DocumentCode :
3777709
Title :
An adaptive algorithm for embedded real-time point cloud ground segmentation
Author :
Gilberto Antonio Marcon dos Santos;Victor Terra Ferr?o;C?ssio Vinhal;G?lson da Cruz
Author_Institution :
LEIA - Laboratory for Education and Innovation on Automation, School of Electrical, Mechanical and Computer Engineering, Federal University of Goi?s, Goi?nia, Brazil
fYear :
2015
Firstpage :
76
Lastpage :
83
Abstract :
This paper presents a fast algorithm for ground segmentation that quickly and accurately differentiates ground points from obstacles after processing unstructured point clouds. Unlike most recent approaches found in the literature, it does not rely on any sensor-specific feature or data ordering. It performs an orthogonal projection into the horizontal plane followed by a top-down 4-ary tree segmentation. The segmentation self-adapts to the point cloud, focusing processing effort on detailed areas. This adaptive subdivision process allows successfully extracting ground points even when the floor is not perfectly flat. Finally, tests demonstrate real-time performance for execution in low cost embedded devices.
Keywords :
"Three-dimensional displays","Robot sensing systems","Real-time systems","Approximation algorithms","Surface treatment","Cameras"
Publisher :
ieee
Conference_Titel :
Soft Computing and Pattern Recognition (SoCPaR), 2015 7th International Conference of
Type :
conf
DOI :
10.1109/SOCPAR.2015.7492787
Filename :
7492787
Link To Document :
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