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首页> 外文期刊>International journal of bifurcation and chaos in applied sciences and engineering >Wavelet Multiresolution Complex Network for Analyzing Multivariate Nonlinear Time Series
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Wavelet Multiresolution Complex Network for Analyzing Multivariate Nonlinear Time Series

机译:小波多辨别复杂网络分析多变量非线性时间序列

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摘要

Characterizing complicated behavior from time series constitutes a fundamental problem of continuing interest and it has attracted a great deal of attention from a wide variety of fields on account of its significant importance. We in this paper propose a novel wavelet multiresolution complex network (WMCN) for analyzing multivariate nonlinear time series. In particular, we first employ wavelet multiresolution decomposition to obtain the wavelet coefficients series at different resolutions for each time series. We then infer the complex network by regarding each time series as a node and determining the connections in terms of the distance among the feature vectors extracted from wavelet coefficients series. We apply our method to analyze the multivariate nonlinear time series from our oil-water two-phase flow experiment. We construct various wavelet multiresolution complex networks and use the weighted average clustering coefficient and the weighted average shortest path length to characterize the nonlinear dynamical behavior underlying the derived networks. In addition, we calculate the permutation entropy to support the findings from our network analysis. Our results suggest that our method allows characterizing the nonlinear flow behavior underlying the transitions of oil-water flows.
机译:从时序序列的复杂行为表征复杂的行为构成了持续兴趣的根本问题,并且由于其重要意义而引起了各种各样的领域的大量关注。本文提出了一种新颖的小波多分辨率复杂网络(WMCN),用于分析多变量非线性时间序列。特别是,我们首先使用小波多分辨率分解,以在每次序列中以不同的分辨率获得小波系数串。然后,我们通过将复杂的网络关于节点关于节点来推断复杂网络,并根据从小波系数序列提取的特征向量之间的距离确定连接。我们应用我们的方法来分析我们的油水两相流试验中的多变量非线性时间序列。我们构建各种小波多角度复杂网络,并使用加权平均聚类系数和加权平均最短路径长度来表征衍生网络下面的非线性动态行为。此外,我们计算置换熵,以支持我们网络分析的发现。我们的研究结果表明,我们的方法允许表征油水流动过渡的非线性流动行为。

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