MATEC Web of Conferences (Jan 2015)
Classification on Web Blogger Based on Clustering
Abstract
In this paper, based on the clustering analysis method, the author tries to study some celebrities in web blogger groups and adopts unsupervised clustering evaluation methods, which is called silhouette coefficient, to evaluate the classification results of different clustering classification methods. It is concluded that K-means clustering is the best among the clustering methods compared with the traditional classifications. Furthermore, it is a dynamic, flexible method and can reduce restrictions of subjective consciousness using cluster analysis. As a result, K-means clustering is universal in web blogger groups’ classification process.
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