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JMIV
2007

A Variational Approach to Reconstructing Images Corrupted by Poisson Noise

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A Variational Approach to Reconstructing Images Corrupted by Poisson Noise
We propose a new variational model to denoise an image corrupted by Poisson noise. Like the ROF model described in [1] and [2], the new model uses total-variation regularization, which preserves edges. Unlike the ROF model, our model uses a data-fidelity term that is suitable for Poisson noise. The result is that the strength of the regularization is signal dependent, precisely like Poisson noise. Noise of varying scales will be removed by our model, while preserving low-contrast features in regions of low intensity.
Triet Le, Rick Chartrand, Thomas J. Asaki
Added 15 Dec 2010
Updated 15 Dec 2010
Type Journal
Year 2007
Where JMIV
Authors Triet Le, Rick Chartrand, Thomas J. Asaki
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