NeuroChat: A Neuroadaptive AI Chatbot for Customizing Learning Experiences

Brain-Computer Interface (BCI) & NeurofeedbackHuman-LLM CollaborationIntelligent Tutoring Systems & Learning AnalyticsUniversity Professors & ResearchersEarly Childhood Educators

Generative AI is reshaping education by enabling personalized, on-demand learning experiences. However, current AI systems lack awareness of the learner’s cognitive state, limiting their adaptability. In parallel, electroencephalography (EEG)-based neuroadaptive systems have shown promise in enhancing engagement through real-time physiological feedback. This paper introduces NeuroChat, a neuroadaptive AI tutor that integrates real-time EEG-based engagement tracking with a large language model to adapt its conversational responses. By continuously monitoring learners’ cognitive engagement, NeuroChat dynamically adjusts content complexity, tone, and response style in a closed-loop interaction. In a within-subjects study (n=24), NeuroChat significantly increased both EEG-measured and self-reported engagement compared to a non-adaptive chatbot. However, no significant differences in short-term learning outcomes were observed. These findings demonstrate the feasibility of real-time brain–AI interaction for education and highlight opportunities for deeper personalization, longer-term adaptation, and richer learning assessment in future neuroadaptive systems.

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https://hci.top/en/papers/cui/204403/2025

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DOI: https://doi.org/10.1145/3719160.3736623
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CUI
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2025
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5 authors
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Brain-Computer Interface (BCI) & Neurofeedback, Human-LLM Collaboration, Intelligent Tutoring Systems & Learning Analytics
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University Professors & Researchers, Early Childhood Educators
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Abstract only
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