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Adaptive EMG Noise Reduction in ECG Signals Using Noise Level Approximation

机译:使用噪声电平逼近的ECG信号自适应EMG降噪

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In this paper the usage of noise level approximation for adaptive Electromyogram (EMG) noise reduction in the Electrocardiogram (ECG) signals is introduced. To achieve the adequate adaptiveness, a translation-invariant noise level approximation is employed. The approximation is done in the form of a guiding signal extracted as an estimation of the signal quality vs. EMG noise. The noise reduction framework is based on a bank of low pass filters. So, the adaptive noise reduction is achieved by selecting the appropriate filter with respect to the guiding signal aiming to obtain the best trade-off between the signal distortion caused by filtering and the signal readability. For the evaluation purposes; both real EMG and artificial noises are used. The tested ECG signals are from the MIT-BIH Arrhythmia Database Directory, while both real and artificial records of EMG noise are added and used in the evaluation process. Firstly, comparison with state of the art methods is conducted to verify the performance of the proposed approach in terms of noise cancellation while preserving the QRS complex waves. Additionally, the signal to noise ratio improvement after the adaptive noise reduction is computed and presented for the proposed method. Finally, the impact of adaptive noise reduction method on QRS complexes detection was studied. The tested signals are delineated using a state of the art method, and the QRS detection improvement for different SNR is presented.
机译:本文介绍了噪声水平近似在自适应心电图(ECG)信号中用于自适应肌电图(EMG)降噪的用途。为了获得足够的自适应性,采用了平移不变的噪声水平近似。近似以引导信号的形式完成,该引导信号被提取为信号质量对EMG噪声的估计。降噪框架基于一组低通滤波器。因此,通过针对引导信号选择适当的滤波器来实现自适应降噪,其目的是在滤波引起的信号失真与信号可读性之间获得最佳权衡。出于评估目的;实际的EMG和人工噪声都被使用。测试的ECG信号来自MIT-BIH心律失常数据库目录,同时添加了真实和人工的EMG噪声记录,并在评估过程中使用了它们。首先,与现有技术方法进行比较,以验证所提出方法在消除噪声的同时保持QRS复波的性能。另外,针对所提出的方法计算并提出了自适应降噪后的信噪比改善。最后,研究了自适应降噪方法对QRS波群检测的影响。使用最先进的方法描绘了测试信号,并提出了针对不同SNR的QRS检测改进。

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