Assessment of the SMAP Level-4 Surface and Root-Zone Soil Moisture Product Using In Situ Measurements

Rolf H. Reichle(Goddard Space Flight Center), Gabriëlle De Lannoy(KU Leuven), Qing Liu(Goddard Space Flight Center), J. Ardizzone(Goddard Space Flight Center), Andreas Colliander(Jet Propulsion Laboratory), Austin Conaty(Goddard Space Flight Center), Wade T. Crow(Agricultural Research Service), Thomas J. Jackson(Agricultural Research Service), L. A. Jones(University of Montana), John S. Kimball(University of Montana), Randal D. Koster(Goddard Space Flight Center), Sarith Mahanama(Goddard Space Flight Center), Edmond B. Smith(Goddard Space Flight Center), Aaron Berg(University of Guelph), Simone Bircher(Centre National de la Recherche Scientifique), David D. Bosch(Agricultural Research Service), Todd G. Caldwell(The University of Texas at Austin), Michael H. Cosh(Agricultural Research Service), Ángel González‐Zamora(Universidad de Salamanca), Chandra D. Holifield Collins(Agricultural Research Service), Karsten H. Jensen(University of Copenhagen), Stan Livingston(Agricultural Research Service), Ernesto López-Baeza(Universitat de València), José Martínez‐Fernández(Universidad de Salamanca), Heather McNairn(Agriculture and Agri-Food Canada), Mahta Moghaddam(University of Southern California), Anna Pacheco(Agriculture and Agri-Food Canada), Thierry Pellarin(Institut polytechnique de Grenoble), John H. Prueger(Agricultural Research Service), Tracy Rowlandson(University of Guelph), M. S. Seyfried(Agricultural Research Service), Patrick J. Starks(Agricultural Research Service), Zhongbo Su(University of Twente), M. Thibeault(National Space Activities Commission), R. van der Velde(University of Twente), Jeffrey P. Walker(Monash University), Xiaoling Wu(Monash University), Yijian Zeng(University of Twente)
Journal of Hydrometeorology
July 28, 2017
Cited by 343Open Access
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Abstract

Abstract The Soil Moisture Active Passive (SMAP) mission Level-4 Surface and Root-Zone Soil Moisture (L4_SM) data product is generated by assimilating SMAP L-band brightness temperature observations into the NASA Catchment land surface model. The L4_SM product is available from 31 March 2015 to present (within 3 days from real time) and provides 3-hourly, global, 9-km resolution estimates of surface (0–5 cm) and root-zone (0–100 cm) soil moisture and land surface conditions. This study presents an overview of the L4_SM algorithm, validation approach, and product assessment versus in situ measurements. Core validation sites provide spatially averaged surface (root zone) soil moisture measurements for 43 (17) “reference pixels” at 9- and 36-km gridcell scales located in 17 (7) distinct watersheds. Sparse networks provide point-scale measurements of surface (root zone) soil moisture at 406 (311) locations. Core validation site results indicate that the L4_SM product meets its soil moisture accuracy requirement, specified as an unbiased RMSE (ubRMSE, or standard deviation of the error) of 0.04 m3 m−3 or better. The ubRMSE for L4_SM surface (root zone) soil moisture is 0.038 m3 m−3 (0.030 m3 m−3) at the 9-km scale and 0.035 m3 m−3 (0.026 m3 m−3) at the 36-km scale. The L4_SM estimates improve (significantly at the 5% level for surface soil moisture) over model-only estimates, which do not benefit from the assimilation of SMAP brightness temperature observations and have a 9-km surface (root zone) ubRMSE of 0.042 m3 m−3 (0.032 m3 m−3). Time series correlations exhibit similar relative performance. The sparse network results corroborate these findings over a greater variety of climate and land cover conditions.


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