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国家自然科学基金(20132BAB211030)

作品数:1 被引量:1H指数:1
相关作者:张明辉梁栋刘且根更多>>
相关机构:中国科学院南昌大学更多>>
发文基金:国家自然科学基金更多>>
相关领域:自动化与计算机技术更多>>

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Two-level Bregmanized method for image interpolation with graph regularized sparse coding被引量:1
2013年
A two-level Bregmanized method with graph regularized sparse coding (TBGSC) is presented for image interpolation. The outer-level Bregman iterative procedure enforces the observation data constraints, while the inner-level Bregmanized method devotes to dictionary updating and sparse represention of small overlapping image patches. The introduced constraint of graph regularized sparse coding can capture local image features effectively, and consequently enables accurate reconstruction from highly undersampled partial data. Furthermore, modified sparse coding and simple dictionary updating applied in the inner minimization make the proposed algorithm converge within a relatively small number of iterations. Experimental results demonstrate that the proposed algorithm can effectively reconstruct images and it outperforms the current state-of-the-art approaches in terms of visual comparisons and quantitative measures.
刘且根张明辉梁栋
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