DocumentCode
1517933
Title
Three-Dimensional Humidity Retrieval Using a Network of Compact Microwave Radiometers to Correct for Variations in Wet Tropospheric Path Delay in Spaceborne Interferometric SAR Imagery
Author
Sahoo, Swaroop ; Reising, Steven C. ; Padmanabhan, Sharmila ; Vivekanandan, Jothiram ; Iturbide-Sanchez, Flavio ; Pierdicca, Nazzareno ; Pichelli, Emanuela ; Cimini, Domenico
Author_Institution
Electr. & Comput. Eng. Dept., Colorado State Univ., Fort Collins, CO, USA
Volume
49
Issue
9
fYear
2011
Firstpage
3281
Lastpage
3290
Abstract
Spaceborne interferometric synthetic aperture radar (SAR) (InSAR) imaging has been used for over a decade to monitor tectonic movements and landslides, as well as to improve digital elevation models. However, InSAR is affected by variations in round-trip propagation delay due to changes in ionospheric total electron content and in tropospheric humidity and temperature along the signal path. One of the largest sources of uncertainty in estimates of tropospheric path delay is the spatial and temporal variability of water vapor density, which currently limits the quality of InSAR products. This problem can be partially addressed by using a number of SAR interferograms from subsequent satellite overpasses to reduce the degradation in the images or by analyzing a long time series of interferometric phases from permanent scatterers. However, if there is a sudden deformation of the Earth´s surface, the detection of which is one of the principal objectives of InSAR measurements over land, the effect of water vapor variations cannot be removed, reducing the quality of the interferometric products. In those cases, high-resolution information on the atmospheric water vapor content and its variation with time can be crucial to mitigate the effect of wet-tropospheric path delay variations. This paper describes the use of a ground-based microwave radiometer network to retrieve 3-D water vapor density with fine spatial and temporal resolution, which can be used to reduce InSAR ambiguities due to changes in wet-tropospheric path delay. Retrieval results and comparisons between the integrated water vapor measured by the radiometer network and satellite data are presented.
Keywords
atmospheric humidity; digital elevation models; evaporation; humidity measurement; radiometry; tectonics; terrain mapping; troposphere; Earth surface; InSAR ambiguities; atmospheric water vapor content; compact microwave radiometers; digital elevation models; ground-based microwave radiometer network; ionospheric total electron content; radiometer network; round-trip propagation delay; satellite data; spaceborne interferometric SAR imagery; synthetic aperture radar; tectonic movements; three-dimensional humidity retrieval; tropospheric humidity; tropospheric path delay; tropospheric temperature; water vapor density; wet tropospheric path delay; Absorption; Brightness temperature; MODIS; Microwave radiometry; Spatial resolution; Temperature measurement; Digital elevation models; humidity measurement; microwave radiometry; moisture; remote sensing;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2011.2119400
Filename
5768074
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