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Identification and Control of Dynamic Plants Using Fuzzy Wavelet Neural Networks

机译:模糊小波神经网络识别和控制动态植物

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This paper presents a Fuzzy Wavelet Neural Network (FWNN) for identification and control of a dynamic plant. The FWNN is constructed on the basis of fuzzy rules that incorporate wavelet functions in their consequent parts. The architecture of the control system is presented and the parameter update rules of the system are derived. Learning rules are based on the gradient decent method and Genetic Algorithm (GA). The structure is tested for the identification and the control of the dynamic plants commonly used in the literature. It is shown that the proposed structure results in a better performance despite its smaller parameter space.
机译:本文介绍了一种模糊小波神经网络(FWNN),用于识别和控制动态植物。 FWNN基于模糊规则构造,该规则将小波函数结合在其随后的部件中。提出了控制系统的体系结构,并导出系统的参数更新规则。学习规则是基于梯度体面和遗传算法(GA)。测试该结构的识别和控制文献中常用的动态植物。结果表明,尽管其参数空间较小,所提出的结构导致更好的性能。

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