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Mobile robot localization using stereo vision in outdoor environments under various illumination conditions

K Irie, Tomoaki Yoshida, Masahiro Tomono

Year
2010
Citations
13

Abstract

This paper proposes a new localization method for outdoor navigation using a stereo camera only. Vision-based navigation in outdoor environments is still challenging because of large illumination changes. To cope with various illumination conditions, we use 2D occupancy grid maps generated from 3D point clouds obtained by a stereo camera. Furthermore, we incorporate salient line segments extracted from the ground into the grid maps. This grid map building is not much affected by illumination conditions. On the grid maps, the robot poses are estimated using a particle filter that combines visual odometry and map-matching. Experimental results showed the effectiveness and robustness of the proposed method under various weather and illumination conditions.

Keywords

Computer visionOccupancy grid mappingArtificial intelligenceComputer scienceMobile robotOdometryVisual odometryStereo cameraParticle filterRobustness (evolution)

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