temperature);
                      Serial.println(metric?" *C":" *F");
                      Serial.print("Pressure = ");
                      Serial.print(pressure);
                      Serial.println(" Pa");
                      Serial.println(weather[forecast]);

                      if (temperature != lastTemp) {
                      gw.send(tempMsg.set(temperature,1));
                      lastTemp = temperature;
                      }

                      if (pressure != lastPressure) {
                      gw.send(pressureMsg.set(pressure, 0));
                      lastPressure = pressure;
                      }

                      if (forecast != lastForecast)
                      {
                      gw.send(forecastMsg.set(weather[forecast]));
                      lastForecast = forecast;
                      }

                      /*
                      DP/Dt explanation

                      0 = "Stable Weather Pattern"
                      1 = "Slowly rising Good Weather", "Clear/Sunny "
                      2 = "Slowly falling L-Pressure ", "Cloudy/Rain "
                      3 = "Quickly rising H-Press", "Not Stable"
                      4 = "Quickly falling L-Press", "Thunderstorm"
                      5 = "Unknown (More Time needed)
                      */

                      gw.sleep(SLEEP_TIME);
                      }

                      int sample(float pressure) {
                      // Algorithm found here
                      // http://www.freescale.com/files/sensors/doc/app_note/AN3914.pdf
                      if (minuteCount > 180)
                      minuteCount = 6;

                      pressureSamples[minuteCount] = pressure;
                      minuteCount++;
                      
                      if (minuteCount == 5) {
                          // Avg pressure in first 5 min, value averaged from 0 to 5 min.
                          pressureAvg[0] = ((pressureSamples[1] + pressureSamples[2]
                                  + pressureSamples[3] + pressureSamples[4] + pressureSamples[5])
                                  / 5);
                      } else if (minuteCount == 35) {
                          // Avg pressure in 30 min, value averaged from 0 to 5 min.
                          pressureAvg[1] = ((pressureSamples[30] + pressureSamples[31]
                                  + pressureSamples[32] + pressureSamples[33]
                                  + pressureSamples[34]) / 5);
                          float change = (pressureAvg[1] - pressureAvg[0]);
                          if (firstRound) // first time initial 3 hour
                              dP_dt = ((65.0 / 1023.0) * 2 * change); // note this is for t = 0.5hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 1.5); // divide by 1.5 as this is the difference in time from 0 value.
                      } else if (minuteCount == 60) {
                          // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                          pressureAvg[2] = ((pressureSamples[55] + pressureSamples[56]
                                  + pressureSamples[57] + pressureSamples[58]
                                  + pressureSamples[59]) / 5);
                          float change = (pressureAvg[2] - pressureAvg[0]);
                          if (firstRound) //first time initial 3 hour
                              dP_dt = ((65.0 / 1023.0) * change); //note this is for t = 1 hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 2); //divide by 2 as this is the difference in time from 0 value
                      } else if (minuteCount == 95) {
                          // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                          pressureAvg[3] = ((pressureSamples[90] + pressureSamples[91]
                                  + pressureSamples[92] + pressureSamples[93]
                                  + pressureSamples[94]) / 5);
                          float change = (pressureAvg[3] - pressureAvg[0]);
                          if (firstRound) // first time initial 3 hour
                              dP_dt = (((65.0 / 1023.0) * change) / 1.5); // note this is for t = 1.5 hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 2.5); // divide by 2.5 as this is the difference in time from 0 value
                      } else if (minuteCount == 120) {
                          // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                          pressureAvg[4] = ((pressureSamples[115] + pressureSamples[116]
                                  + pressureSamples[117] + pressureSamples[118]
                                  + pressureSamples[119]) / 5);
                          float change = (pressureAvg[4] - pressureAvg[0]);
                          if (firstRound) // first time initial 3 hour
                              dP_dt = (((65.0 / 1023.0) * change) / 2); // note this is for t = 2 hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 3); // divide by 3 as this is the difference in time from 0 value
                      } else if (minuteCount == 155) {
                          // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                          pressureAvg[5] = ((pressureSamples[150] + pressureSamples[151]
                                  + pressureSamples[152] + pressureSamples[153]
                                  + pressureSamples[154]) / 5);
                          float change = (pressureAvg[5] - pressureAvg[0]);
                          if (firstRound) // first time initial 3 hour
                              dP_dt = (((65.0 / 1023.0) * change) / 2.5); // note this is for t = 2.5 hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 3.5); // divide by 3.5 as this is the difference in time from 0 value
                      } else if (minuteCount == 180) {
                          // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                          pressureAvg[6] = ((pressureSamples[175] + pressureSamples[176]
                                  + pressureSamples[177] + pressureSamples[178]
                                  + pressureSamples[179]) / 5);
                          float change = (pressureAvg[6] - pressureAvg[0]);
                          if (firstRound) // first time initial 3 hour
                              dP_dt = (((65.0 / 1023.0) * change) / 3); // note this is for t = 3 hour
                          else
                              dP_dt = (((65.0 / 1023.0) * change) / 4); // divide by 4 as this is the difference in time from 0 value
                          pressureAvg[0] = pressureAvg[5]; // Equating the pressure at 0 to the pressure at 2 hour after 3 hours have past.
                          firstRound = false; // flag to let you know that this is on the past 3 hour mark. Initialized to 0 outside main loop.
                      }
                      
