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Community-Aware Content Diffusion: Embeddednes and Permeability

机译:社区感知的内容扩散:Embeddednes和渗透性

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Viruses, opinions, ideas are different contents sharing a common trait: they need carriers embedded into a social context to spread. Modeling and approximating diffusive phenomena have always played an essential role in a varied range of applications from outbreak prevention to the analysis of meme and fake news. Classical approaches to such a task assume diffusion processes unfolding in a mean-field context, every actor being able to interact with all its peers. However, during the last decade, such an assumption has been progressively superseded by the availability of data modeling the real social network of individuals, thus producing a more reliable proxy for social interactions as spreading vehicles. In this work, following such a trend, we propose alternative ways of leveraging apriori knowledge on mesoscale network topology to design community-aware diffusion models with the aim of better approximate the spreading of content over complex and clustered social tissues.
机译:病毒,意见,想法是具有共同特征的不同内容:它们需要嵌入社交环境中的载体才能传播。建模和近似扩散现象在从爆发预防到对模因和假新闻的分析等各种应用中一直起着至关重要的作用。此类任务的经典方法假定扩散过程在均值场环境中展开,每个参与者都可以与其所有同伴互动。但是,在过去的十年中,这种假设已逐渐被可用于建模个人真实社交网络的数据的可用性所取代,从而为传播社交媒介的传播提供了更可靠的代理。在这项工作中,随着这种趋势的发展,我们提出了利用中尺度网络拓扑上先验知识来设计社区感知的传播模型的替代方法,目的是更好地估计内容在复杂且聚集的社会组织中的传播。

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