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Robot Control Based on Qualitative Representation of Human Trajectories

Nicola Bellotto

Year
2012
Citations
12
Access
Open access

Abstract

A major challenge for future social robots is the high-level interpretation of human motion, and the consequent generation of appropriate robot actions. This paper describes some fundamental steps towards the real-time implementation of a system that allows a mobile robot to transform quantitative information about human trajectories (i.e. coordinates and speed) into qualitative concepts, and from these to generate appropriate control commands. The problem is formulated using a simple version of qualitative trajectory calculus, then solved using an inference engine based on fuzzy temporal logic and situation graph trees. Preliminary results are discussed and future directions of the current research are drawn.

Keywords

Computer scienceMobile robotRobotTrajectoryRepresentation (politics)Interpretation (philosophy)InferenceArtificial intelligenceFuzzy logicGraph

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