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An adaptive fuzzy neural network for MIMO system modelapproximation in high-dimensional spaces
Authors:Chu Kwong Chak Gang Feng Jian Ma
Affiliation:Dept. of Syst. & Control, New South Wales Univ., Sydney, NSW.
Abstract:An adaptive fuzzy system implemented within the framework of neural network is proposed. The integration of the fuzzy system into a neural network enables the new fuzzy system to have learning and adaptive capabilities. The proposed fuzzy neural network can locate its rules and optimize its membership functions by competitive learning, Kalman filter algorithm and extended Kalman filter algorithms. A key feature of the new architecture is that a high dimensional fuzzy system can be implemented with fewer number of rules than the Takagi-Sugeno fuzzy systems. A number of simulations are presented to demonstrate the performance of the proposed system including modeling nonlinear function, operator's control of chemical plant, stock prices and bioreactor (multioutput dynamical system).
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