首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Resting EEG discrimination of early stage Alzheimer's disease from normal aging using inter-channel coherence network graphs.
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Resting EEG discrimination of early stage Alzheimer's disease from normal aging using inter-channel coherence network graphs.

机译:利用频道间连贯网络图,从正常老化休息早期阿尔茨海默病的EEG歧视。

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摘要

Amnestic mild cognitive impairment (MCI) is a degenerative neurological disorder at the early stage of Alzheimer's disease (AD). This work is a pilot study aimed at developing a simple scalp-EEG-based method for screening and monitoring MCI and AD. Specifically, the use of graphical analysis of inter-channel coherence of resting EEG for the detection of MCI and AD at early stages is explored. Resting EEG records from 48 age-matched subjects (mean age 75.7 years)--15 normal controls (NC), 16 with early-stage MCI, and 17 with early-stage AD--are examined. Network graphs are constructed using pairwise inter-channel coherence measures for delta-theta, alpha, beta, and gamma band frequencies. Network features are computed and used in a support vector machine model to discriminate among the three groups. Leave-one-out cross-validation discrimination accuracies of 93.6% for MCI vs. NC (p < 0.0003), 93.8% for AD vs. NC (p < 0.0003), and 97.0% for MCI vs. AD (p < 0.0003) are achieved. These results suggest the potential for graphical analysis of resting EEG inter-channel coherence as an efficacious method for noninvasive screening for MCI and early AD.
机译:Amnestic Mild认知障碍(MCI)是阿尔茨海默病的早期阶段的退行性神经障碍(AD)。这项工作是一个试点研究,旨在开发一种简单的Scalp-EEG的方法,用于筛选和监控MCI和AD。具体地,探讨了在早期阶段进行休息脑电图静态脑电图的通道间连贯性的图形分析。从48岁匹配的受试者(平均年龄75.7岁) - 15个正常对照(NC),16名,早期MCI和17次恢复脑电图记录,并进行了早期广告的17次。使用Δ-θ,α,beta和伽马带频率的成对通道间相干措施构造网络图。网络功能被计算并用于支持向量机模型中以区分三个组。留出-NI-NC(P <0.0003)的93.6%的左右交叉验证精度为93.6%(P <0.0003),对于NC(P <0.0003),97.0%,MCI与AD为97.0%(P <0.0003)实现。这些结果表明,休息EEG间间连贯性的图形分析的可能性是MCI和早期广告的非侵入性筛选的有效方法。

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