                      if (minuteCount < 35 && firstRound) //if time is less than 35 min on the first 3 hour interval.
                          return 5; // Unknown, more time needed
                      else if (dP_dt < (-0.25))
                          return 4; // Quickly falling LP, Thunderstorm, not stable
                      else if (dP_dt > 0.25)
                          return 3; // Quickly rising HP, not stable weather
                      else if ((dP_dt > (-0.25)) && (dP_dt < (-0.05)))
                          return 2; // Slowly falling Low Pressure System, stable rainy weather
                      else if ((dP_dt > 0.05) && (dP_dt < 0.25))
                          return 1; // Slowly rising HP stable good weather
                      else if ((dP_dt > (-0.05)) && (dP_dt < 0.05))
                          return 0; // Stable weather
                      else
                          return 5; // Unknown
                      

                      }

                      1 Reply Last reply
                      0
                      • BulldogLowellB Offline
                        BulldogLowellB Offline
                        BulldogLowell
                        Contest Winner
                        wrote on last edited by
                        #17

                        @BulldogLowell said:

                        Try this, and tell me what the serial output looks like.

                        Have you added a capacitor to the radio? It could be electronic...

                        #include <SPI.h>
                        #include <MySensor.h>  
                        #include <Wire.h>
                        #include <BaroSensor.h>
                        
                        #define BARO_CHILD 0
                        #define TEMP_CHILD 1
                        #define DEVICE_ID 99
                        
                        unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)
                        
                        MySensor gw;
                        
                        float lastPressure = -1;
                        float lastTemp = -1;
                        int lastForecast = -1;
                        const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
                        int minutes;
                        float pressureSamples[180];
                        int minuteCount = 0;
                        bool firstRound = true;
                        float pressureAvg[7];
                        float dP_dt;
                        boolean metric; 
                        MyMessage tempMsg(TEMP_CHILD, V_TEMP);
                        MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
                        MyMessage forecastMsg(BARO_CHILD, V_FORECAST);
                        
                        void setup() {
                          gw.begin(NULL, DEVICE_ID, false);
                          delay(1000);
                          Serial.println("Got to GW.Begin");
                          // Send the sketch version information to the gateway and Controller
                          gw.sendSketchInfo("Pressure Sensor", "1.0");
                          Serial.println("Sketch data Presented");
                          delay(1000);
                          BaroSensor.begin();
                          Serial.println("Brometer Sensor started...");
                          delay(1000);
                          // Register sensors to gw (they will be created as child devices)
                          gw.present(BARO_CHILD, S_BARO);
                          Serial.println("presenting Barometer");
                          delay(1000);
                          gw.present(TEMP_CHILD, S_TEMP);
                          Serial.println("presenting Thermometer");
                          delay(1000);
                          metric =  gw.getConfig().isMetric;
                          Serial.println("requesting Metric");
                          delay(1000);
                          Serial.println("Setup Complete");
                        }
                        
                        void loop() 
                        {
                        }
                        
                        1 Reply Last reply
                        0
                        • M Offline
                          M Offline
                          Myles L
                          wrote on last edited by
                          #18

                          The Sensor and Ethernet gateway both have 4.7uf electrolytic capacitors across the power input of the radio's (I cant get much distance out of them, maybe <10 metres, but they do work for the relay sensor).

