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通过在时间网络中阻断接触来减轻易感-感染-康复(SIR)传染病传播。

Mitigate SIR epidemic spreading via contact blocking in temporal networks.

作者信息

Zhang Shilun, Zhao Xunyi, Wang Huijuan

机构信息

Faculty of Electrical Engineering, Mathematics, and Computer Science, Delft University of Technology, Mekelweg 4, 2628 CD Delft, The Netherlands.

出版信息

Appl Netw Sci. 2022;7(1):2. doi: 10.1007/s41109-021-00436-w. Epub 2022 Jan 6.

DOI:10.1007/s41109-021-00436-w
PMID:35013715
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8733442/
Abstract

Progress has been made in how to suppress epidemic spreading on temporal networks via blocking all contacts of targeted nodes or node pairs. In this work, we develop contact blocking strategies that remove a fraction of contacts from a temporal (time evolving) human contact network to mitigate the spread of a Susceptible-Infected-Recovered epidemic. We define the probability that a contact (, , ) is removed as a function of a given centrality metric of the corresponding link (, ) in the aggregated network and the time of the contact. The aggregated network captures the number of contacts between each node pair. A set of 12 link centrality metrics have been proposed and each centrality metric leads to a unique contact removal strategy. These strategies together with a baseline strategy (random removal) are evaluated in empirical contact networks via the average prevalence, the peak prevalence and the time to reach the peak prevalence. We find that the epidemic spreading can be mitigated the best when contacts between node pairs that have fewer contacts and early contacts are more likely to be removed. A strategy tends to perform better when the average number contacts removed from each node pair varies less. The aggregated pruned network resulted from the best contact removal strategy tends to have a large largest eigenvalue, a large modularity and probably a small largest connected component size.

摘要

在如何通过阻断目标节点或节点对的所有接触来抑制时间网络上的疫情传播方面已经取得了进展。在这项工作中,我们开发了接触阻断策略,即从时间(随时间演变)人类接触网络中移除一部分接触,以减轻易感-感染-康复疫情的传播。我们将接触((i),(j),(t))被移除的概率定义为聚合网络中相应链接((i),(j))的给定中心性度量以及接触时间(t)的函数。聚合网络记录了每对节点之间的接触次数。已经提出了一组12种链接中心性度量,每种中心性度量都导致一种独特的接触移除策略。这些策略与一种基线策略(随机移除)一起,通过平均流行率、峰值流行率和达到峰值流行率的时间,在实证接触网络中进行评估。我们发现,当接触较少的节点对之间的接触以及早期接触更有可能被移除时,疫情传播能够得到最好的缓解。当从每个节点对移除的接触平均数量变化较小时,一种策略往往表现得更好。由最佳接触移除策略产生的聚合修剪网络往往具有较大的最大特征值、较大的模块化程度,并且可能具有较小的最大连通分量大小。

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