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Wireless Sensor Network for Site Specific Crop Management for Precision Agriculture


Affiliations
1 Department of Electronics, Tuljaram Chaturchand College, India
2 Department of Electronics, Smt. Kasturbai Walchand College, India
     

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Recently, due to significant research and development efforts, an innovative field of Wireless Sensor Network (WSN) technologies is evolving as powerful platform for systematically distributed data accumulation and data management. Because of wide application potential WSN is becoming more and more ubiquitous. It ensures the deployment of the technologies such as an embedded technology, wireless communication technology and computer information management technology etc. Emphasizing the themes of Site Specific Crop Management (SSCM), the prime objective of Precision Agriculture, the Wireless Sensor Network is designed and implemented to monitor the environmental parameters of the high-tech polyhouse. The WSN is designed for monitoring of the relative humidity, temperature and intensity of light within the poly house, in the real units. The WSN under investigation comprises ten WSNodes, routed through star networking protocol. The WSNodes are the intelligent devices, wherein the embedded technology is realized. The Hardware is designed about AVR microcontroller, wherein the standards laid down by the IEEE 802.15.4 are emphasized. To ensure wireless networking, the Zigbee devices have been employed, which are configured by the methods suggested by the Digi Corporation. The Base Station, an inherent part the WSN, is also developed and made smarter by developing the Graphical Users Interface (GUI) is dedicatedly developed in the VB environment. Therefore, to realize the monitoring of the domain-wise data of spatio-temporal variance, the WSN is established in polyhouse of smart infrastructure. The results of implementation reveal the facets of Precision Agriculture. On comparison with the standard WSN from Hanback Electronics, it found that, the WSN under investigation exhibit good reliability and preciseness.

