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Identifying of Hydraulic Turbine Generating Unit Model Based on Neural Network
Jinan, China October 16-October 18
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/ISDA.2006.172Sixth International Conference on Int ...
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Zhihuai Xiao, Wuhan University, China
Shuqing Wang, Hubei University of Technology, China
Hongtao Zeng, Wuhan University, China
Xiaohui Yuan, Huazhong Uni. of Science & Technology, China
It is difficult to describe hydraulic turbine generating unit system via accurate mathematics model because it is a complicated non-liner system. In the paper, RBF neural networks models were established to identify hydraulic turbine generating unit. In RBF networks training, a practical learning algorithm was proposed for adjusting effectively the node number, centers and width of Gaussian function of hidden layer nodes. Off-line training and on-line identifying were combined together to train networks and identify hydraulic turbine generating unit system. Simulation results show that the designed model can well identify the characteristic of hydraulic turbine generating unit. Thus, the identifying model can lay the good foundation for study on intelligent control strategies of hydraulic turbine generating system.
Index Terms:
RBF neural network, hydraulic turbine generating unit, model identifying
Citation:
Zhihuai Xiao, Shuqing Wang, Hongtao Zeng, Xiaohui Yuan, "Identifying of Hydraulic Turbine Generating Unit Model Based on Neural Network," isda, vol. 1, pp.113-117, Sixth International Conference on Intelligent Systems Design and Applications (ISDA'06) Volume 1, 2006
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