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Joint Sentinel-1 and SMAP data assimilation to improve soil moisture estimates

机译:联合Sentinel-1和SMAP数据同化以改善土壤湿度估算

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摘要

SMAP (Soil Moisture Active and Passive) radiometer observations at ~40 km resolution are routinely assimilated into the NASA Catchment Land Surface Model to generate the 9-km SMAP Level-4 Soil Moisture product. This study demonstrates that adding high-resolution radar observations from Sentinel-1 to the SMAP assimilation can increase the spatio-temporal accuracy of soil moisture estimates. Radar observations were assimilated either separately from or simultaneously with radiometer observations. Assimilation impact was assessed by comparing 3-hourly, 9-km surface and root-zone soil moisture simulations with in situ measurements from 9-km SMAP core validation sites and sparse networks, from May 2015 to December 2016. The Sentinel-1 assimilation consistently improved surface soil moisture, whereas root-zone impacts were mostly neutral. Relatively larger improvements were obtained from SMAP assimilation. The joint assimilation of SMAP and Sentinel-1 observations performed best, demonstrating the complementary value of radar and radiometer observations.
机译:通常将约40 km分辨率的SMAP(主动和被动土壤水分)辐射计观测值同化到NASA流域土地表面模型中,以生成9 km的SMAP 4级土壤水分产品。这项研究表明,将Sentinel-1的高分辨率雷达观测值添加到SMAP同化中可以提高土壤湿度估算的时空精度。雷达观测与辐射计观测分开或同时进行同化。通过比较2015年5月至2016年12月的9小时SMAP核心验证站点和稀疏网络的3小时,9公里表面和根区土壤湿度模拟与原位测量,评估了同化影响。Sentinel-1同化持续进行改善了表层土壤水分,而根区影响大部分是中性的。从SMAP同化中获得了相对较大的改进。 SMAP和Sentinel-1观测值的联合同化效果最好,证明了雷达和辐射计观测值的互补价值。

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