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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Optimal estimation of spectral surface reflectance in challenging atmospheres
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Optimal estimation of spectral surface reflectance in challenging atmospheres

机译:挑战性环境中光谱表面反射率的最佳估计

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Optimal Estimation (OE) methods can simultaneously estimate surface and atmospheric properties from remote Visible/Shortwave imaging spectroscopy. Simultaneous solutions can improve retrieval accuracy with principled uncertainty quantification for hypothesis testing. While OE has been validated under benign atmospheric conditions, future global missions will observe environments with high aerosol and water vapor loadings. This work addresses the gap with diverse scenes from NASA's Next Generation Airborne Visible Infrared Imaging Spectrometer (AVIRIS-NG) India campaign. We refine atmospheric models to represent variable aerosol optical depths and properties. We quantify retrieval accuracy and information content for both reflectance and aerosols over different surface types, comparing results to in situ and remote references. Additionally, we assess uncertainty of maximum a posteriori solutions using linearized estimates as well as sampling-based inversions that more completely characterize posterior uncertainties. Principled uncertainty quantification can combine multiple spacecraft data products while preventing local environmental biases in future global investigations.
机译:最佳估计(OE)方法可以同时估计远程可见/短波成像光谱的表面和大气性质。同时解决方案可以提高具有假设检测的原则性不确定性量化的检索精度。虽然OE在良性大气条件下验证,但未来的全球任务将观察高气溶胶和水蒸气载荷的环境。这项工作解决了来自NASA的下一代空中可见红外成像光谱仪(Aviris-NG)印度活动的不同场景的差距。我们优化大气模型以表示可变气溶胶光学深度和性质。我们在不同的表面类型上量化反射率和气溶胶的检索准确性和信息内容,比较原位和远程参考结果。此外,我们使用线性化估计和基于样品的反转来评估最大后验解解决方案的不确定性,更完全表征后部不确定。原则的不确定度量化可以将多个航天器数据产品组合,同时防止未来的全球调查中的当地环境偏差。

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