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Simulation of Atmospheric Profile Retrieval from Hyperspectral Infrared Data under Cloudy Condition

机译:在多云条件下仿真高光谱红外数据的大气轮廓检索

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In this paper the simulated space-based high spectral resolution infrared radiances with different cloud top heights and effective cloud fractions are used to demonstrate the measurement sensitivity and atmospheric profile retrieval performance. The simulated cloudy retrieval of atmospheric temperature and moisture derived from the statistical eigenvector regression algorithm are analyzed with and without the cloud top height classification. Collocated cloudy AIRS (the Atmospheric InfraRed Sounder) and the associated clear MODIS (the Moderate Resolution Imaging Spectroradiomete) infrared observations within the AIRS field of view (FOV) are also used to demonstrate the profile retrieval improvement below the cloud layer. The results show that the knowledge of cloud height is critical to sounding retrieval performance. In addition this paper has demonstrated that the use of collocated clear MODIS multi-spectral imager data along with the AIRS high spectral resolution infrared radiances can greatly improve the single FOV cloudy retrieval even under opaque cloudy condition.
机译:在本文中,使用具有不同云顶部高度和有效云分数的模拟的基于空间的高光谱分辨率红外线辐射来证明测量灵敏度和大气轮廓检索性能。分析了统计特征向回归算法的常压和水分的模拟多云检索,并且没有云顶部高度分类。还用于在烟空视场(FOV)内的Constrocated Cloudy Air(大气红外发声器)和相关的明确修改(适度分辨率的成像光谱分析仪)红外测量,用于展示云层以下的轮廓检索改进。结果表明,云高度的知识对听起来的检索性能至关重要。此外,本文表明,即使在不透明的阴天条件下,使用搭配清晰的MODIS多光谱成像器数据以及Airs高频光谱分辨率红外线的使用可以大大改善单个FOV阴天检索。

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