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Registration Based Non-uniform Motion Deblurring

机译:基于配准的非均匀运动去模糊

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摘要

This paper proposes an algorithm which uses image registration to estimate a non-uniform motion blur point spread function (PSF) caused by camera shake. Our study is based on a motion blur model which models blur effects of camera shakes using a set of planar perspective projections (i.e., homographies). This representation can fully describe motions of camera shakes in 3D which cause non-uniform motion blurs. We transform the non-uniform PSF estimation problem into a set of image registration problems which estimate homographies of the motion blur model one-by-one through the Lucas-Kanade algorithm. We demonstrate the performance of our algorithm using both synthetic and real world examples. We also discuss the effectiveness and limitations of our algorithm for non-uniform deblurring.
机译:本文提出了一种算法,该算法使用图像配准来估计由相机抖动引起的非均匀运动模糊点扩展函数(PSF)。我们的研究基于运动模糊模型,该模型使用一组平面透视投影(即同形异义词)对相机抖动的模糊效果进行建模。此表示可以完全描述3D相机抖动的运动,这会导致不均匀的运动模糊。我们将非均匀PSF估计问题转化为一组图像配准问题,这些问题通过Lucas-Kanade算法一张一张地估计运动模糊模型的单应性。我们使用合成实例和真实实例来演示算法的性能。我们还讨论了非均匀去模糊算法的有效性和局限性。

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