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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Real-Time Adaptive Apnea and Hypopnea Event Detection Methodology for Portable Sleep Apnea Monitoring Devices
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Real-Time Adaptive Apnea and Hypopnea Event Detection Methodology for Portable Sleep Apnea Monitoring Devices

机译:便携式睡眠呼吸暂停监测设备的实时自适应呼吸暂停和呼吸不足事件检测方法

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摘要

This paper presents a novel real-time adaptive sleep apnea monitoring methodology, suitable for portable devices used in home care applications. The proposed method identifies apnea/hypopnea events with the help of oronasal airflow signal and aimed to meet clinical standards in the assessment mechanism of apnea severity. It uses a strategically combined adaptive two stage classifier model to detect apnea or hypopnea events on the basis of personalized breathing patterns. For the detection of events, optimum set of time, frequency, and nonlinear measures, extracted from overlapping segments of typical 8 s were fed to support vector machine-based classifiers model to identify the possible origin of the segments, i.e., whether from normal or abnormal (apnea/hypopnea) episodes, and then the decision of the classifier model on the time sequenced successive segments have been used to detect an event. The performance of the proposed real-time algorithm is validated on clinical tests online. Average accuracies of hypopnea, apnea, and combined event detection when compared with polysomnography-based respective indices on unseen subjects during online tests were found to be 91.8%, 94.9%, and 96.5%, respectively, which are quite acceptable.
机译:本文提出了一种新颖的实时自适应睡眠呼吸暂停监测方法,适用于家庭护理应用中使用的便携式设备。所提出的方法借助口鼻气流信号识别呼吸暂停/呼吸不足事件,旨在满足呼吸暂停严重程度评估机制的临床标准。它使用策略性组合的自适应两阶段分类器模型,根据个性化的呼吸模式来检测呼吸暂停或呼吸不足事件。为了检测事件,将从典型8 s的重叠段中提取的最佳时间,频率和非线性度量集输入基于支持向量机的分类器模型,以识别段的可能来源,即从正常还是从异常(呼吸暂停/呼吸不足)发作,然后使用分类器模型对时间顺序连续段的决策来检测事件。所提出的实时算法的性能在在线临床测试中得到了验证。在在线测试期间,与基于多导睡眠图的未见受试者的各项指标相比,呼吸不足,呼吸暂停和联合事件检测的平均准确度分别为91.8%,94.9%和96.5%,这是完全可以接受的。

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