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CSI: Community-Level Social Influence Analysis

机译:CSI:社区层面的社会影响力分析

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摘要

Modeling how information propagates in social networks driven by peer influence, is a fundamental research question towards understanding the structure and dynamics of these complex networks, as well as developing viral marketing applications. Existing literature studies influence at the level of individuals, mostly ignoring the existence of a community structure in which multiple nodes may exhibit a common influence pattern. In this paper we introduce CSI, a model for analyzing information propagation and social influence at the granularity of communities. CSI builds over a novel propagation model that generalizes the classic Independent Cascade model to deal with groups of nodes (instead of single nodes) influence. Given a social network and a database of past information propagation, we propose a hierarchical approach to detect a set of communities and their reciprocal influence strength. CSI provides a higher level and more intuitive description of the influence dynamics, thus representing a powerful tool to summarize and investigate patterns of influence in large social networks. The evaluation on various datasets suggests the effectiveness of the proposed approach in modeling information propagation at the level of communities. It further enables to detect interesting patterns of influence, such as the communities that play a key role in the overall diffusion process, or that are likely to start information cascades.
机译:对信息如何在同伴影响下在社交网络中传播进行建模,是一个基本的研究问题,旨在理解这些复杂网络的结构和动态以及开发病毒式营销应用程序。现有的文献研究在个人层面上产生影响,而大多数人忽略了一个社区结构的存在,在该结构中,多个节点可能表现出共同的影响模式。在本文中,我们介绍了CSI,它是一种用于分析社区粒度下的信息传播和社会影响的模型。 CSI建立在一个新颖的传播模型上,该模型推广了经典的“独立级联”模型以处理节点组(而不是单个节点)的影响。给定一个社交网络和一个过去信息传播的数据库,我们提出了一种分层方法来检测一组社区及其相互影响力。 CSI提供了对影响动态的更高层次和更直观的描述,从而代表了一个强大的工具来总结和调查大型社交网络中的影响模式。对各种数据集的评估表明,该方法在建模社区级别的信息传播方面是有效的。它还可以检测有趣的影响模式,例如在整个传播过程中发挥关键作用的社区,或可能启动信息级联的社区。

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