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QRS Complex Detection Using Combination of Mexican-hat Wavelet and Complex Morlet Wavelet

机译:QRS复杂检测使用墨西哥帽小波和复杂的Morlet小波的组合

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摘要

—QRS complex detection is usually the most important step for automated electrocardiogram (ECG) analysis. In this paper, we present a new approach of QRS complex detection. The Mexican-hat wavelet and complex Morlet wavelet are used to transform the ECG signal, and according to the trait that the modulus maxima of the two wavelet coefficients above correspond with R peaks of ECG signal, a detector unit of R waves which is based on the jump of modulus maxima sequence in wavelet coefficient is proposed. Traditional wavelet based QRS complex detection methods employs only one kind of wavelet to perform the transformation of ECG, whereas the proposed method use two kind of wavelet at the same time, and then using the proposed detector unit in the linear combination of the two wavelet coefficients to detect R waves. In this processing, group search optimizer is introduced to get some best thresholds. Experiment results show that our QRS complex detection achieved a detection sensitive of 99.71% and positive prediction of 99.53% according to the MIT-BIH database. A combination of two wavelets is a simple and efficient way to improve the performance of wavelet based QRS complex detection methods.
机译:-QRS复杂检测通常是自动心电图(ECG)分析的最重要步骤。在本文中,我们提出了一种QRS复杂检测的新方法。墨西哥帽小波和复杂的Morlet小波用于转换ECG信号,并且根据上述两个小波系数的模量最大值对应于ECG信号的R峰,R波的R峰值是基于的提出了小波系数中模量最大序列的跳跃。基于传统的基于小波的QRS复杂的检测方法只采用一种小波来执行心电图的转换,而所提出的方法同时使用两种小波,然后在两个小波系数的线性组合中使用所提出的检测器单元检测R波。在此处理中,介绍组搜索优化器以获得一些最佳阈值。实验结果表明,根据MIT-BIH数据库,我们的QRS复杂检测可实现99.71%的检测敏感99.71%,阳性预测为99.53%。两个小波的组合是一种简单有效的方法来提高基于小波的QRS复杂检测方法的性能。

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