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      Spectral Measures of Bipartivity in Complex Networks

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          Abstract

          We introduce a quantitative measure of network bipartivity as a proportion of even to total number of closed walks in the network. Spectral graph theory is used to quantify how close to bipartite a network is and the extent to which individual nodes and edges contribute to the global network bipartivity. It is shown that the bipartivity characterizes the network structure and can be related to the efficiency of semantic or communication networks, trophic interactions in food webs, construction principles in metabolic networks, or communities in social networks.

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          Author and article information

          Journal
          27 April 2005
          Article
          10.1103/PhysRevE.72.046105
          cond-mat/0504729
          1e2838f8-13c2-466a-a53c-f79160fe9241
          History
          Custom metadata
          16 pages, 1 figure, 1 table
          cond-mat.stat-mech physics.soc-ph

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