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Detection of sleep apnea from multiparameter monitor signals using empirical mode decomposition

机译:使用经验模式分解从多参数监护仪信号中检测睡眠呼吸暂停

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For diagnosing obstructive sleep apnea (OSA), polysomnography (PSG) is used. Use of PSG is gold standard for detection of sleep apnea. This research is basically aimed at detection of sleep apnea from more commonly available physiological signals such as electrocardiogram (ECG) and photoplethysmographic (PPG) signals in any simple bedside multiparameter monitors. Respiratory activity extracted from ECG and PPG signals is used for the detection of apnea episodes. This process is useful in situations when recording of PSG is not possible or as a preliminary screening test of possible OSA in patients. In the present work ECG-derived respiration (EDR) and PPG derived respiration (PDR) signals, obtained using empirical mode decomposition (EMD) method, and are used to detect OSA episodes. Signals from MIMIC database were used for experimentation. The test results have revealed that the proposed method has efficiently extracted respiratory information from ECG and PPG signals for detection of obstructive sleep apnea syndrome (OSAS). The similarity parameters computed in both time and frequency domains have confirmed the same. High sensitivity and positive predictivity levels have revealed high degree of correctness.
机译:为了诊断阻塞性睡眠呼吸暂停(OSA),使用了多导睡眠图(PSG)。 PSG的使用是检测睡眠呼吸暂停的金标准。这项研究的主要目的是在任何简单的床头多参数监护仪中,从更常见的生理信号(例如心电图(ECG)和光体积描记图(PPG)信号)中检测睡眠呼吸暂停。从ECG和PPG信号中提取的呼吸活动用于检测呼吸暂停发作。此过程在无法记录PSG的情况下或作为患者可能的OSA的初步筛查测试时非常有用。在本工作中,使用经验模式分解(EMD)方法获得的ECG派生呼吸(EDR)和PPG派生呼吸(PDR)信号被用于检测OSA发作。来自MIMIC数据库的信号用于实验。测试结果表明,该方法已从ECG和PPG信号中有效提取了呼吸信息,以检测阻塞性睡眠呼吸暂停综合症(OSAS)。在时域和频域中计算出的相似性参数已确认相同。高灵敏度和积极的预测性水平显示出高度的正确性。

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