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An Efficient QRS Complex Detection Using Optimally Designed Digital Differentiator

机译:使用优化设计的数字微分器的高效QRS复杂检测

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摘要

Heart rate variability (HRV) analysis is considered as a preliminary diagnosis method to check the cardiac health of the human heart. The reliability of the HRV analysis system solely depends on the accuracy of the QRS complex detector. Hence, in this paper, an optimally designed digital differentiator (DD) for precise detection of QRS complex is proposed. The proposed DD is designed by using an efficient evolutionary optimization technique called gases Brownian motion optimization (GBMO) algorithm and is used in the preprocessing stage of the QRS detector. In GBMO algorithm, a balanced trade-off is maintained between both the exploration and the exploitation phases to find the global optimum solution. The electrocardiogram signal is preprocessed by using the proposed DD to generate the feature signals corresponding to the R-peaks only. The detection technique utilizes the principle of Hilbert transform and zeroes crossing detection. The proposed approach is verified against all the first channel records of MIT/BIH arrhythmia database by considering the standard QRS detection performance metrics and produces a sensitivity (Se) of 99.92%, positive predictivity (+P) of 99.92%, detection error rate (DER) of 0.1562%, QRS detection rate of 99.92%, accuracy (Acc) of 99.84%, and Fscore of 0.9992%. With respect to the standard performance metrics, the proposed QRS detector outperforms all the recently reported QRS detection techniques.
机译:心率变异性(HRV)分析被认为是检查人心脏心脏健康的初步诊断方法。 HRV分析系统的可靠性仅取决于QRS复合探测器的准确性。因此,在本文中,提出了一种用于精确检测QRS波群的优化设计的数字微分器(DD)。拟议的DD是通过使用一种称为气体布朗运动优化(GBMO)算法的高效进化优化技术设计的,并用于QRS检测器的预处理阶段。在GBMO算法中,在勘探和开发阶段之间保持平衡的权衡,以找到全局最优解。心电图信号通过使用建议的DD进行预处理,以生成仅与R峰相对应的特征信号。该检测技术利用了希尔伯特变换和零交叉检测的原理。通过考虑标准QRS检测性能指标,针对MIT / BIH心律失常数据库的所有第一条通道记录验证了该方法,并产生了99.92%的灵敏度(Se),99.92%的阳性预测率(+ P),检测错误率( DER)为0.1562%,QRS检测率为99.92%,准确度(Acc)为99.84%,Fscore为0.9992%。关于标准性能指标,拟议的QRS检测器优于所有最近报告的QRS检测技术。

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