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基于节点相似性最大化具有社区结构的网络的同步性。

Maximizing synchronizability of networks with community structure based on node similarity.

作者信息

Luan Yangyang, Wu Xiaoqun, Liu Binghong

机构信息

School of Mathematics and Statistics, Wuhan University, Hubei 430072, China.

出版信息

Chaos. 2022 Aug;32(8):083106. doi: 10.1063/5.0092783.

Abstract

In reality, numerous networks have a community structure characterized by dense intra-community connections and sparse inter-community connections. In this article, strategies are proposed to enhance synchronizability of such networks by rewiring a certain number of inter-community links, where the research scope is complete synchronization on undirected and diffusively coupled dynamic networks. First, we explore the effect of adding links between unconnected nodes with different similarity levels on network synchronizability and find that preferentially adding links between nodes with lower similarity can improve network synchronizability more than that with higher similarity, where node similarity is measured by our improved Asymmetric Katz (AKatz) and Asymmetric Leicht-Holme-Newman (ALHNII) methods from the perspective of link prediction. Additional simulations demonstrate that the node similarity-based link-addition strategy is more effective in enhancing network synchronizability than the node centrality-based methods. Furthermore, we apply the node similarity-based link-addition or deletion strategy as the valid criteria to the rewiring process of inter-community links and then propose a Node Similarity-Based Rewiring Optimization (NSBRO) algorithm, where the optimization process is realized by a modified simulated annealing technique. Simulations show that our proposed method performs better in optimizing synchronization of such networks compared with other centrality-based heuristic methods. Finally, simulations on the Rössler system indicate that the network structure optimized by the NSBRO algorithm also leads to better synchronizability of coupled oscillators.

摘要

实际上,许多网络都具有一种社区结构,其特征是社区内部连接密集而社区之间连接稀疏。在本文中,我们提出了通过重新连接一定数量的社区间链接来增强此类网络同步性的策略,这里的研究范围是无向且扩散耦合动态网络上的完全同步。首先,我们探究了在具有不同相似性水平的未连接节点之间添加链接对网络同步性的影响,发现优先在相似性较低的节点之间添加链接比在相似性较高的节点之间添加链接能更有效地提高网络同步性,其中节点相似性是通过我们从链接预测角度改进的非对称卡茨(AKatz)和非对称莱希特 - 霍尔姆 - 纽曼(ALHNII)方法来衡量的。额外的模拟表明,基于节点相似性的链接添加策略在增强网络同步性方面比基于节点中心性的方法更有效。此外,我们将基于节点相似性的链接添加或删除策略作为有效标准应用于社区间链接的重新布线过程,进而提出了一种基于节点相似性的重新布线优化(NSBRO)算法,其中优化过程是通过改进的模拟退火技术实现的。模拟结果表明,与其他基于中心性的启发式方法相比,我们提出的方法在优化此类网络的同步性方面表现更好。最后,在罗塞尔系统上的模拟表明,由NSBRO算法优化的网络结构也能使耦合振荡器具有更好的同步性。

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