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Missing region recovery by promoting blockwise low-rankness

机译:通过推广块状低排名缺失区域恢复

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In this paper, we propose a novel missing region recovery method by promoting blockwise low-rankness. It is natural to assume that images often have local repetitive structures. Hence, any small block extracted from an image is expected to be a low-rank matrix. Based on this assumption, we formulate missing region recovery as a convex optimization problem via newly introduced block nuclear norm which promotes blockwise low-rankness of an image with missing regions. An iterative scheme for approximating a global minimizer of the problem is also presented. The scheme is based on the alternating direction method of multipliers (ADMM) and allows us to restore missing regions efficiently. Experimental results reveal that the proposed method can recover missing regions with detailed local structures.
机译:在本文中,我们通过促进块状低秩秩提出了一种新型缺失区域恢复方法。假设图像通常具有本地重复结构是自然的。因此,预期从图像中提取的任何小块是低秩矩阵。基于这种假设,我们通过新引入的块核规范将缺失区域恢复作为凸优化问题,该核标量促进了缺失区域的图像的块状低秩。还介绍了近似全球最小化器的迭代方案。该方案基于乘法器(ADMM)的交替方向方法,并允许我们有效地恢复缺失区域。实验结果表明,该方法可以通过详细的局部结构恢复缺失的区域。

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