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基于 ECG 预处理的高效鲁棒数字分数阶微分器 QRS 检测设计

An Efficient and Robust Digital Fractional Order Differentiator Based ECG Pre-Processor Design for QRS Detection.

出版信息

IEEE Trans Biomed Circuits Syst. 2019 Aug;13(4):682-696. doi: 10.1109/TBCAS.2019.2916676. Epub 2019 May 13.

Abstract

This paper presents an efficient infinite impulse response type digital fractional order differentiator (DFOD) based electrocardiogram (ECG) pre-processor to detect QRS complexes. First, an efficient optimizer namely, Antlion optimization algorithm is employed to solve the proposed DFOD design problem. Then, the designed DFOD is deployed in the pre-processing stage of a threshold independent R-peak detection technique. Finally, the proposed QRS complex detector is thoroughly assessed on the standard ECG datasets of MIT/BIH Arrhythmia, MIT/BIH ST Change, MIT/BIH Supraventricular Arrhythmia, European ST-T, QT, and T-Wave Alternans Challenge databases to show the wide sense practicability of the proposed DFOD-based QRS detector. The root-means-square magnitude error (RMSME) and the average group delay (τ) metrics of the proposed DFOD are as low as -38.17 dB and 0.04 samples, respectively. The percentage of improvement in terms of RMSME metric compared to the best-reported approach is 15%. The overall sensitivity of 99.89% and positive predictivity of 99.88% are incurred by considering all the six databases. To the best of the authors' knowledge, it is the first time when the evolutionary algorithm based IIR-type DFOD is employed for the QRS complex detection and establishing its performance superiority. The results so obtained are compared with the results of all the recently reported QRS detectors. The proposed DFOD based ECG pre-processor has a great potential to robustly generate the feature signal related to the ECG QRS complex irrespective of the ECG morphology. Thus, the proposed DFOD based QRS detector can be employed in clinical ECG monitoring devices to augment the QRS detection performance.

摘要

本文提出了一种基于无限脉冲响应数字分数阶微分器 (DFOD) 的高效心电图 (ECG) 预处理方法,用于检测 QRS 波群。首先,采用一种高效的优化器,即蚁狮优化算法,来解决所提出的 DFOD 设计问题。然后,将设计的 DFOD 部署在一个阈值独立的 R 波检测技术的预处理阶段。最后,在 MIT/BIH 心律失常、MIT/BIH ST 变化、MIT/BIH 室上性心律失常、欧洲 ST-T、QT 和 T 波交替挑战数据库的标准 ECG 数据集上对所提出的 QRS 复合波检测器进行了全面评估,以展示所提出的基于 DFOD 的 QRS 检测器的广泛实用性。所提出的 DFOD 的均方根幅度误差 (RMSME) 和平均群延迟 (τ) 分别低至-38.17 dB 和 0.04 个样本。与最佳报道方法相比,RMSME 指标的改进幅度为 15%。考虑到所有六个数据库,整体灵敏度为 99.89%,阳性预测率为 99.88%。据作者所知,这是首次将基于进化算法的 IIR 型 DFOD 用于 QRS 复合波检测并建立其性能优势。所得到的结果与所有最近报道的 QRS 检测器的结果进行了比较。所提出的基于 DFOD 的 ECG 预处理器具有很大的潜力,可以在不考虑 ECG 形态的情况下,稳健地产生与 ECG QRS 复合波相关的特征信号。因此,所提出的基于 DFOD 的 QRS 检测器可以应用于临床 ECG 监测设备中,以提高 QRS 检测性能。

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