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Individual Behavior and Social Influence in Online Social Systems

机译:在线社交系统中的个人行为和社交影响力

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The capacity to collect and analyze the actions of individuals in online social systems at minute-by-minute time granularity offers new perspectives on collective human behavior research. Macroscopic analysis of massive datasets raises interesting observations of patterns in online social processes. But working at a large scale has its own limitations, since it typically doesn't allow for interpretations on a microscopic level. We examine how different types of individual behavior affect the decisions of friends in a network. We begin with the problem of detecting social influence in a social system. Then we investigate the causality between individual behavior and social influence by observing the diffusion of an innovation among social peers. Are more active users more influential? Are more credible users more influential? Bridging this gap and finding points where the macroscopic and microscopic worlds converge contributes to better interpretations of the mechanisms of spreading of ideas and behaviors in networks and offer design opportunities for online social systems.
机译:能够以每分钟的时间粒度收集和分析个人在在线社交系统中的行为的能力,为集体人类行为研究提供了新的视角。大规模数据集的宏观分析提出了在线社交过程中模式的有趣观察。但是大规模工作有其自身的局限性,因为它通常不允许在微观层面上进行解释。我们研究了不同类型的个人行为如何影响网络中朋友的决策。我们从检测社会系统中的社会影响力的问题开始。然后,我们通过观察创新在社会同伴之间的传播来研究个体行为与社会影响之间的因果关系。活跃的用户是否更有影响力?可信度更高的用户是否更有影响力?弥合这种差距并找到宏观和微观世界融合的点,有助于更好地解释网络中思想和行为的传播机制,并为在线社交系统提供设计机会。

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