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Efficient and robust ventricular tachycardia and fibrillation detection method for wearable cardiac health monitoring devices

机译:可穿戴式心脏健康监测装置的高效鲁棒性室速和纤颤检测方法

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In this Letter, the authors propose an efficient and robust method for automatically determining the VT and VF events in the electrocardiogram (ECG) signal. The proposed method consists of: (i) discrete cosine transform (DCT)-based noise suppression; (ii) addition of bipolar sequence of amplitudes with alternating polarity; (iii) zero-crossing rate (ZCR) estimation-based VTVF detection; and (iv) peak-to-peak interval (PPI) feature based VT/VF discrimination. The proposed method is evaluated using 18,000 episodes of different ECG arrhythmias taken from 6 PhysioNet databases. The method achieves an average sensitivity (Se) of 99.61%, specificity (Sp) of 99.96%, and overall accuracy (OA) of 99.92% in detecting VTVF and non-VTVF episodes by using a ZCR feature. Results show that the method achieves a Se of 100%, Sp of 99.70% and OA of 99.85% for discriminating VT from VF episodes using PPI features extracted from the processed signal. The robustness of the method is tested using different kinds of ECG beats and various types of noises including the baseline wanders, powerline interference and muscle artefacts. Results demonstrate that the proposed method with the ZCR, PPI features can achieve significantly better detection rates as compared with the existing methods.
机译:在这封信中,作者提出了一种有效而强大的方法,用于自动确定心电图(ECG)信号中的VT和VF事件。所提出的方法包括:(i)基于离散余弦变换(DCT)的噪声抑制; (ii)增加具有交替极性的双极性振幅序列; (iii)基于零交叉率(ZCR)估计的VTVF检测; (iv)基于峰峰值间隔(PPI)特征的VT / VF区分。使用从6个PhysioNet数据库中提取的18,000次不同的ECG心律失常评估所提出的方法。通过使用ZCR功能检测VTVF和非VTVF发作,该方法可实现平均灵敏度(Se)为99.61%,特异性(Sp)为99.96%和总体准确度(OA)为99.92%。结果表明,该方法使用从处理后的信号中提取的PPI特征,可以将VT与VF发作区分开来,获得100%Se,99.70%Sp和OA 99.85%OA。使用不同类型的ECG搏动和各种类型的噪声(包括基线漂移,电力线干扰和肌肉伪影)测试了该方法的鲁棒性。结果表明,与现有方法相比,所提出的具有ZCR,PPI功能的方法可以实现更好的检测率。

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