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Envelopment filter and K-means for the detection of QRS waveforms in electrocardiogram

机译:包络滤波器和K均值用于检测心电图中QRS波形

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The electrocardiogram (ECG) is a well-established technique for determining the electrical activity of the heart and studying its diseases. One of the most common pieces of information that can be read from the ECG is the heart rate (HR) through the detection of its most prominent feature: the QRS complex. This paper describes an offline version and a real-time implementation of a new algorithm to determine QRS localization in the ECG signal based on its envelopment and K-means clustering algorithm. The envelopment is used to obtain a signal with only QRS complexes, deleting P, T, and U waves and baseline wander. Two moving average filters are applied to smooth data. The K-means algorithm classifies data into QRS and non-QRS. The technique is validated using 22 h of ECG data from five Physionet databases. These databases were arbitrarily selected to analyze different morphologies of QRS complexes: three stored data with cardiac pathologies, and two had data with normal heartbeats. The algorithm has a low computational load, with no decision thresholds. Furthermore, it does not require any additional parameter. Sensitivity, positive prediction and accuracy from results are over 99.7%. (C) 2015 IPEM. Published by Elsevier Ltd. All rights reserved.
机译:心电图(ECG)是一种成熟的技术,可用于确定心脏的电活动并研究其疾病。通过检测其最突出的特征:QRS复合体,可以从ECG读取的最常见信息之一就是心律(HR)。本文介绍了一种离线版本和一种新算法的实时实现,该算法基于其包络和K均值聚类算法来确定ECG信号中的QRS定位。包络用于获取仅具有QRS复数的信号,删除P,T和U波以及基线漂移。两个移动平均滤波器应用于平滑数据。 K-means算法将数据分为QRS和非QRS。使用来自五个Physionet数据库的22小时ECG数据验证了该技术。可以任意选择这些数据库来分析QRS复合体的不同形态:三个存储的数据具有心脏病理性,两个存储的数据具有正常心跳。该算法计算量低,没有决策阈值。此外,它不需要任何其他参数。结果的敏感性,阳性预测和准确性均超过99.7%。 (C)2015年IPEM。由Elsevier Ltd.出版。保留所有权利。

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