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Automatic extraction of effective rule sets for Obstructive Sleep Apnea detection for a real-time mobile monitoring system

机译:自动提取用于实时移动监控系统的阻塞性睡眠呼吸暂停检测的有效规则集

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Real-time Obstructive Sleep Apnea (OSA) detection and monitoring are important for the society in terms of improvement in citizens' health conditions and of reduction in mortality and healthcare costs. This paper proposes an easy, cheap, and portable approach for monitoring patients with OSA. It is based on singlechannel ECG data, and on the automatic offline extraction, from a database containing ECG information about the monitored patient, of explicit knowledge under the form of a set of IF…THEN rules containing typical parameters derived from Heart Rate Variability (HRV) analysis. This set of rules can be exploited in our realtime mobile monitoring system: ECG data is gathered by a wearable sensor and sent to a mobile device, where it is processed in real time, HRV-related parameters are computed from it, and, if their values activate some of the rules describing occurrence of OSA, an alarm is automatically produced. The approach has been tested on a well-known literature database of OSA patients. Rules are obtained which are specific for each patient. Numerical results have shown the effectiveness of the approach, and the achieved sets of rules evidence its user-friendliness. Furthermore, the method has been compared against other well-known classifiers.
机译:实时阻塞性睡眠呼吸暂停(OSA)检测和监视对于改善公民的健康状况以及降低死亡率和医疗保健成本对社会至关重要。本文提出了一种监视OSA患者的简便,廉价且可移植的方法。它基于单通道ECG数据,并从包含有关受监视患者的ECG信息的数据库中自动脱机提取,以一组IF…THEN规则的形式包含显式知识,其中IF ... THEN规则包含源自心率变异性(HRV)的典型参数) 分析。这套规则可以在我们的实时移动监控系统中使用:ECG数据由可穿戴式传感器收集并发送到移动设备,在其中进行实时处理,从中计算出与HRV相关的参数,以及值激活描述OSA发生的某些规则,将自动生成警报。该方法已经在OSA患者的知名文献数据库中进行了测试。获得针对每个患者的特定规则。数值结果表明了该方法的有效性,所获得的规则集证明了该方法的用户友好性。此外,该方法已与其他知名分类器进行了比较。

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