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Semi-automated detection of polysomnographic REM sleep without atonia (RSWA) in REM sleep behavioral disorder

机译:半自动检测REM睡眠行为障碍患者的多导睡眠图快速眼动睡眠而无失语症(RSWA)

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We aimed at evaluating semi-automatic detection and quantification of polysomnographic REM sleep without atonia (RSWA). As basic requirements, we defined lower time demand, the possibility of comparison of several evaluations and ease of examination for neurologists. We focused on well-known primary processing of surface electromyographic signals and selected recordings that were free of technical artifacts that could compromise automated signal detection. Thus we created a comprehensive method consisting of several modules (data preprocessing, signal filtration, envelopes creation, detection of ECG QRS complexes, iterative RSWA detection, detection evaluation and interactive visualization).The original dataset consisted of 7 individual polysomnography (PSG) recordings of individual human adult subjects with REM sleep behavior disorder (RBD). RSWA detection was performed with three different methods for envelope creation (envelope by moving average filter, envelope by Savitzky-Golay filtration and peaks interpolation). Best RSWA detection was achieved using the envelope by moving average filter (average precision 64.24 +/- 12.34% and recall 91.63 +/- 10.07%). The lowest precision was 42.86% with 100% recall. (C) 2019 Published by Elsevier Ltd.
机译:我们的目标是评估多自动睡眠描记法快速睡眠检测的半自动检测和定量(无心律失常)(RSWA)。作为基本要求,我们定义了较低的时间需求,比较多个评估结果的可能性以及神经科医师易于检查的条件。我们专注于表面肌电信号的众所周知的主要处理过程,并选择了没有技术伪影的录音,这些伪影可能会影响自动信号检测。因此,我们创建了一个由多个模块组成的综合方法(数据预处理,信号过滤,包络创建,ECG QRS复合物检测,RSWA迭代迭代,检测评估和交互式可视化)。原始数据集由7个独立的多导睡眠图(PSG)记录组成患有REM睡眠行为障碍(RBD)的单个成年人。使用三种不同的包络创建方法(通过移动平均滤波器包络,通过Savitzky-Golay过滤包络和峰插值)执行RSWA检测。使用移动平均滤波器使用包络可以实现最佳的RSWA检测(平均精度为64.24 +/- 12.34%,召回率为91.63 +/- 10.07%)。最低的准确度是42.86%,召回率是100%。 (C)2019由Elsevier Ltd.发布

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