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A new variational approach for restoring images with multiplicative noise

机译:一种具有乘性噪声的图像复原新方法

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This paper proposes a novel variational model for restoration of images corrupted with multiplicative noise. It combines a fractional-order total variational filter with a high-order PDE (Laplacian) norm. The combined approach is able to preserve edges while avoiding the blocky-effect in smooth regions. This strategy minimizes a certain energy subject to a fitting term derived from a maximum a posteriori (MAP). Semi-implicit gradient descent scheme is applied to efficiently finding the minimizer of the proposed functional. To improve the numerical results, we opt for an adaptive regularization parameter selection procedure for the proposed model by using the trial-and-error method. The existence and uniqueness of a solution to the proposed variational model is established. In this study parameter dependence is also discussed. Experimental results demonstrate the effectiveness of the proposed model in visual improvement as well as an increase in the peak signal-to-noise ratio comparing to corresponding PDE methods. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新颖的变分模型,用于恢复被乘法噪声破坏的图像。它结合了分数阶总变分滤波器和高阶PDE(拉普拉斯)范数。组合方法能够保留边缘,同时避免在平滑区域中产生块效应。该策略根据从最大后验(MAP)得出的拟合项将某个能量最小化。应用半隐式梯度下降方案来有效地找到所提出函数的最小化器。为了改善数值结果,我们采用试错法为该模型选择了自适应正则化参数选择程序。建立了所提出的变分模型解决方案的存在性和唯一性。在这项研究中,还讨论了参数依赖性。实验结果表明,与相应的PDE方法相比,该模型在视觉改善方面的有效性以及峰值信噪比的提高。 (C)2016 Elsevier Ltd.保留所有权利。

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