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首页> 外文期刊>Information Sciences: An International Journal >Covariance intersection based image fusion technique with application to pansharpening in remote sensing
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Covariance intersection based image fusion technique with application to pansharpening in remote sensing

机译:基于协方差相交的图像融合技术及其在遥感全貌中的应用

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Image fusion of multi-spectral images and panchromatic images has been widely applied to imaging sensors. Multi-spectral images are rich in spectral information whereas panchromatic images have relatively higher spatial resolution. In this paper, we consider the image fusion as an estimation problem, that is to estimate the ideal scene of multi-spectral images at the resolution of panchromatic images. We propose a method of combining the covariance intersection (CI) principle with the expectation maximization (EM) algorithm to develop a novel image fusion approach. In contrast to other fusion methods, the proposed scheme takes cross-correlation among data sources into account, and thus provides consistent and accurate estimates through convex combinations. Since the covariance information is usually unknown in practice, the EM method is employed to provide a maximum likelihood estimate (MLE) of the covariance matrix. Real multi-spectral and panchromatic images are used to evaluate the effectiveness of the proposed EM-CI method. The proposed algorithm is found to preserve both the spectral information of the multi-spectral image and the high spatial resolution information of the panchromatic image more effectively than the conventional image fusion techniques.
机译:多光谱图像和全色图像的图像融合已被广泛应用于成像传感器。多光谱图像具有丰富的光谱信息,而全色图像具有相对较高的空间分辨率。在本文中,我们将图像融合视为一个估计问题,即以全色图像的分辨率估计多光谱图像的理想场景。我们提出了一种将协方差相交(CI)原理与期望最大化(EM)算法相结合的方法,以开发一种新颖的图像融合方法。与其他融合方法相比,所提出的方案考虑了数据源之间的互相关,因此通过凸组合提供了一致且准确的估计。由于协方差信息在实践中通常是未知的,因此采用EM方法来提供协方差矩阵的最大似然估计(MLE)。实际的多光谱和全色图像用于评估所提出的EM-CI方法的有效性。发现所提出的算法比常规图像融合技术更有效地保留了多光谱图像的光谱信息和全色图像的高空间分辨率信息。

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