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首页> 外文期刊>IEEE Transactions on Signal Processing >Evolutionary Coherence of Nonstationary Signals
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Evolutionary Coherence of Nonstationary Signals

机译:非平稳信号的进化相干性

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Coherence is a widely used measure for characterizing linear dependence between a pair of signals. For nonstationary signals, the autospectrum, cross spectrum, and coherence between signals may evolve over time. A standard approach is to divide the signals into overlapping blocks of fixed width and then smooth (over frequency) the periodogram matrix at each time block. In this paper, a consistent estimation procedure is developed using time-localized linear filtering. The proposed method automatically selects, via repeated tests of homogeneity, the optimal window width for estimating local coherence. It is pointwise adaptive in the sense that the width of the optimal interval is allowed to change across time. Under the locally stationary process framework, we develop a central limit theorem on the Fisher-z transform of our time-localized band coherence. We apply our method to a pair of highly dynamic brain waves signals whose coherence is shown to evolve during an epileptic seizure.
机译:相干性是表征一对信号之间线性相关性的一种广泛使用的度量。对于非平稳信号,信号的自谱,互谱和相干性可能会随着时间而发展。一种标准方法是将信号分成固定宽度的重叠块,然后在每个时间块平滑(超频)周期图矩阵。在本文中,使用时域线性滤波开发了一致的估计程序。所提出的方法通过反复的同质性测试自动选择最佳窗口宽度,以估计局部相干性。在允许最佳间隔的宽度随时间变化的意义上,它是逐点自适应的。在局部平稳过程框架下,我们针对时域带相干的Fisher-z变换开发了一个中心极限定理。我们将我们的方法应用于一对高度动态的脑电波信号,这些信号的相干性在癫痫性发作期间会演变。

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