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Characterization of handover orientations used by humans for efficient robot to human handovers

Wesley P. Chan, Matthew K. X. J. Pan, Elizabeth A. Croft, Masayuki Inaba

Year
2015
Citations
37

Abstract

To enable robots to learn handover orientations from observing natural handovers, we conduct a user study to measure and compare natural handover orientations with giver-centered and receiver-centered handover orientations for twenty common objects. We use a distance minimization approach to compute mean handover orientations. We posit that, computed means of receiver-centered orientations could be used by robot givers to achieve more efficient and socially acceptable handovers. Furthermore, we introduce the notion of affordance axes for comparing handover orientations, and offer a definition for computing them. Observable patterns were found in receiver-centered handover orientations. Comparisons show that depending on the object, natural handover orientations may not be receiver-centered; thus, robots may need to distinguish between good and bad handover orientations when learning from natural handovers.

Keywords

HandoverComputer scienceAffordanceRobotNatural (archaeology)Artificial intelligenceHuman–computer interactionReal-time computingComputer network

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