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3D motion tracking of a mobile robot in a natural environment

Parvaneh Saeedi, Peter Lawrence, David Lowe

Year
2002
Citations
15

Abstract

This paper presents a vision-based tracking system suitable for autonomous robot vehicle guidance. The system includes a head with three on-board CCD cameras, which can be mounted anywhere on a mobile vehicle. By processing consecutive trinocular sets of precisely aligned and rectified images, the local 3D trajectory of the vehicle in an unstructured environment can be tracked. First, a 3D representation of stable features in the image scene is generated using a stereo algorithm. Next, motion is estimated by trading matched features over time. The motion equation with 6-DOF is then solved using an iterative least squares fit algorithm. Finally, a Kalman filter implementation is used to optimize the world representation of scene features.

Keywords

Computer visionArtificial intelligenceComputer scienceTrajectoryMobile robotKalman filterTracking (education)Representation (politics)Extended Kalman filterMotion (physics)

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