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A powerful novel method for ECG signal de-noising using different thresholding and Dual Tree Complex Wavelet Transform

机译:一种使用不同阈值和对偶树复小波变换的强大的新颖ECG信号降噪方法

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In this research, we proposed a new method for noise removal based on Dual Tree Complex Wavelet Transform (DTCWT) in order to maintain diagnostic information for ECG. DTCWT provides significant different levels of information about the nature of the data in terms of time and frequency. It also fights the problem of discrete wavelet transforms (DWT) variance. Signal Energy Contribution Efficiency (ECE) and Kurtosis in wavelet sub-bands is important to evaluate the noise content. Accordingly, a noise removal factor is provided. The proposed method is presented using these factors at baseline levels and Donoho threshold in other remaining levels. The performance of proposed method was evaluated and compared with other methods. Filtered signal quality was analyzed using the percentage root mean square difference (PRD), signal to noise (SNR) and mean square error (MSE) criteria. It is observed that the proposed method not only filters the signal better than the most prominent methods, but also effectively helps to maintain diagnostic information.
机译:在这项研究中,我们提出了一种基于双树复数小波变换(DTCWT)的噪声消除新方法,以维护ECG的诊断信息。 DTCWT在时间和频率方面提供了有关数据性质的显着不同级别的信息。它还解决了离散小波变换(DWT)方差的问题。小波子带中的信号能量贡献效率(ECE)和峰度对评估噪声含量很重要。因此,提供了噪声去除因子。在基线水平使用这些因素提出建议的方法,而在其他剩余水平使用这些因素提出提出的方法。对所提方法的性能进行了评估,并与其他方法进行了比较。使用百分比均方根差(PRD),信噪比(SNR)和均方差(MSE)标准分析滤波后的信号质量。可以看出,所提出的方法不仅比最突出的方法对信号的滤波效果更好,而且还有效地帮助维护了诊断信息。

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