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Nonlinear unmixing of vegetated areas: A model comparison based on simulated and real hyperspectral data

机译:植被区域的非线性突发:基于模拟和实际高光谱数据的模型比较

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When analyzing remote sensing hyperspectral images, numerous works dealing with spectral unmixing assume the pixels result from linear combinations of the endmember signatures. However, this assumption cannot be fulfilled, in particular when considering images acquired over vegetated areas. As a consequence, several nonlinear mixing models have been recently derived to take various nonlinear effects into account when unmixing hyperspectral data. Unfortunately, these models have been empirically proposed and without thorough validation. This paper attempts to fill this gap by taking advantage of two sets of real and physical-based simulated data. The accuracy of various linear and nonlinear models and the corresponding unmixing algorithms is evaluated with respect to their ability of fitting the sensed pixels and of providing accurate estimates of the abundances.
机译:在分析遥感高光谱图像时,处理光谱解密的许多作品假设像素由端部签名的线性组合产生。然而,当考虑在植被区域获取的图像时,特别是在考虑到图像时不能满足这种假设。结果,最近已经导出了几种非线性混合模型,以在解密高光谱数据时考虑各种非线性效应。不幸的是,这些模型已经经验提出,没有彻底验证。本文试图通过利用两组实际和物理的模拟数据来填补这种差距。关于其拟合所感测像素的能力和提供对丰富的准确估计,评估各种线性和非线性模型和相应的解混算法的准确性。

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