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A new method for change-point detection developed for on-line analysis of the heart beat variability during sleep

机译:开发了一种用于在线监测睡眠期间心跳变异性的变化点检测新方法

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We present a novel scaling-dependent measure for times series analysis, the progressive detrended fluctuation analysis (PDFA). Since this method progressively includes and analyzes all data points of the time series, it is suitable for on-line change-point detection: Sudden changes in the statistics of the data points, in the type of correlation or in the statistical variance, or both, are reliably indicated and localized in time. This is first shown for numerous artificially generated data sets of Gaussian random numbers. Also time series with various non-stationarities, such as non-polynomial trends and "spiking", are included as examples. Although generally applicable, our method was specifically developed as a tool for numerical sleep evaluation based on heart rate variability in the ECG-channel of polysomnographic whole night recordings. It is demonstrated that PDFA can detect specific sleep stage transitions, typically ascending transitions involving sympathetic activation as for example short episodes of wakefulness, and that the method is capable to discern between NREM sleep and REM sleep. (C) 2004 Elsevier B.V. All rights reserved.
机译:我们为时间序列分析,渐进式去趋势波动分析(PDFA)提供了一种新颖的缩放比例度量。由于此方法逐渐包括并分析了时间序列的所有数据点,因此它适合进行在线更改点检测:数据点统计的突然变化,相关性或统计方差或两者都发生可靠地指示并及时定位。首先针对大量人工生成的高斯随机数数据集进行了显示。作为示例,还包括具有各种非平稳性的时间序列,例如非多项式趋势和“峰值”。尽管普遍适用,但我们的方法是专门开发的,用于基于多导睡眠图整夜记录的ECG通道中心率变异性进行数字睡眠评估的工具。已经证明,PDFA可以检测特定的睡眠阶段转换,通常是涉及交感神经激活的上升转换,例如清醒的短暂发作,并且该方法能够区分NREM睡眠和REM睡眠。 (C)2004 Elsevier B.V.保留所有权利。

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