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Author:

Qiao, Junfei (Qiao, Junfei.) (Scholars:乔俊飞) | Ma, Shijie (Ma, Shijie.) | Yang, Cuili (Yang, Cuili.)

Indexed by:

EI PKU CSCD

Abstract:

Aiming at the problem of recurrent radial basis function (RRBF) neural network structure which is difficult to be self-adaptive, this paper proposes a structure design method based on recursive orthogonal least square (ROLS) algorithm. Firstly, ROLS algorithm is used to calculate the contribution and the loss function of hidden layer neurons, which determines to increase or be grouped into inactive neurons, and the topology structure of neural network is adjusted accordingly. At the same time, singular value decomposition (SVD) is applied to determine the best number of hidden layer neurons in order to delete the neurons of the inactive group, which effectively solves the problems of RRBF neural network structure which is redundant and hardly self-adaptive. Secondly, the gradient descent algorithm is utilized to update the parameters of RRBF neural network in order to ensure the accuracy of neural network. Finally, several experiments including the Mackey-Glass time series prediction, nonlinear system identification and key water quality parameters dynamic modeling in wastewater treatment process are conducted, and the simulation results prove the feasibility and effectiveness of the structure design method. © All Right Reserved.

Keyword:

Algorithms Neurons Parameter estimation Gradient methods Least squares approximations Dynamic models Neural networks Orthogonal functions Water quality Multilayer neural networks Design Recurrent neural networks Wastewater treatment Singular value decomposition Radial basis function networks

Author Community:

  • [ 1 ] [Qiao, Junfei]Faculty of Information Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 2 ] [Qiao, Junfei]Beijing Key Laboratory of Computational Intelligence and Intelligent System, Beijing; 100124, China
  • [ 3 ] [Ma, Shijie]Faculty of Information Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 4 ] [Ma, Shijie]Beijing Key Laboratory of Computational Intelligence and Intelligent System, Beijing; 100124, China
  • [ 5 ] [Yang, Cuili]Faculty of Information Technology, Beijing University of Technology, Beijing; 100124, China
  • [ 6 ] [Yang, Cuili]Beijing Key Laboratory of Computational Intelligence and Intelligent System, Beijing; 100124, China

Reprint Author's Address:

  • 乔俊飞

    [qiao, junfei]beijing key laboratory of computational intelligence and intelligent system, beijing; 100124, china;;[qiao, junfei]faculty of information technology, beijing university of technology, beijing; 100124, china

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Source :

CIESC Journal

ISSN: 0438-1157

Year: 2018

Issue: 3

Volume: 69

Page: 1191-1199

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 3

ESI Highly Cited Papers on the List: 0 Unfold All

WanFang Cited Count:

Chinese Cited Count:

30 Days PV: 11

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