Adaptive regularization for color image restoration using discrepancy principle

A. Chen, B. Xiao-Mei Huo, C. Y. Wen
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引用次数: 7

Abstract

In this paper, we consider and study how to automatically select the regularization parameter in a color total variation minimization model for image restoration. The idea is based on that the variance of the noise can be estimated easily, thus the restored image should satisfy the Morozov discrepancy principle. We developed an iterative scheme to solve the color total variation (CTV) minimization problem, where the CTV norm is represented by the dual formulation and the proximal point method was applied to find a solution. During the iteration, the regularization parameter is automatically adjusted to guarantee the restored image satisfying the discrepancy principle. Numerical experiments are reported in the paper.
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基于差异原理的彩色图像自适应正则化复原
本文研究了颜色总变差最小化模型中正则化参数的自动选择问题。该思想是基于噪声的方差很容易估计,因此恢复的图像应满足莫罗佐夫差异原理。提出了一种求解颜色总变差(CTV)最小化问题的迭代方案,其中CTV范数用对偶公式表示,并采用近点法求解。在迭代过程中,自动调整正则化参数,保证恢复的图像满足差异原则。本文报道了数值实验结果。
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