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时变多重网络:层内和层间同步。

Time-varying multiplex network: Intralayer and interlayer synchronization.

机构信息

Physics and Applied Mathematics Unit, Indian Statistical Institute, 203 B. T. Road, Kolkata-700108, India.

Indian Institute of Science Education and Research Mohali, Manauli P.O. 140 306, Punjab, India.

出版信息

Phys Rev E. 2017 Dec;96(6-1):062308. doi: 10.1103/PhysRevE.96.062308. Epub 2017 Dec 15.

Abstract

A large class of engineered and natural systems, ranging from transportation networks to neuronal networks, are best represented by multiplex network architectures, namely a network composed of two or more different layers where the mutual interaction in each layer may differ from other layers. Here we consider a multiplex network where the intralayer coupling interactions are switched stochastically with a characteristic frequency. We explore the intralayer and interlayer synchronization of such a time-varying multiplex network. We find that the analytically derived necessary condition for intralayer and interlayer synchronization, obtained by the master stability function approach, is in excellent agreement with our numerical results. Interestingly, we clearly find that the higher frequency of switching links in the layers enhances both intralayer and interlayer synchrony, yielding larger windows of synchronization. Further, we quantify the resilience of synchronous states against random perturbations, using a global stability measure based on the concept of basin stability, and this reveals that intralayer coupling strength is most crucial for determining both intralayer and interlayer synchrony. Lastly, we investigate the robustness of interlayer synchronization against a progressive demultiplexing of the multiplex structure, and we find that for rapid switching of intralayer links, the interlayer synchronization persists even when a large number of interlayer nodes are disconnected.

摘要

一大类工程和自然系统,从交通网络到神经元网络,最好用多重网络架构来表示,即由两个或更多不同层组成的网络,其中每个层中的相互作用可能与其他层不同。在这里,我们考虑一个具有随时间变化的层内耦合相互作用的多重网络。我们研究了这种时变多重网络的层内和层间同步。我们发现,通过主稳定性函数方法获得的层内和层间同步的解析必要条件与我们的数值结果非常吻合。有趣的是,我们清楚地发现,层间链路切换的更高频率增强了层内和层间的同步,产生了更大的同步窗口。此外,我们使用基于盆地稳定性概念的全局稳定性度量来量化同步状态对随机扰动的鲁棒性,这表明层内耦合强度对于确定层内和层间同步至关重要。最后,我们研究了多层同步对多重结构的渐进去复用的鲁棒性,并且我们发现,对于层内链路的快速切换,即使大量的层间节点断开连接,层间同步仍然存在。

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