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A multi-feature classification approach to detect sleep apnea in an ultrasonic upper airway occlusion detector system

机译:在超声上气道阻塞检测器系统中检测睡眠呼吸暂停的多特征分类方法

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Obstructive Sleep Apnea (OSA) is the most common form of sleep disorder breathing. It is estimated that this insidious disease affects 15% of the US adult population. Current procedure of diagnosing OSA requires polysomnography (NPSG) conducted in accredited sleep laboratories and the data getting scored by certified sleep technicians, a costly process that is not readily available in all areas. Ultrasonic techniques are increasingly used in the area of medical diagnosis and treatments due to their safety and economic costs. This paper investigates a feasibility study of a multi-channel ultrasonic OSA detection system. The approach utilizes wavelet-based as well as temporal and spectral features extracted from multiple ultrasound waves transmitted through patient's neck during sleep. Using NPSG data as gold standard, the proposed classifier makes a preliminary decision on the data sequence by labeling epochs as normal or apneic. A Finite State Machine (FSM) is employed to update the classified labels for a more robust detection. Experimental results on three sleep disordered patients suggest that it may be feasible to consider the proposed approach for an ultrasound based detection system.
机译:阻塞性睡眠呼吸暂停(OSA)是睡眠障碍呼吸的最常见形式。据估计,这种隐性疾病影响了美国成年人口的15%。当前诊断OSA的程序需要在授权的睡眠实验室中进行多导睡眠监测(NPSG),并且要由经过认证的睡眠技术人员对数据进行评分,这是一个昂贵的过程,并非在所有领域都容易获得。由于其安全性和经济成本,超声波技术越来越多地用于医学诊断和治疗领域。本文研究了多通道超声OSA检测系统的可行性研究。该方法利用了基于小波的以及从睡眠期间通过患者颈部传输的多个超声波中提取的时间和频谱特征。拟议的分类器使用NPSG数据作为黄金标准,通过将历元标记为正常或呼吸暂停来对数据序列做出初步决定。有限状态机(FSM)用于更新分类标签,以实现更可靠的检测。对三名睡眠障碍患者的实验结果表明,考虑将建议的方法用于基于超声的检测系统可能是可行的。

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