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Theoretical aspects and operational results of physical deterministic sea surface temperature retrieval

机译:物理确定性海面温度反演的理论方面和操作结果

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Physical deterministic sea surface temperature (PDSST) retrieval scheme is built on radiative transfer forward model and a mathematically deterministic approach to the solution for inverse problem. This requires atmospheric profiles information from Numerical Weather Prediction (NWP), which offers the prospect to account for local retrieval conditions and yields a more uniform product with superior accuracy. One of the unprecedented capabilities of the PDSST scheme is that it can use aerosol profiles in addition to atmospheric profiles information for the forward modeling, and also allows for adjustment of the aerosol burden by including it as a retrieved element. Cloud detection is a vital part of SST retrieval processing. An innovative cloud and error masking (CEM) algorithm has been developed, combining the functional spectral differences and radiative transfer based cloud detection tests, especially the functional double difference tests are unique. These advancements have led to substantial improvements in information retrieval from expensive satellite measurement. This improvement refers to a dual benefit of increased data coverage (reduced false alarms) and detection of actual cloud contamination (improved detection rate). The PDSST retrieval suite, is combining the PDSST retrieval scheme and CEM, demonstrates the superiority of this approach with an overall ~3-4 times information gain when implemented on data from MODIS-Aqua and GOES Imager. For example, RMSE reduction from 0.52 K to 0.35 K and data coverage enhanced from ~9% to ~19% as compared to NASA operational MODIS-AQUA SST products.
机译:物理确定性海面温度(PDSST)检索方案基于辐射前向转移模型和数学确定性方法来求解反问题。这就需要来自数值天气预报(NWP)的大气廓线信息,该信息为解决本地取回条件提供了前景,并能以更高的精度生成更均匀的产品。 PDSST方案的前所未有的功能之一是,除了大气廓线信息外,它还可以使用气溶胶廓线进行正向建模,并且还可以通过将其作为检索元素来调整气溶胶负荷。云检测是SST检索处理的重要组成部分。开发了一种创新的云和错误掩蔽(CEM)算法,该算法结合了功能谱差异和基于辐射转移的云检测测试,尤其是功能双差异测试是独一无二的。这些进步已导致从昂贵的卫星测量中获取信息的显着改善。此改进是增加数据覆盖范围(减少误报)和检测实际云污染(提高检测率)的双重好处。 PDSST检索套件结合了PDSST检索方案和CEM,展示了这种方法的优越性,当对来自MODIS-Aqua和GOES Imager的数据实施时,该方法具有约3-4倍的总体信息增益。例如,与NASA运作的MODIS-AQUA SST产品相比,RMSE从0.52 K减少到0.35 K,数据覆盖范围从〜9%增加到〜19%。

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