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Spindles in Svarog: framework and software for parametrization of EEG transients

机译:Svarog中的主轴:EEG瞬变参数化的框架和软件

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摘要

We present a complete framework for time-frequency parametrization of EEG transients, based upon matching pursuit (MP) decomposition, applied to the detection of sleep spindles. Ranges of spindles duration (>0.5 s) and frequency (11–16 Hz) are taken directly from their standard definitions. Minimal amplitude is computed from the distribution of the root mean square (RMS) amplitude of the signal within the frequency band of sleep spindles. Detection algorithm depends on the choice of just one free parameter, which is a percentile of this distribution. Performance of detection is assessed on the first cohort/second subset of the Montreal Archive of Sleep Studies (MASS-C1/SS2). Cross-validation performed on the 19 available overnight recordings returned the optimal percentile of the RMS distribution close to 97 in most cases, and the following overall performance measures: sensitivity 0.63 ± 0.06, positive predictive value 0.47 ± 0.08, and Matthews coefficient of correlation 0.51 ± 0.04. These concordances are similar to the results achieved on this database by other automatic methods. Proposed detailed parametrization of sleep spindles within a universal framework, encompassing also other EEG transients, opens new possibilities of high resolution investigation of their relations and detailed characteristics. MP decomposition, selection of relevant structures, and simple creation of EEG profiles used previously for assessment of brain activity of patients in disorders of consciousness are implemented in a freely available software package Svarog (Signal Viewer, Analyzer and Recorder On GPL) with user-friendly, mouse-driven interface for review and analysis of EEG. Svarog can be downloaded from .
机译:我们提出了一个完整的框架,用于脑电瞬变的时频参数化,基于匹配追踪(MP)分解,应用于睡眠纺锤体的检测。主轴持续时间(> 0.5 s)和频率(11–16 Hz)的范围直接取自其标准定义。最小振幅是根据睡眠纺锤的频带内信号的均方根(RMS)振幅的分布来计算的。检测算法仅取决于一个自由参数的选择,这是该分布的百分位数。在蒙特利尔睡眠研究档案(MASS-C1 / SS2)的第一个队列/第二个子集中评估检测性能。在大多数情况下,对19个可用的夜间记录进行的交叉验证返回的RMS分布的最佳百分位数接近97,并采用以下总体性能指标:灵敏度0.63±0.06,阳性预测值0.47±0.08和Matthews相关系数0.51 ±0.04。这些一致性类似于通过其他自动方法在该数据库上获得的结果。建议在通用框架内将睡眠纺锤进行详细的参数化,也包括其他EEG瞬变,为高分辨率研究其关系和详细特征提供了新的可能性。 MP分解,相关结构的选择以及先前用于评估意识障碍患者的大脑活动的EEG配置文件的简单创建在免费提供的Svarog软件包(Signal Viewer,Analyzer和Recorder On GPL)中实现,用户友好,鼠标驱动的界面,用于EEG的检查和分析。可以从下载Svarog。

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