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Ranking the key nodes with temporal degree deviation centrality on complex networks

机译:在复杂网络上以时间度偏差为中心对关键节点进行排名

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Records of time-stamped social interactions between pairs of individuals (e.g. the human contact networks involved in the transmission of disease, ad hoc radio networks between moving vehicles, and the transactions between principals in a market) constitute a so-called temporal network. A remarkable difference between temporal networks and conventional static networks is that time-stamped events rather than links are the unit elements generating the collective behavior of nodes. While we have good centralities to measure the importance of the nodes in static networks, so far these have been lacking for temporal cases. In this paper we propose a simple but powerful centrality, the degree deviation centrality, which calculates the deviation of temporal degree centrality. This enables us to extend network properties vertex degree centrality metrics in a very natural way to the temporal case. We then demonstrate how our centrality applies to identify the vital nodes in temporal networks by epidemic spreading dynamics based on SI (susceptible-infected) model. The numerical experiments on several real networks indicate that the temporal degree deviation centrality method outperforms some other indicators, and the results with different time window size show that the improvement is also robust.
机译:一对个人之间带有时间戳记的社会互动的记录(例如,与疾病传播有关的人类接触网络,移动车辆之间的自组织无线电网络以及市场中的委托人之间的交易)构成了所谓的时间网络。时间网络与常规静态网络之间的显着区别是,时间戳事件而不是链接是生成节点集体行为的单位元素。尽管我们有很好的中心性来衡量静态网络中节点的重要性,但到目前为止,暂时性情况下还缺少这些。在本文中,我们提出了一个简单但功能强大的中心度,即度偏差中心度,它可以计算时间级中心度的偏差。这使我们能够以非常自然的方式将网络属性顶点度中心度度量扩展到时间情况。然后,我们演示了我们的中心点如何通过基于SI(易感感染)模型的流行病传播动力学来识别时态网络中的重要节点。在多个真实网络上的数值实验表明,时空偏差中心度方法的性能优于其他指标,并且不同时间窗口大小的结果表明,该改进也是可靠的。

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