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Inferring Information Propagation over Online Social Networks: Edge Asymmetry and Flow Tendency

机译:推断在线社交网络上的信息传播:边缘不对称和流向

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Inferring the underlying information propagation over online social networks is important because it leads to new insights and enables forecasting, as well as influencing information propagation. In this paper, we analyze propagation processes in online social networks, when only limited details of propagation are available. We use data crawled from Chinese largest recommendation social network -- Douban Network, and study how the information propagates through the user relationship network of Douban. By using the users' follow relationship information, and time sequence of registering for participation in events, we build the potential propagation paths of events. After analyzing the propagation processes of 30,778 events in which about 1.47 million users are involved, we observe the statistical characteristics of propagation paths of those events, including the different types of participants and size distribution of connected participants. Further, we find that information propagation between node pairs are asymmetric. Moreover, based on the asymmetric property between node pairs, we propose a concept -- Information Potential Energy, that describes the capability that nodes disseminate information over a network. Finally, we propose a Flow Shell (FS) model that can efficiently and correctly calculate the nodes' Information Potential Energy, and validate it.
机译:推断基本信息在在线社交网络上的传播很重要,因为它可以带来新的见解,并可以进行预测以及影响信息传播。在本文中,当只有有限的传播详细信息可用时,我们将分析在线社交网络中的传播过程。我们使用从中国最大推荐社交网络-豆瓣网抓取的数据,研究信息如何通过豆瓣的用户关系网络传播。通过使用用户的关注关系信息以及注册参与事件的时间顺序,我们建立了事件的潜在传播路径。在分析了涉及约147万用户的30,778个事件的传播过程之后,我们观察了这些事件的传播路径的统计特征,包括参与者的不同类型和所连接参与者的规模分布。此外,我们发现节点对之间的信息传播是不对称的。此外,基于节点对之间的不对称特性,我们提出了一个概念-信息势能,它描述了节点通过网络传播信息的能力。最后,我们提出了一种能够有效,正确地计算节点的信息势能并对其进行验证的流壳(FS)模型。

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