Diversity dynamics in online networks

Jérôme Kunegis, Sergej Sizov, F. Schwagereit, D. Fay
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引用次数: 10

Abstract

Diversity is an important characterization aspect for online social networks that usually denotes the homogeneity of a network's content and structure. This paper addresses the fundamental question of diversity evolution in large-scale online communities over time. In doing so, we study different established notions of network diversity, based on paths in the network, degree distributions, eigenvalues, cycle distributions, and control models. This leads to five appropriate characteristic network statistics that capture corresponding aspects of network diversity: effective diameter, Gini coefficient, fractional network rank, weighted spectral distribution, and number of driver nodes of a network. Consequently, we present and discuss comprehensive experiments with a broad range of directed, undirected, and bipartite networks from several different network categories -- including hyperlink, interaction, and social networks. An important general observation is that network diversity shrinks over time. From the conceptual perspective, our work generalizes previous work on shrinking network diameters, putting it in the context of network diversity. We explain our observations by means of established network models and introduce the novel notion of eigenvalue centrality preferential attachment.
在线网络的多样性动态
多样性是在线社交网络的一个重要特征,通常表示网络内容和结构的同质性。本文解决了大规模在线社区随时间变化的多样性演变的基本问题。在此过程中,我们基于网络中的路径、度分布、特征值、周期分布和控制模型,研究了不同的既定网络多样性概念。这导致了五个适当的特征网络统计,它们捕获了网络多样性的相应方面:有效直径、基尼系数、分数网络等级、加权谱分布和网络的驱动节点数量。因此,我们提出并讨论了来自几个不同网络类别(包括超链接、交互和社交网络)的广泛的有向、无向和二部网络的综合实验。一个重要的普遍观察是,网络多样性会随着时间的推移而缩小。从概念的角度来看,我们的工作概括了先前关于缩小网络直径的工作,并将其置于网络多样性的背景下。我们通过建立的网络模型解释了我们的观察结果,并引入了特征值中心性优先依恋的新概念。
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