Title :
Facade Reconstruction Using Multiview Spaceborne TomoSAR Point Clouds
Author :
Xiao Xiang Zhu ; Shahzad, Muhammad
Author_Institution :
Remote Sensing Technol. Inst. (IMF), German Aerosp. Center (DLR), Oberpfaffenhofen, Germany
Abstract :
Recent advances in very high resolution tomographic synthetic aperture radar inversion (TomoSAR) using multiple data stacks from different viewing angles enables us to generate 4-D (space-time) point clouds of the illuminated area from space with a point density comparable to LiDAR. They can be potentially used for facade reconstruction and deformation monitoring in urban environment. In this paper, we present the first attempt to reconstruct facades from this class of data: First, the facade region is extracted using the density estimates of the points projected to the ground plane, the extracted facade points are then clustered into individual facades by means of orientation analysis, surface (flat or curved) model parameters of the segmented building facades are further estimated, and the geometric primitives such as intersection points of the adjacent facades are determined to complete the reconstruction process. The proposed approach is illustrated and validated by examples using TomoSAR point clouds generated from stacks of TerraSAR-X high-resolution spotlight images from two viewing angles, i.e., both ascending and descending orbits. The performance of the proposed approach is systematically analyzed. To explore the possible applications, we refine the elevation estimate of each raw TomoSAR point by using its more accurate azimuth and range coordinates and the corresponding reconstructed building facade model. Compared to the raw TomoSAR point clouds, significantly improved elevation positioning accuracy is achieved. Finally, a first example of the reconstructed 4-D city model is presented.
Keywords :
buildings (structures); feature extraction; image reconstruction; image resolution; image segmentation; pattern clustering; radar imaging; radar resolution; remote sensing by radar; spaceborne radar; synthetic aperture radar; terrain mapping; 4D city model reconstruction; 4D point cloud generation; LiDAR; TerraSAR-X high-resolution spotlight images; adjacent facades; ascending orbit; building facade segmentation; curved surface; data stacks; deformation monitoring; density estimate; descending orbit; elevation estimate; elevation positioning accuracy; facade points clustering; facade points extraction; facade reconstruction; facade region extraction; flat surface; geometric primitives; ground plane; illuminated area; intersection points; multiview spaceborne TomoSAR point clouds; orientation analysis; point density; range coordinates; reconstruction process; space-time point cloud generation; surface model parameters; urban environment; very high resolution tomographic synthetic aperture radar inversion; viewing angles; Buildings; Feature extraction; Image reconstruction; Laser radar; Polynomials; Surface reconstruction; Synthetic aperture radar; 4-D city model; Facade reconstruction; TerraSAR-X; point cloud; tomographic synthetic aperture radar (SAR) inversion (TomoSAR);
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2013.2273619