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Discriminating early stage AD patients from healthy controls using synchronization analysis of EEG

机译:利用脑电图的同步分析,区分早期的AD患者免疫治疗患者

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In this paper we study how the meso-scale and micro-scale electroencephalography (EEG) synchronization measures can be used for discriminating patients suffering from Alzheimer's disease (AD) from normal control subjects. To this end, two synchronization measures, namely power spectral density and multivariate phase synchronization, are considered and the topography of the changes in patients vs. Controls is shown. The AD patients showed increased power spectral density in the frontal area in theta band and widespread decrease in the higher frequency bands. It was also characterized with decreased multivariate phase synchronization in the left fronto-temporal and medial regions, which was consistent across all frequency bands. A region of interest was selected based on these maps and the average of the power spectral density and phase synchrony was obtained in these regions. These two quantities were then used as features for classification of the subjects into patients' and controls' groups. Our analysis showed that the theta band can be a marker for discriminating AD patients from normal controls, where a simple linear discriminant resulted in 83% classification precision.
机译:在本文中,我们研究了中间尺度和微观型脑电图(EEG)同步措施如何用于鉴别患有阿尔茨海默病(AD)的患者从正常对照受试者中辨别患者。为此,考虑了两个同步措施,即功率谱密度和多变量相位同步,并显示了患者变化的形貌。 AD患者在θ带中的正面区域中显示出增加的功率谱密度,并且较高频带的广泛降低。它的特征还具有在左前端和内侧区域中的多变量相位同步降低,其在所有频带上一致。基于这些地图选择感兴趣区域,并且在这些区域中获得了功率谱密度和相位同步的平均值。然后将这两种量用作对患者和控制群体的受试者分类的特征。我们的分析表明,Theta带可以是用于鉴别正常对照的AD患者的标记,其中简单的线性判别率为83%的分类精度。

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