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Genetic algorithm and wavelet hybrid scheme for ECG signal denoising

机译:遗传算法和小波混合方案的心电信号去噪

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摘要

This paper introduces an effective hybrid scheme for the denoising of electrocardiogram (ECG) signals corrupted by non-stationary noises using genetic algorithm (GA) and wavelet transform (WT). We first applied a wavelet denoising in noise reduction of multi-channel high resolution ECG signals. In particular, the influence of the selection of wavelet function and the choice of decomposition level on efficiency of denoising process was considered. Selection of a suitable wavelet denoising parameters is critical for the success of ECG signal filtration in wavelet domain. Therefore, in our noise elimination method the genetic algorithm has been used to select the optimal wavelet denoising parameters which lead to maximize the filtration performance. The efficiency performance of our scheme is evaluated using percentage root mean square difference (PRD) and signal to noise ratio (SNR). The experimental results show that the introduced hybrid scheme using GA has obtain better performance than the other reported wavelet thresholding algorithms as well as the quality of the denoising ECG signal is more suitable for the clinical diagnosis.
机译:本文介绍了一种有效的混合方案,利用遗传算法(GA)和小波变换(WT)对被非平稳噪声破坏的心电图(ECG)信号进行去噪。我们首先将小波去噪应用于多通道高分辨率ECG信号的降噪。特别地,考虑了小波函数的选择和分解水平的选择对去噪处理效率的影响。选择合适的小波降噪参数对于小波域中ECG信号过滤的成功至关重要。因此,在我们的噪声消除方法中,已经使用遗传算法来选择最佳小波降噪参数,从而使滤波性能最大化。使用百分比均方根差(PRD)和信噪比(SNR)来评估我们方案的效率性能。实验结果表明,引入遗传算法的混合遗传算法比其他报道的小波阈值算法具有更好的性能,去噪心电信号的质量更适合于临床诊断。

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