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A general sparse image prior combination in super-resolution

机译:普通稀疏图像先验组合的超分辨率

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In this paper the Super-Resolution (SR) image registration and reconstruction problem is studied within the Bayesian framework using a general sparse image prior combination. The representation of the proposed priors as Scale Mixtures of Gaussians (SMG), leads to the introduction of variational parameters, for which degenerate distributions are assumed. In the proposed method all the problem unknowns are automatically estimated using variational techniques. An experimental comparison between the proposed and state of the art methods has been performed, on both synthetic and real images.
机译:在本文中,使用一般的稀疏图像先验组合在贝叶斯框架内研究了超分辨率(SR)图像配准和重构问题。提出的先验表示为高斯比例混合(SMG),导致引入了变分参数,并假定了简并分布。在提出的方法中,使用变分技术自动估计所有问题未知数。已对合成图像和真实图像进行了建议方法与现有方法之间的实验比较。

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