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首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >Hyperspectral and panchromatic image fusion using unmixing-based constrained nonnegative matrix factorization
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Hyperspectral and panchromatic image fusion using unmixing-based constrained nonnegative matrix factorization

机译:基于非混合约束非负矩阵分解的高光谱和全色图像融合

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摘要

Image fusion is an important technique in remote sensing, as it could effectively combine the high spatial and the high spectral resolutions in order to obtain the complete and accurate description of the observed scene. To date, many image fusion techniques have been developed. However, the available methods could hardly produce the satisfactory results in dealing with the fusion between the hyperspectral image and panchromatic image, especially in the spectral aspect. Therefore, in this paper, a new fusion approach, called unmixing-based constrained nonnegative matrix factorization (UCNMF), is proposed. This approach uses the NMF unmixing technique to generate the abundance matrix and uses the panchromatic image to sharpen the the material maps. The constrained term aiming at preserving the spectral information is added and the fusion problem is turned into a constrained optimization problem. Additionally, a projected gradient algorithm aiming at get the numerical solution of the optimization problem is presented. Finally, three groups of experiments are given to demonstrate that the proposed fusion method could be recognized as an effective technique in hyperspectral image fusion.
机译:图像融合是遥感技术中的一项重要技术,因为它可以有效地组合高空间分辨率和高光谱分辨率,以获得对所观察场景的完整而准确的描述。迄今为止,已经开发了许多图像融合技术。然而,可用的方法在处理高光谱图像和全色图像之间的融合方面,特别是在光谱方面,几乎不能产生令人满意的结果。因此,本文提出了一种新的融合方法,称为基于混合的约束非负矩阵分解(UCNMF)。该方法使用NMF混合技术生成丰度矩阵,并使用全色图像锐化材质图。添加了旨在保留频谱信息的约束项,并将融合问题转化为约束优化问题。此外,提出了一种投影梯度算法,旨在获得优化问题的数值解。最后,通过三组实验来证明所提出的融合方法可以被认为是一种高光谱图像融合的有效技术。

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