Optimizing fuzzy classifiers by evolutionary algorithms

A. Grauel, Ingo Renners, L.A. Ludwig · 2002

In this paper a methodology for optimizing fuzzy classifiers based on B-splines by evolutionary algorithms is presented. The algorithm proposed maximizes the performance and minimizes the size of the classifier. On a well-known classification problem the algorithm using only part of the features has a recognition rate comparable to an LDA on the total feature space.

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