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      Link Prediction in Complex Networks: A Survey

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          Abstract

          Link prediction in complex networks has attracted increasing attention from both physical and computer science communities. The algorithms can be used to extract missing information, identify spurious interactions, evaluate network evolving mechanisms, and so on. This article summaries recent progress about link prediction algorithms, emphasizing on the contributions from physical perspectives and approaches, such as the random-walk-based methods and the maximum likelihood methods. We also introduce three typical applications: reconstruction of networks, evaluation of network evolving mechanism and classification of partially labelled networks. Finally, we introduce some applications and outline future challenges of link prediction algorithms.

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          Author and article information

          Journal
          2010-10-04
          Article
          10.1016/j.physa.2010.11.027
          1010.0725
          4904d23e-e637-4f74-bc7c-9623966262d1

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          Physica A 390 (2011) 1150-1170
          44 pages, 5 figures
          physics.soc-ph cs.SI physics.comp-ph

          Social & Information networks,General physics,Mathematical & Computational physics

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