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Detecting cloud contamination in passive microwave satellite measurements over land

机译:在陆地上检测无源微波卫星测量中的云污染

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Remotely sensed brightness temperatures from passive observations in the microwave (MW) range are used to retrieve various geophysical parameters, e.g. near-surface temperature. Cloud contamination, although less of an issue at MW than at visible to infrared wavelengths, may adversely affect retrieval quality, particularly in the presence of strong cloud formation (convective towers) or precipitation. To limit errors associated with cloud contamination, we present an index derived from stand-alone MW brightness temperature observations, which measure the probability of residual cloud contamination. The method uses a statistical neural network model trained with the Global Precipitation Microwave Imager (GMI) observations and a cloud classification from Meteosat Second Generation-Spinning Enhanced Visible and Infrared Imager (MSG-SEVIRI). This index is available over land and ocean and is developed for multiple frequency ranges to be applicable to successive generations of MW imagers. The index confidence increases with the number of available frequencies and performs better over the ocean, as expected. In all cases, even for the more challenging radiometric signatures over land, the model reaches an accuracy of ≥70% in detecting contaminated observations. Finally an application of this index is shown that eliminates grid cells unsuitable for land surface temperature estimation.
机译:微波(MW)范围内的被动观测的远程感测的亮度温度用于检索各种地球物理参数,例如,近表面温度。云污染,尽管MW的问题少于红外波长的可见可能会对检索质量产生不利影响,但特别是在存在强烈的云层(对流塔)或沉淀的情况下。为了限制与云污染相关的错误,我们提出了一种源自独立MW亮度温度观察的指数,其测量残余云污染的可能性。该方法使用具有全局降水微波成像器(GMI)观察的统计神经网络模型,以及来自Meteosat第二代纺纱增强的可见和红外成像器(MSG-Seviri)的云分类。该指数可用于陆地和海洋,是为多个频率范围开发的,适用于连续几代MW成像仪。指数置信度随着可用频率的数量而增加,并按照预期的情况表现出更好的海洋。在所有情况下,即使对于在陆地上更具挑战性的辐射症状,甚至达到检测污染观察时达到≥70%的准确性。最后,显示了该指标的应用,其消除了不适合陆地温度估计的网格单元。

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