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A PDE Approach to Coupled Super-Resolution with Non-parametric Motion

机译:非参数运动耦合超分辨率的PDE方法

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The problem of recovering a high-resolution image from a set of distorted (e.g., warped, blurred, noisy) and low-resolution images is known as super-resolution. Accurate motion estimation among the low-resolution measurements is a fundamental challenge of the super-resolution problem. Some recent promising advances in this area have been focused on coupling or combing the super-resolution reconstruction and the motion estimation. However, the existing approach is limited to parametric motion models, e.g., affine. In this paper, we shall address the coupled super-resolution problem with a non-parametric motion model. We address the problem in a variational formulation and propose a PDE-approach to yield a numerical scheme. In this approach, we use diffusion regularizations for both the motion and the super-resolved image. However, the approach is flexible and other suitable regularization schemes may be employed in the proposed formulation.
机译:从一组失真(例如,扭曲,模糊,嘈杂)和低分辨率图像中恢复高分辨率图像的问题被称为超分辨率。低分辨率测量中的准确运动估计是超分辨率问题的根本挑战。该领域最近的一些有希望的进展集中在耦合或组合超分辨率重建和运动估计上。但是,现有方法限于参数运动模型,例如仿射。在本文中,我们将使用非参数运动模型解决耦合的超分辨率问题。我们以变分形式解决了这一问题,并提出了一种PDE方法来产生数值方案。在这种方法中,我们对运动和超分辨图像都使用了扩散正则化。然而,该方法是灵活的,并且在所提出的公式中可以采用其他合适的正则化方案。

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