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Research on a maximum likelihood method for space-variant coded image deblurring

机译:空变编码图像去模糊的最大似然方法研究

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Coded imaging is an important technique in high energy physics, astronomy and many other areas. However, popular image reconstruction methods are not ideal for space-invariant systems, which badly restricts their application. In this paper, we propose a method based on the maximum-likelihood method that performs image reconstruction on coded images with general space-variant degradation. A universal space-variant model is adopted, and the maximum-likelihood method is applied to a Gaussian stochastic noise model to derive an iterative deblurring formula. In practice, this method shows fine smoothness, convergence and good performance for strongly space-variant reconstructions.
机译:编码成像是高能物理,天文学和许多其他领域的重要技术。然而,流行的图像重建方法对于空间不变系统不是理想的,这严重限制了它们的应用。在本文中,我们提出了一种基于最大似然法的方法,该方法对具有一般空间变量降级的编码图像执行图像重建。采用通用空间变量模型,将最大似然方法应用于高斯随机噪声模型,得到迭代去模糊公式。在实践中,此方法对于强烈的空间变化重建显示出良好的平滑性,收敛性和良好的性能。

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