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Exemplar-Based Interpolation of Sparsely Sampled Images

机译:基于样本的稀疏采样图像插值

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A nonlocal variational formulation for interpolating a sparsely sampled image is introduced in this paper. The proposed variational formulation, originally motivated by image inpainting problems, encourages the transfer of information between similar image patches, following the paradigm of exemplar-based methods. Contrary to the classical inpainting problem, no complete patches are available from the sparse image samples, and the patch similarity criterion has to be redefined as here proposed. Initial experimental results with the proposed framework, at very low sampling densities, are very encouraging. We also explore some departures from the variational setting, showing a remarkable ability to recover textures at low sampling densities.
机译:介绍了一种用于插值稀疏采样图像的非局部变分公式。最初基于图像修复问题而提出的变体公式,鼓励采用基于示例方法的范式在相似图像块之间传递信息。与经典的修复问题相反,稀疏图像样本中没有完整的补丁可用,因此必须按照此处提出的那样重新定义补丁相似性标准。所提出的框架在非常低的采样密度下的初步实验结果令人鼓舞。我们还探索了与变分设置的一些偏离,显示了在低采样密度下恢复纹理的显着能力。

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