首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Framelet-based sparse regularization for uneven intensity correction of remote sensing images in a retinex variational framework
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Framelet-based sparse regularization for uneven intensity correction of remote sensing images in a retinex variational framework

机译:基于帧的稀疏正则化在retinex变体框架中用于遥感图像的不均匀强度校正

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摘要

Correcting uneven intensity distribution from a single image has long been a challenging problem with remote sensing image. In this paper, an analysis-based sparse prior is employed in the retinex variational framework for the uneven intensity correction of remote sensing images. This sparse regularization model is used to adjust uneven intensity by regularizing the sparsity of the reflectance component under framelet transform. Furthermore, the alternating minimization algorithm and split Bregman methodare adopted to solve the framelet-based sparse regularization model. The experiments, with both simulated images and real-life images, show that the proposed model can effectively correct the uneven intensity distribution. (c) 2015 Elsevier GmbH. All rights reserved.
机译:长期以来,从单个图像校正不均匀的强度分布一直是遥感图像面临的难题。在本文中,基于稀疏先验的稀疏先验被用于retinex变分框架中,用于遥感图像的不均匀强度校正。该稀疏正则化模型用于通过对小框架变换下的反射率分量的稀疏性进行正则化来调整不均匀强度。此外,采用交替最小化算法和分裂Bregman方法来求解基于框架的稀疏正则化模型。通过模拟图像和真实图像的实验表明,该模型可以有效地校正强度分布不均。 (c)2015 Elsevier GmbH。版权所有。

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