Keywords

WSN, Precision Agriculture, SSCM, Embedded Technology, Wireless Communication
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  • A. Darwish and A.E. Hassanien, “Wearable and Implementable Wireless Sensor Network for Health Monitoring”, Sensor, Vol. 12, No. 9, pp. 12375-12376, 2012.
  • H. Alemdar and C. Ersoy, “Wireless Sensor Network for Health Care: A Survey”, Computer Networks, Vol. 54, No. 15, pp. 2688-2710, 2010.
  • R.N. Sahoo, “Geoinformatics for Precision Agriculture”, Proceedings of International Workshop on AI, pp. 1-6, 2010.
  • U.K. Shanwad, V.C. Patil and H. Honne Gowda, “Precision Farming: Dreams and Realities for Indian Agriculture”, Proceedings of National Conference on Map India, pp. 1-7, 2004.
  • H. Auernhammer, “Precision Farming - The Environmental Challenge”, Computers and Electronics in Agriculture, Vol. 30, pp. 31-43, 2001.
  • K. Ramesh and K. Somasundaram, “Improved Fair-Zone Technique using Mobility Prediction in WSN”,International Journal of Advanced Smart Sensor Network System, Vol. 2, No. 2, pp. 23-32, 2012.
  • H. Wu, Y. Wang, H. Dang and F. Lin, “Analytic, Simulation and Empirical Evaluation of Delay/ Fault Tolerent Mobile Sensor Network”, IEEE Transactions on Wireless Communication, Vol. 6, No. 9, pp. 3287-3296, 2007.
  • A. Hamzi, M. Koudil, J.P. Jamont and M. Occell, “Multi-Agent Architecture for the Design of WSN Applications”, Wireless Sensor Network, Vol. 5, pp. 14-25, 2013.
  • E. Yoneki and J. Bacon, “A Survey of Wireless Sensor Network Topologies: Research Trends and Middle Ware’s Role”, Technical Report, Department of Computer Science, University of Cambridge, pp. 1-160, 2005.
  • K. Sohraby, D. Minoli and T. Znati, “Wireless Sensor Network: Tehnology, Protocol and Applications”, John Willey, 2007.
  • Bluetooth Specification, Available at https://en.wikipedia.org/wiki/List_of_Bluetooth_profiles, Accessed at 2007.
  • ZigBee, Available at https://en.wikipedia.org/wiki/Zigbee, Accessed at 2010.
  • IEEE 802.11.2020, Available at https://standards.ieee.org/ieee/802.11/7028/, Accessed at 2020.
  • L. Yu, Q. Zhang, X. Meng and Z. Yan, “Design of the Granary Temperature and Humidity Measure and Control System based on Zigbee Wireless Sensor Network”, Proceedings of International Conference on Electrical and Control Engineering, pp. 1055-1058, 2010.
  • B.P. Ladgaonkar and A.M. Pawar, “Design and Implementation of Sensor Node for Wireless Sensor Network to Monitor Humidity Of High-Tech Polyhouse Environment”, International Journal of Advances in Engineering and Technology, Vol. 1, No. 3, pp. 1-11, 2011.
  • G.R. Sengunthar, “Greenhouse Automation System Using PSOC 3”, Journal of Information, Knowledge and Research in Electronics and Communication Engineering, Vol. 2, No. 2., pp. 779-784, 2013.
  • T.C. Korade and A.A. Shinde. “Study of Wireless Sensor Networks”, International Journal of Electrical, Electronics and Data Communication, Vol. 2, No. 3, pp. 81-85, 2014.
  • P.B. Chikankar and S.S. Das, “An Energy Optimized Wireless Sensor Networks using Automatic Irrigation System”, International Journal of Science and Research, Vol. 3, No. 7, pp. 2115-2119, 2014.
  • M.C. Vuran and I.F. Akyildiz, “Spatio-Temporal Correlation: Theory And Applications For Wireless Sensor Networks”, Computer Networks, Vol. 45, No. 3, pp. 245-259, 2004.
  • Data Sheet of Temperature Sensor LM 35, Available at http://www.ti.com/lit/ds/symlink/lm35.pdf, Accessed at 2021.
  • M.U. Mahfuz and K.M. Ahmad, “A Review of Micro-Nano-Scale Wireless Sensor Networks for Environmental Protection: Prospects and Challenges”, Science and Technology Of Advanced Materials, Vol. 6, pp. 302-306, 2005.
  • R.B. Zhang, Y.B. Feng and G. D. Gu, “Application of Wireless Sensor Network in Water-Saving Irrigation”,Journal of China Rural Water and Hydropower, Vol. 2, pp. 1-24, 2007.
  • B.B. Li and Z.F. Yuan, “Research on a Banknote Printing Wastewater Monitoring System based on Wireless Sensor Network”, Journal of Physics: Conference Series, Vol. 48, pp. 1190-1194, 2006.
  • P. Corke, T. Wark, R. Jurdak, W. Hu, P. Valencia and D. Moore, “Environmental Wireless Sensor Networks”, Proceedings of the IEEE, Vol. 98, No. 11, pp. 1903-1917, 2010.
  • Zigbee Standards Overview, Available at http://Www.Freescale.Com/Webapp/Sps/Site /Overview.Jsp? Nodeld=01jfs2565772, Accessed at 2021.
  • J.F. Shi, X.X. Zhang and S. Chen, “Study on Communication Mode of Wireless Sensor Networks based on Effective Result”, Journal of Physics: Conference Series, Vol. 48, pp. 1317-1321, 2006.
  • A. Pawlowski, J. L. Guzman, F. Rodríguez, M. Berenguel, J. Sánchez, and S. Dormido, “Simulation of Greenhouse Climate Monitoring and Control with Wireless Sensor Network and Event-Based Control”, Sensors, Vol. 9, No. 1, pp. 232-252, 2009.
  • F. Rodriguez, J.L. Guzmán, M. Berenguel and M.R. Arahal, “Adaptive Hierarchical Control of Greenhouse Crop Production”, International Journal of Adaptive Control and Signal Processing, Vol. 22, pp. 180-197, 2008.
  • M. Anderson, D. Henriksson, A. Cervin and K.E. Arzen, “Simulation of Wireless Networked Control Systems”, Proceedings of the IEEE Conference on Decision and Control, and the European Control, pp. 1-13, 2005.
  • X. Feng, T.Y. Chu, L. Yanjun and S. Youxian, “Wireless Sensor/Actuator Network Design for Mobile Control Applications”, Sensors, Vol. 7, pp. 2157-2173, 2007.
  • L. Gonda and C.E. Cugnasca, “A Proposal of Greenhouse Control using Wireless Sensor Networks”, Proceedings of World Congress Conference on Computers in Agriculture and Natural Resources, pp. 1-5, 2006.
  • A.M. Pawar, S.N. Patil, A.S. Powar and B.P. Ladgaonkar, “Wireless Sensor Network to Monitor Spatio-Temporal Thermal Comfort of Polyhouse Environment”, International Journal of Innovative Research in Science, Engineering and Technology, Vol. 2, No. 10, pp. 4866-4875, 2013.
  • M. Pan, L. Yeh, Y. Chen, Y. Lin and Y. Tseng, “A WSN-Based Intelligent Light Control System Considering User Activities and Profiles”, Available at http://people.cs.nctu.edu.tw/~yctseng/papers.pub/sensor27-eco-house-ieee-sensors.pdf, Accessed at 2021.
  • A.A.N. Kumaar, G. Kiran and T.S.B. Sudarshan, “Intelligent Lighting System using Wireless Sensor Networks”, International Journal of Ad Hoc, Sensor and Ubiquitous Computing, Vol. 1, No. 4, pp. 17-27, 2010.
  • V. Nutt and S. Kher, “Headlight Intensity Controller Design using Wireless Sensors Network (HIC-WSN)”, International Journal of Computer Applications, Vol. 43, pp. 17-20, 2012. [36] M. Sharifi, S. Sedighian and M. Kamali, “Recharging Sensor Nodes using Implicit Actor Coordination in Wireless Sensor Actor Networks”, Wireless Sensor Networks, Vol. 2, No. 2, pp. 123-128, 2010.

