【2h】

Navigability of interconnected networks under random failures

机译:随机故障下互连网络的可导航性

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摘要

Assessing the navigability of interconnected networks (transporting information, people, or goods) under eventual random failures is of utmost importance to design and protect critical infrastructures. Random walks are a good proxy to determine this navigability, specifically the coverage time of random walks, which is a measure of the dynamical functionality of the network. Here, we introduce the theoretical tools required to describe random walks in interconnected networks accounting for structure and dynamics inherent to real systems. We develop an analytical approach for the covering time of random walks in interconnected networks and compare it with extensive Monte Carlo simulations. Generally speaking, interconnected networks are more resilient to random failures than their individual layers per se, and we are able to quantify this effect. As an application––which we illustrate by considering the public transport of London––we show how the efficiency in exploring the multiplex critically depends on layers’ topology, interconnection strengths, and walk strategy. Our findings are corroborated by data-driven simulations, where the empirical distribution of check-ins and checks-out is considered and passengers travel along fastest paths in a network affected by real disruptions. These findings are fundamental for further development of searching and navigability strategies in real interconnected systems.
机译:在最终的随机故障下,评估互连网络(运输信息,人员或货物)的可通行性对于设计和保护关键基础设施至关重要。随机游走是确定这种可导航性(特别是随机游走的覆盖时间)的一个很好的代理,它是网络动态功能的一种度量。在这里,我们介绍了描述互连系统中随机游动所需的理论工具,这些结构考虑了真实系统固有的结构和动力学。我们针对互连网络中随机游走的时间开发了一种分析方法,并将其与广泛的蒙特卡洛模拟进行了比较。一般而言,互连网络比其本身的各个层本身对随机故障的恢复能力更强,并且我们能够量化这种影响。作为一个应用程序(我们通过考虑伦敦的公共交通进行了说明),我们展示了探索多路复用的效率如何严格取决于层的拓扑,互连强度和步行策略。我们的发现得到了数据驱动模拟的证实,其中考虑了签到和签出的经验分布,并且乘客沿着受实际中断影响的网络中的最快路径行进。这些发现对于进一步开发实际互连系统中的搜索和导航策略至关重要。

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