                          The serial output looks like this: ��Ah���Y5����������i��`q!���J�����

                          1 Reply Last reply
                          0
                          • M Offline
                            M Offline
                            Myles L
                            wrote on last edited by
                            #19

                            Using that sketch I was able to add it to Vera, it just does not report pressure or forecast (obviously as there is no data being presented to it)

                            1 Reply Last reply
                            0
                            • BulldogLowellB Offline
                              BulldogLowellB Offline
                              BulldogLowell
                              Contest Winner
                              wrote on last edited by
                              #20

                              Great, now just plug the loop() back into the sketch, flash your arduino, and you should be good to go

                              oh... and add a Serial.begin(yourDesiredBaudRate) to setup() ;)

                              1 Reply Last reply
                              0
                              • M Offline
                                M Offline
                                Myles L
                                wrote on last edited by
                                #21

                                Ok, so close! Adding back the rest I get and endless string of � in the serial monitor and nothing adds to Vera.

                                I don't actually need the temp (tried commenting it out but could not get it to compile) if that makes it easier?

                                Here is what I have:

                                #include <SPI.h>
                                #include <MySensor.h>
                                #include <Wire.h>
                                #include <BaroSensor.h>

                                #define BARO_CHILD 0
                                #define TEMP_CHILD 1
                                #define DEVICE_ID 99

                                unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)

                                MySensor gw;

                                float lastPressure = -1;
                                float lastTemp = -1;
                                int lastForecast = -1;
                                const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
                                int minutes;
                                float pressureSamples[180];
                                int minuteCount = 0;
                                bool firstRound = true;
                                float pressureAvg[7];
                                float dP_dt;
                                boolean metric;
                                MyMessage tempMsg(TEMP_CHILD, V_TEMP);
                                MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
                                MyMessage forecastMsg(BARO_CHILD, V_FORECAST);

                                void setup()
                                {
                                Serial.begin(9600);
                                gw.begin(NULL, DEVICE_ID, false);
                                delay(1000);
                                Serial.println("Got to GW.Begin");
                                // Send the sketch version information to the gateway and Controller
                                gw.sendSketchInfo("Pressure Sensor", "1.0");
                                Serial.println("Sketch data Presented");
                                delay(1000);
                                BaroSensor.begin();
                                Serial.println("Brometer Sensor started...");
                                delay(1000);
                                // Register sensors to gw (they will be created as child devices)
                                gw.present(BARO_CHILD, S_BARO);
                                Serial.println("presenting Barometer");
                                delay(1000);
                                gw.present(TEMP_CHILD, S_TEMP);
                                Serial.println("presenting Thermometer");
                                delay(1000);
                                metric = gw.getConfig().isMetric;
                                Serial.println("requesting Metric");
                                delay(1000);
                                Serial.println("Setup Complete");
                                }

                                void loop()
                                {
                                if(!BaroSensor.isOK())
                                {
                                Serial.print("Sensor not Found/OK. Error: ");
                                Serial.println(BaroSensor.getError());
                                BaroSensor.begin(); // Try to reinitialise the sensor if we can
                                }

                                float pressure = BaroSensor.getPressure()/100;
                                float temperature = BaroSensor.getTemperature();
                                if (!metric)
                                {
                                // Convert to fahrenheit
                                temperature = temperature * 9.0 / 5.0 + 32.0;
                                }

                                int forecast = sample(pressure);

                                Serial.print("Temperature = ");
                                Serial.print(temperature);
                                Serial.println(metric?" C":" F");
                                Serial.print("Pressure = ");
                                Serial.print(pressure);
                                Serial.println(" Pa");
                                Serial.println(weather[forecast]);

