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  4. Learning Personalized Human-Aware Robot Navigation Using Virtual Reality Demonstrations from a User Study
 
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2022
Conference Paper
Title

Learning Personalized Human-Aware Robot Navigation Using Virtual Reality Demonstrations from a User Study

Abstract
For the most comfortable, human-aware robot navigation, subjective user preferences need to be taken into account. This paper presents a novel reinforcement learning framework to train a personalized navigation controller along with an intuitive virtual reality demonstration interface. The conducted user study provides evidence that our personalized approach significantly outperforms classical approaches with more comfortable human-robot experiences. We achieve these results using only a few demonstration trajectories from non-expert users, who predominantly appreciate the intuitive demonstration setup. As we show in the experiments, the learned controller generalizes well to states not covered in the demonstration data, while still reflecting user preferences during navigation. Finally, we transfer the navigation controller without loss in performance to a real robot.
Author(s)
Heuvel, Jorge De
Corral, Nathan
Bruckschen, Lilli
Fraunhofer-Institut für Kommunikation, Informationsverarbeitung und Ergonomie FKIE  
Bennewitz, Mären
Mainwork
IEEE RO-MAN 2022, 31st IEEE International Conference on Robot and Human Interactive Communication  
Conference
International Conference on Robot and Human Interactive Communication 2022  
DOI
10.1109/RO-MAN53752.2022.9900554
Language
English
Fraunhofer-Institut für Kommunikation, Informationsverarbeitung und Ergonomie FKIE  
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