Learning Nonverbal Cues in Multiparty Social Interactions for Robotic Facilitators
Antonio Lech Martin-Ozimek, Isuru Jayarathne, Su Larb Mon, Jouhyeong, Chew

TL;DR
This paper demonstrates that Implicit Behavior Cloning (IBC) can effectively replicate nonverbal cues like gaze behaviors in social interactions, outperforming traditional MSE-based models, thereby advancing robotic facilitation in complex human-robot interactions.
Contribution
The paper replicates and extends the IBC model for nonverbal cues generation in social interactions, enabling robots to better facilitate human-robot communication.
Findings
IBC outperforms MSE BC in nonverbal cue generation
The model successfully replicates gaze behaviors in social settings
Metrics show improved nonverbal cue accuracy
Abstract
Conventional behavior cloning (BC) models often struggle to replicate the subtleties of human actions. Previous studies have attempted to address this issue through the development of a new BC technique: Implicit Behavior Cloning (IBC). This new technique consistently outperformed the conventional Mean Squared Error (MSE) BC models in a variety of tasks. Our goal is to replicate the performance of the IBC model by Florence [in Proceedings of the 5th Conference on Robot Learning, 164:158-168, 2022], for social interaction tasks using our custom dataset. While previous studies have explored the use of large language models (LLMs) for enhancing group conversations, they often overlook the significance of non-verbal cues, which constitute a substantial part of human communication. We propose using IBC to replicate nonverbal cues like gaze behaviors. The model is evaluated against various…
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Taxonomy
TopicsSocial Robot Interaction and HRI
MethodsFlorence
