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Hybrid regularizers-based adaptive anisotropic diffusion for image denoising

机译:基于混合正则化的自适应各向异性扩散图像去噪

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摘要

To eliminate the staircasing effect for total variation filter and synchronously avoid the edges blurring for fourth-order PDE filter, a hybrid regularizers-based adaptive anisotropic diffusion is proposed for image denoising. In the proposed model, the H-1-norm is considered as the fidelity term and the regularization term is composed of a total variation regularization and a fourth-order filter. The two filters can be adaptively selected according to the diffusion function. When the pixels locate at the edges, the total variation filter is selected to filter the image, which can preserve the edges. When the pixels belong to the flat regions, the fourth-order filter is adopted to smooth the image, which can eliminate the staircase artifacts. In addition, the split Bregman and relaxation approach are employed in our numerical algorithm to speed up the computation. Experimental results demonstrate that our proposed model outperforms the state-of-the-art models cited in the paper in both the qualitative and quantitative evaluations.
机译:为了消除总变化滤波器的阶梯效应,并同时避免四阶PDE滤波器的边缘模糊,提出了一种基于混合正则化的自适应各向异性扩散进行图像去噪的方法。在该模型中,H -1 -范数被视为保真度项,而正则化项则由总变化正则化和一个四阶滤波器组成。可以根据扩散函数来自适应地选择两个滤波器。当像素位于边缘时,选择总变化过滤器以过滤图像,从而可以保留边缘。当像素属于平坦区域时,采用四阶滤波器对图像进行平滑处理,可以消除阶梯伪像。此外,在我们的数值算法中采用了分裂的Bregman方法和松弛方法来加快计算速度。实验结果表明,我们提出的模型在定性和定量评估方面均优于本文引用的最新模型。

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