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ECG analysis for sleep apnea detection.

机译:用于睡眠呼吸暂停检测的ECG分析。

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OBJECTIVES: The objective of our study was to find out whether obstructive sleep apnea (OSA) may be detected on ECGs recorded during sleep. METHODS: We have analyzed 70 eight-hour single-channel ECG recordings taken at polysomnographia. The 70 data sets were annotated for definition of regular sleep and phases with sleep apnea. From the 70 data sets, 35 have been used as a learning set. Our analysis is based on spectral components of heart rate variability. Frequency analysis was performed using Fourier and wavelet transformation with appropriate application of the Hilbert transform. Classification is based on four frequency bands: ULF band (0-0.013 Hz), VLF band (0.013-0.0375 Hz), LF band (0.0375-0.06 Hz) and the HF band (0.17-0.28 Hz). Linear discriminant functions were applied using mainly spectral components derived from the records. Classification of cases was based on three variables. RESULTS: For the Testing Set, a sensitivity (Se) for apnea of 92.3% at a specificity (Sp) of 94.6% was achieved. For the minutes allocation on the Learning Set Se was 90.8% at Sp 92.7%. CONCLUSION: ECG analysis is useful for the detection of sleep apnea and may help to differentiate causes of cardiac arrhythmias.
机译:目的:我们研究的目的是确定在睡眠期间记录的心电图是否可以检测到阻塞性睡眠呼吸暂停(OSA)。方法:我们分析了多导睡眠监测仪拍摄的70个八小时单通道ECG记录。注释了70个数据集,以定义常规睡眠和睡眠呼吸暂停的阶段。从70个数据集中,有35个被用作学习集。我们的分析基于心率变异性的频谱成分。频率分析是使用傅立叶和小波变换并适当应用希尔伯特变换进行的。分类基于四个频带:ULF频带(0-0.013 Hz),VLF频带(0.013-0.0375 Hz),LF频带(0.0375-0.06 Hz)和HF频带(0.17-0.28 Hz)。线性判别函数主要使用从记录中得出的光谱分量来应用。案例分类基于三个变量。结果:对于测试装置,在94.6%的特异性(Sp)下,呼吸暂停的敏感性(Se)达到92.3%。对于会议记录集,Se上的分配为Se的90.8%,Sp为92.7%。结论:心电图分析可用于检测睡眠呼吸暂停,可能有助于区分心律不齐的原因。

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