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Nonlinear system modelling via optimal design of neural trees.

作者信息

Chen Yuehui, Yang Bo, Dong Jiwen

机构信息

School of Information science and Engineering, Jinan University, Jiwei Road 106, Jinan, 250022 P. R. China.

出版信息

Int J Neural Syst. 2004 Apr;14(2):125-37. doi: 10.1142/S0129065704001905.

DOI:10.1142/S0129065704001905
PMID:15112370
Abstract

This paper introduces a flexible neural tree model. The model is computed as a flexible multi-layer feed-forward neural network. A hybrid learning/evolutionary approach to automatically optimize the neural tree model is also proposed. The approach includes a modified probabilistic incremental program evolution algorithm (MPIPE) to evolve and determine a optimal structure of the neural tree and a parameter learning algorithm to optimize the free parameters embedded in the neural tree. The performance and effectiveness of the proposed method are evaluated using function approximation, time series prediction and system identification problems and compared with the related methods.

摘要

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