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Restoration of differently blurred versions of an image with measurement errors in the PSF's

机译:使用PSF的测量误差恢复图像的不同模糊版本

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Restoration of an object from T observations is considered. Each image is distorted by a different deterministic blur and additive noise. The point spread function (PSF) for each observation is unknown; however, a noisy measurement of it is available. Taking the errors in measurements of the PSFs into consideration, the maximum-likelihood and Wiener filters are derived. It is shown that these filters give better results when the regression filter and the conventional Wiener filter, i.e., the one which ignores the presence of the noise in the PSFs. The consistency and the ill-conditioning characteristics of the filters are discussed. Regularized forms for these filers are obtained.
机译:考虑从T观测中恢复对象。每个图像都会因不同的确定性模糊和附加噪声而失真。每个观察点的点扩展函数(PSF)未知;但是,可以对其进行噪声测量。考虑到PSF的测量误差,得出最大似然和维纳滤波器。结果表明,当使用回归滤波器和传统的维纳滤波器时,即忽略了PSF中噪声的存在时,这些滤波器将提供更好的结果。讨论了滤波器的一致性和不良条件。已获得这些申报人的正规表格。

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