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The robustness of multiplex networks under layer node-based attack

机译:基于层节点攻击的Multiplex网络的鲁棒性

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From transportation networks to complex infrastructures, and to social and economic networks, a large variety of systems can be described in terms of multiplex networks formed by a set of nodes interacting through different network layers. Network robustness, as one of the most successful application areas of complex networks, has attracted great interest in a myriad of research realms. In this regard, how multiplex networks respond to potential attack is still an open issue. Here we study the robustness of multiplex networks under layer node-based random or targeted attack, which means that nodes just suffer attacks in a given layer yet no additional influence to their connections beyond this layer. A theoretical analysis framework is proposed to calculate the critical threshold and the size of giant component of multiplex networks when nodes are removed randomly or intentionally. Via numerous simulations, it is unveiled that the theoretical method can accurately predict the threshold and the size of giant component, irrespective of attack strategies. Moreover, we also compare the robustness of multiplex networks under multiplex node-based attack and layer node-based attack, and find that layer node-based attack makes multiplex networks more vulnerable, regardless of average degree and underlying topology.
机译:从交通网络到复杂的基础设施,再到社会和经济网络,可以通过由一组节点组成的多路复用网络来描述各种各样的系统,这些节点通过不同的网络层进行交互。网络稳健性作为复杂网络最成功的应用领域之一,已经引起了无数研究领域的极大兴趣。在这方面,Multiplex网络如何响应潜在的攻击仍然是一个悬而未决的问题。在这里,我们研究了基于层节点的随机或有目标攻击下的多路复用网络的鲁棒性,这意味着节点仅在给定层受到攻击,而对该层以外的连接没有其他影响。提出了一种理论分析框架,用于计算节点随机或有意删除时的临界阈值和多路复用网络巨型组件的大小。通过大量模拟,揭示了该理论方法可以准确地预测阈值和巨型组件的大小,而不管攻击策略如何。此外,我们还比较了多路复用网络在基于多路复用节点的攻击和基于层节点的攻击下的鲁棒性,发现基于层节点的攻击使多路复用网络更容易受到攻击,而与平均程度和基础拓扑无关。

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