Evolving fuzzy-madel-based on c-regression clustering

Igor Škrjanc, Dejan Dovžan, Fernando A. C. Gomide · 2014

In this paper a new approach to data stream evolving fuzzy model identification is given. The structure of the model is given in the form of Takagi-Sugeno and the partitioning of the input-output space is obtained using a fuzzy c-regression clustering method and the approach also involves the evolving properties. The method is given in a recursive form. The proposed approach is shown with two simple examples of nonlinear system approximation and nonlinear dynamical system modelling.

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