                                if (temperature != lastTemp) {
                                gw.send(tempMsg.set(temperature,1));
                                lastTemp = temperature;
                                }

                                if (pressure != lastPressure) {
                                gw.send(pressureMsg.set(pressure, 0));
                                lastPressure = pressure;
                                }

                                if (forecast != lastForecast)
                                {
                                gw.send(forecastMsg.set(weather[forecast]));
                                lastForecast = forecast;
                                }

                                /*
                                DP/Dt explanation

                                0 = "Stable Weather Pattern"
                                1 = "Slowly rising Good Weather", "Clear/Sunny "
                                2 = "Slowly falling L-Pressure ", "Cloudy/Rain "
                                3 = "Quickly rising H-Press", "Not Stable"
                                4 = "Quickly falling L-Press", "Thunderstorm"
                                5 = "Unknown (More Time needed)
                                */

                                gw.sleep(SLEEP_TIME);
                                }

                                int sample(float pressure) {
                                // Algorithm found here
                                // http://www.freescale.com/files/sensors/doc/app_note/AN3914.pdf
                                if (minuteCount > 180)
                                minuteCount = 6;
                                pressureSamples[minuteCount] = pressure;
                                minuteCount++;

                                if (minuteCount == 5) {
                                // Avg pressure in first 5 min, value averaged from 0 to 5 min.
                                pressureAvg[0] = ((pressureSamples[1] + pressureSamples[2]
                                + pressureSamples[3] + pressureSamples[4] + pressureSamples[5])
                                / 5);
                                } else if (minuteCount == 35) {
                                // Avg pressure in 30 min, value averaged from 0 to 5 min.
                                pressureAvg[1] = ((pressureSamples[30] + pressureSamples[31]
                                + pressureSamples[32] + pressureSamples[33]
                                + pressureSamples[34]) / 5);
                                float change = (pressureAvg[1] - pressureAvg[0]);
                                if (firstRound) // first time initial 3 hour
                                dP_dt = ((65.0 / 1023.0) * 2 * change); // note this is for t = 0.5hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 1.5); // divide by 1.5 as this is the difference in time from 0 value.
                                } else if (minuteCount == 60) {
                                // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                pressureAvg[2] = ((pressureSamples[55] + pressureSamples[56]
                                + pressureSamples[57] + pressureSamples[58]
                                + pressureSamples[59]) / 5);
                                float change = (pressureAvg[2] - pressureAvg[0]);
                                if (firstRound) //first time initial 3 hour
                                dP_dt = ((65.0 / 1023.0) * change); //note this is for t = 1 hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 2); //divide by 2 as this is the difference in time from 0 value
                                } else if (minuteCount == 95) {
                                // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                pressureAvg[3] = ((pressureSamples[90] + pressureSamples[91]
                                + pressureSamples[92] + pressureSamples[93]
                                + pressureSamples[94]) / 5);
                                float change = (pressureAvg[3] - pressureAvg[0]);
                                if (firstRound) // first time initial 3 hour
                                dP_dt = (((65.0 / 1023.0) * change) / 1.5); // note this is for t = 1.5 hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 2.5); // divide by 2.5 as this is the difference in time from 0 value
                                } else if (minuteCount == 120) {
                                // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                pressureAvg[4] = ((pressureSamples[115] + pressureSamples[116]
                                + pressureSamples[117] + pressureSamples[118]
                                + pressureSamples[119]) / 5);
                                float change = (pressureAvg[4] - pressureAvg[0]);
                                if (firstRound) // first time initial 3 hour
                                dP_dt = (((65.0 / 1023.0) * change) / 2); // note this is for t = 2 hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 3); // divide by 3 as this is the difference in time from 0 value
                                } else if (minuteCount == 155) {
                                // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                pressureAvg[5] = ((pressureSamples[150] + pressureSamples[151]
                                + pressureSamples[152] + pressureSamples[153]
                                + pressureSamples[154]) / 5);
                                float change = (pressureAvg[5] - pressureAvg[0]);
                                if (firstRound) // first time initial 3 hour
                                dP_dt = (((65.0 / 1023.0) * change) / 2.5); // note this is for t = 2.5 hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 3.5); // divide by 3.5 as this is the difference in time from 0 value
                                } else if (minuteCount == 180) {
                                // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                pressureAvg[6] = ((pressureSamples[175] + pressureSamples[176]
                                + pressureSamples[177] + pressureSamples[178]
                                + pressureSamples[179]) / 5);
                                float change = (pressureAvg[6] - pressureAvg[0]);
                                if (firstRound) // first time initial 3 hour
                                dP_dt = (((65.0 / 1023.0) * change) / 3); // note this is for t = 3 hour
                                else
                                dP_dt = (((65.0 / 1023.0) * change) / 4); // divide by 4 as this is the difference in time from 0 value
                                pressureAvg[0] = pressureAvg[5]; // Equating the pressure at 0 to the pressure at 2 hour after 3 hours have past.
                                firstRound = false; // flag to let you know that this is on the past 3 hour mark. Initialized to 0 outside main loop.
                                }

