Title :
Urban Digital Elevation Model Reconstruction Using Very High Resolution Multichannel InSAR Data
Author :
Shabou, A. ; Baselice, Fabio ; Ferraioli, Giampaolo
Author_Institution :
Vision & ContentEngineering Lab., Commissariat a l´energie atomique (CEA), Gif-sur-Yvettes, France
Abstract :
Interferometric synthetic aperture radar (SAR) (InSAR) systems allow 3-D reconstruction of observed scene. In this paper, an innovative approach for phase unwrapping and digital elevation model (DEM) generation using multichannel InSAR data is presented. The proposed algorithm, exploiting both the amplitude and phase of the available complex data, is able to unwrap and simultaneously regularize the observed data. In particular, the exploitation of amplitude data within the unwrapping chain helps in preserving sharp discontinuities typical of urban areas. As a result, the technique provides accurate DEM reconstructions. For this aim, a Markovian approach, together with a new graph-cut-based optimization algorithm, has been considered. The method has been developed specifically to work in urban areas with very high resolution InSAR image stacks, being able to automatically compensate possible phase offsets. Results on both simulated and real case studies are reported, showing the effectiveness of the method.
Keywords :
Markov processes; geophysical image processing; graph theory; image reconstruction; image resolution; optimisation; radar imaging; radar interferometry; synthetic aperture radar; 3D reconstruction; DEM generation; Markovian approach; amplitude data; digital elevation model generation; graph-cut-based optimization algorithm; interferometric synthetic aperture radar systems; phase offsets; phase unwrapping generation; unwrapping chain; urban DEM reconstructions; urban areas; urban digital elevation model reconstruction; very high resolution InSAR image stacks; very high resolution multichannel InSAR data; Image reconstruction; Markov random fields; Synthetic aperture radar; Three dimensional displays; Urban areas; Atmospheric artifact correction; Markov random fields (MRFs); graph-cut theory; multichannel synthetic aperture radar (SAR) interferometry; phase-amplitude joint analysis;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2012.2191155