Geolocation, Calibration and Surface Resolution of CYGNSS GNSS-R Land Observations

被引:53
作者
Gleason, Scott [1 ]
O'Brien, Andrew [2 ]
Russel, Anthony [3 ]
Al-Khaldi, Mohammad M. [2 ]
Johnson, Joel T. [2 ]
机构
[1] Univ Corp Atmospher Res, Constellat Observing Syst Meteorol Ionosphere & C, Boulder, CO 80301 USA
[2] Ohio State Univ, Dept Elect & Comp Engn, Columbus, OH 43210 USA
[3] Univ Michigan, Dept Climate & Space Sci & Engn, Ann Arbor, MI 48109 USA
关键词
land processes; calibration; GNSS; GPS; reflectometry; bistatic radar; CYGNSS; SOIL-MOISTURE; SCATTERING; REFLECTIONS;
D O I
10.3390/rs12081317
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This paper presents the processing algorithms for geolocating and calibration of the Cyclone Global Navigation Satellite System (CYGNSS) level 1 land data products, as well as analysis of the spatial resolution of Global Navigation Satellite System Reflectometry (GNSS-R) coherent reflections. Accurate and robust geolocation and calibration of GNSS-R land observations are necessary first steps that enable subsequent geophysical parameter retrievals. The geolocation algorithm starts with an initial specular point location on the Earth's surface, predicted by modeling the Earth as a smooth ellipsoid (the WGS84 representation) and using the known transmitting and receiving satellite locations. Information on terrain topography is then compiled from the Shuttle Radar Topography Mission (SRTM) generated Digital Elevation Map (DEM) to generate a grid of local surface points surrounding the initial specular point location. The delay and Doppler values for each point in the local grid are computed with respect to the empirically observed location of the Delay Doppler Map (DDM) signal peak. This is combined with local incident and reflection angles across the surface using SRTM estimated terrain heights. The final geolocation confidence is estimated by assessing the agreement of the three geolocation criteria at the estimated surface specular point on the local grid, including: the delay and Doppler values are in agreement with the CYGNSS observed signal peak and the incident and reflection angles are suitable for specular reflection. The resulting geolocation algorithm is first demonstrated using an example GNSS-R reflection track that passes over a variety of terrain conditions. It is then analyzed using a larger set of CYGNSS data to obtain an assessment of geolocation confidence over a wide range of land surface conditions. Following, an algorithm for calibrating land reflected signals is presented that considers the possibility of both coherent and incoherent scattering from land surfaces. Methods for computing both the bistatic radar cross section (BRCS, for incoherent returns) and the surface reflectivity (for coherent returns) are presented. a flag for classifying returns as coherent or incoherent developed in a related paper is recommended for use in selecting whether the BRCS or reflectivity should be used in further analyses for a specific DDM. Finally, a study of the achievable surface feature detection resolution when coherent reflections occur is performed by examining a series of CYGNSS coherent reflections across an example river. Ancillary information on river widths is compared to the observed CYGNSS coherent observations to evaluate the achievable surface feature detection resolution as a function of the DDM non-coherent integration interval.
引用
收藏
页数:19
相关论文
共 22 条
[1]  
Al-Khaldi M.M., 2019, IEEE T GEOSCI REMOTE
[2]   Patterns of river width and surface area revealed by the satellite-derived North American River Width data set [J].
Allen, George H. ;
Pavelsky, Tamlin M. .
GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (02) :395-402
[3]  
[Anonymous], 2006, THESIS
[4]   Spatial Resolution in GNSS-R Under Coherent Scattering [J].
Camps, Adriano .
IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2020, 17 (01) :32-36
[5]   Sensitivity of GNSS-R Spaceborne Observations to Soil Moisture and Vegetation [J].
Camps, Adriano ;
Park, Hyuk ;
Pablos, Miriam ;
Foti, Giuseppe ;
Gommenginger, Christine P. ;
Liu, Pang-Wei ;
Judge, Jasmeet .
IEEE JOURNAL OF SELECTED TOPICS IN APPLIED EARTH OBSERVATIONS AND REMOTE SENSING, 2016, 9 (10) :4730-4742
[6]   First Evaluation of Topography on GNSS-R: An Empirical Study Based on a Digital Elevation Model [J].
Carreno-Luengo, Hugo ;
Luzi, Guido ;
Crosetto, Michele .
REMOTE SENSING, 2019, 11 (21)
[7]   Soil Moisture Sensing Using Spaceborne GNSS Reflections: Comparison of CYGNSS Reflectivity to SMAP Soil Moisture [J].
Chew, C. C. ;
Small, E. E. .
GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (09) :4049-4057
[8]   CYGNSS data map flood inundation during the 2017 Atlantic hurricane season [J].
Chew, Clara ;
Reager, John T. ;
Small, Eric .
SCIENTIFIC REPORTS, 2018, 8
[9]   Bistatic Coherent Scattering From Rough Soils With Application to GNSS Reflectometry [J].
Comite, Davide ;
Ticconi, Francesca ;
Dente, Laura ;
Guerriero, Leila ;
Pierdicca, Nazzareno .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2020, 58 (01) :612-625
[10]  
Gebre-Egziabher Demoz., 2009, GNSS Applications and Methods