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Weighted-encoding-based image interpolation with the nonlocal linear regression mode

机译:基于加权编码的非识别线性回归模式的图像插值

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摘要

An image interpolation model based on sparse representation is proposed. Two widely used priors including sparsity and nonlocal self-similarity are used as the regularization terms to boost the performance of the interpolation model. Meanwhile, we incorporate nonlocal linear regression into this model, since nonlocal similar patches could provide a better approximation to a given patch. Moreover, we propose a new approach to learn an adaptive sub-dictionary online instead of clustering. For each patch, similar patches are grouped to learn the adaptive sub-dictionary, generating a more sparse and accurate representation. Finally, weighted encoding is introduced to suppress tailing of fitting residuals in data fidelity. Abundant experimental results show that our proposed method achieves better performance compared to several state-of-the-art methods in terms of subjective and objective evaluations. (C) 2020 Optical Society of America
机译:提出了一种基于稀疏表示的图像插值模型。 使用包括稀疏性和非局部自相相似的两个广泛使用的前瞻性用作正规化术语,以提高插值模型的性能。 同时,我们将非局部线性回归纳入该模型,因为非本体类似补丁可以为给定补丁提供更好的近似。 此外,我们提出了一种新方法来学习自适应子字典在线而不是聚类。 对于每个补丁,将类似的补丁分组以学习自适应子字典,生成更稀疏和准确的表示。 最后,引入了加权编码以抑制数据保真度的拟合残留的拖尾。 丰富的实验结果表明,与主观和客观评估方面的几种最先进的方法相比,我们所提出的方法实现了更好的性能。 (c)2020美国光学学会

著录项

  • 来源
    《Applied optics》 |2020年第28期|共7页
  • 作者

    Zhang Junchao;

  • 作者单位

    Cent South Univ Sch Aeronaut &

    Astronaut Changsha 410083 Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
  • 关键词

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