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An Efficient Two-Phase -TV Method for Restoring Blurred Images with Impulse Noise

机译:一种有效的两相电视方法,用于恢复具有脉冲噪声的模糊图像

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A two-phase image restoration method based upon total variation regularization combined with an ${rm L}^{1}$-data-fitting term for impulse noise removal and deblurring is proposed. In the first phase, suitable noise detectors are used for identifying image pixels contaminated by noise. Then, in the second phase, based upon the information on the location of noise-free pixels, images are deblurred and denoised simultaneously. For efficiency reasons, in the second phase a superlinearly convergent algorithm based upon Fenchel-duality and inexact semismooth Newton techniques is utilized for solving the associated variational problem. Numerical results prove the new method to be a significantly advance over several state-of-the-art techniques with respect to restoration capability and computational efficiency.
机译:提出了一种基于总变化正则化结合$ {rm L} ^ {1} $数据拟合项的两相图像恢复方法,用于脉冲噪声的去除和去模糊。在第一阶段,使用合适的噪声检测器来识别被噪声污染的图像像素。然后,在第二阶段,基于有关无噪声像素的位置的信息,对图像进行去模糊和同时去噪。出于效率原因,在第二阶段中,基于Fenchel-对偶性和不精确的半光滑牛顿技术的超线性收敛算法被用于解决相关的变分问题。数值结果证明,该新方法在恢复能力和计算效率方面明显优于几种最新技术。

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