                                if (minuteCount < 35 && firstRound) //if time is less than 35 min on the first 3 hour interval.
                                return 5; // Unknown, more time needed
                                else if (dP_dt < (-0.25))
                                return 4; // Quickly falling LP, Thunderstorm, not stable
                                else if (dP_dt > 0.25)
                                return 3; // Quickly rising HP, not stable weather
                                else if ((dP_dt > (-0.25)) && (dP_dt < (-0.05)))
                                return 2; // Slowly falling Low Pressure System, stable rainy weather
                                else if ((dP_dt > 0.05) && (dP_dt < 0.25))
                                return 1; // Slowly rising HP stable good weather
                                else if ((dP_dt > (-0.05)) && (dP_dt < 0.05))
                                return 0; // Stable weather
                                else
                                return 5; // Unknown
                                }

                                BulldogLowellB 1 Reply Last reply
                                0
                                • M Myles L

                                  Ok, so close! Adding back the rest I get and endless string of � in the serial monitor and nothing adds to Vera.

                                  I don't actually need the temp (tried commenting it out but could not get it to compile) if that makes it easier?

                                  Here is what I have:

                                  #include <SPI.h>
                                  #include <MySensor.h>
                                  #include <Wire.h>
                                  #include <BaroSensor.h>

                                  #define BARO_CHILD 0
                                  #define TEMP_CHILD 1
                                  #define DEVICE_ID 99

                                  unsigned long SLEEP_TIME = 60000; // Sleep time between reads (in seconds)

                                  MySensor gw;

                                  float lastPressure = -1;
                                  float lastTemp = -1;
                                  int lastForecast = -1;
                                  const char *weather[] = {"stable","sunny","cloudy","unstable","thunderstorm","unknown"};
                                  int minutes;
                                  float pressureSamples[180];
                                  int minuteCount = 0;
                                  bool firstRound = true;
                                  float pressureAvg[7];
                                  float dP_dt;
                                  boolean metric;
                                  MyMessage tempMsg(TEMP_CHILD, V_TEMP);
                                  MyMessage pressureMsg(BARO_CHILD, V_PRESSURE);
                                  MyMessage forecastMsg(BARO_CHILD, V_FORECAST);

                                  void setup()
                                  {
                                  Serial.begin(9600);
                                  gw.begin(NULL, DEVICE_ID, false);
                                  delay(1000);
                                  Serial.println("Got to GW.Begin");
                                  // Send the sketch version information to the gateway and Controller
                                  gw.sendSketchInfo("Pressure Sensor", "1.0");
                                  Serial.println("Sketch data Presented");
                                  delay(1000);
                                  BaroSensor.begin();
                                  Serial.println("Brometer Sensor started...");
                                  delay(1000);
                                  // Register sensors to gw (they will be created as child devices)
                                  gw.present(BARO_CHILD, S_BARO);
                                  Serial.println("presenting Barometer");
                                  delay(1000);
                                  gw.present(TEMP_CHILD, S_TEMP);
                                  Serial.println("presenting Thermometer");
                                  delay(1000);
                                  metric = gw.getConfig().isMetric;
                                  Serial.println("requesting Metric");
                                  delay(1000);
                                  Serial.println("Setup Complete");
                                  }

