Image-Specific Prior Adaptation for Denoising

被引:10
作者
Lu, Xin [1 ]
Lin, Zhe [2 ]
Jin, Hailin [2 ]
Yang, Jianchao [2 ]
Wang, James Z. [1 ]
机构
[1] Penn State Univ, Coll Informat Sci & Technol, University Pk, PA 16802 USA
[2] Adobe Syst Inc, Adobe Res, San Jose, CA 95110 USA
关键词
Image denoising; internal and external denoising; online-GMM; patch-based denoising; SPARSE;
D O I
10.1109/TIP.2015.2473098
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Image priors are essential to many image restoration applications, including denoising, deblurring, and inpainting. Existing methods use either priors from the given image (internal) or priors from a separate collection of images (external). We find through statistical analysis that unifying the internal and external patch priors may yield a better patch prior. We propose a novel prior learning algorithm that combines the strength of both internal and external priors. In particular, we first learn a generic Gaussian mixture model from a collection of training images and then adapt the model to the given image by simultaneously adding additional components and refining the component parameters. We apply this image-specific prior to image denoising. The experimental results show that our approach yields better or competitive denoising results in terms of both the peak signal-to-noise ratio and structural similarity.
引用
收藏
页码:5469 / 5478
页数:10
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