Integrated neural network model with pre-RBF kernels

Author:

Wen Hui1ORCID,Yan Tao1,Liu Zhiqiang1,Chen Deli1

Affiliation:

1. Institute of Electromechanical and Information Engineering, Putian University, Putian, Fujian, China

Abstract

To improve the network performance of radial basis function (RBF) and back-propagation (BP) networks on complex nonlinear problems, an integrated neural network model with pre-RBF kernels is proposed. The proposed method is based on the framework of a single optimized BP network and an RBF network. By integrating and connecting the RBF kernel mapping layer and BP neural network, the local features of a sample set can be effectively extracted to improve separability; subsequently, the connected BP network can be used to perform learning and classification in the kernel space. Experiments on an artificial dataset and three benchmark datasets show that the proposed model combines the advantages of RBF and BP networks, as well as improves the performances of the two networks. Finally, the effectiveness of the proposed method is verified.

Funder

Putian Science and Technology Bureau

Natural Science Foundation of Fujian Province

Department of education of Fujian Province

New Century Excellent Talents in Fujian Province University

Publisher

SAGE Publications

Subject

Multidisciplinary

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