DocumentCode
250895
Title
Calibrating and centering quasi-central catadioptric cameras
Author
Schonbein, Miriam ; Straus, Tobias ; Geiger, Andreas
Author_Institution
Inst. of Meas. & Control Syst., Karlsruhe Inst. of Technol., Karlsruhe, Germany
fYear
2014
fDate
May 31 2014-June 7 2014
Firstpage
4443
Lastpage
4450
Abstract
Non-central catadioptric models are able to cope with irregular camera setups and inaccuracies in the manufacturing process but are computationally demanding and thus not suitable for robotic applications. On the other hand, calibrating a quasi-central (almost central) system with a central model introduces errors due to a wrong relationship between the viewing ray orientations and the pixels on the image sensor. In this paper, we propose a central approximation to quasi-central catadioptric camera systems that is both accurate and efficient. We observe that the distance to points in 3D is typically large compared to deviations from the single viewpoint. Thus, we first calibrate the system using a state-of-the-art non-central camera model. Next, we show that by remapping the observations we are able to match the orientation of the viewing rays of a much simpler single viewpoint model with the true ray orientations. While our approximation is general and applicable to all quasi-central camera systems, we focus on one of the most common cases in practice: hypercatadioptric cameras. We compare our model to a variety of baselines in synthetic and real localization and motion estimation experiments. We show that by using the proposed model we are able to achieve near non-central accuracy while obtaining speed-ups of more than three orders of magnitude compared to state-of-the-art non-central models.
Keywords
approximation theory; calibration; cameras; motion estimation; calibration; central approximation; hypercatadioptric camera; image sensor; motion estimation experiment; noncentral catadioptric camera model; quasicentral catadioptric camera system; robotic application; viewing ray orientation; Approximation methods; Calibration; Cameras; Computational modeling; Mirrors; Robot vision systems; Three-dimensional displays;
fLanguage
English
Publisher
ieee
Conference_Titel
Robotics and Automation (ICRA), 2014 IEEE International Conference on
Conference_Location
Hong Kong
Type
conf
DOI
10.1109/ICRA.2014.6907507
Filename
6907507
Link To Document