                                  void loop()
                                  {
                                  if(!BaroSensor.isOK())
                                  {
                                  Serial.print("Sensor not Found/OK. Error: ");
                                  Serial.println(BaroSensor.getError());
                                  BaroSensor.begin(); // Try to reinitialise the sensor if we can
                                  }

                                  float pressure = BaroSensor.getPressure()/100;
                                  float temperature = BaroSensor.getTemperature();
                                  if (!metric)
                                  {
                                  // Convert to fahrenheit
                                  temperature = temperature * 9.0 / 5.0 + 32.0;
                                  }

                                  int forecast = sample(pressure);

                                  Serial.print("Temperature = ");
                                  Serial.print(temperature);
                                  Serial.println(metric?" C":" F");
                                  Serial.print("Pressure = ");
                                  Serial.print(pressure);
                                  Serial.println(" Pa");
                                  Serial.println(weather[forecast]);

                                  if (temperature != lastTemp) {
                                  gw.send(tempMsg.set(temperature,1));
                                  lastTemp = temperature;
                                  }

                                  if (pressure != lastPressure) {
                                  gw.send(pressureMsg.set(pressure, 0));
                                  lastPressure = pressure;
                                  }

                                  if (forecast != lastForecast)
                                  {
                                  gw.send(forecastMsg.set(weather[forecast]));
                                  lastForecast = forecast;
                                  }

                                  /*
                                  DP/Dt explanation

                                  0 = "Stable Weather Pattern"
                                  1 = "Slowly rising Good Weather", "Clear/Sunny "
                                  2 = "Slowly falling L-Pressure ", "Cloudy/Rain "
                                  3 = "Quickly rising H-Press", "Not Stable"
                                  4 = "Quickly falling L-Press", "Thunderstorm"
                                  5 = "Unknown (More Time needed)
                                  */

                                  gw.sleep(SLEEP_TIME);
                                  }

                                  int sample(float pressure) {
                                  // Algorithm found here
                                  // http://www.freescale.com/files/sensors/doc/app_note/AN3914.pdf
                                  if (minuteCount > 180)
                                  minuteCount = 6;
                                  pressureSamples[minuteCount] = pressure;
                                  minuteCount++;

