首页> 外文会议>Science and Technology for Humanity (TIC-STH), 2009 >On the retrival of vegetation parameters from multi-angular hyperspectral remote sensing data
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On the retrival of vegetation parameters from multi-angular hyperspectral remote sensing data

机译:基于多角度高光谱遥感数据的植被参数反演

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In this study, a new algorithm was developed to effectively use multi-angular hyperspectral remote sensing data in the retrieval of vegetation parameters based on a coupled leaf and canopy reflectance model. Since the observations acquired at different viewing angles tend to have different noise levels, the posterior variance factors of the observations at different angles were estimated and they were then used to construct the observations' weight factors in model inversion. The developed method was validated using simulated data. The results show that the posterior variance factor can be used to characterize the uncertainty in the data from different sources and thus provides a means to weight these data in the model inversion.
机译:在这项研究中,开发了一种新的算法,该算法可以基于多叶和冠层反射率模型,有效地利用多角度高光谱遥感数据检索植被参数。由于在不同视角下获取的观测值往往具有不同的噪声水平,因此估算了在不同角度下观测值的后验方差因子,然后将它们用于在模型反演中构建观测值的权重因子。使用模拟数据验证了开发的方法。结果表明,后方差因子可用于表征来自不同来源的数据的不确定性,从而提供了一种在模型反演中对这些数据进行加权的方法。

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