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Image denoising in bidimensional empirical mode decomposition domain: the role of Student's probability distribution function

机译:二维经验模态分解域中的图像降噪:学生概率分布函数的作用

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Hybridisation of the bi-dimensional empirical mode decomposition (BEMD) with denoising techniques has been proposed in the literature as an effective approach for image denoising. In this Letter, the Student's probability density function is introduced in the computation of the mean envelope of the data during the BEMD sifting process to make it robust to values that are far from the mean. The resulting BEMD is denoted tBEMD. In order to show the effectiveness of the tBEMD, several image denoising techniques in tBEMD domain are employed; namely, fourth order partial differential equation (PDE), linear complex diffusion process (LCDP), non-linear complex diffusion process (NLCDP), and the discrete wavelet transform (DWT). Two biomedical images and a standard digital image were considered for experiments. The original images were corrupted with additive Gaussian noise with three different levels. Based on peak-signal-to-noise ratio, the experimental results show that PDE, LCDP, NLCDP, and DWT all perform better in the tBEMD than in the classical BEMD domain. It is also found that tBEMD is faster than classical BEMD when the noise level is low. When it is high, the computational cost in terms of processing time is similar. The effectiveness of the presented approach makes it promising for clinical applications.
机译:二维经验模式分解(BEMD)与降噪技术的混合已在文献中提出,作为一种有效的图像降噪方法。在这封信中,在BEMD筛选过程中,在计算数据的平均包络时引入了学生的概率密度函数,以使其对远离均值的值具有鲁棒性。所得的BEMD表示为tBEMD。为了显示tBEMD的有效性,在tBEMD域中使用了几种图像去噪技术。即四阶偏微分方程(PDE),线性复数扩散过程(LCDP),非线性复数扩散过程(NLCDP)和离散小波变换(DWT)。实验中考虑了两个生物医学图像和一个标准数字图像。原始图像因三个不同级别的加性高斯噪声而损坏。基于峰值信噪比,实验结果表明,在tBEMD中,PDE,LCDP,NLCDP和DWT的性能均优于经典BEMD域。还发现,当噪声水平低时,tBEMD比传统的BEMD更快。当它很高时,就处理时间而言,计算成本是相似的。所提出的方法的有效性使其有希望用于临床。

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