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Hyperspectral resolution enhancement using high-resolution multispectral imagery with arbitrary response functions

机译:使用具有任意响应函数的高分辨率多光谱图像增强高光谱分辨率

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A maximum a posteriori (MAP) estimation method for improving the spatial resolution of a hyperspectral image using a higher resolution auxiliary image is extended to address several practical remote sensing situations. These include cases where: 1) the spectral response of the auxiliary image is unknown and does not match that of the hyperspectral image; 2) the auxiliary image is multispectral; and 3) the spatial point spread function for the hyperspectral sensor is arbitrary and extends beyond the span of the detector elements. The research presented follows a previously reported MAP approach that makes use of a stochastic mixing model (SMM) of the underlying spectral scene content to achieve resolution enhancement beyond the intensity component of the hyperspectral image. The mathematical formulation of a generalized form of the MAP/SMM estimate is described, and the enhancement algorithm is demonstrated using various image datasets.
机译:用于使用高分辨率辅助图像来提高高光谱图像的空间分辨率的最大后验(MAP)估计方法被扩展为解决几种实际的遥感情况。这些情况包括:1)辅助图像的光谱响应未知,并且与高光谱图像不匹配; 2)辅助图像是多光谱的; 3)高光谱传感器的空间点扩展函数是任意的,并且扩展到检测器元素的范围之外。提出的研究遵循先前报告的MAP方法,该方法利用基础光谱场景内容的随机混合模型(SMM)来实现超出高光谱图像强度分量的分辨率增强。描述了MAP / SMM估计的广义形式的数学公式,并使用各种图像数据集演示了增强算法。

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