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A new algorithm for the detection of sleep apnea events in respiration signals

机译:检测呼吸信号中睡眠呼吸暂停事件的新算法

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Sleep apneas are the most common type of sleep-related breathing disorders which cause a patient to move from a good sleep into an inefficient sleep. In addition, sleep apnea widely impacts the American population and is a large cost for healthcare. Traditional detection methods of sleep apneas are complex, expensive, and invasive to most patients. Among the various physiological signals, respiration signals are relatively easy to be monitored. However, not many studies are conducted using respiration signal only, and most of the previous algorithms are insufficient to detect apnea events. In this paper, we propose a new algorithm based on only the respiration signal to detect the apnea events during sleep and conduct experiments comparing the performance of our algorithm against two apnea detection algorithms. We use 20 patients' data, all of whom have severe Apnea Hypopnea Index (AHI>30: over 30 events per hour). Our study shows that our algorithm outperforms the other two algorithms.
机译:睡眠呼吸暂停是与睡眠有关的呼吸障碍的最常见类型,可导致患者从良好的睡眠转变为低效率的睡眠。此外,睡眠呼吸暂停广泛影响美国人口,是医疗保健的高额费用。传统的睡眠呼吸暂停检测方法复杂,昂贵且对大多数患者具有侵入性。在各种生理信号中,呼吸信号相对容易被监测。然而,仅使用呼吸信号进行的研究并不多,并且大多数先前的算法不足以检测呼吸暂停事件。在本文中,我们提出了一种仅基于呼吸信号的新算法来检测睡眠期间的呼吸暂停事件,并进行了实验,将我们的算法与两种呼吸暂停检测算法的性能进行了比较。我们使用20位患者的数据,所有患者均患有严重的呼吸暂停低通气指数(AHI> 30:每小时超过30个事件)。我们的研究表明,我们的算法优于其他两种算法。

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