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Vital nodes extracting method based on user's behavior in 5G mobile social networks

机译:基于用户在5G移动社交网络中的致命节点提取方法

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In mobile social networks, extracting the most powerful individuals to disseminate information in the network is attracting the attention of many researchers. Identifying influential nodes in Mobile Social Networks (MSNs) helps to increase the efficiency of bandwidth in wireless communication by leveraging cellular links to device to-device communications. Recently, numerous techniques have been proposed from different perspectives, each with its particular advantages and weaknesses. In this paper, Node Willingness and Influence (NWI) algorithm is proposed to extract the most powerful spreaders in 5G MSNs, which considers the willingness and influence of the node to disseminate information in the network through its neighbors and 2-step neighbors. Firstly, the Influence (In) of a node is calculated based on the nodes' willingness to share contents with others. Then, based on node degree and neighbors node degree; and nodes strength and neighbors node strength, the Weighted Strength Degree (WSD) and the Clustering Impact Coefficient (CIC) of a node is determined. Finally, the importance of a node based on its willingness to propagate information in the network is done by accounting the Influence (In) and CIC of the node. The temporal evolution graph and time-aggregated graph models are used to capture the topology dynamics of the mobile social networks. Also, Susceptible-Infected-Recovered (SIR) model is used to evaluate the performance of NWI to disseminate information in real-world networks. Results show the effectiveness of the proposed method to extract important nodes in MSNs.
机译:在移动社交网络中,提取最强大的个人来传播网络中的信息是吸引许多研究人员的注意。识别移动社交网络中的有影响性节点(MSNS)有助于通过利用蜂窝链接到设备到设备通信来提高无线通信中带宽的效率。最近,从不同的角度提出了许多技术,每个技术都具有特殊的优点和缺点。在本文中,提出了节点意愿和影响(NWI)算法以提取5G MSN中最强大的扩展器,这考虑了节点通过其邻居和2步邻居传播网络中的信息的意愿和影响。首先,基于节点对与他人共享内容的节点来计算节点的影响(IN)。然后,基于节点度和邻居节点度;并且节点强度和邻居节点强度,确定节点的加权强度(WSD)和集群冲击系数(CIC)。最后,通过对节点的影响(IN)和CIC计算,基于其在网络中传播信息的愿意来完成节点的重要性。时间进化图和时间聚合图模型用于捕获移动社交网络的拓扑动态。此外,易感感染恢复(SIR)模型用于评估NWI的性能,以在现实网络中传播信息。结果表明了提出MSN中提取重要节点的方法的有效性。

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