HR: 1330h
AN: H22D-0958 [PDF]
TI: An Observing System Simulation Experiment for HYDROS Soil Moisture Retrievals
AU: * Njoku, E G
EM: eni.g.njoku@jpl.nasa.gov
AF: Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA
91109 United States
AU: Chan, T K
EM: tsz.k.chan@jpl.nasa.gov
AF: Jet Propulsion Laboratory, California Institute of Technology, 4800 Oak Grove Drive, Pasadena, CA
91109 United States
AU: Crow, W T
EM: wcrow@hydrolab.arsusda.gov
AF: USDA ARS Hydrology and Remote Sensing Laboratory, 104 Bldg 007 BARC West, Beltsville, MD 20705 United States
AU: Entekhabi, D
EM: darae@mit.edu
AF: Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge,
MA 02139 United States
AU: Houser, P R
EM: paul.r.houser@nasa.gov
AF: Hydrological Sciences Branch, NASA Goddard Space Flight Center, Greenbelt, MD 20771 United States
AU: Jackson, T J
EM: tjackson@hydrolab.arsusda.gov
AF: USDA ARS Hydrology and Remote Sensing Laboratory, 104 Bldg 007 BARC West, Beltsville, MD 20705 United States
AU: Hsu, A
EM: hsu@hydrolab.arsusda.gov
AF: USDA ARS Hydrology and Remote Sensing Laboratory, 104 Bldg 007 BARC West, Beltsville, MD 20705 United States
AU: O'Neill, P E
EM: peggy.e.oneill@nasa.gov
AF: Hydrological Sciences Branch, NASA Goddard Space Flight Center, Greenbelt, MD 20771 United States
AU: Shi, J
EM: shi@guardian.icess.ucsb.edu
AF: Institute for Computational Earth System Science, University of California, Santa Barbara, CA 93106 United States
AU: Zhan, X
EM: xzhan@lshp.gsfc.nasa.gov
AF: Hydrological Sciences Branch, NASA Goddard Space Flight Center, Greenbelt, MD 20771 United States
AB:
The Hydrosphere State (HYDROS) mission is designed to provide global estimates of surface soil moisture and freeze/thaw
state. In this paper we present results of a simulation study of soil moisture products to be derived from the HYDROS
mission. The study illustrates different approaches being developed for HYDROS soil moisture retrieval using L-band radar
and radiometer observations, and indicates how retrieval accuracy is affected by landcover heterogeneity and vegetation water
content (VWC) at different spatial resolutions. The study is based on a modeled geophysical domain in the south-central
United States, with simulated landcover, soil moisture, and soil temperature characteristics over a one-month period.
Simulated microwave backscatter and emission measurements were computed from the geophysical fields and averaged to the
HYDROS radar and radiometer spatial resolutions of 3-km and 40-km, respectively. Representative instrument sampling and
noise characteristics were included. The prototype HYDROS retrieval algorithms were applied to the simulated observations,
and accuracies of soil moisture products at 3, 40, and 10 km resolutions were estimated. The simulations afford a capability
to examine trade-offs of resolution and accuracy, as well as sensitivity to instrument noise and model error. The
simulations indicate the degree to which increasing VWC and degree of heterogeneity degrade the retrieval accuracy. The
results confirm that the HYDROS 10-km product acuracy goal of 4% volumetric soil moisture is feasible for footprint-averaged
vegetation water content up to approximately 5 kg m-2.
DE: 1640 Remote sensing
DE: 1655 Water cycles (1836)
DE: 1833 Hydroclimatology
DE: 1866 Soil moisture
SC: Hydrology [H]
MN: 2003 Fall Meeting