GestureCoach: Rehearsing for Engaging Talks with LLM-Driven Gesture Recommendations

Hand Gesture RecognitionHuman-LLM CollaborationCreative Collaboration & Feedback SystemsInteractive Narrative & Immersive StorytellingUniversity Professors & ResearchersEsports Players & Live StreamersDancers & Performing Artists

This paper introduces GestureCoach, a system designed to help speakers deliver more engaging talks by guiding them to gesture effectively during rehearsal. GestureCoach combines an LLM-driven gesture recommendation model with a rehearsal interface that proactively cues speakers to gesture appropriately. Trained on experts’ gesturing patterns from TED talks, the model consists of two modules: an emphasis proposal module, which predicts when to gesture by identifying gesture-worthy text segments in the presenter notes, and a gesture identification module, which determines what gesture to use by retrieving semantically appropriate gestures from a curated gesture database. Results of a model performance evaluation and user study (N=30) show that the emphasis proposal module outperforms off-the-shelf LLMs in identifying suitable gesture regions, and that participants rated the majority of these predicted regions and their corresponding gestures as highly appropriate. A subsequent user study (N=10) showed that rehearsing with GestureCoach encouraged speakers to gesture and significantly increased gesture diversity, resulting in more engaging talks. We conclude with design implications for future AI-driven rehearsal systems.

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https://hci.top/en/papers/uist/206909/2025

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DOI: https://doi.org/10.1145/3746059.3747705
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UIST
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Year
2025
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5 authors
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Subtopics
Hand Gesture Recognition, Human-LLM Collaboration, Creative Collaboration & Feedback Systems, Interactive Narrative & Immersive Storytelling
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University Professors & Researchers, Esports Players & Live Streamers, Dancers & Performing Artists
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Abstract only
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