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http://dx.doi.org/10.21289/KSIC.2022.25.3.349

Study on Establishment of the Greenhouse Environment Monitoring System for Crop Growth Monitoring  

Kim, Won-Kyung (Dept. of Agricultural Engineering, National Institute of Agricultural Sciences)
Cho, Byeong-Hyo (Dept. of Agricultural Engineering, National Institute of Agricultural Sciences)
Hong, Youngki (Dept. of Agricultural Engineering, National Institute of Agricultural Sciences)
Choi, Won-Sik (Dept. of Bio-industrial Machinary Engineering, Pusan National University)
Kim, Kyoung-Chul (Dept. of Agricultural Engineering, National Institute of Agricultural Sciences)
Publication Information
Journal of the Korean Society of Industry Convergence / v.25, no.3, 2022 , pp. 349-356 More about this Journal
Abstract
Currently, the agricultural population in Korea indicates a decreasing and aging orientation. As the population of farm labor continues to decline, so farmers are feeling the pressure to be stable crop production. To solve the problem caused by the decreasing of farm labor, it is necessary to change over to "Digital agriculture". Digital agriculture is tools that digitally collect, store, analyze, and share electronic data and/or information in agriculture, and aims to integrate the several digital technologies into crop and livestock management and other processes in agriculture fields. In addition, digital agriculture can offer the opportunity to increase crop production, save costs for farmer. Therefore, in this study, for data-based Digital Agriculture, a greenhouse environment monitoring system for crop growth monitoring based on Node-RED, which even beginners can use easily, was developed, and the implemented system was verified in a hydroponic greenhouse. Several sensors, such as temperature, humidity, atmospheric pressure, CO2, solar radiation, were used to obtain the environmental data of the greenhouse. And the environmental data were processed and visualized using Node-RED and MariaDB installed in rule.box digital. The environment monitoring system proposed in this study was installed in a hydroponic greenhouse and obtained the environmental data for almost two weeks. As a result, it was confirmed that all environmental data were obtained without data loss from sensors. In addition, the dashboard provides the names of installed sensors, real time environmental data, and changes in the last three days for each environmental data. Therefore, it is considered that farmers will be able to easily monitor the greenhouse environment using the developed system in this study.
Keywords
Monitoring System; Node-RED; Agricultural Robot; DB;
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Times Cited By KSCI : 1  (Citation Analysis)
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