Implementation of IOT-based greenhouse intelligent monitoring system

被引:0
作者
Qin, Linlin [1 ]
Lu, Linjian [1 ]
Shi, Chun [1 ]
Wu, Gang [1 ]
Wang, Yunlong [1 ]
机构
[1] Department of Automation, University of Science and Technology of China, Hefei
来源
Nongye Jixie Xuebao/Transactions of the Chinese Society for Agricultural Machinery | 2015年 / 46卷 / 03期
关键词
Greenhouse; Hybrid automata; Intelligent monitoring; Internet of things; Zernike moments;
D O I
10.6041/j.issn.1000-1298.2015.03.038
中图分类号
学科分类号
摘要
According to the monitoring and management needs of the modern greenhouse, a modern greenhouse intelligent monitoring system was designed based on the internet of things. The system was consisted of local monitoring subsystem, remote monitoring subsystem and database. The local monitoring subsystem was developed under the construction of Client/Server, but the remote monitoring subsystem with the construction of Browser/Server, and the database is the bridge between them. The hardware system based on distributed CAN bus was applied to realize the real-time greenhouse environment data acquisition and equipment control. Also, the error data of the data acquisition system was on-line checked by distributing diagram. In order to improve the response and interactivity of the remote monitoring subsystem, the Ajax-based Web data interactive way was applied. Combing the devices' features, the temperature system intelligent control based on hybrid automata was applied to realize the automatic control of the greenhouse environment. The image recognition technology based on Zernike moments was applied to realize the automatic calibration. The infrared network camera was used to acquire the real-time images of the ventilation, and Zernike moments were utilized to extract the image features, identifying the current state of ventilation by comparing with the pre-set states of the system. Then the runtime could be calculated from the current state to full closed state of the ventilation. The tests showed that the system could provide stable data transmission and reliable control, satisfying the intelligent monitoring of the modern greenhouse. ©, 2015, Chinese Society of Agricultural Machinery. All right reserved.
引用
收藏
页码:261 / 267
页数:6
相关论文
共 21 条
[11]  
Meng Q., Tian Z., Yan C., Application of Ajax in the agriculture mechanization information network, Transactions of the Chinese Society for Agricultural Machinery, 39, 12, pp. 132-135, (2008)
[12]  
Hasni A., Taibi R., Draoui B., Et al., Optimization of greenhouse climate model parameters using particle swarm optimization and genetic algorithms, Energy Procedia, 6, pp. 371-380, (2011)
[13]  
Li J., Qin L., Wu G., Et al., Modeling and simulation of greenhouse microclimate system based on weighted least squares support vector machines, Journal of System Simulation, 20, 16, pp. 4232-4236, (2008)
[14]  
Li J., Qin L., Yue D., Et al., Experiment greenhouse temperature system modeling and simulation, Journal of System Simulation, 20, 7, pp. 1869-1875, (2008)
[15]  
Qin L., Shi C., Wu G., Et al., Modeling of ventilation window air temperature system in greenhouse based on hybrid system, Journal of System Simulation, 22, 4, pp. 833-836, (2010)
[16]  
Qin L., Shi C., Ling Q., Et al., Predictive control of greenhouse temperature based on mixed logical dynamical systems, Intelligent Automation and Soft Computing, 16, 6, pp. 1207-1214, (2010)
[17]  
Fatnassi H., Boulard T., Bouirden L., Development, validation and use of a dynamic model for simulate the climate conditions in a large scale greenhouse equipped with insect-proof nets, Computers and Electronics in Agriculture, 98, pp. 54-61, (2013)
[18]  
Gruber J.K., Guzman J.L., Rodriguez F., Et al., Nonlinear MPC based on a volterra series model for greenhouse temperature control using natural ventilation, Control Engineering Practice, 19, 4, pp. 354-366, (2011)
[19]  
Lygeros J., Johansson K.H., Simic S.N., Et al., Dynamical properties of hybrid automata, IEEE Transactions on Automatic Control, 48, 1, pp. 2-17, (2003)
[20]  
Teague M.R., Image analysis via the general theory of moments, Journal of the Optical Society of America, 70, 8, pp. 920-930, (1980)