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Neonatal Seizure Detection and Localization using Time-Frequency Analysis of Multichannel EEG

机译:新生儿癫痫发作检测和定位利用多渠道脑电图的时频分析

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摘要

Contrarily to adults and older children, the clinical signs of seizure in newborns are either subtle or occult. For this reason, the electroencephalogram (EEG) has been the most dependable tool used for detecting seizures in newborns. Given nonstationary and multicomponent EEG signals, time-frequency (TF) based methods were found to be very suitable for the analysis of such signals. The TF domain techniques are utilized to extract TF signatures that are characteristic of EEG seizures. In this paper, multichannel EEG signals are processed using a TF matched filter to detect and to geometrically localize neonatal EEG seizures. The threshold used to distinguish between seizure and non-seizure is data-dependent and is set using the EEG background. Multichannel geometrical correlation, based on a concept of incidence matrix, was utilized to further enhance the performance of the detector.
机译:与成年人和年龄较大的孩子相反,新生儿癫痫发作的临床症状是微妙的或神秘的。因此,脑电图(EEG)是用于检测新生儿癫痫发作的最可靠的工具。给定非间断和多组分EEG信号,发现基于时间频率(TF)的方法非常适合于分析这种信号。 TF域技术用于提取eEG癫痫发作的特征的TF签名。在本文中,使用TF匹配滤波器处理多声道EEG信号,以检测和几何本地化新生儿EEG癫痫发作。用于区分癫痫发作和非癫痫发作的阈值是数据相关的,并使用EEG背景设置。基于入射矩阵概念的多通道几何相关性用于进一步增强检测器的性能。

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