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Time-frequency spectral estimation of multichannel EEG using the auto-SLEX method

机译:基于自动SLEX方法的多通道脑电图时频谱估计

摘要

In this paper, we apply a new time-frequency spectral estimation method for multichannel data to epileptiform electroencephalography (EEG). The method is based on the smooth localized complex exponentials (SLEX) functions which are time-frequency localized versions of the Fourier functions and, hence, are ideal for analyzing nonstationary signals whose spectral properties evolve over time. The SLEX functions are simultaneously orthogonal and localized in time and frequency because they are obtained by applying a projection operator rather than a window or taper. In this paper, we present the Auto-SLEX method which is a statistical method that 1) computes the periodogram using the SLEX transform, 2) automatically segments the signal into approximately stationary segments using an objective criterion that is based on log energy, and 3) automatically selects the optimal bandwidth of the spectral smoothing window. The method is applied to the intracranial EEG from a patient with temporal lobe epilepsy. This analysis reveals a reduction in average duration of stationarity in preseizure epochs of data compared to baseline. These changes begin up to hours prior to electrical seizure onset in this patient.
机译:在本文中,我们将一种新的多通道数据时频频谱估计方法应用于癫痫样脑电图(EEG)。该方法基于平滑局部复指数(SLEX)函数,该函数是傅立叶函数的时频局部版本,因​​此非常适合分析其频谱特性随时间变化的非平稳信号。 SLEX函数同时是正交的,并且在时间和频率上是局部的,因为它们是通过应用投影运算符而不是窗口或锥度获得的。在本文中,我们介绍了Auto-SLEX方法,这是一种统计方法,该方法是:1)使用SLEX变换计算周期图,2)使用基于对数能量的客观标准将信号自动分段为近似平稳的分段,以及3 )自动选择频谱平滑窗口的最佳带宽。该方法适用于颞叶癫痫患者的颅内脑电图。该分析表明,与基线相比,癫痫发作前的平均平稳期持续时间减少了。这些变化开始于该患者电性癫痫发作之前的几个小时。

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