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An efficient system for the detection of arrhythmic segments in ECG recordings based on non-linear features of the RR interval signal

机译:基于RR间隔信号的非线性特征的有效心电图记录心律失常段检测系统

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In this paper we explore the RR interval signal to detect arrhythmic segments in electrocardiograms (ECG) using non-linear analysis. Initially, the RR interval signal is extracted and it is segmented into small segments. Linear (standard deviation), spectral (total energy) and non-linear (approximated entropy and normalized entropy) characteristics are extracted for each segment. Time-frequency analysis is used for the calculation of the total energy. These characteristics are fed into a neural network to classify each segment as normal or arrhythmic. The proposed approach is validated using the MIT-BIH database for various segment sizes (32, 64, 128, 256 and 512 RR intervals). The method results in high sensitivity and specificity (85% sensitivity and 92% specificity) for arrhythmic segment detection.
机译:在本文中,我们探索了RR间隔信号,以使用非线性分析检测心电图(ECG)中的心律失常段。最初,提取RR间隔信号并将其分段为小段。为每个段提取线性(标准偏差),光谱(总能量)和非线性(近似熵和归一化熵)特征。时频分析用于计算总能量。这些特征被馈入神经网络以将每个节段分类为正常或心律不齐。使用MIT-BIH数据库针对各种段大小(32、64、128、256和512 RR间隔)验证了所提出的方法。该方法对心律失常节段的检测具有很高的灵敏度和特异性(85%的灵敏度和92%的特异性)。

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