Implementation of evolutionary fuzzy systems
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TL;DR
Benefits of the methodology are illustrated in the process of classifying the iris data set and possible extensions of the methods are summarized.
Abstract
Evolutionary fuzzy systems are discussed in which the membership function shapes and types and the fuzzy rule set including the number of rules inside it are evolved using a genetic (evolutionary) algorithm. In addition, the genetic parameters (operators) of the evolutionary algorithm are adapted via a fuzzy system. Benefits of the methodology are illustrated in the process of classifying the iris data set. Possible extensions of the methods are summarized.
