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Fast and Accurate Environment Modelling using Omnidirectional Vision

Patrick Heinemann, Thomas Rückstieß, Andreas Zell

Year
2004
Citations
12

Abstract

Abstract. This paper describes an algorithm to detect obstacles and landmarks, using the omnidirectional vision system of a RoboCup robot, to build an internal representation of the robot’s environment. The restriction to pixels corresponding to an equally spaced grid on the floor around the robot and a biologically inspired fault-tolerant colour segmentation of this grid result in a fast and robust detection. The performance of the environment modelling concerning computation time and accuracy is addressed by comparing experimental results to object positions given by an absolute positioning system.

Keywords

Computer visionArtificial intelligenceComputer scienceRobotComputationPixelOmnidirectional antennaGridMachine visionSegmentation

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