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Online filtering using piecewise smoothness priors: Application to normal and abnormal electrocardiogram denoising

机译:使用分段平滑先验进行在线过滤:应用于正常和异常心电图降噪

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In this work, a block-wise extension of Tikhonov regularization is proposed for denoising smooth signals contaminated by wide-band noise. The proposed method is derived from a constrained least squares problem in two forms: 1) a block-wise fixed-lag smoother with smooth inter-block transitions applied in matrix form, and 2) a fixed-interval smoother applied as a forward-backward zero-phase filter. The filter response is maximally flat and monotonically decreasing, without any ripples in its pass-band. The method is also extended to smoothness of multiple smoothness orders, and its relationship with Lipschitz regularity and block-wise Wiener smoothing is also studied. The denoising of normal and abnormal electrocardiogram (ECG) signals in different stationary and non-stationary noise levels is studied as case study. While most ECG denoising techniques benefit from the pseudo-periodicity of the ECG, the developed technique is merely based on the smoothness assumption, which makes it a powerful method for both normal and abnormal ECG. The performance of the method is assessed by Monte-Carlo simulations over three standard normal and abnormal ECG databases of different sampling rates, in comparison with bandpass filtering, wavelet denoising with various parameters, and Savitzky-Golay filters using Stein's unbiased risk estimate shrinkage scheme.
机译:在这项工作中,提出了Tikhonov正则化的逐块扩展,以消除被宽带噪声污染的平滑信号。所提出的方法是从约束最小二乘问题的两种形式中得出的:1)以矩阵形式应用块间平滑过渡的逐块固定滞后平滑器,以及2)作为向前-向后方向应用的固定间隔平滑器零相滤波器。滤波器响应最大为平坦,单调下降,在其通带中没有任何波动。该方法还扩展到多个平滑度阶的平滑度,还研究了其与Lipschitz正则性和逐块维纳平滑度的关系。作为案例研究,研究了不同平稳和非平稳噪声水平下正常和异常心电图(ECG)信号的降噪。尽管大多数ECG降噪技术都受益于ECG的伪周期性,但开发的技术仅基于平滑度假设,这使其成为正常和异常ECG的强大方法。与带通滤波,具有各种参数的小波去噪以及使用Stein的无偏风险估计收缩方案的Savitzky-Golay滤波器相比,该方法的性能通过蒙特卡洛仿真对三个不同采样率的标准正常和异常ECG数据库进行了评估。

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