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Obstructive Sleep Apnea Screening Using a Piezo-Electric Sensor

机译:使用压电传感器进行阻塞性睡眠呼吸暂停筛查

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摘要

In this study, we propose a novel method for obstructive sleep apnea (OSA) detection using a piezo-electric sensor. OSA is a relatively common sleep disorder. However, more than 80% of OSA patients remain undiagnosed. We investigated the feasibility of OSA assessment using a single-channel physiological signal to simplify the OSA screening. We detected both snoring and heartbeat information by using a piezo-electric sensor, and snoring index (SI) and features based on pulse rate variability (PRV) analysis were extracted from the filtered piezo-electric sensor signal. A support vector machine (SVM) was used as a classifier to detect OSA events. The performance of the proposed method was evaluated on 45 patients from mild, moderate, and severe OSA groups. The method achieved a mean sensitivity, specificity, and accuracy of 72.5%, 74.2%, and 71.5%; 85.8%, 80.5%, and 80.0%; and 70.3%, 77.1%, and 71.9% for the mild, moderate, and severe groups, respectively. Finally, these results not only show the feasibility of OSA detection using a piezo-electric sensor, but also illustrate its usefulness for monitoring sleep and diagnosing OSA.
机译:在这项研究中,我们提出了一种使用压电传感器进行阻塞性睡眠呼吸暂停(OSA)检测的新方法。 OSA是一种相对常见的睡眠障碍。但是,超过80%的OSA患者仍未被诊断。我们调查了使用单通道生理信号评估OSA的可行性,以简化OSA筛查。我们通过使用压电传感器检测到打nor和心跳信息,并从滤波后的压电传感器信号中提取出打index指数(SI)和基于脉搏率变异性(PRV)分析的特征。支持向量机(SVM)被用作检测OSA事件的分类器。对来自轻度,中度和重度OSA组的45例患者评估了该方法的性能。该方法的平均灵敏度,特异性和准确性分别为72.5%,74.2%和71.5%。 85.8%,80.5%和80.0%;轻度,中度和重度组分别为70.3%,77.1%和71.9%。最后,这些结果不仅显示了使用压电传感器检测OSA的可行性,还说明了其在监测睡眠和诊断OSA中的有用性。

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