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Cloud detection and trace gas retrieval from the next generation satellite remote sensing instruments.

机译:从下一代卫星遥感仪器中进行云探测和痕量气体检索。

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The objective of this thesis is to develop a cloud detection algorithm suitable for the National Polar Orbiting Environmental Satellite System (NPOESS) Visible Infrared Imaging Radiometer Suite (VIIRS) and methods for atmospheric trace gas retrieval for future satellite remote sensing instruments. The development of this VIIRS cloud mask required a flowdown process of different sensor models in which a variety of sensor effects were simulated and evaluated. This included cloud simulations and cloud test development to investigate possible sensor effects, and a comprehensive flowdown analysis of the algorithm was conducted. In addition, a technique for total column water vapor retrieval using shadows was developed with the goal of enhancing water vapor retrievals under hazy atmospheric conditions. This is a new technique that relies on radiance differences between clear and shadowed surfaces, combined with ratios between water vapor absorbing and window regions. A novel method for retrieving methane amounts over water bodies, including lakes, rivers, and oceans, under conditions of sun glint has also been developed. The theoretical basis for the water vapor as well as the methane retrieval techniques is derived and simulated using a radiative transfer model.
机译:本文的目的是开发一种适用于国家极地轨道环境卫星系统(NPOESS)可见红外成像辐射计套件(VIIRS)的云探测算法,以及适用于未来卫星遥感仪器的大气痕量气体检索方法。该VIIRS云掩模的开发需要不同传感器模型的下水过程,在该过程中,模拟和评估了各种传感器效果。这包括云模拟和云测试开发,以研究可能的传感器影响,并对算法进行了全面的流程分析。此外,开发了一种利用阴影进行总塔水蒸气回收的技术,目的是在朦胧的大气条件下增强水蒸气的回收。这是一种新技术,它依赖于透明表面和阴影表面之间的辐射率差异,以及吸水蒸气和窗口区域之间的比率。还开发了一种在阳光直射的条件下在水体(包括湖泊,河流和海洋)上获取甲烷量的新颖方法。利用辐射传输模型推导并模拟了水​​蒸气以及甲烷回收技术的理论基础。

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