A Review of the Applications of the Internet of Things (IoT) for Agricultural Automation

被引:72
作者
Kim W.-S. [1 ]
Lee W.-S. [2 ]
Kim Y.-J. [1 ,3 ]
机构
[1] Department of Biosystems Machinery Engineering, Chungnam National University, 99, Daehak-ro, Yuseong-gu, Daejeon
[2] Department of Agricultural and Biological Engineering, University of Florida, 1741 Museum Rd, Gainesville, 32611, FL
[3] Department of Smart Agriculture Systems, Chungnam National University, 99, Daehak-ro, Yuseong-gu, Daejeon
关键词
Agricultural automation; Internet of thing; IoT applications; Wireless sensor network;
D O I
10.1007/s42853-020-00078-3
中图分类号
学科分类号
摘要
Purpose: The Internet of Things (IoT) is a network of devices for communicating machine to machine (M2M) based on wired and wireless Internet. IoT in agriculture is a revolutionary technology that can be applied to agricultural production year-round. The aim of this study is to summarize cases of IoT being applied to agricultural automation in the agricultural sector and to discuss the limitations and prospects for expanding the application of IoT technology in Korea. Methods: The application of IoT in agriculture was classified and analyzed based on previous data, and the sensors and communication technologies used were compared. Based on the analysis results, the limitations of and prospects for IoT in agriculture were discussed. Results: IoT was widely used in agriculture, such as management systems, monitoring systems, control systems, and unmanned machinery. In addition, the various wireless communication technologies used in agriculture, such as Wi-Fi, long-range wide area network (LoRaWAN), mobile communication (e.g., 2G, 3G, and 4G), ZigBee, and Bluetooth, were also used in IoT-based agriculture. Conclusion: With the development of various communication technologies, such as 5G, it is expected that faster and broader IoT technologies will be applied to various agricultural processes in the future. IoT-based agriculture equipped with a communication system suitable for each agricultural environment can contribute to agricultural automation by increasing crop quality and production and reducing labor. © 2020, The Korean Society for Agricultural Machinery.
引用
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页码:385 / 400
页数:15
相关论文
共 115 条
[1]  
Aafreen R., Neyaz S.Y., Shamim R., Beg M.S., An IoT based system for telemetry and control of greenhouse environment, 2019 International Conference on Electrical, Electronics and Computer Engineering (UPCON), pp. 1-6, (2019)
[2]  
Abd El-kader S.M., El-Basioni B.M.M., Precision farming solution in Egypt using the wireless sensor network technology, Egyptian Informatics Journal, 14, 3, pp. 221-233, (2013)
[3]  
Adame T., Bel A., Bellalta B., Barcelo J., Oliver M., IEEE 802.11 ah: the WiFi approach for M2M communications, IEEE Wireless Communications, 21, 6, pp. 144-152, (2014)
[4]  
Akkas M.A., Sokullu R., An IoT-based greenhouse monitoring system with Micaz motes, Procedia Computer Science, 113, pp. 603-608, (2017)
[5]  
Ananthi N., Divya J., Divya M., Janani V., IoT based smart soil monitoring system for agricultural production, 2017 IEEE Technological Innovations in ICT for Agriculture and Rural Development (TIAR), pp. 209-214, (2017)
[6]  
Anastasi G., Conti M., Di Francesco M., Passarella A., Energy conservation in wireless sensor networks: a survey, Ad Hoc Networks, 7, 3, pp. 537-568, (2009)
[7]  
Ande P., Rojatkar D., A survey: application of IoT, International Research Journal of Engineering and Technology, 4, 10, pp. 347-350, (2017)
[8]  
Antony A.P., Leith K., Jolley C., Lu J., Sweeney D.J., A review of practice and implementation of the Internet of Things (IoT) for smallholder agriculture, Sustainability, 12, 9, (2020)
[9]  
Aqeel-ur-Rehman A., Abbasi A.Z., Islam N., Shaikh Z.A., A review of wireless sensors and networks' applications in agriculture, Computer Standards & Interfaces, 36, 2, pp. 263-270, (2014)
[10]  
Ashifuddinmondal M., Rehena Z., IoT based intelligent agriculture field monitoring system, 2018 8Th International Conference on Cloud Computing, Data Science & Engineering (Confluence), pp. 625-629, (2018)