Publication | Open Access
RankClus
380
Citations
15
References
2009
Year
Unknown Venue
Cluster ComputingComputational Social ScienceRanking AlgorithmNetwork ScienceInformation RetrievalData ScienceEngineeringDocument ClusteringInformation NetworksKnowledge DiscoveryBusinessLearning To RankSocial RankingLink AnalysisInformation Network DataHuge ClusterSocial Network Analysis
As information networks become ubiquitous, extracting knowledge from information networks has become an important task. Both ranking and clustering can provide overall views on information network data, and each has been a hot topic by itself. However, ranking objects globally without considering which clusters they belong to often leads to dumb results, e.g., ranking database and computer architecture conferences together may not make much sense. Similarly, clustering a huge number of objects (e.g., thousands of authors) in one huge cluster without distinction is dull as well.
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