Detecting Cluster Synchronization in Chaotic Dynamic Networks via Information Theoretic Measures

Özge Canlı, Serkan Günel
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引用次数: 1

Abstract

Sub-systems in a network of chaotic dynamic systems can form clusters of synchronization. In this study, we investigate the problem of detection of cluster synchronization via information theoretic measures. We have shown that, if the existing information measures in the literature, particularly transfer entropy, is estimated from sequential observations of continuous chaotic systems, it is hard to detect cluster synchronization, directly. On the other hand, if the state space is reconstructed from the observed data in the light of Takens’ embedding theorem first, the cluster synchronization can be detected easily.
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基于信息理论的混沌动态网络簇同步检测
混沌动态系统网络中的子系统可以形成同步集群。本文研究了利用信息理论方法检测集群同步的问题。我们已经证明,如果文献中现有的信息度量,特别是传递熵,是从连续混沌系统的顺序观测中估计的,那么很难直接检测集群同步。另一方面,如果首先根据Takens嵌入定理从观测数据重构状态空间,则可以很容易地检测到集群同步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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