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Towards the analysis of co-authorship networks by iterative spectral partitioning

机译:通过迭代频谱划分对共同作者网络进行分析

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Spectral partitioning is a well known method in the area of graph and matrix analysis. Several approaches based on spectral partitioning and spectral clustering were used to detect structures and mine data from real world networks. In this paper, we use a simple spectral decomposition to analyze a co-authorship network. We use a straightforward approach based on algebraic connectivity and characteristic valuation and show that even this simple form of spectral partitioning is useful for the analysis of relations and communities in a co-authorship networks.
机译:频谱划分是图形和矩阵分析领域中的一种众所周知的方法。几种基于频谱划分和频谱聚类的方法被用来检测结构和挖掘来自真实世界网络的数据。在本文中,我们使用简单的频谱分解来分析合著者网络。我们使用基于代数连通性和特征评估的简单方法,并表明即使这种简单的频谱划分形式也可用于分析共同作者网络中的关系和社区。

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