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Correlation clustering based on genetic algorithm for documents clustering

9 years 4 months ago
Correlation clustering based on genetic algorithm for documents clustering
—Correlation clustering problem is a NP hard problem and technologies for the solving of correlation clustering problem can be used to cluster given data set with relation matrix for data in the given data set. In this paper, an approach based on genetic algorithm for correlation clustering problem, named as GeneticCC, is presented. To estimate the performance of a clustering division, data correlation based clustering precision is defined and features of clustering precision are discussed in this paper. Experimental results show that the performance of clustering division for UCI document data set constructed by GeneticCC is better than clustering performance of other clustering divisions constructed by SOM neural network with clustering precision as criterion.
Zhenya Zhang, Hongmei Cheng, Wanli Chen, Shuguang
Added 29 May 2010
Updated 29 May 2010
Type Conference
Year 2008
Where CEC
Authors Zhenya Zhang, Hongmei Cheng, Wanli Chen, Shuguang Zhang, Qiansheng Fang
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