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A total variation regularization based super-resolution reconstruction algorithm for digital video

机译:基于全变分正则化的数字视频超分辨率重建算法

摘要

Super-resolution (SR) reconstruction technique is capable of producing a high-resolution image from a sequence of low-resolution images. In this paper, we study an efficient SR algorithm for digital video. To effectively deal with the intractable problems in SR video reconstruction, such as inevitable motion estimation errors, noise, blurring, missing regions, and compression artifacts, the total variation (TV) regularization is employed in the reconstruction model. We use the fixed-point iteration method and preconditioning techniques to efficiently solve the associated nonlinear Euler-Lagrange equations of the corresponding variational problem in SR. The proposed algorithm has been tested in several cases of motion and degradation. It is also compared with the Laplacian regularization-based SR algorithm and other TV-based SR algorithms. Experimental results are presented to illustrate the effectiveness of the proposed algorithm.£.
机译:超分辨率(SR)重建技术能够从一系列低分辨率图像中生成高分辨率图像。在本文中,我们研究了一种用于数字视频的高效SR算法。为了有效处理SR视频重建中的棘手问题,例如不可避免的运动估计误差,噪声,模糊,缺失区域和压缩伪像,在重建模型中采用了总变化量(TV)正则化。我们使用定点迭代方法和预处理技术来有效求解SR中相应变分问题的关联非线性Euler-Lagrange方程。所提出的算法已经在运动和降级的几种情况下进行了测试。还将它与基于拉普拉斯正则化的SR算法和其他基于电视的SR算法进行比较。实验结果表明了该算法的有效性。

著录项

  • 作者

    Shen H; Lam EY; Ng MK; Zhang L;

  • 作者单位
  • 年度 2007
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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