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Automatic detection of sleep apnea and hypopnea events from single channel measurement of respiration signal employing ensemble binary SVM classifiers

机译:使用集成二进制SVM分类器从呼吸信号的单通道测量中自动检测睡眠呼吸暂停和呼吸不足事件

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摘要

This paper presents a novel method for automatic detection of apnea and hypopnea events as well as mean duration of events from the recording of single channel oronasal airflow signal, moreover the automated algorithm has been implemented with PC based low cost Data Acquisition System (DAS). The method divides the respiration signal into overlapping segments of typical 8 s duration and then categorize the segments with the help of ensemble binary Support Vector Machine (SVM) classifiers, according to the origin of the segments, i.e. 'N' if the segment originates from normal respiration signal during sleep, 'A' if it originates from apnea and 'H' for hypopnea event related breathing signal. Finally, it uses a heuristically derived rule based system to identify the apnea or hypopnea events by combining the time sequenced decisions of the classifiers. Automatic identification of events helps to provide the direct estimation of Apnea Hypopnea Index (AHI) and thus severity. The overall correlation coefficients between the automatic model predicted indexes and the PSG based manual indexes were 0.970, 0.986 and 0.982 for HI, AI, and AHI respectively.
机译:本文提出了一种从单通道口鼻气流信号的记录中自动检测呼吸暂停和呼吸不足事件以及事件平均持续时间的新方法,此外,该自动化算法已通过基于PC的低成本数据采集系统(DAS)实现。该方法将呼吸信号划分为典型的8 s持续时间的重叠段,然后根据段的来源,通过集合二进制支持向量机(SVM)分类器对这些段进行分类,如果段源自于,则为“ N”睡眠期间的正常呼吸信号,“ A”(如果其源自呼吸暂停)和“ H”(与呼吸不足事件相关的呼吸信号)。最后,它通过结合分类器的时间顺序决策,使用基于启发式规则的系统来识别呼吸暂停或呼吸不足事件。事件的自动识别有助于直接估计呼吸暂停低通气指数(AHI),从而确定严重程度。 HI,AI和AHI的自动模型预测指标与基于PSG的人工指标之间的整体相关系数分别为0.970、0.986和0.982。

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