The vernissage corpus: A conversational Human-Robot-Interaction dataset
Dinesh Babu Jayagopi, Samira Sheiki, David Klotz, Johannes Wienke, Jean‐Marc Odobez, Sebastian Wrede, Vasil Khalidov, Laurent Nyugen, Britta Wrede, Daniel Gática-Pérez
- Year
- 2013
- Citations
- 33
Abstract
We introduce a new conversational Human-Robot-Interaction (HRI) dataset with a real-behaving robot inducing interactive behavior with and between humans. Our scenario involves a humanoid robot NAO <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">1</sup> explaining paintings in a room and then quizzing the participants, who are naive users. As perceiving nonverbal cues, apart from the spoken words, plays a major role in social interactions and socially-interactive robots, we have extensively annotated the dataset. It has been recorded and annotated to benchmark many relevant perceptual tasks, towards enabling a robot to converse with multiple humans, such as speaker localization and speech segmentation; tracking, pose estimation, nodding, visual focus of attention estimation in visual domain; and an audio-visual task such as addressee detection. NAO system states are also available. As compared to recordings done with a static camera, this corpus involves the head-movement of a humanoid robot (due to gaze change, nodding), posing challenges to visual processing. Also, the significant background noise present in a real HRI setting makes auditory tasks challenging.
Keywords
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