A non-local vectorial total variational model for multichannel SAR image speckle suppression |
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Authors: | Xi Rubing Wang Zhengming Xie Meihua Zhao Xia Wang Weiwei |
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Affiliation: | Department of Mathematics and Systems Science, National University of Defense Technology, Changsha 410073, China |
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Abstract: | This paper aims at the multichannel synthetic aperture radar(SAR)image speckle reduction.This paper proposes a novel energy minimized regularization model for multichannel image denoising,which is an extension of the non-local total variational model for gray-scale image.It contains two terms,namely the vectorial data fidelity term and the non-local vectorial total variation term.The latter is constructed by high-dimensional non-local gradient that contains the structure information of the multichannel image.The existence and the uniqueness of the solution of the model are proved.A fixed point iterative algorithm is designed to acquire the solution of this model.The convergence property of this algorithm is proved as well.This model is applied to the multipolarimetric and multi-temporal RADARSAT-2 images despeckling.The result shows that this model performs better than the original vectorial total variational model on texture preserving. |
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Keywords: | Fixed point iteration Multichannel image denoising Non-local SAR image despeckling Vectorial total variation |
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