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Vision Based Autonomous Navigation in Unstructured Static Environments for Mobile Ground Robots

Dan Novischi, C. Ilas, Sanda Victorinne Paţurcă, Mariana-Eugenia Ilas

Year
2011
Citations
2

Abstract

This paper presents an algorithm for real-time vision based autonomous navigation for mobile ground robots in an unstructured static environment. The obstacle detection is based on Canny edge detection and a suite of algorithms for extracting the location of all obstacles in robot's current view. In order to avoid obstacles we designed a reasoning process that successively builds an environment representation using the location of the detected obstacles. This environment representation is then used for making optimal decisions on obstacle avoidance.

Keywords

Mobile robotObstacle avoidanceObstacleComputer visionArtificial intelligenceMobile robot navigationComputer scienceRobotSuiteProcess (computing)

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