IEICE Transactions on Information and Systems
Online ISSN : 1745-1361
Print ISSN : 0916-8532
Regular Section
Learning from Ideal Edge for Image Restoration
Jin-Ping HEKun GAOGuo-Qiang NIGuang-Da SUJian-Sheng CHEN
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JOURNAL FREE ACCESS

2013 Volume E96.D Issue 11 Pages 2487-2491

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Abstract
Considering the real existent fact of the ideal edge and the learning style of image analogy without reference parameters, a blind image recovery algorithm using a self-adaptive learning method is proposed in this paper. We show that a specific local image patch with degradation characteristic can be utilized for restoring the whole image. In the training process, a clear counterpart of the local image patch is constructed based on the ideal edge assumption so that identification of the Point Spread Function is no longer needed. Experiments demonstrate the effectiveness of the proposed method on remote sensing images.
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© 2013 The Institute of Electronics, Information and Communication Engineers
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