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Normal Probability Testing of Snore Signals for Diagnosis of Obstructive Sleep Apnea

机译:诊断阻塞性睡眠呼吸暂停诊断的正常概率试验

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Obstructive Sleep Apnea (OSA) is a highly prevalent disease in which upper airways are collapsed during sleep, leading to serious consequences. The standard method of OSA diagnosis is known as Polysomnography (PSG), which requires an overnight stay in a specifically equipped facility, connected to over 15 channels of measurements. PSG requires (i) contact instrumentation and, (ii) the expert human scoring of a vast amount of data based on subjective criteria. PSG is expensive, time consuming and is difficult to use in community screening or pediatric assessment. Snoring is the most common symptom of OSA. Despite the vast potential, however, it is not currently used in the clinical diagnosis of OSA. In this paper, we propose a novel method of snore signal analysis for the diagnosis of OSA. The method is based on a novel feature that quantifies the non-Gaussianity of individual episodes of snoring. The proposed method was evaluated using overnight clinical snore sound recordings of 86 subjects. The recordings were made concurrently with routine PSG, which was used to establish the ground truth via standard clinical diagnostic procedures. The results indicated that the developed method has a detectability accuracy of 97.34 %.
机译:阻塞性睡眠呼吸暂停(OSA)是一种高度普遍的疾病,其中在睡眠期间,上呼吸道坍塌,导致严重后果。 OSA诊断的标准方法称为多面体摄影(PSG),该方法需要在特定装备的设施中保持过夜,连接到超过15个测量通道。 PSG要求(i)联系仪表,(ii)基于主观标准的大量数据的专家人为评分。 PSG是昂贵的,耗时的耗时,并且难以在社区筛查或儿科评估中使用。打鼾是OSA最常见的症状。然而,尽管存在巨大的潜力,目前尚未用于OSA的临床诊断。在本文中,我们提出了一种新的令人诊断OSA的阵列信号分析方法。该方法基于新颖的特征,这些功能量化了单个打鼾的单个发作的非高斯。通过86个受试者的过夜临床剧集录音来评估所提出的方法。录音与常规PSG同时进行,用于通过标准的临床诊断程序建立地面真理。结果表明,开发方法具有97.34%的可检测性精度。

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