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Adjustable Model-Based Fusion Method for Multispectral and Panchromatic Images

机译:基于可调模型的多光谱和全色图像融合方法

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摘要

In this paper, an adjustable model-based image fusion method for multispectral (MS) and panchromatic (PAN) images is developed. The relationships of the desired high spatial resolution (HR) MS images to the observed low-spatial-resolution MS images and HR PAN image are formulated with image observation models. The maximum a posteriori framework is employed to describe the inverse problem of image fusion. By choosing particular probability density functions, the fused HR MS images are solved using a gradient descent algorithm. In particular, two functions are defined to adaptively determine most regularization parameters using the partially fused results at each iteration, retaining one parameter to adjust the tradeoff between the enhancement of spatial information and the maintenance of spectral information. The proposed method has been tested using QuickBird and IKONOS images and compared to several known fusion methods using quantitative evaluation indices. The experimental results verify the efficacy of this method.
机译:本文提出了一种基于可调模型的多光谱(MS)和全色(PAN)图像融合方法。期望的高空间分辨率(HR)MS图像与观察到的低空间分辨率MS图像和HR PAN图像之间的关系是通过图像观察模型制定的。采用最大后验框架描述图像融合的逆问题。通过选择特定的概率密度函数,可以使用梯度下降算法对融合的HR MS图像进行求解。特别是,定义了两个函数,以便在每次迭代时使用部分融合的结果来自适应地确定大多数正则化参数,并保留一个参数以调整空间信息的增强与频谱信息的维护之间的权衡。已使用QuickBird和IKONOS图像对提出的方法进行了测试,并与使用定量评估指标的几种已知融合方法进行了比较。实验结果证明了该方法的有效性。

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