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Attribute Value Weighting in K-Modes Clustering
zengyou he *
Harbin Institute of Technology
*Correspondence author
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Funding: none
Opened online:12 January 2007
Accepted by: none
Citation: zengyou he.Attribute Value Weighting in K-Modes Clustering[OL]. [12 January 2007] http://en.paper.edu.cn/en_releasepaper/content/10697
 
 
In this paper, the traditional k-modes clustering algorithm is extended by weighting attribute value matches in dissimilarity computation. The use of attribute value weighting technique makes it possible to generate clusters with stronger intra-similarities, and therefore achieve better clustering performance. Experimental results on real life datasets show that these value weighting based k-modes algorithms are superior to the standard k-modes algorithm with respect to clustering accuracy.
Keywords:Clustering, Categorical Data, K-Means, K-Modes, Data Mining
 
 
 

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