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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >Inpainting for Remotely Sensed Images With a Multichannel Nonlocal Total Variation Model
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Inpainting for Remotely Sensed Images With a Multichannel Nonlocal Total Variation Model

机译:利用多通道非局部总变化模型修复遥感图像

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摘要

Filling dead pixels or removing uninteresting objects is often desired in the applications of remotely sensed images. In this paper, an effective image inpainting technology is presented to solve this task, based on multichannel nonlocal total variation. The proposed approach takes advantage of a nonlocal method, which has a superior performance in dealing with textured images and reconstructing large-scale areas. Furthermore, it makes use of the multichannel data of remotely sensed images to achieve spectral coherence for the reconstruction result. To optimize the proposed variation model, a Bregmanized-operator-splitting algorithm is employed. The proposed inpainting algorithm was tested on simulated and real images. The experimental results verify the efficacy of this algorithm.
机译:在遥感图像的应用中通常需要填充坏点或去除不感兴趣的对象。本文提出了一种基于多通道非局部总变化量的有效图像修复技术。所提出的方法利用了非局部方法的优势,该方法在处理带纹理的图像和重建大规模区域方面具有优越的性能。此外,它利用遥感图像的多通道数据来实现重建结果的光谱相干性。为了优化提出的变异模型,采用了Bregmanized-operator-splitting算法。在模拟和真实图像上测试了提出的修复算法。实验结果证明了该算法的有效性。

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