DocumentCode :
2347282
Title :
Comparison of local plane fitting methods for range data
Author :
Wang, Caihua ; Tanahashi, Hideki ; Hirayu, Hidekazu ; Niwa, Yoshinori ; Yamamoto, Kazuhiko
Author_Institution :
Office of Regional Intensive Res. Project, JST, Softopia, Japan
Volume :
1
fYear :
2001
fDate :
2001
Abstract :
In this research, we introduce a reasonable noise model for range data which is obtained by a laser radar range finder, and derive two simple approximate solutions of optimal local plane fitting the range data under the noise model. We compare our methods with general least-squares based methods, such as Z-function fitting, the eigenvalue method, the maximum likelihood estimation method, and the renormalization method, an iterative method to obtain the optimal fitting of planes of range data under the noise model. All the methods are compared and evaluated using both synthetic range data and real range data with ground truth. From the experimental evaluation results, the proposed methods are shown to be effective, and the general least-squares-based methods are shown to be unsuitable for the assumed noise model.
Keywords :
eigenvalues and eigenfunctions; laser ranging; least squares approximations; maximum likelihood estimation; noise; renormalisation; stereo image processing; Z-function fitting; approximate solutions; eigenvalue method; ground truth; iterative method; laser radar range finder; least-squares based methods; local plane fitting methods; maximum likelihood estimation method; range data; reasonable noise model; renormalization method; Data engineering; Eigenvalues and eigenfunctions; Information science; Laser modes; Laser noise; Laser radar; Laser theory; Layout; Maximum likelihood estimation; Noise level;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition, 2001. CVPR 2001. Proceedings of the 2001 IEEE Computer Society Conference on
ISSN :
1063-6919
Print_ISBN :
0-7695-1272-0
Type :
conf
DOI :
10.1109/CVPR.2001.990538
Filename :
990538
Link To Document :
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