Application of adaptive fuzzy logic systems to model electric arc furnaces

A. Sadeghian, J. Lavers
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引用次数: 16

Abstract

Presents the application of adaptive fuzzy logic systems to modelling electric arc furnaces. The main objectives are to provide the rationale and to justify the use of fuzzy modeling for electric furnaces. This is done with reference to three important properties of fuzzy logic systems, namely their nonlinear black-box modeling capability, universal approximation ability and their functional equivalence to radial basis function networks. A detailed investigation regarding the application of adaptive fuzzy logic systems to electric arc furnace modeling is presented. It is demonstrated that the application of adaptive fuzzy logic systems as a nonparametric system identification method to model nonlinear systems can be considered as an alternative to artificial neural networks. The proposed modeling methods are described, and their use is illustrated using actual recorded data.
自适应模糊逻辑系统在电弧炉建模中的应用
介绍了自适应模糊逻辑系统在电弧炉建模中的应用。主要目的是提供基本原理,并证明使用模糊建模电炉。这是参考模糊逻辑系统的三个重要性质,即非线性黑箱建模能力、普遍逼近能力和与径向基函数网络的功能等价性来完成的。对自适应模糊逻辑系统在电弧炉建模中的应用进行了详细的研究。结果表明,应用自适应模糊逻辑系统作为一种非参数系统辨识方法来建模非线性系统,可以看作是人工神经网络的一种替代方法。描述了所提出的建模方法,并用实际记录数据说明了它们的使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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