DocumentCode :
1511935
Title :
Tomographic SAR Inversion by L_{1} -Norm Regularization—The Compressive Sensing Approach
Author :
Zhu, Xiao Xiang ; Bamler, Richard
Author_Institution :
Lehrstuhl fur Methodik der Fernerkundung, Tech. Univ. Munchen, Munich, Germany
Volume :
48
Issue :
10
fYear :
2010
Firstpage :
3839
Lastpage :
3846
Abstract :
Synthetic aperture radar (SAR) tomography (TomoSAR) extends the synthetic aperture principle into the elevation direction for 3-D imaging. The resolution in the elevation direction depends on the size of the elevation aperture, i.e., on the spread of orbit tracks. Since the orbits of modern meter-resolution spaceborne SAR systems, like TerraSAR-X, are tightly controlled, the tomographic elevation resolution is at least an order of magnitude lower than in range and azimuth. Hence, super-resolution reconstruction algorithms are desired. The high anisotropy of the 3-D tomographic resolution element renders the signals sparse in the elevation direction; only a few pointlike reflections are expected per azimuth-range cell. This property suggests using compressive sensing (CS) methods for tomographic reconstruction. This paper presents the theory of 4-D (differential, i.e., space-time) CS TomoSAR and compares it with parametric (nonlinear least squares) and nonparametric (singular value decomposition) reconstruction methods. Super-resolution properties and point localization accuracies are demonstrated using simulations and real data. A CS reconstruction of a building complex from TerraSAR-X spotlight data is presented.
Keywords :
image reconstruction; image resolution; radar imaging; radar resolution; remote sensing by radar; spaceborne radar; synthetic aperture radar; 3D imaging; 3D tomographic resolution element; L1-norm regularization; azimuth-range cell; compressive sensing; elevation direction; point localization; spaceborne SAR systems; super-resolution reconstruction algorithm; synthetic aperture radar; tomographic SAR inversion; tomographic elevation resolution; Anisotropic magnetoresistance; Azimuth; Control systems; Image reconstruction; Radar tracking; Reconstruction algorithms; Signal resolution; Spaceborne radar; Synthetic aperture radar; Tomography; Compressive sensing (CS); TerraSAR-X; differential synthetic aperture radar tomography (D-TomoSAR); urban mapping;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2010.2048117
Filename :
5482209
Link To Document :
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