Nonlinear System's Identification using Neuro-Fuzzy model tuned by Crow Search Algorithm

Mourad Turki, Mohamed Ali Zeddini, Issa Malloug, Anis Sakly · 2020

We propose in this work a new algorithm of optimization named Crow Search Algorithm CSA to elicit neuro-fuzzy model such TS type. In the proposed study, a particle is formed by two tasks: its structure and its parameters. The CSA algorithm was compared with others: GA and PSO through a modeling of nonlinear system. The results prove that CSA method gives optimal mean of MSE and optimal of standard deviation of MSE compared to GA and PSO.

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