DocumentCode :
143436
Title :
TerraSAR-X pixel localization accuracy: Approaching the centimeter level
Author :
Eineder, Michael ; Balss, Ulrich ; Gisinger, Christoph ; Hackel, Stefan ; Xiaoying Cong ; Ulmer, Franz Georg ; Fritz, Thomas
Author_Institution :
German Aerosp. Center (DLR), Remote Sensing Technol. Inst. (IMF), Oberpfaffenhofen, Germany
fYear :
2014
fDate :
13-18 July 2014
Firstpage :
2669
Lastpage :
2670
Abstract :
The German satellites TerraSAR-X/TanDEM-X are high resolution imaging SARs with a resolution in the meter and even sub-meter range. The original product specification document stated an absolute geometric pixel localization accuracy in the same order of magnitude i.e. 1 meter. It was shown by several teams that this accuracy requirement is easily met and even surpassed [1] by the operational products. During the last years the remaining residual error sources could be further studied and attributed mainly to tropospheric delay variations [2] geodynamic effects such as solid earth tides [3] and plate tectonics to refraction in the ionosphere and to technical limitations in the satellite [4]. Our team investigated all these contributions developed correction and calibration methods and validated them in experiments with corner reflectors at different locations. Furthermore we explore novel applications of this high geolocation accuracy that range from classical earth surface displacement measurements to the localization of scatterers in 3D space with a precision comparable to GNSS. This paper provides a summary of latest measurement results of our globally distributed corner reflectors which show consistently a high accuracy better than 2 cm in range and azimuth. Furthermore we report on new developments concerning tropospheric correction using ECMWF and numerical weather models (WRF). Using the best available compensation techniques we can demonstrate accurate 3D localization of corner reflectors and of other objects. Current investigations aim to further improve the orbital accuracy to sub-centimeter level by improved modelling of air-drag and solar radiation pressure on the spacecraft.
Keywords :
artificial satellites; atmospheric techniques; geometry; ionosphere; satellite navigation; solar radiation; synthetic aperture radar; tectonics; tides; troposphere; weather forecasting; 3D space scatterer localization; ECMWF; GNSS; German satellite; TerraSAR-X pixel localization accuracy; TerraSAR-X-TanDEM-X satellite; WRF; absolute geometric pixel localization accuracy; accuracy requirement; available compensation technique; calibration method; centimeter level; classical Earth surface displacement measurement range; corner reflector accurate 3D localization; corner reflector experiment; correction method; even sub-meter range; globally distributed corner reflector; high geolocation accuracy novel application; high resolution imaging SAR; improved air-drag modelling; ionosphere refraction; meter sub-meter range; numerical weather model; operational product; original product specification document; plate tectonic; residual error source; satellite technical limitation; solid Earth tide geodynamic effect; spacecraft solar radiation pressure; sub-centimeter level orbital accuracy improvement; tropospheric correction; tropospheric delay variation; Accuracy; Atmospheric modeling; Azimuth; Earth; Extraterrestrial measurements; Sea measurements; Three-dimensional displays; Imaging Geodesy; SAR absolute ranging; TerraSAR-X;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Geoscience and Remote Sensing Symposium (IGARSS), 2014 IEEE International
Conference_Location :
Quebec City, QC
Type :
conf
DOI :
10.1109/IGARSS.2014.6947023
Filename :
6947023
Link To Document :
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