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Fast Nonconvex Nonsmooth Minimization Methods for Image Restoration and Reconstruction

机译:快速的非凸非平滑最小化图像复原与重建方法

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Nonconvex nonsmooth regularization has advantages over convex regularization for restoring images with neat edges. However, its practical interest used to be limited by the difficulty of the computational stage which requires a nonconvex nonsmooth minimization. In this paper, we deal with nonconvex nonsmooth minimization methods for image restoration and reconstruction. Our theoretical results show that the solution of the nonconvex nonsmooth minimization problem is composed of constant regions surrounded by closed contours and neat edges. The main goal of this paper is to develop fast minimization algorithms to solve the nonconvex nonsmooth minimization problem. Our experimental results show that the effectiveness and efficiency of the proposed algorithms.
机译:非凸非平滑正则化优于凸正则化用于还原具有整齐边缘的图像。然而,它的实际兴趣过去一直受到需要非凸,非平滑最小化的计算阶段难度的限制。在本文中,我们讨论了用于图像恢复和重构的非凸非平滑最小化方法。我们的理论结果表明,非凸非光滑最小化问题的解决方案由恒定区域组成,这些区域由闭合轮廓和整齐的边缘包围。本文的主要目的是开发快速最小化算法,以解决非凸非光滑最小化问题。我们的实验结果表明,所提算法的有效性和效率。

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