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Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering)  2005, Vol. 6 Issue (5): 387-392    DOI: 10.1631/jzus.2005.A0387
Computer & Information Science     
Clustering-based selective neural network ensemble
FU Qiang, HU Shang-xu, ZHAO Sheng-ying
Laboratory of Intelligence Information Engineering, Zhejiang University, Hangzhou 310027, China; UTStarcom Telecom Ltd., Hangzhou 310027, China
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Abstract  An effective ensemble should consist of a set of networks that are both accurate and diverse. We propose a novel clustering-based selective algorithm for constructing neural network ensemble, where clustering technology is used to classify trained networks according to similarity and optimally select the most accurate individual network from each cluster to make up the ensemble. Empirical studies on regression of four typical datasets showed that this approach yields significantly smaller ensemble achieving better performance than other traditional ones such as Bagging and Boosting. The bias variance decomposition of the predictive error shows that the success of the proposed approach may lie in its properly tuning the bias/variance trade-off to reduce the prediction error (the sum of bias2 and variance).

Key wordsNeural network      Ensemble      Clustering     
Received: 27 March 2004     
CLC:  TP387  
Cite this article:

FU Qiang, HU Shang-xu, ZHAO Sheng-ying. Clustering-based selective neural network ensemble. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 2005, 6(5): 387-392.

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http://www.zjujournals.com/xueshu/zjus-a/10.1631/jzus.2005.A0387     OR     http://www.zjujournals.com/xueshu/zjus-a/Y2005/V6/I5/387

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