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Relative Neighborhood Graphs Uncover the Dynamics of Social Media Engagement

机译:相对邻域图揭示了社交媒体参与的动态

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In this paper, we examine if the Relative Neighborhood Graph (RNG) can reveal related dynamics of page-level social media metrics. A statistical analysis is also provided to illustrate the application of the method in two other datasets (the Indo-European Language dataset and the Shakespearean Era Text dataset). Using social media metrics on the world's 'top check-in locations' Facebook pages dataset, the statistical analysis reveals coherent dynamical patterns. In the largest cluster, the categories 'Gym', 'Fitness Center', and 'Sports and Recreation' appear closely linked together in the RNG. Taken together, our study validates our expectation that RNGs can provide a "parameter-free" mathematical formalization of proximity. Our approach gives useful insights on user behaviour in social media page-level metrics as well as other applications.
机译:在本文中,我们研究了相对邻域图(RNG)是否可以揭示页面级社交媒体指标的相关动态。还提供了统计分析,以说明该方法在其他两个数据集中(印欧语系数据集和莎士比亚时代文本数据集)的应用。通过使用全球“顶部登记位置” Facebook页面数据集上的社交媒体指标,统计分析揭示出连贯的动态模式。在最大的集群中,“健身房”,“健身中心”和“体育与娱乐”类别在RNG中显得紧密相关。两者合计,我们的研究证实了我们的期望,即RNG可以提供“无参数”的近似数学形式化。我们的方法可提供有关社交媒体页面级指标以及其他应用程序中用户行为的有用见解。

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