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The baseline wandering noise removal from ECG signal using forward–backward Riemann Liouville fractional integral-based empirical wavelet transform approach

机译:基线漫游噪声从ECG信号使用前后瑞马沿后的黎曼刘维尔分数积分的经验小波变换方法

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摘要

The electrocardiogram (ECG) non-invasively monitors the electrical activities of the heart to diagnose the heart-related diseases. The baseline wandering noise affects the diagnosis of the heart diseases. In this paper, the baseline wandering noise removal is done using forward–backward Riemann Liouville (RL) fractional integral-based empirical wavelet transform (EWT) approach. In the designed methodology, firstly, the noisy ECG signal is decomposed into various modes from low to high frequencies. Then, the first mode is processed to remove the baseline wandering noise. The processed EWT mode is filtered by the fractional RL filter used in the forward direction and then in the backward direction for removing the baseline wandering noise from the ECG signal. After that, the processed and the unprocessed modes are used to reconstruct the denoised ECG signal. The clean ECG signal record is taken from MIT-BIH ECG-ID database, and the baseline wandering noise record is taken from the MIT-BIH noise stress test database. The performance of the proposed approach is validated in terms of the output signal-to-noise ratio (SNRo). The comparative study has also been done between the proposed denoising approach and the existing state-of-the-art denoising algorithms. The experimental result proves the supremacy of our proposed denoising approach.
机译:心电图(ECG)非侵入性地监测心脏的电气活动,以诊断心脏相关疾病。基线徘徊噪声影响心脏病的诊断。在本文中,使用前后黎曼Liouville(RL)分数积分的经验小波变换(EWT)方法来完成基线徘徊的噪声去除。在设计的方法中,首先,嘈杂的ECG信号被分解成从低到高频的各种模式。然后,处理第一模式以去除基线徘徊噪声。处理后的EWT模式由在向前方向上使用的分数RL滤波器,然后在向后方向上过滤,以从ECG信号移除基线徘徊的噪声。之后,处理和未处理的模式用于重建去噪的ECG信号。清洁的ECG信号记录取自MIT-BIH ECG-ID数据库,并从MIT-BIH噪声应力测试数据库中获取基线徘徊的噪声记录。在输出信噪比(SNRO)方面验证了所提出的方法的性能。在拟议的去噪方法和现有的最先进的去噪算法之间也已经进行了比较研究。实验结果证明了我们提出的去噪方法的最高态度。

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