Modeling and analysis of cascading failures in multilayer higher-order networks

IF 9.4 1区 工程技术 Q1 ENGINEERING, INDUSTRIAL
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引用次数: 0

Abstract

With the increasing application of network science, understanding the behavior of higher-order networks has become particularly important. Especially, the study of multilayer higher-order networks is significant for revealing the interdependence and higher-order interactions in complex systems. This paper proposes a mathematical framework to explore multilayer higher-order networks composed of multiple fully interdependent hypergraphs. Each hypergraph consists of the same number of nodes, and nodes between layers are connected one-to-one. By analyzing the cascading failures of multilayer hypergraphs under different topologies, we found that although the network sizes are the same in the steady state, different topological structures (such as star-like, tree-like, and chain-like) significantly affect the time required to reach a stable state, with the star-like topology reaching stability the fastest. Furthermore, we explored the impact of network parameters on the robustness of networks. We found that in multilayer homogeneous hypergraphs, the robustness of the network becomes stronger with an increase in the average hyperdegree or average hyperedge cardinality; in multilayer heterogeneous hypergraphs, the robustness of the network becomes more fragile as the power exponent increases. Finally, experimental results indicate that with the rise in the number of network layers, the network becomes more fragile.

多层高阶网络级联故障建模与分析
随着网络科学的应用日益广泛,了解高阶网络的行为变得尤为重要。尤其是对多层高阶网络的研究,对于揭示复杂系统中的相互依存关系和高阶相互作用具有重要意义。本文提出了一个探索由多个完全相互依存的超图组成的多层高阶网络的数学框架。每个超图由相同数量的节点组成,层与层之间的节点是一对一连接的。通过分析多层超图在不同拓扑结构下的级联故障,我们发现,虽然在稳定状态下网络规模相同,但不同的拓扑结构(如星状、树状和链状)会显著影响达到稳定状态所需的时间,其中星状拓扑结构达到稳定状态的速度最快。此外,我们还探讨了网络参数对网络鲁棒性的影响。我们发现,在多层同构超图中,随着平均超度或平均超edge cardinality 的增加,网络的鲁棒性变得更强;而在多层异构超图中,随着幂指数的增加,网络的鲁棒性变得更脆弱。最后,实验结果表明,随着网络层数的增加,网络变得更加脆弱。
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来源期刊
Reliability Engineering & System Safety
Reliability Engineering & System Safety 管理科学-工程:工业
CiteScore
15.20
自引率
39.50%
发文量
621
审稿时长
67 days
期刊介绍: Elsevier publishes Reliability Engineering & System Safety in association with the European Safety and Reliability Association and the Safety Engineering and Risk Analysis Division. The international journal is devoted to developing and applying methods to enhance the safety and reliability of complex technological systems, like nuclear power plants, chemical plants, hazardous waste facilities, space systems, offshore and maritime systems, transportation systems, constructed infrastructure, and manufacturing plants. The journal normally publishes only articles that involve the analysis of substantive problems related to the reliability of complex systems or present techniques and/or theoretical results that have a discernable relationship to the solution of such problems. An important aim is to balance academic material and practical applications.
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