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Kernel method-based fuzzy clustering algorithm

WuZhongdongGaoXinboXieWeixinYuJianping

2005Acta Scientiarum Naturalium Universitatis SunyatseniEngineering被引 6

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摘要

The fuzzy C-means clustering algorithm(FCM) to the fuzzy kernel C-means clustering algorithm(FKCM) to effectively perform cluster analysis on the diversiform structures are extended, such as non-hyperspherical data, data with noise, data with mixture of heterogeneous cluster prototypes, asymmetric data, etc. Based on the Mercer kernel, FKCM clustering algorithm is derived from FCM algorithm united with kernel method. The results of experiments with the synthetic and real data show that the FKCM clustering algorithm is universality and can effectively unsupervised analyze datasets with variform structures in contrast to FCM algorithm. It is can be imagined that kernel-based clustering algorithm is one of important research direction of fuzzy clustering analysis.

引用本文(GB/T 7714)

WuZhongdong, GaoXinbo, XieWeixin, 等. Kernel method-based fuzzy clustering algorithm[J]. Acta Scientiarum Naturalium Universitatis Sunyatseni, 2005.

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