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Nondestructive Image De-Blurring Based on Diffraction Blurring Model

机译:基于衍射模型模型的非破坏性图像去模糊

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Image de-blurring is an important research branch in computer vision. Deconvolution methods, which deconvolute the blurred images with a degradation function (or point spread function) according to estimation of the blurring cause, are commonly used in the image de-blurring on macro-scale. However, these methods are difficult to deblur an image captured by a high-magnification microscopy, where the depth-of-field of the microscopy is limit and optical diffraction is obvious, because both depth variation and optical diffraction can result in blurring imaging. Due to the complicated coupling of depth and optical diffraction in micro/nano blurring imaging, the degradation function of each point may be different, and it is not reasonable to estimate it in the geometrical optics where optical diffraction is not considered. Therefore, the accuracy of these deconvolution methods is limit because their degradation functions do not include the influence of optical diffraction. In this paper, we researched the image blurring degradation process based on the theoretical relationship between the blurring degree and the depth variation, as well as optical diffraction, and then proposed an automatic method to calculate the degradation function of every pixel with a relationship between depth information and blurring degree. Finally, a non-destructive image de-blurring method was proposed and validated with different micro/nano scale samples. The experimental result proved the effectiveness and precision of our method.
机译:图像去模糊是计算机视觉中的重要研究分支。根据模糊原因的估计,在宏观尺度上常用于模糊原因的劣化函数(或点扩散函数),将模糊的图像进行解作下模型的模型方法。然而,这些方法难以去除由高倍倍率显微镜捕获的图像,其中显微镜的深度是极限,光学衍射显而易见,因为深度变化和光学衍射都可以导致模糊成像。由于微/纳米模糊成像中的深度和光学衍射的复杂耦合,每个点的劣化函数可以是不同的,并且在不考虑光学衍射的几何光学中估计它是不合理的。因此,这些去卷积方法的准确性是限制,因为它们的降解功能不包括光衍射的影响。在本文中,我们基于模糊程度和深度变化之间的理论关系以及光学衍射来研究图像模糊降解过程,然后提出了一种自动方法来计算每个像素的劣化功能,深度之间的关系信息和模糊程度。最后,用不同的微/纳米刻度样品提出并验证了非破坏性图像去模糊方法。实验结果证明了我们方法的有效性和精度。

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