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利用离散复小波方法在非相位相干混沌系统中进行实验相位同步检测。

Experimental phase synchronization detection in non-phase coherent chaotic systems by using the discrete complex wavelet approach.

机构信息

Associated Laboratory for Computing and Applied Mathematics (LAC), Brazilian National Institute for Space Research (INPE), São José dos Campos 12227-010, Brazil.

Department of Chemistry, Saint Louis University, St. Louis, Missouri 63103, USA.

出版信息

Chaos. 2017 Aug;27(8):083122. doi: 10.1063/1.4999908.

Abstract

Phase synchronization may emerge from mutually interacting non-linear oscillators, even under weak coupling, when phase differences are bounded, while amplitudes remain uncorrelated. However, the detection of this phenomenon can be a challenging problem to tackle. In this work, we apply the Discrete Complex Wavelet Approach (DCWA) for phase assignment, considering signals from coupled chaotic systems and experimental data. The DCWA is based on the Dual-Tree Complex Wavelet Transform (DT-CWT), which is a discrete transformation. Due to its multi-scale properties in the context of phase characterization, it is possible to obtain very good results from scalar time series, even with non-phase-coherent chaotic systems without state space reconstruction or pre-processing. The method correctly predicts the phase synchronization for a chemical experiment with three locally coupled, non-phase-coherent chaotic processes. The impact of different time-scales is demonstrated on the synchronization process that outlines the advantages of DCWA for analysis of experimental data.

摘要

相位同步可以在相互作用的非线性振荡器中出现,即使在弱耦合的情况下,当相位差受到限制时,而幅度仍然没有相关性。然而,检测这种现象可能是一个具有挑战性的问题。在这项工作中,我们应用离散复小波方法(DCWA)进行相位分配,考虑来自耦合混沌系统和实验数据的信号。DCWA基于双树复小波变换(DT-CWT),这是一种离散变换。由于它在相位特征化方面的多尺度性质,即使对于没有状态空间重建或预处理的非相位相干混沌系统,也可以从标量时间序列中获得非常好的结果。该方法正确预测了具有三个局部耦合、非相位相干混沌过程的化学实验的相位同步。不同时间尺度对同步过程的影响表明了 DCWA 分析实验数据的优势。

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