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White Gaussian Noise Energy Estimation and Wavelet Multi-threshold De-noising for Heart Sound Signals

机译:心音信号的高斯白噪声能量估计和小波多阈值去噪

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摘要

White Gaussian noise (WGN) commonly exists in acquisition and transmission of heart sound (HS) signals. The energy distributions of WGN and HS in wavelet decomposition levels (WDLs) are explored. The statistical analysis indicates that for WGN, energy proportions of detail portions of WDLs and energy proportion of the 2nd WDL are fixed. This finding is verified by using Monte Carlo test. Moreover, for a HS signal recorded under sampling frequency of 4 kHz, energies of the 1st and 2nd WDL are almost the same, which are validated by theoretical analysis and practical observation on three HS benchmark datasets. Based on these findings, equations estimating WGN energy and signal to noise ratio (SNR) for a noisy HS signal are created. In addition, a novel energy distribution-based wavelet multi-threshold de-noising approach (ED-WMTD) is proposed to reduce WGN. In which, firstly based on the energy distribution in WDLs and estimated energy of WGN, WGN energy in detail portion of each WDL is figured out. Then, soft-threshold method is adopted. The best threshold in a WDL is defined as the one by which the energy loss of noisy HS signal in this WDL is most similar to the energy of WGN in detail portion of this WDL. The accuracy of such a WGN energy estimation method is evaluated by average error of SNR estimation. ED-WMTD is assessed using mean square error and compared with four generally used WMTD methods. Experimental results show that this novel HS de-noising approach not only filters out HS noise effectively but also well retains its pathological information.
机译:高斯白噪声(WGN)通常存在于心音(HS)信号的采集和传输中。探索了小波分解能级(WDLs)中WGN和HS的能量分布。统计分析表明,对于WGN,WDL细节部分的能量比例和第二WDL的能量比例是固定的。通过使用蒙特卡洛检验验证了这一发现。此外,对于以4 kHz采样频率记录的HS信号,第一和第二WDL的能量几乎相同,这通过对三个HS基准数据集的理论分析和实际观察得到验证。基于这些发现,可以创建方程式来估算嘈杂的HS信号的WGN能量和信噪比(SNR)。此外,提出了一种新颖的基于能量分布的小波多阈值降噪方法(ED-WMTD)来降低WGN。其中,首先根据WDL中的能量分布和WGN的估计能量,找出每个WDL的WGN详细能量部分。然后,采用软阈值方法。 WDL中的最佳阈值定义为该WDL中的嘈杂HS信号的能量损失与该WDL详细部分中的WGN能量最相似的阈值。通过SNR估计的平均误差来评估这种WGN能量估计方法的准确性。使用均方误差评估ED-WMTD,并与四种常用的WMTD方法进行比较。实验结果表明,这种新颖的HS降噪方法不仅可以有效滤除HS噪声,而且可以很好地保留其病理信息。

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