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Estimation of the Regularisation Parameter in Huber-MRF for Image Resolution Enhancement

机译:用于图像分辨率增强的Huber-MRF中正则化参数的估计

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The Huber Markov Random Field (H-MRF) has been proposed for image resolution enhancement as a preferable alternative to Gaussian Random Markov Fields (G-MRF) for its ability to preserve discontinuities in the image. However, its performance relies on a good choice of a regularisation parameter. While automating this choice has been successfully tackled for G-MRF, the more sophisticated form of H-MRF makes this problem less straightforward. In this paper we develop an approximate solution to this problem, by upper-bounding the partition function of the H-MRF. We demonstrate the working and flexibility of our approach in image super-resolution experiments.
机译:已经提出了用于图像分辨率增强的Huber Markov随机场(H-MRF)作为高斯随机Markov场(G-MRF)的优选替代方案,因为它能够保留图像中的不连续性。但是,其性能取决于对正则化参数的良好选择。虽然自动选择已成功解决了G-MRF,但更复杂的H-MRF形式使此问题变得不那么直接。在本文中,我们通过限制H-MRF的划分函数,为该问题提供了一种近似解决方案。我们在图像超分辨率实验中证明了我们方法的有效性和灵活性。

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