Design and Development an IoT Based Real-Time Agriculture Plant Monitoring System

Authors

  • Nasir Uddin East Delta University
  • Dipta Barua East Delta University
  • Md. Aminul Islam Rajshahi University of Engineering and Technology

DOI:

https://doi.org/10.46603/ejcee.v2i1.26

Keywords:

IoT, Agriculture, Monitoring, ESP8266, Cloud, Thing Speak

Abstract

The agricultural sector plays an important role in Bangladesh that contributing 19.6 % to the national GDP and providing employment to 63 % of the population. So, it is needed to digitalize this sector to make it more productive and effective. Therefore, it is essential to monitor and analyze the real-time agriculture condition data for future improvement. In this project, we have used different sensors such as temperature sensor and humidity sensor soil moisture sensor and pH sensor to monitor the ambient temperature, humidity, moisture content in soil and pH level of water respectively. Node MCU ESP8266 and ThinSpeak have been used as microcontroller and web servers respectively. Using these sensors, it can be monitored the real-time data on the server and controlled from a remote location. This system also has an option to store data in a convenient place. The water pump turns on and off automatically depending on moisture level.

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Author Biographies

Nasir Uddin, East Delta University

Department of Electrical and Electronic Engineering, East Delta University, Chittagong, Bangladesh

 

Dipta Barua, East Delta University

Department of Electrical and Electronic Engineering, East Delta University, Chittagong, Bangladesh

Md. Aminul Islam, Rajshahi University of Engineering and Technology

Department of Materials Science and Engineering, Rajshahi University of Engineering and Technology, Rajshahi, Bangladesh

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Additional Files

Published

2021-12-31

How to Cite

[1]
N. Uddin, D. Barua, and M. A. Islam, “Design and Development an IoT Based Real-Time Agriculture Plant Monitoring System”, EDU J. Comput. Electr. Eng., vol. 2, no. 1, pp. 16–23, Dec. 2021.

Issue

Section

Original Research