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Neural Network Algorithms for Ozone Profile Retrieval from ESA-Envisat SCIAMACHY and NASA-Aura OMI Satellite Data

机译:来自ESA-Envisat Sciamachy和NASA-Aura OMI卫星数据的臭氧配置文件的神经网络算法

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In this paper we report on the design of Neural Networks algorithms to retrieve height resolved ozone information from Envisat SCIAMACHY and Aura OMI Level 1 data. We defined as input-output pairs the matching of a) SCIAMACHY UV/VIS reflectances with ozonesondes concentrations, and b) OMI UV/VIS reflectances with MLS concentrations. Design issues, as input vector dimensionality reduction, vertical resolution problems and topology selection are here analyzed. The inversion results are presented and discussed, with a special emphasis to retrievals at tropospheric height levels.
机译:在本文中,我们报告了神经网络算法的设计,从Envisat Sciamachy和Aura OMI等级1数据检索高度已解析的臭氧信息。我们定义为输入 - 输出对A)Sciamachy UV / VIS反射的匹配,具有臭氧浓度,b)uV / vis浓度的反射率。设计问题,作为输入向量维数减少,此处分析了垂直分辨率问题和拓扑选择。呈现和讨论了反转结果,特别强调了对流层高度水平的检索。

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