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A Unifying Framework for Measuring Weighted Rich Clubs

机译:衡量富豪俱乐部的统一框架

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摘要

Network analysis can help uncover meaningful regularities in the organization of complex systems. Among these, rich clubs are a functionally important property of a variety of social, technological and biological networks. Rich clubs emerge when nodes that are somehow prominent or ‘rich’ (e.g., highly connected) interact preferentially with one another. The identification of rich clubs is non-trivial, especially in weighted networks, and to this end multiple distinct metrics have been proposed. Here we describe a unifying framework for detecting rich clubs which intuitively generalizes various metrics into a single integrated method. This generalization rests upon the explicit incorporation of randomized control networks into the measurement process. We apply this framework to real-life examples, and show that, depending on the selection of randomized controls, different kinds of rich-club structures can be detected, such as topological and weighted rich clubs.
机译:网络分析可以帮助发现复杂系统组织中有意义的规律。其中,富人俱乐部是各种社会,技术和生物网络的重要功能。当以某种方式突出或“富有”(例如,高度连通)的节点彼此优先交互时,就会出现富人俱乐部。富裕俱乐部的识别并非易事,尤其是在加权网络中,为此,提出了多个不同的指标。在这里,我们描述了一个用于检测富人俱乐部的统一框架,该框架直观地将各种指标归纳为一个集成方法。这种概括取决于将随机控制网络明确纳入测量过程。我们将此框架应用于现实生活中的示例,并表明,根据随机控件的选择,可以检测到各种类型的富人俱乐部结构,例如拓扑和加权富人俱乐部。

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