A Hybrid Cascade Neuro–Fuzzy Network with Pools of Extended Neo–Fuzzy Neurons and its Deep Learning

Author:

Bodyanskiy Yevgeniy V.1,Tyshchenko Oleksii K.2

Affiliation:

1. Control Systems Research Laboratory , Kharkiv National University of Radio Electronics , 14 Nauky Avenue, 61166 Kharkiv , Ukraine

2. Institute for Research and Applications of Fuzzy Modeling, CE IT4Innovations , University of Ostrava , 30. dubna 22, 701 03 Ostrava , Czech Republic

Abstract

Abstract This research contribution instantiates a framework of a hybrid cascade neural network based on the application of a specific sort of neo-fuzzy elements and a new peculiar adaptive training rule. The main trait of the offered system is its competence to continue intensifying its cascades until the required accuracy is gained. A distinctive rapid training procedure is also covered for this case that offers the possibility to operate with non-stationary data streams in an attempt to provide online training of multiple parametric variables. A new training criterion is examined for handling non-stationary objects. Additionally, there is always an occasion to set up (increase) the inference order and the number of membership relations inside the extended neo-fuzzy neuron.

Publisher

Walter de Gruyter GmbH

Subject

Applied Mathematics,Engineering (miscellaneous),Computer Science (miscellaneous)

Reference35 articles.

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