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An Evolving Neuro-Fuzzy System with Online Learning/Self-learning

Published 20 Oct 2016 in cs.AI and cs.NE | (1610.06488v1)

Abstract: An architecture of a new neuro-fuzzy system is proposed. The basic idea of this approach is to tune both synaptic weights and membership functions with the help of the supervised learning and self-learning paradigms. The approach to solving the problem has to do with evolving online neuro-fuzzy systems that can process data under uncertainty conditions. The results prove the effectiveness of the developed architecture and the learning procedure.

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