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Summarization Meets Visualization on Online Social Networks

机译:在线社交网络上的总结与可视化

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Getting an overview of a large online social net-work and deciding which communities to join is a challenging task for a new user. We propose a method that maps a large network into a smaller graph with two kinds of nodes: a node of the first kind is representative of a community, a node of the second kind is neighbor to a representative and rejects the semantics of that community. Our approach encompasses a learning and ranking algorithm that derives this smaller graph from the original one, and a visualization algorithm that returns a graph layout to the observer. We report on our results on inspecting the network of a folksonomy.
机译:对于一个大型用户而言,获得大型在线社交网络的概述并确定加入哪些社区是一项艰巨的任务。我们提出了一种将大型网络映射到具有两种类型节点的较小图的方法:第一类节点代表社区,第二类节点与代表相邻,并拒绝该社区的语义。我们的方法包括一种学习和排名算法,该算法从原始图生成较小的图,以及一种可视化算法,将图的布局返回给观察者。我们将报告检查民间外科手术网络的结果。

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