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What is Cooperation Fuzzy Chaotic Neural Networks

Handbook of Research on Artificial Immune Systems and Natural Computing: Applying Complex Adaptive Technologies
It is an improvement of T-S fuzzy neural networks by introducing chaotic neurons or chaotic neural networks. The rule conclusion layer is constituted by chaotic neural networks, which could be one layer or multi-layers.
Published in Chapter:
Fuzzy Chaotic Neural Networks
Tang Mo (Automation College, Harbin Engineering University, China), Wang Kejun (Automation College, Harbin Engineering University, China), Zhang Jianmin (Automation College, Harbin Engineering University, China), and Zheng Liying (Automation College, Harbin Engineering University, China)
DOI: 10.4018/978-1-60566-310-4.ch024
Abstract
An understanding of the human brain’s local function has improved in recent years. But the cognition of human brain’s working process as a whole is still obscure. Both fuzzy logic and dynamic chaos are internal features of the human brain. Therefore, to fuse artificial neural networks, fuzzy logic and dynamic chaos together to constitute fuzzy chaotic neural networks is a novel method. This chapter is focused on the new ways of fuzzy neural networks construction and its application based on the existing achievement in this field. Four types of fuzzy chaotic neural networks are introduced, namely chaotic recurrent fuzzy neural networks, cooperation fuzzy chaotic neural networks, fuzzy number chaotic neural networks and self-evolution fuzzy chaotic neural networks. Chaotic recurrent fuzzy neural networks model is developed based on existing recurrent fuzzy neural networks through introducing chaos mapping into the membership layer. As it is a dynamic system, the input of neuron not only processes the information of former monument but also contains chaos maps information which is provided by dynamic chaos. Cooperation fuzzy chaotic neural network is proposed on the basis of simplified T-S fuzzy chaotic neural networks and Aihara chaotic neuron. It realizes fuzzy reasoning process by a neural network structure in which the rule inference part is realized by chaotic neural networks. Then enlightened by fuzzy number neural networks we propose a fuzzy number chaotic neuron, which is obtained by blurring the Aihara chaotic neuron. Using these neurons to construct fuzzy number chaotic neural networks, the mathematical model and weight updating rules are also given. At last, a self-evolution fuzzy chaotic neural network is proposed according to the principle of self-evolution network, which unifies the fuzzy Hopfield neural network constitution method.
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