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Evaluating Cooperation in Communities with the k-Core Structure

机译:评估社区与K核心结构的合作

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Community sub graphs are characterized by dense connections or interactions among its nodes. Community detection and evaluation is an important task in graph mining. A variety of measures have been proposed to evaluate the quality of such communities. In this paper, we evaluate communities based on the k-core concept, as means of evaluating their collaborative nature - a property not captured by the single node metrics or by the established community evaluation metrics. Based on the k-core, which essentially measures the robustness of a community under degeneracy, we extend it to weighted graphs, devising a novel concept of k-cores on weighted graphs. We applied the k-core approach on large real world graphs -- such as DBLP and report interesting results.
机译:社区子图的特征在于其节点之间的密集连接或相互作用。社区检测和评估是图形挖掘中的重要任务。已提出各种措施来评估此类社区的质量。在本文中,我们根据K-Core概念评估社区,作为评估其协作性质的手段 - 未被单一节点度量或建立的社区评估指标捕获的属性。基于K-Core,基本上测量了在退化下社区的稳健性,我们将其扩展到加权图,在加权图中设计了一种新的K-Cores概念。我们在大型真实世界图上应用了K-Core方法 - 例如DBLP和报告有趣的结果。

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