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The UDWT image denoising method based on the PDE model of a convexity-preserving diffusion function

机译:基于凸起保护散射函数PDE模型的UDWT图像去噪方法

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Abstract It is a great challenge to maintain details while suppressing and eliminating noise of the image. Considering the nonconvexity property of the diffusion function and the hypersensitivity of the Laplace operator to noise in the Y-K model, a fourth-order PDE image denoising model (Con_G&L model) is proposed in this paper. This model is constructed by a new convexity-preserving diffusion function which guarantees the corresponding energy functional has a globally unique minimum solution. At the same time, the Gaussian filter is combined with the Laplace operator in this model, and as a result, the noisy image is smoothed before the diffusion process, which improves the ability of capturing the details and edges of the noisy image greatly. Furthermore, by analyzing the statistical properties of the undecimated discrete wavelet transform (UDWT) coefficients of noisy image, we observe that the noise information is mainly distributed in the high-frequency sub-bands, and based on this, the proposed Con_G&L model is applied in the high-frequency sub-bands of the UDWT to get the denoising method. The proposed method removes the image noise effectively with the image texture and other details of the image being maintained. Meanwhile, the generation of false edges and the staircase effect can be suppressed. A large number of simulation experiments verify the effectiveness of the proposed method.
机译:摘要在抑制和消除图像的噪声时维护细节是一个巨大的挑战。考虑到扩散功能的非凸性特性和LAPALP操作者在Y-K模型中对噪声的超敏反应,本文提出了四阶PDE图像去噪模型(CON_G&L型号)。该模型由新的凸起保留的扩散函数构成,保证相应的能量功能具有全球独特的最小解决方案。同时,高斯滤波器在该模型中与拉普拉斯窗口组合,结果,在扩散过程之前平滑噪声图像,这提高了捕获噪声图像的细节和边缘的能力。此外,通过分析未传定的离散小波变换(UDWT)系数的噪声图像的统计特性,我们观察到噪声信息主要分布在高频子带中,并基于此,应用了所提出的Con_G&L型号在UDWT的高频子带中获得去噪方法。所提出的方法利用图像纹理和被维护的图像的其他细节消除图像噪声。同时,可以抑制错误边缘和楼梯效果。大量仿真实验验证了该方法的有效性。

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