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Effective link prediction in multiplex networks: A TOPSIS method

机译:多路复用网络中的有效链路预测:Topsis方法

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This paper investigates the link prediction in multiplex networks. Multiplex networks that represent multiple types of interaction between the same group of individuals are a special case of complex networks. Each type of interaction is modeled as a layer in a multiplex network. Usually, the topological structures between different layers of a multiplex network have a certain extent of correlation. As a result, the accuracy of link prediction in multiplex networks can be enhanced by combining the information of different layers. In this paper, link prediction in multiplex networks is regarded as a multiple-attribute decision-making problem, in which the potential links in the target layer are considered as alternatives, layers are viewed as attributes, and the similarity score of a potential link in each layer is an attribute value. In implementation, the TOPSIS method is employed to rank alternatives, and interlayer relevance is used to weight the attributes. The experimental results show that the proposed method is not sensitive to the parameter and the interlayer relevance measure, and achieves superior prediction accuracy.
机译:本文调查了多路复用网络中的链路预测。代表同一组个人之间多种交互的多路复用网络是复杂网络的特殊情况。每种类型的交互都被建模为多路复用网络中的图层。通常,多路复用网络的不同层之间的拓扑结构具有一定程度的相关性。结果,通过组合不同层的信息,可以增强多路复用网络中的链路预测的准确性。在本文中,多路复用网络中的链路预测被认为是多个属性决策问题,其中目标层中的潜在链路被认为是替代方案,层被视为属性,以及潜在链接的相似度得分每层都是属性值。在实现中,TopSIS方法用于排序替代方案,并且中间相关性用于重量属性。实验结果表明,该方法对参数和层间相关测量不敏感,并实现了卓越的预测精度。

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