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A joint estimation approach for two-tone image deblurring by blind deconvolution

机译:盲反卷积的两色调图像去模糊联合估计方法

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摘要

A new statistical method is proposed for deblurring two-tone images, i.e., images with two unknown grey levels, that are blurred by an unknown linear filter. The key idea of the proposed method is to adjust a deblurring filter until its output becomes two tone. Two optimization criteria are proposed for the adjustment of the deblurring filter. A three-step iterative algorithm (TSIA) is also proposed to minimize the criteria. It is proven mathematically that by minimizing either of the criteria, the original (nonblurred) image, along with the blur filter, will be recovered uniquely (only with possible scale/shift ambiguities) at high SNR. The recovery is guaranteed not only for i.i.d. images but also for correlated and nonstationary images. It does not require a priori knowledge of the statistical parameters or the tone values of the original image; neither does it require a priori knowledge of the phase or other special information (e.g., FIR, symmetry, nonnegativity, etc.) about the blur filter. Numerical experiments are carried out to test the method on synthetic and real images.
机译:提出了一种新的统计方法,用于对两色调图像(即具有两个未知灰度级的图像)进行模糊处理,该图像由未知线性滤波器模糊。提出的方法的关键思想是调整去模糊滤波器,直到其输出变为两个音调为止。提出了两个优化标准来调整去模糊滤波器。还提出了三步迭代算法(TSIA)以最小化标准。从数学上证明,通过最小化这两个标准,原始(非模糊)图像以及模糊滤波器将在高SNR时唯一地恢复(仅在可能的缩放/移位模糊情况下)。不仅保证i.i.d的恢复。图像,也可以用于相关和非平稳图像。它不需要先验知识的统计参数或原始图像的色调值;它也不需要相位的先验知识或关于模糊滤波器的其他特殊信息(例如,FIR,对称性,非负性等)。进行了数值实验以在合成和真实图像上测试该方法。

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