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Statistical and nonlinear analysis of oximetry from respiratory polygraphy to assist in the diagnosis of Sleep Apnea in children

机译:呼吸描记法测定血氧饱和度的统计和非线性分析,以帮助诊断儿童睡眠呼吸暂停

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Obstructive Sleep Apnea-Hypopnea Syndrome (OSAHS) is a sleep related breathing disorder that has important consequences in the health and development of infants and young children. To enhance the early detection of OSAHS, we propose a methodology based on automated analysis of nocturnal blood oxygen saturation (SpO) from respiratory polygraphy (RP) at home. A database composed of 50 SpO recordings was analyzed. Three signal processing stages were carried out: (i) feature extraction, where statistical features and nonlinear measures were computed and combined with conventional oximetric indexes, (ii) feature selection using genetic algorithms (GAs), and (iii) feature classification through logistic regression (LR). Leave-one-out cross-validation (loo-cv) was applied to assess diagnostic performance. The proposed method reached 80.8% sensitivity, 79.2% specificity, 80.0% accuracy and 0.93 area under the ROC curve (AROC), which improved the performance of single conventional indexes. Our results suggest that automated analysis of SpO recordings from at-home RP provides essential and complementary information to assist in OSAHS diagnosis in children.
机译:阻塞性睡眠呼吸暂停低通气综合症(OSAHS)是一种与睡眠有关的呼吸系统疾病,对婴幼儿的健康和发育产生重要影响。为了增强对OSAHS的早期检测,我们提出了一种基于在家中呼吸描记术(RP)对夜间血氧饱和度(SpO)进行自动分析的方法。分析了由50个SpO记录组成的数据库。进行了三个信号处理阶段:(i)特征提取,计算统计特征和非线性测量值并与常规的血氧饱和度指标结合,(ii)使用遗传算法(GA)进行特征选择,以及(iii)通过逻辑回归进行特征分类(LR)。留一法交叉验证(loo-cv)用于评估诊断性能。所提出的方法在ROC曲线(AROC)下达到了80.8%的灵敏度,79.2%的特异性,80.0%的准确度和0.93的面积,从而改善了单个常规指标的性能。我们的结果表明,从家庭RP对SpO记录进行自动分析可提供必要的补充信息,以帮助儿童进行OSAHS诊断。

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