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Regularity analysis of nocturnal oximetry recordings to assist in the diagnosis of sleep apnoea syndrome

机译:夜间血氧定量记录的规律性分析,以协助诊断睡眠呼吸暂停综合症

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The relationship between sleep apnoea-hypopnoea syndrome (SAHS) severity and the regularity of nocturnal oxygen saturation (SaO(2)) recordings was analysed. Three different methods were proposed to quantify regularity: approximate entropy (AEn), sample entropy (SEn) and kernel entropy (KEn). A total of 240 subjects suspected of suffering from SAHS took part in the study. They were randomly divided into a training set (96 subjects) and a test set (144 subjects) for the adjustment and assessment of the proposed methods, respectively. According to the measurements provided by AEn, SEn and KEn, higher irregularity of oximetry signals is associated with SAHS-positive patients. Receiver operating characteristic (ROC) and Pearson correlation analyses showed that KEn was the most reliable predictor of SAHS. It provided an area under the ROC curve of 0.91 in two-class classification of subjects as SAHS-negative or SAHS-positive. Moreover, KEn measurements from oximetry data exhibited a linear dependence on the apnoea-hypopnoea index, as shown by a correlation coefficient of 0.87. Therefore, these measurements could be used for the development of simplified diagnostic techniques in order to reduce the demand for polysomnographies. Furthermore, KEn represents a convincing alternative to AEn and SEn for the diagnostic analysis of noisy biomedical signals. (C) 2015 IPEM. Published by Elsevier Ltd. All rights reserved.
机译:分析了睡眠呼吸暂停低通气综合征(SAHS)严重程度与夜间血氧饱和度(SaO(2))记录的规律性之间的关系。提出了三种不同的量化规则性的方法:近似熵(AEn),样本熵(SEn)和核熵(KEn)。共有240名怀疑患有SAHS的受试者参加了这项研究。将他们随机分为训练集(96个受试者)和测试集(144个受试者),分别用于调整和评估所提出的方法。根据AEn,SEn和KEn提供的测量结果,SAHS阳性患者的血氧饱和度信号异常较高。接收机工作特性(ROC)和Pearson相关分析表明,KEn是SAHS的最可靠预测指标。在两类SASA阴性或SAHS阳性的受试者分类中,ROC曲线下的面积为0.91。此外,根据血氧饱和度数据的KEn测量值显示出对呼吸暂停-呼吸不足指数的线性依赖性,如相关系数0.87所示。因此,这些测量可用于简化诊断技术的开发,以减少对多导睡眠监测仪的需求。此外,对于嘈杂的生物医学信号的诊断分析,KEn代表了AEn和SEn的令人信服的替代方案。 (C)2015年IPEM。由Elsevier Ltd.出版。保留所有权利。

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