An application of community discovery in academical social networks

The objective of this study is to discover social communities in a social network using different social network community discovery methods that utilize metrics and structures like degree, clustering coefficient, k-cores, weak and strong components. We have used two different datasets and methods:...

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Hauptverfasser: Arslan, Enis, Akyokus, Selim, Ganiz, Murat Can
Format: Tagungsbericht
Sprache:eng
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Beschreibung
Zusammenfassung:The objective of this study is to discover social communities in a social network using different social network community discovery methods that utilize metrics and structures like degree, clustering coefficient, k-cores, weak and strong components. We have used two different datasets and methods: K-core community discovery method for DBLP dataset and Main Path Analysis method for Arxiv High-energy physics theory citation network. At the end of the analyses, we have obtained several reports that represent the skeleton structure of the communities in the networks.
DOI:10.1109/INISTA.2013.6577650