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Least-squares cross-wavelet analysis and its applications in geophysical time series

机译:最小二乘交叉小波分析及其在地球物理时间序列中的应用

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摘要

The least-squares wavelet analysis, an alternative to the classical wavelet analysis, was introduced in order to analyze unequally spaced and non-stationary time series exhibiting components with variable amplitude and frequency over time. There are a few methods such as cross-wavelet transform and wavelet coherence that can analyze two time series together. However, these methods cannot generally be used to analyze unequally spaced and non-stationary time series with associated covariance matrices that may have trends and/or datum shifts. A new method of analyzing two time series together, namely the least-squares cross-wavelet analysis, is developed and applied to study the disturbances in the gravitational gradients observed by GOCE satellite that arise from plasma flow in the ionosphere represented by Poynting flux. The proposed method also shows its outstanding performance on the Westford-Wettzell very long baseline interferometry baseline length and temperature series.
机译:引入了最小二乘小波分析,它是经典小波分析的一种替代方法,目的是分析不等距且非平稳的时间序列,这些时间序列的振幅和频率随时间变化。交叉小波变换和小波相干等几种方法可以一起分析两个时间序列。但是,这些方法通常不能用于分析可能具有趋势和/或基准移动的具有相关协方差矩阵的不等距和非平稳时间序列。提出了一种同时分析两个时间序列的新方法,即最小二乘交叉小波分析,并将其应用于研究GOCE卫星观测到的引力梯度中的扰动,这些扰动是由电离层中以Poynting通量表示的电浆流引起的。所提出的方法还显示了其在Westford-Wettzell非常长的基线干涉测量法基线长度和温度序列上的出色性能。

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