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复杂网络中控制边缘动力学对节点故障的鲁棒性。

Robustness of controlling edge dynamics in complex networks against node failure.

作者信息

Pang Shao-Peng, Hao Fei, Wang Wen-Xu

机构信息

The Seventh Research Division, School of Automation Science and Electrical Engineering, Beihang University, Beijing, 100191, China.

Science and Technology on Aircraft Control Laboratory, Beihang University, Beijing, 100191, China.

出版信息

Phys Rev E. 2016 Nov;94(5-1):052310. doi: 10.1103/PhysRevE.94.052310. Epub 2016 Nov 14.

Abstract

The robustness of controlling complex networks is significant in network science. In this paper, we focus on evaluating and analyzing the robustness of controlling edge dynamics in complex networks against node failure. Using three categories of all nodes to quantify the robustness, we find that the percentages of the three types of nodes are mainly related to the degree distribution of networks. The simulation results of model networks and analytic calculations show that the sparse inhomogeneous networks, which emerge in many real complex networks, have strong control robustness from the point of the number of ordinary nodes, but the strong positive correlation between in and out degrees reduces the control robustness. Evaluation of real-world networks indicates that most of them have few or no critical nodes, that is, they do not need to increase driver nodes to maintain control for most of node failures. Then an adding circuit-link strategy is proposed to optimize the robustness of edge controllability.

摘要

在网络科学中,控制复杂网络的鲁棒性具有重要意义。在本文中,我们专注于评估和分析复杂网络中针对节点故障的控制边动态的鲁棒性。通过使用三类所有节点来量化鲁棒性,我们发现这三种类型节点的百分比主要与网络的度分布有关。模型网络的仿真结果和解析计算表明,许多实际复杂网络中出现的稀疏非均匀网络,从普通节点数量的角度来看具有很强的控制鲁棒性,但入度和出度之间的强正相关降低了控制鲁棒性。对现实世界网络的评估表明,它们中的大多数几乎没有或没有关键节点,也就是说,对于大多数节点故障,它们不需要增加驱动节点来维持控制。然后提出了一种添加电路链路策略来优化边可控性的鲁棒性。

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