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Usefulness of Adaptive Correlation Filter for Detecting QRS Waves from Noisy Electrocardiograms

机译:自适应相关滤波器检测QRS波从嘈杂的心电图中的用途

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摘要

Electrocardiogram (ECG) is the most successful physiological signal that is measured continuously in freely moving humans for a long time and R-R intervals obtained from ECG is the standard measure for analyzing heart rate variability. However, ECG signals under daily activities often contain various noises, including those caused by theoretically inevitable sources, such as electromyograms and cardiac axial fluctuations with respiration and postural changes. As the result, even automated ECG analyzers used for clinical purposes still require the careful editing and corrections of QRS detections errors by skilled operators, which causes both economical and time consuming burden. Given the recent wide-spread of wearable ECG monitoring and its potentially life-long longitudinal data collections, the development of highly reliable QRS wave detection algorithms has become increasingly important. Therefore, this study focused on improving QRS detection accuracy in electrocardiogram with noise mixed, focusing on the usefulness of adaptive correlation filter.
机译:心电图(ECG)是最成功的生理信号,其在自由移动人类中连续测量,长时间,从ECG获得的R-R间隔是分析心率变异性的标准措施。然而,日常活动中的ECG信号通常包含各种噪声,包括由理论上不可避免的来源引起的那些,例如呼吸和姿势变化的电灰度和心脏轴向波动。结果,甚至用于临床目的的自动化ECG分析仪仍然需要熟练的操作员对QRS检测误差的仔细编辑和校正,这导致经济和耗时的负担。鉴于近期可穿戴ECG监测的广泛传播及其潜在的寿命长度数据收集,高度可靠的QRS波检测算法的发展变得越来越重要。因此,该研究专注于通过混合噪声提高心电图中的QRS检测精度,专注于自适应相关滤波器的有用性。

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