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Identifying the influential spreaders in multilayer interactions of online social networks

机译:识别在线社交网络多层互动中的影响力传播者

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摘要

Online social networks (OSNs) portray a multi-layer of interactions through which users become a friend, information is propagated, ideas are shared, and interaction is constructed within an OSN. Identifying the most influential spreaders in a network is a significant step towards improving the use of existing resources to speed up the spread of information for application such as viral marketing or hindering the spread of information for application like virus blocking and rumor restraint. Users communications facilitated by OSNs could confront the temporal and spatial limitations of traditional communications in an exceptional way, thereby presenting new layers of social interactions, which coincides and collaborates with current interaction layers to redefine the multiplex OSN. In this paper, the effects of different topological network structure on influential spreaders identification are investigated. The results analysis concluded that improving the accuracy of influential spreaders identification in OSNs is not only by improving identification algorithms but also by developing a network topology that represents the information diffusion well. Moreover, in this paper a topological representation for an OSN is proposed which takes into accounts both multilayers interactions as well as overlaying links as weight. The measurement results are found to be more reliable when the identification algorithms are applied to proposed topological representation compared when these algorithms are applied to single layer representations.
机译:在线社交网络(OSN)描绘了多层交互,用户可以通过该多层成为朋友,传播信息,共享想法以及在OSN中构建交互。识别网络中最具影响力的传播者,是朝着改进现有资源的使用迈出重要一步,以加快诸如病毒性营销之类的应用程序信息的传播或阻止诸如病毒拦截和谣言抑制之类的应用程序信息的传播。 OSN促进的用户通信可以以一种特殊的方式来面对传统通信的时间和空间限制,从而呈现出社交交互的新层,它与当前的交互层重合并协作以重新定义多路复用OSN。本文研究了不同拓扑网络结构对有影响的吊具识别的影响。结果分析得出结论,提高OSN中有影响力的吊具识别的准确性不仅是通过改进识别算法,而且还需要开发一种代表信息传播良好的网络拓扑。此外,在本文中,提出了一种OSN的拓扑表示形式,该拓扑表示形式考虑了多层交互作用以及覆盖链接的权重。发现将识别算法应用于拟议的拓扑表示时,与将这些算法应用于单层表示相比,测量结果更加可靠。

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