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Non-uniform motion deblurring with Kernel grid regularization

机译:具有核网格正则化的非均匀运动脱模

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摘要

Camera shake during the exposure time often leads to spatially varying blurring effect on images. Existing work usually uses patch based methods that assume the blur in each patch is uniform to solve this problem. However, these kinds of methods do not consider the consistency between different patches and thus leading to inaccurate results with ringing artifacts. In this paper, we propose a Kernel mapping regularized method to solve the non-uniform deblurring problem, where the consistency between image patches is considered to improve blur Kernel estimation. We analyze the theoretical framework of blur Kernels which can be described as a motion path transference, and propose a robust Kernel estimation algorithm based on Earth mover's distance (Wasserstein metric) to preserve the properties of blur Kernels. In addition, we develop a new Kernel refinement method based on a proposed Ink Dot Diffusion that uses 8 directions of Kernel mapping flow where the erroneous Kernels are identified and corrected. Experimental results demonstrate that the proposed algorithm performs favorably against the state-of-the-art image deblurring methods. (C) 2017 Elsevier B.V. All rights reserved.
机译:在曝光时间期间相机抖动通常会导致对图像的空间不同的模糊效果。现有工作通常使用基于补丁的方法,该方法假设每个修补程序中的模糊是均匀的,以解决这个问题。然而,这些类型的方法不考虑不同斑块之间的一致性,从而导致振铃伪像导致结果不准确。在本文中,我们提出了一种核心映射正规化方法来解决非均匀的去掩盖问题,其中认为图像斑块之间的一致性来提高模糊核估计。我们分析模糊内核的理论框架,其可以被描述为运动路径转移,并提出基于地球移动器距离(Wasserstein度量)的鲁棒内核估计算法,以保留模糊内核的属性。此外,我们基于所提出的墨水点扩散开发了一种新的内核细化方法,该方法使用8个方向的内核映射流程,其中识别并校正了错误内核。实验结果表明,所提出的算法对最先进的图像去纹理方法表现有利。 (c)2017 Elsevier B.v.保留所有权利。

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