Blind Multi-Spectral Image Pan-Sharpening

Lantao Yu, Dehong Liu, H. Mansour, P. Boufounos, Yanting Ma
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引用次数: 8

Abstract

We address the problem of sharpening low spatial-resolution multi-spectral (MS) images with their associated misaligned high spatial-resolution panchromatic (PAN) image, based on priors on the spatial blur kernel and on the cross-channel relationship. In particular, we formulate the blind pan-sharpening problem within a multi-convex optimization framework using total generalized variation for the blur kernel and local Laplacian prior for the cross-channel relationship. The problem is solved by the alternating direction method of multipliers (ADMM), which alternately updates the blur kernel and sharpens intermediate MS images. Numerical experiments demonstrate that our approach is more robust to large misalignment errors and yields better super resolved MS images compared to state-of-the-art optimization-based and deep-learning-based algorithms.
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盲多光谱图像泛锐化
基于空间模糊核和跨通道关系的先验,我们解决了低空间分辨率多光谱(MS)图像与其相关的错位高空间分辨率全色(PAN)图像的锐化问题。特别地,我们利用模糊核的总广义变分和跨通道关系的局部拉普拉斯先验,在多凸优化框架内提出了盲泛锐化问题。该方法采用交替方向乘法器(ADMM),交替更新模糊核和锐化中间MS图像。数值实验表明,与基于最先进的优化和基于深度学习的算法相比,我们的方法对较大的不对准误差更具鲁棒性,并产生更好的超分辨率MS图像。
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