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An Adaptive and Time-Efficient ECG R-Peak Detection Algorithm

机译:一种自适应且高效的ECG R峰值检测算法

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摘要

R-peak detection is crucial in electrocardiogram (ECG) signal analysis. This study proposed an adaptive and time-efficient R-peak detection algorithm for ECG processing. First, wavelet multiresolution analysis was applied to enhance the ECG signal representation. Then, ECG was mirrored to convert large negative R-peaks to positive ones. After that, local maximums were calculated by the first-order forward differential approach and were truncated by the amplitude and time interval thresholds to locate the R-peaks. The algorithm performances, including detection accuracy and time consumption, were tested on the MIT-BIH arrhythmia database and the QT database. Experimental results showed that the proposed algorithm achieved mean sensitivity of 99.39%, positive predictivity of 99.49%, and accuracy of 98.89% on the MIT-BIH arrhythmia database and 99.83%, 99.90%, and 99.73%, respectively, on the QT database. By processing one ECG record, the mean time consumptions were 0.872 s and 0.763 s for the MIT-BIH arrhythmia database and QT database, respectively, yielding 30.6% and 32.9% of time reduction compared to the traditional Pan-Tompkins method.
机译:R峰检测在心电图(ECG)信号分析中至关重要。这项研究提出了一种自适应且省时的R-peak检测算法,用于ECG处理。首先,应用小波多分辨率分析来增强ECG信号表示。然后,对ECG进行镜像,以将较大的负R峰转换为正R。之后,通过一阶正向微分方法计算局部最大值,并通过幅度和时间间隔阈值将其截断以定位R峰。在MIT-BIH心律失常数据库和QT数据库上测试了算法性能,包括检测准确性和时间消耗。实验结果表明,该算法在MIT-BIH心律失常数据库上的平均灵敏度为99.39%,阳性预测率为99.49%,准确性为98.89%,在QT数据库上分别为99.83%,99.90%和99.73%。通过处理一条ECG记录,MIT-BIH心律失常数据库和QT数据库的平均时间消耗分别为0.872 s和0.763 s,与传统的Pan-Tompkins方法相比,可节省30.6%和32.9%的时间。

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