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Image Restoration with Dual-Prior Constraint Models Based on Split Bregman

机译:基于分裂Bregman的双先验约束模型图像复原

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摘要

In order to utilizing the local and non-local information in the image, we proposed a novel sparse scheme for image restoration in this paper. The new scheme includes two important contributions. The first one is that we extended the image prior model in conventional total variation to the dual-prior models for combining the local smoothness and nonlocal sparsity under regularization framework. The second one is we developed a modified iterative Split Bregman majorization method to solve the objective function with dual-prior models. The experimental results show that the proposed scheme achieved the state-of-the-art performance compared to the current restoration algorithms.
机译:为了利用图像中的局部和非局部信息,本文提出了一种新颖的稀疏图像复原方案。新计划包括两项重要的贡献。第一个是我们将常规总变化中的图像先验模型扩展到双优先模型,以在正则化框架下结合局部平滑度和非局部稀疏度。第二个是我们开发了一种改进的迭代Split Bregman主化方法,以解决具有双重先验模型的目标函数。实验结果表明,与当前的恢复算法相比,该方案实现了最先进的性能。

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