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Wavelet coherence model for diagnosis of Alzheimer disease.

机译:小波相干模型用于诊断阿尔茨海默氏病。

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This article presents a wavelet coherence investigation of electroencephalograph (EEG) readings acquired from patients with Alzheimer disease (AD)? and healthy controls. Pairwise electrode wavelet coherence is calculated over each frequency band (delta, theta, alpha, and beta). For comparing the synchronization fraction of 2 EEG signals, a wavelet coherence fraction is proposed which is defined as the fraction of the signal time during which the wavelet coherence value is above a certain threshold. A one-way analysis of variance test shows a set of statistically significant differences in wavelet coherence between AD and controls. The wavelet coherence method is effective for studying cortical connectivity at a high temporal resolution. Compared with other conventional AD coherence studies, this study takes into account the time-frequency changes in coherence of EEG signals and thus provides more correlational details. A set of statistically significant differences was found in the wavelet coherence among AD and controls. In particular, temporocentral regions show a significant decrease in wavelet coherence in AD in the delta band, and the parietal and central regions show significant declines in cortical connectivity with most of their neighbors in the theta and alpha bands. This research shows that wavelet coherence can be used as a powerful tool to differentiate between healthy elderly individuals and probable AD patients.
机译:本文介绍了从阿尔茨海默病(AD)患者获得的脑电图(EEG)读数的小波相干性研究。和健康的控制。在每个频带(δ,θ,α和β)上计算成对电极小波相干性。为了比较两个EEG信号的同步分数,提出了一个小波相干分数,将其定义为信号时间中小波相干值高于某个阈值的分数。方差测试的单向分析显示,AD和控件之间的小波相干性具有统计学上的显着差异。小波相干方法对于以高时间分辨率研究皮质连通性有效。与其他常规AD相干性研究相比,该研究考虑了EEG信号相干性的时频变化,因此提供了更多的相关细节。在AD和对照之间的小波相干性中发现了一组统计学上显着的差异。特别地,颞中央区域在三角洲带的AD中小波相干性显着下降,而顶叶和中央区域在θ和α波段中与大多数邻居的皮质连通性显着下降。这项研究表明,小波相干性可以用作区分健康的老年人和可能的AD患者的有力工具。

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