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复杂网络边缘可控性的通用框架。

Universal framework for edge controllability of complex networks.

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

Sci Rep. 2017 Jun 26;7(1):4224. doi: 10.1038/s41598-017-04463-5.

Abstract

Dynamical processes occurring on the edges in complex networks are relevant to a variety of real-world situations. Despite recent advances, a framework for edge controllability is still required for complex networks of arbitrary structure and interaction strength. Generalizing a previously introduced class of processes for edge dynamics, the switchboard dynamics, and exploit- ing the exact controllability theory, we develop a universal framework in which the controllability of any node is exclusively determined by its local weighted structure. This framework enables us to identify a unique set of critical nodes for control, to derive analytic formulas and articulate efficient algorithms to determine the exact upper and lower controllability bounds, and to evaluate strongly structural controllability of any given network. Applying our framework to a large number of model and real-world networks, we find that the interaction strength plays a more significant role in edge controllability than the network structure does, due to a vast range between the bounds determined mainly by the interaction strength. Moreover, transcriptional regulatory networks and electronic circuits are much more strongly structurally controllable (SSC) than other types of real-world networks, directed networks are more SSC than undirected networks, and sparse networks are typically more SSC than dense networks.

摘要

复杂网络边缘上发生的动力学过程与各种现实情况有关。尽管最近取得了进展,但对于任意结构和相互作用强度的复杂网络,仍然需要边缘可控性框架。通过推广以前引入的一类边缘动力学过程,即开关板动力学,并利用精确可控性理论,我们开发了一个通用框架,其中任何节点的可控性仅由其局部加权结构决定。该框架使我们能够确定一组用于控制的独特关键节点,推导出确定精确可控性上下界的解析公式和明确的高效算法,并评估任何给定网络的强结构可控性。将我们的框架应用于大量模型和真实世界网络,我们发现由于主要由相互作用强度确定的界限之间存在很大的差异,相互作用强度在边缘可控性中比网络结构起着更重要的作用。此外,转录调控网络和电子电路比其他类型的真实网络具有更强的结构可控性(SSC),有向网络比无向网络具有更强的 SSC,稀疏网络通常比密集网络具有更强的 SSC。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8eb/5484715/37cf08cabe55/41598_2017_4463_Fig1_HTML.jpg

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