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The dynamics of information-driven coordination phenomena: A transfer entropy analysis

机译:信息驱动的协调现象的动力学:转移熵分析

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Data from social media provide unprecedented opportunities to investigate the processes that govern the dynamics of collective social phenomena. We consider an information theoretical approach to define and measure the temporal and structural signatures typical of collective social events as they arise and gain prominence. We use the symbolic transfer entropy analysis of microblogging time series to extract directed networks of influence among geolocalized subunits in social systems. This methodology captures the emergence of system-level dynamics close to the onset of socially relevant collective phenomena. The framework is validated against a detailed empirical analysis of five case studies. In particular, we identify a change in the characteristic time scale of the information transfer that flags the onset of information-driven collective phenomena. Furthermore, our approach identifies an order-disorder transition in the directed network of influence between social subunits. In the absence of clear exogenous driving, social collective phenomena can be represented as endogenously driven structural transitions of the information transfer network. This study provides results that can help define models and predictive algorithms for the analysis of societal events based on open source data.
机译:来自社交媒体的数据提供了前所未有的机会来研究控制集体社会现象动态的过程。我们考虑采用一种信息理论方法来定义和衡量典型的集体事件的时间和结构特征,这些特征在集体事件发生并获得突出时会出现。我们使用微博时间序列的符号转移熵分析来提取社会系统中地理定位的亚基之间的有向影响力网络。这种方法论捕捉到了与社会相关的集体现象的发生接近的系统级动力学的出现。该框架通过对五个案例研究的详细实证分析进行了验证。特别是,我们确定了信息传递的特征时间尺度的变化,该变化标志着信息驱动的集体现象的发生。此外,我们的方法确定了社会亚单位之间有影响力的定向网络中的有序-无序过渡。在没有明确的外部驱动力的情况下,社会集体现象可以表示为信息传递网络的内部驱动结构转变。这项研究提供了可帮助定义模型和预测算法的结果,这些模型和预测算法用于基于开放源数据的社会事件分析。

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