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EEG Synchrony Analysis for Early Diagnosis of Alzheimer's Disease: A Study with Several Synchrony Measures and EEG Data Sets

机译:EEG同步分析Alzheimer疾病的早期诊断:几种同步措施和脑电图数据集的研究

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It has frequently been reported in the medical literature that the EEG of Alzheimer disease (AD) patients is less synchronous than in healthy subjects. In this paper, it is explored whether loss in EEG synchrony can be used to diagnose AD at an early stage. Multiple synchrony measures are applied to two different EEG data sets: (1) EEG of pre-dementia patients and control subjects; (2) EEG of mild AD patients and control subjects; the two data sets are from different patients, different hospitals, and obtained through different recording systems. It is observed that both Granger causality and stochastic event synchrony indicate statistically significant loss of EEG synchrony, for the two data sets; those two synchrony measures are then combined as features in linear and quadratic discriminant analysis (with crossvalidation), yielding classification rates of 83% and 88% for the pre-dementia data set and mild AD data set respectively. These results suggest that loss in EEG synchrony is indicative for early AD.
机译:它经常在医学文献中报道,阿尔茨海默病(AD)患者的脑梗死患者比在健康受试者中较小。在本文中,探讨了EEG同步损失是否可用于在早期阶段诊断广告。多种同步措施应用于两个不同的EEG数据集:(1)患者前患者和对照科目的脑电图; (2)轻度AD患者的脑梗死和对照科目;两种数据集来自不同的患者,不同的医院,并通过不同的记录系统获得。据观察,Ganger因果关系和随机事件同步都表明了两种数据集的统计上大量损失;然后将这两个同步措施组合为线性和二次判别分析中的特征(具有交叉验样),分别产生83%和88%的分类率,分别为痴呆症预数据集和温和的广告数据集。这些结果表明EEG同步损失是早期广告的指示。

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