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Implementation of a global-scale operational data assimilation system for satellite-based soil moisture retrievals

机译:实施基于卫星的土壤水分取回的全球规模的业务数据同化系统

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Timely and accurate monitoring of global weather anomalies and drought conditions is essential for assessing global crop conditions. Soil moisture observations are particularly important for crop yield fluctuations provided by the US Department of Agriculture (USDA) Production Estimation and Crop Assessment Division (PECAD). The current system utilized by PECAD estimates soil moisture from a 2-layer water balance model based on precipitation and temperature data from World Meteorological Organization (WMO) and US Air Force Weather Agency (AFWA). The accuracy of this system is highly dependent on the data sources used; particularly the accuracy, consistency, and spatial and temporal coverage of the land and climatic data input into the models. However, many regions of the globe lack observations at the temporal and spatial resolutions required by PECAD. This study incorporates NASA's soil moisture remote sensing product provided by the EOS Advanced Microwave Scanning Radiometer (AMSR-E) into the U.S. Department of Agriculture Crop Assessment and Data Retrieval (CADRE) decision support system. A quasi-global-scale operational data assimilation system has been designed and implemented to provide CADRE a daily product of integrated AMSR-E soil moisture observations with the PECAD two-layer soil moisture model forecasts. A methodology of the system design and a brief evaluation of the system performance over the Conterminous United States (CONUS) is presented.
机译:对全球天气异常和干旱状况进行及时,准确的监控对于评估全球作物状况至关重要。土壤水分观测对于美国农业部(USDA)产量估算和作物评估部(PECAD)提供的作物产量波动特别重要。 PECAD使用的当前系统根据来自世界气象组织(WMO)和美国空军气象局(AFWA)的降水和温度数据,根据2层水平衡模型估算土壤湿度。该系统的准确性在很大程度上取决于所使用的数据源。特别是输入模型的土地和气候数据的准确性,一致性,时空覆盖率。但是,全球许多地区都缺乏PECAD要求的时空分辨率的观测资料。这项研究将EOS高级微波扫描辐射计(AMSR-E)提供的NASA土壤湿度遥感产品整合到美国农业部作物评估和数据检索(CADRE)决策支持系统中。设计并实施了一个准全球规模的运行数据同化系统,以向CADRE提供集成了AMSR-E土壤湿度观测值和PECAD两层土壤湿度模型预测值的日常产品。介绍了系统设计的方法论和对美国本土(CONUS)系统性能的简要评估。

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