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      Survey of clustering algorithms.

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          Abstract

          Data analysis plays an indispensable role for understanding various phenomena. Cluster analysis, primitive exploration with little or no prior knowledge, consists of research developed across a wide variety of communities. The diversity, on one hand, equips us with many tools. On the other hand, the profusion of options causes confusion. We survey clustering algorithms for data sets appearing in statistics, computer science, and machine learning, and illustrate their applications in some benchmark data sets, the traveling salesman problem, and bioinformatics, a new field attracting intensive efforts. Several tightly related topics, proximity measure, and cluster validation, are also discussed.

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          Author and article information

          Journal
          IEEE Trans Neural Netw
          IEEE transactions on neural networks
          Institute of Electrical and Electronics Engineers (IEEE)
          1045-9227
          1045-9227
          May 2005
          : 16
          : 3
          Affiliations
          [1 ] Department of Electrical and Computer Engineering, University of Missouri-Rolla, Rolla, MO 65409, USA. rxu@umr.edu
          Article
          10.1109/TNN.2005.845141
          15940994
          b333fad9-ec3c-4a9c-b4be-5215ddf172f7
          History

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