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Link prediction in multilayer networks

机译:多层网络中的链路预测

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摘要

Link prediction has gained popularity in recent years in large networks. Researchers have proposed various methods for finding the missing links. These methods include common neighbour, Jaccard coefficient, etc. based on the proximity of the nodes. These methods have limitations as they treat all common nodes equal from a pair of nodes. A new method is proposed, common neighbour's common neighbour (CNCN). Its performance is better than the existing methods in a single layer network. These methods are based on the topological features of the network. The proposed method finds the different behaviour of common nodes for a pair of nodes. The link prediction is also useful in the multiplex networks. The link predictions in the multiplex networks are more useful than the single layer network as several layers may give more information about a node than the single layer network. Two methods are proposed using dynamic and static weights.
机译:在大型网络中近年来,LINK预测已经受欢迎。研究人员提出了寻找缺失链接的各种方法。这些方法包括基于节点的接近度的公共邻居,Jaccard系数等。这些方法具有限制,因为它们处理与一对节点相等的所有公共节点。提出了一种新方法,共同邻居的公共邻居(CNCN)。其性能优于单层网络中的现有方法。这些方法基于网络的拓扑功能。所提出的方法找到了一对节点的公共节点的不同行为。链路预测在多路复用网络中也是有用的。多路复用网络中的链路预测比单层网络更有用,因为若干层可以提供比单层网络的更多信息。使用动态和静态权重提出了两种方法。

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