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An empirical EEG analysis in brain death diagnosis for adults

机译:成人脑死亡诊断的经验性脑电图分析

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Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparing other tests such as the apnea) or preventing mistaken diagnosis. The objective of this paper is to study several statistical methods for quantitative EEG analysis in order to help bedside or ambulatory monitoring or diagnosis. We apply signal processing and quantitative statistical analysis for the EEG recordings of 32 adult patients. For EEG signal processing, independent component analysis (ICA) was applied to separate the independent source components, followed by Fourier and time-frequency analysis. For quantitative EEG analysis, we apply several statistical complexity measures to the EEG signals and evaluate the differences between two groups of patients: the subjects in deep coma, and the subjects who were categorized as brain death. We report statistically significant differences of quantitative statistics with real-life EEG recordings in such a clinical study, and we also present interpretation and discussions on the preliminary experimental results.
机译:脑电图(EEG)通常在临床实践中用于脑死亡诊断的确证测试中。由于脑电图记录和监视对于深部昏迷患者相对安全,因此被认为对于降低脑死亡诊断的风险(在比较其他测试(如呼吸暂停)时)或防止错误诊断具有价值。本文的目的是研究定量脑电图分析的几种统计方法,以帮助床边或门诊监测或诊断。我们对32名成人患者的EEG记录进行信号处理和定量统计分析。对于EEG信号处理,应用独立成分分析(ICA)分离独立的源成分,然后进行傅立叶分析和时频分析。对于定量EEG分析,我们对EEG信号应用了几种统计复杂性度量,并评估了两组患者之间的差异:深昏迷的受试者和被归类为脑死亡的受试者。在这样的临床研究中,我们报告了现实生活中的脑电图记录的定量统计在统计学上的显着差异,并且我们还提供了关于初步实验结果的解释和讨论。

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