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A multi-frame super-resolution based on new variational data fidelity term

机译:基于新变分数据保真度术语的多帧超分辨率

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The main idea of multi-frame super-resolution (SR) algorithm is to recover a single high-resolution (HR) image from a sequence of low resolution ones of the same scene. Since the restoration step of super-resolution algorithms is always an ill-posed problem, the choice of the fidelity term and the regularization are always crucial. In this paper, we propose a new variational SR framework based on an automatic selection of the weighting parameter that control the balance between the L~1 and L~2 fidelity terms, which handle different type of noise distributions. Concerning the regularization, we use the combined total variation (TV) and the total variation of the first derivatives (TV~2) model with a new implementation of the Primal-dual algorithm to solve the corresponding discretized problem. The obtained results are compared with some competitive algorithms and confirm that the proposed method has much benefices over the others in avoiding some undesirable artifacts.
机译:多帧超分辨率(SR)算法的主要思想是从相同场景中的低分辨率序列恢复单个高分辨率(HR)图像。由于超分辨率算法的恢复步骤始终是一个不良问题,因此富达项的选择和正则化始终是至关重要的。在本文中,我们提出了一种基于自动选择加权参数的新变分SR框架,该加权参数控制L〜1和L〜2保真术语之间的平衡,该噪声分布处理不同类型的噪声分布。关于正规化,我们使用组合的总变化(电视)和第一衍生工具(TV〜2)模型的总变化,并具有新的原始算法的新实现来解决相应的离散问题。将获得的结果与一些竞争性算法进行比较,并确认所提出的方法在其他不良文物中对其他方法具有很大的利益。

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