A scatter search algorithm for the automatic clustering problem

ADVANCES IN DATA MINING: APPLICATIONS IN MEDICINE, WEB MINING, MARKETING, IMAGE AND SIGNAL MINING(2006)

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摘要
We present a new hybrid algorithm for data clustering. This new proposal uses one of the well known evolutionary algorithms called Scatter Search. Scatter Search operates on a small set of solutions and makes only a limited use of randomization for diversification when searching for globally optimal solutions. The proposed method discovers automatically cluster number and cluster centres without prior knowledge of a possible number of class, and without any initial partition. We have applied this algorithm on standard and real world databases and we have obtained good results compared to the K-means algorithm and an artificial ant based algorithm, the Antclass algorithm.
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关键词
scatter search,cluster number,new hybrid algorithm,scatter search algorithm,automatic clustering problem,possible number,antclass algorithm,artificial ant,evolutionary algorithm,k-means algorithm,new proposal,cluster centre,global optimization,k means algorithm,hybrid algorithm,data clustering
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