Induction of Fuzzy Classification Systems Using Evolutionary ACO-Based Algorithms

Mohammad Saniee Abadeh, Jafar Alim Habibi, Emad Soroush · 2007

In this paper we have proposed an evolutionary algorithm to induct fuzzy classification rules. The algorithm uses an ant colony optimization based local searcher to improve the quality of final fuzzy classification system. The proposed algorithm is performed on intrusion detection as a high-dimensional classification problem. Results show that the implemented evolutionary ACO-Based algorithm is capable of producing a reliable fuzzy rule based classifier for intrusion detection

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