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A Single Image Deblurring Algorithm for Nonuniform Motion Blur Using Uniform Defocus Map Estimation

机译:一种使用均匀散焦映射估计的非均匀运动模糊的单个图像去孔算法

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摘要

One of the most common artifacts in digital photography is motion blur. When capturing an image under dim light by using a handheld camera, the tendency of the photographer’s hand to shake causes the image to blur. In response to this problem, image deblurring has become an active topic in computational photography and image processing in recent years. From the view of signal processing, image deblurring can be reduced to a deconvolution problem if the kernel function of the motion blur is assumed to be shift invariant. However, the kernel function is not always shift invariant in real cases; for example, in-plane rotation of a camera or a moving object can blur different parts of an image according to different kernel functions. An image that is degraded by multiple blur kernels is called a nonuniform blur image. In this paper, we propose a novel single image deblurring algorithm for nonuniform motion blur images that is blurred by moving object. First, a proposed uniform defocus map method is presented for measurement of the amounts and directions of motion blur. These blurred regions are then used to estimate point spread functions simultaneously. Finally, a fast deconvolution algorithm is used to restore the nonuniform blur image. We expect that the proposed method can achieve satisfactory deblurring of a single nonuniform blur image.
机译:数码摄影中最常见的伪影之一是运动模糊。当通过使用手持式相机捕获昏暗灯下的图像时,摄影师的手摇动的趋势使图像模糊。为了响应这个问题,近年来图像去孔已经成为计算摄影和图像处理中的积极课题。从信号处理的视图,如果假设运动模糊的核函数被认为是换档不变的核心功能,则可以减少图像去夹到解卷积问题。但是,内核功能并不总是在实际情况下换档不变;例如,照相机或移动物体的平面旋转可以根据不同的内核功能模糊图像的不同部分。由多个模糊内核劣化的图像称为不均匀的模糊图像。在本文中,我们提出了一种通过移动物体模糊的非均匀运动模糊图像的新型单图像去孔算法。首先,提出了一种提出的均匀散焦图方法,用于测量运动模糊的量和方向。然后使用这些模糊的区域同时估计点传播函数。最后,使用快速解卷积算法恢复不均匀的模糊图像。我们预期,所提出的方法可以实现单个非均匀模糊图像的令人满意的去束性。

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