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請用此 Handle URI 來引用此文件: http://scholars.ntou.edu.tw/handle/123456789/16976
標題: Improved Representation-burden Conservation Network for Learning Non-stationary VQ
作者: Jung-Hua Wang 
Wei-Der Sun
關鍵字: dynamic network;self-development networks;competitive learning;input density mapping;vector quantization;conscience principle
公開日期: 八月-1998
出版社: Springer Nature Switzerland AG
卷: 8
起(迄)頁: 41–53
來源出版物: Neural Processing Letters
摘要: 
In a recent publication [1], it was shown that a biologically plausible RCN (Representation-burden Conservation Network) in which conservation is achieved by bounding the summed representation-burden of all neurons at constant 1, is effective in learning stationary vector quantization. Based on the conservation principle, a new approach for designing a dynamic RCN for processing both stationary and non-stationary inputs is introduced in this paper. We show that, in response to the input statistics changes, dynamic RCN improves its original counterpart in incremental learning capability as well as in self-organizing the network structure. Performance comparisons between dynamic RCN and other self-development models are also presented. Simulation results show that dynamic RCN is very effective in training a near-optimal vector quantizer in that it manages to keep a balance between the equiprobable and equidistortion criterion.
URI: http://scholars.ntou.edu.tw/handle/123456789/16976
DOI: 10.1023/A:1009665029120
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