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  • Wireless Sensor Network for Site Specific Crop Management for Precision Agriculture

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Authors

A. M. Pawar
Department of Electronics, Tuljaram Chaturchand College, India
B. P. Ladgaonkar
Department of Electronics, Smt. Kasturbai Walchand College, India
S. N. Patil
Department of Electronics, Tuljaram Chaturchand College, India

Abstract


Recently, due to significant research and development efforts, an innovative field of Wireless Sensor Network (WSN) technologies is evolving as powerful platform for systematically distributed data accumulation and data management. Because of wide application potential WSN is becoming more and more ubiquitous. It ensures the deployment of the technologies such as an embedded technology, wireless communication technology and computer information management technology etc. Emphasizing the themes of Site Specific Crop Management (SSCM), the prime objective of Precision Agriculture, the Wireless Sensor Network is designed and implemented to monitor the environmental parameters of the high-tech polyhouse. The WSN is designed for monitoring of the relative humidity, temperature and intensity of light within the poly house, in the real units. The WSN under investigation comprises ten WSNodes, routed through star networking protocol. The WSNodes are the intelligent devices, wherein the embedded technology is realized. The Hardware is designed about AVR microcontroller, wherein the standards laid down by the IEEE 802.15.4 are emphasized. To ensure wireless networking, the Zigbee devices have been employed, which are configured by the methods suggested by the Digi Corporation. The Base Station, an inherent part the WSN, is also developed and made smarter by developing the Graphical Users Interface (GUI) is dedicatedly developed in the VB environment. Therefore, to realize the monitoring of the domain-wise data of spatio-temporal variance, the WSN is established in polyhouse of smart infrastructure. The results of implementation reveal the facets of Precision Agriculture. On comparison with the standard WSN from Hanback Electronics, it found that, the WSN under investigation exhibit good reliability and preciseness.

Keywords


WSN, Precision Agriculture, SSCM, Embedded Technology, Wireless Communication

References