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Efficient algorithms for hybrid regularizers based image denoising and deblurring

机译:基于混合正则化器的图像去噪和去模糊的高效算法

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To better eliminate the staircase effect and simultaneously preserve edge details, this paper investigates a hybrid regularizers model for image denoising and deblurring. This technique closely incorporates the advantages of the classical total variation (TV) filter and the fourth-order filter. Computationally, we develop an extremely efficient relaxation scheme and alternating minimization algorithm, and give the rigorous convergence analyses there in detail. Provided experimental results distinctly illustrate the high efficiency of the addressed numerical algorithms. Also, in comparison with the recovered results by the stateof-the-art models, simulations manifestly demonstrate the competitive performance of our proposed scheme in reducing the blocky images and sharply maintaining the edge features. (C) 2015 Elsevier Ltd. All rights reserved.
机译:为了更好地消除阶梯效应并同时保留边缘细节,本文研究了一种用于图像去噪和去模糊的混合正则化模型。该技术紧密结合了经典总变化(TV)滤波器和四阶滤波器的优点。通过计算,我们开发了一种非常有效的松弛方案和交替最小化算法,并在其中进行了严格的收敛分析。提供的实验结果清楚地说明了所提出的数值算法的高效率。而且,与最新模型的恢复结果相比,仿真明显证明了我们提出的方案在减少块状图像和锐利地保持边缘特征方面的竞争性能。 (C)2015 Elsevier Ltd.保留所有权利。

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