                                  if (minuteCount == 5) {
                                  // Avg pressure in first 5 min, value averaged from 0 to 5 min.
                                  pressureAvg[0] = ((pressureSamples[1] + pressureSamples[2]
                                  + pressureSamples[3] + pressureSamples[4] + pressureSamples[5])
                                  / 5);
                                  } else if (minuteCount == 35) {
                                  // Avg pressure in 30 min, value averaged from 0 to 5 min.
                                  pressureAvg[1] = ((pressureSamples[30] + pressureSamples[31]
                                  + pressureSamples[32] + pressureSamples[33]
                                  + pressureSamples[34]) / 5);
                                  float change = (pressureAvg[1] - pressureAvg[0]);
                                  if (firstRound) // first time initial 3 hour
                                  dP_dt = ((65.0 / 1023.0) * 2 * change); // note this is for t = 0.5hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 1.5); // divide by 1.5 as this is the difference in time from 0 value.
                                  } else if (minuteCount == 60) {
                                  // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                  pressureAvg[2] = ((pressureSamples[55] + pressureSamples[56]
                                  + pressureSamples[57] + pressureSamples[58]
                                  + pressureSamples[59]) / 5);
                                  float change = (pressureAvg[2] - pressureAvg[0]);
                                  if (firstRound) //first time initial 3 hour
                                  dP_dt = ((65.0 / 1023.0) * change); //note this is for t = 1 hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 2); //divide by 2 as this is the difference in time from 0 value
                                  } else if (minuteCount == 95) {
                                  // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                  pressureAvg[3] = ((pressureSamples[90] + pressureSamples[91]
                                  + pressureSamples[92] + pressureSamples[93]
                                  + pressureSamples[94]) / 5);
                                  float change = (pressureAvg[3] - pressureAvg[0]);
                                  if (firstRound) // first time initial 3 hour
                                  dP_dt = (((65.0 / 1023.0) * change) / 1.5); // note this is for t = 1.5 hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 2.5); // divide by 2.5 as this is the difference in time from 0 value
                                  } else if (minuteCount == 120) {
                                  // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                  pressureAvg[4] = ((pressureSamples[115] + pressureSamples[116]
                                  + pressureSamples[117] + pressureSamples[118]
                                  + pressureSamples[119]) / 5);
                                  float change = (pressureAvg[4] - pressureAvg[0]);
                                  if (firstRound) // first time initial 3 hour
                                  dP_dt = (((65.0 / 1023.0) * change) / 2); // note this is for t = 2 hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 3); // divide by 3 as this is the difference in time from 0 value
                                  } else if (minuteCount == 155) {
                                  // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                  pressureAvg[5] = ((pressureSamples[150] + pressureSamples[151]
                                  + pressureSamples[152] + pressureSamples[153]
                                  + pressureSamples[154]) / 5);
                                  float change = (pressureAvg[5] - pressureAvg[0]);
                                  if (firstRound) // first time initial 3 hour
                                  dP_dt = (((65.0 / 1023.0) * change) / 2.5); // note this is for t = 2.5 hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 3.5); // divide by 3.5 as this is the difference in time from 0 value
                                  } else if (minuteCount == 180) {
                                  // Avg pressure at end of the hour, value averaged from 0 to 5 min.
                                  pressureAvg[6] = ((pressureSamples[175] + pressureSamples[176]
                                  + pressureSamples[177] + pressureSamples[178]
                                  + pressureSamples[179]) / 5);
                                  float change = (pressureAvg[6] - pressureAvg[0]);
                                  if (firstRound) // first time initial 3 hour
                                  dP_dt = (((65.0 / 1023.0) * change) / 3); // note this is for t = 3 hour
                                  else
                                  dP_dt = (((65.0 / 1023.0) * change) / 4); // divide by 4 as this is the difference in time from 0 value
                                  pressureAvg[0] = pressureAvg[5]; // Equating the pressure at 0 to the pressure at 2 hour after 3 hours have past.
                                  firstRound = false; // flag to let you know that this is on the past 3 hour mark. Initialized to 0 outside main loop.
                                  }

                                  if (minuteCount < 35 && firstRound) //if time is less than 35 min on the first 3 hour interval.
                                  return 5; // Unknown, more time needed
                                  else if (dP_dt < (-0.25))
                                  return 4; // Quickly falling LP, Thunderstorm, not stable
                                  else if (dP_dt > 0.25)
                                  return 3; // Quickly rising HP, not stable weather
                                  else if ((dP_dt > (-0.25)) && (dP_dt < (-0.05)))
                                  return 2; // Slowly falling Low Pressure System, stable rainy weather
                                  else if ((dP_dt > 0.05) && (dP_dt < 0.25))
                                  return 1; // Slowly rising HP stable good weather
                                  else if ((dP_dt > (-0.05)) && (dP_dt < 0.05))
                                  return 0; // Stable weather
                                  else
                                  return 5; // Unknown
                                  }

                                  BulldogLowellB Offline
                                  BulldogLowellB Offline
                                  BulldogLowell
                                  Contest Winner
                                  wrote on last edited by
                                  #22

                                  @Myles-L

                                  hard to read your code like that...

                                  indent your code 4 spaces or put it between three ` [backwards apostrophe just left of the 1 on your keyboard]

                                  are you sure your serial monitor is set to the correct speed?

                                  I'd leave compilable alone until you get the devices set up... you didn't delete the vera devices after you got them set with the correct device number before, right?

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                                  • M Offline
                                    M Offline
                                    Myles L
                                    wrote on last edited by
                                    #23

                                    I did delete it but understand now why I shouldn't have. I will re-add it (different device id) and let you know. It may take a little while as I am waiting for some radios with external antennas and an finding in the meantime that my radio reception is too limited to proceed.

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