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用于自然图像高度鲁棒盲运动去模糊的非边缘自适应方案。

Nonedge-specific adaptive scheme for highly robust blind motion deblurring of natural imagess.

机构信息

Department of Computer Science and Technology, University of Bedfordshire, Luton, UK.

出版信息

IEEE Trans Image Process. 2013 Mar;22(3):884-97. doi: 10.1109/TIP.2012.2219548. Epub 2012 Sep 18.

Abstract

Blind motion deblurring estimates a sharp image from a motion blurred image without the knowledge of the blur kernel. Although significant progress has been made on tackling this problem, existing methods, when applied to highly diverse natural images, are still far from stable. This paper focuses on the robustness of blind motion deblurring methods toward image diversity-a critical problem that has been previously neglected for years. We classify the existing methods into two schemes and analyze their robustness using an image set consisting of 1.2 million natural images. The first scheme is edge-specific, as it relies on the detection and prediction of large-scale step edges. This scheme is sensitive to the diversity of the image edges in natural images. The second scheme is nonedge-specific and explores various image statistics, such as the prior distributions. This scheme is sensitive to statistical variation over different images. Based on the analysis, we address the robustness by proposing a novel nonedge-specific adaptive scheme (NEAS), which features a new prior that is adaptive to the variety of textures in natural images. By comparing the performance of NEAS against the existing methods on a very large image set, we demonstrate its advance beyond the state-of-the-art.

摘要

盲运动去模糊旨在在不了解模糊核的情况下,从运动模糊图像中估计出清晰的图像。尽管在解决这个问题上已经取得了重大进展,但现有的方法在应用于高度多样化的自然图像时,仍然远未达到稳定的程度。本文关注的是盲运动去模糊方法对图像多样性的稳健性,这是一个多年来一直被忽视的关键问题。我们将现有的方法分为两类,并使用由 120 万张自然图像组成的图像集来分析它们的稳健性。第一种方法是特定于边缘的,因为它依赖于大尺度阶跃边缘的检测和预测。这种方法对自然图像中边缘的多样性很敏感。第二种方法是非特定于边缘的,它探索了各种图像统计信息,如先验分布。这种方法对不同图像之间的统计变化很敏感。基于分析,我们通过提出一种新的非特定于边缘的自适应方案(NEAS)来解决稳健性问题,该方案具有一种新的先验,适应自然图像中各种纹理。通过在一个非常大的图像集上比较 NEAS 与现有方法的性能,我们证明了它超越了现有技术的先进水平。

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