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作者:

Hao, D.-M. (Hao, D.-M..) | Ruan, X.-G. (Ruan, X.-G..)

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摘要:

A GMDH-type neural network and its modified training algorithm were presented in this paper to improve the classifying accuracy of EEG with different mental tasks. The network was formed through evolution, the classification rules were described by a concise set of polynomials and the training algorithm was able to prevent overfitting effectively. Experimental results showed the GMDH-type nearal could classify the EEG of math or relaxtasks with accuracy of 84. 5 % . It was indicated that GMDH-type neural network exhibited higher classifying accuracy compared to the feedforward neural network (FNN).

关键词:

EEG; Feedforward neural network(FNN); GMDH-type network; Polynomial

作者机构:

  • [ 1 ] [Hao, D.-M.]Sch. Electron. Info. and Contr. Eng., Beijing Polytechnic University, Beijing 100022, China
  • [ 2 ] [Ruan, X.-G.]Sch. Electron. Info. and Contr. Eng., Beijing Polytechnic University, Beijing 100022, China

通讯作者信息:

  • [Hao, D.-M.]Sch. Electron. Info. and Contr. Eng., Beijing Polytechnic University, Beijing 100022, China

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来源 :

Chinese Journal of Biomedical Engineering

ISSN: 0258-8021

年份: 2005

期: 1

卷: 24

页码: 66-69

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