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SURE-Based Non-Local Means

delete2009-11-01
delete216
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OA
AI
D
Dimitri Van De Ville *
M
M. Kocher
DOI:10.1109/LSP.2009.2027669delete
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摘要

摘要

En 中文
Non-local means (NLM) provides a powerful framework for denoising. However, there are a few parameters of the algorithm-most notably, the width of the smoothing kernel-that are data-dependent and difficult to tune. Here, we propose to use Stein's unbiased risk estimate (SURE) to monitor the mean square error (MSE) of the NLM algorithm for restoration of an image corrupted by additive white Gaussian noise. The SURE principle allows to assess the MSE without knowledge of the noise-free signal. We derive an explicit analytical expression for SURE in the setting of NLM that can be incorporated in the implementation at low computational cost. Finally, we present experimental results that confirm the optimality of the proposed parameter selection.
Keyword:
Denoising
non-local means
Stein's unbiased risk estimate
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期刊

IEEE Signal Processing Magazine 封面图
IEEE Signal Processing Magazine
IF:
9.6
论文数:
1.1W
被引数:
1.7W

机构

E
Ecole Polytechnique Federale de Lausanne
学者数:
1.7W
论文数: 1.3W
被引数: 25
U
university of geneva
学者数:
3.6W
论文数: 2.9W
被引数: 35
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