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Let's move on: Topic Change in Robot-Facilitated Group Discussions
April 02, 2025 ยท Entered Twilight ยท ๐ 2024 33rd IEEE International Conference on Robot and Human Interactive Communication (ROMAN)
Repo contents: Licence.txt, README.md, aggregated-features, sequential-features
Authors
Georgios Hadjiantonis, Sarah Gillet, Marynel Vรกzquez, Iolanda Leite, Fethiye Irmak Dogan
arXiv ID
2504.02123
Category
cs.RO: Robotics
Cross-listed
cs.HC
Citations
2
Venue
2024 33rd IEEE International Conference on Robot and Human Interactive Communication (ROMAN)
Repository
https://github.com/ghadj/topic-change-robot-discussions-data-2024
โญ 1
Last Checked
3 months ago
Abstract
Robot-moderated group discussions have the potential to facilitate engaging and productive interactions among human participants. Previous work on topic management in conversational agents has predominantly focused on human engagement and topic personalization, with the agent having an active role in the discussion. Also, studies have shown the usefulness of including robots in groups, yet further exploration is still needed for robots to learn when to change the topic while facilitating discussions. Accordingly, our work investigates the suitability of machine-learning models and audiovisual non-verbal features in predicting appropriate topic changes. We utilized interactions between a robot moderator and human participants, which we annotated and used for extracting acoustic and body language-related features. We provide a detailed analysis of the performance of machine learning approaches using sequential and non-sequential data with different sets of features. The results indicate promising performance in classifying inappropriate topic changes, outperforming rule-based approaches. Additionally, acoustic features exhibited comparable performance and robustness compared to the complete set of multimodal features. Our annotated data is publicly available at https://github.com/ghadj/topic-change-robot-discussions-data-2024.
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