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Mavrikis, M; Lalle, S; Azevedo, R; Biswas, G; Roll, I (Ed.)Exploratory learning environments (ELEs), such as simulation-based platforms and open-ended science curricula, promote hands-on exploration and problem-solving but make it difficult for teachers to gain timely insights into students' conceptual understanding. This paper presents LearnLens, a generative AI (GenAI)-enhanced teacher-facing dashboard designed to support problem-based instruction in middle school science. LearnLens processes students' open-ended responses from digital assessments to provide various insights, including sample responses, word clouds, bar charts, and AI-generated summaries. These features elucidate students' thinking, enabling teachers to adjust their instruction based on emerging patterns of understanding. The dashboard was informed by teacher input during professional development sessions and implemented within a middle school Earth science curriculum. We report insights from teacher interviews that highlight the dashboard's usability and potential to guide teachers' instruction in the classroom.more » « lessFree, publicly-accessible full text available July 26, 2026
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Cohn, C; Rayala, S; Snyder, C; Fonteles, J-H; Jain, S; Mohammed, N; Timalsina, U; Burriss, S; Ashwin, TS; Srivastava, N; et al (, AIED 2025 Workshop on Epistemics and Decision-Making in AI-Supported Education)Zhai, X; Latif, E; Liu, N; Biswas, G; Yin, Y (Ed.)Collaborative dialogue offers rich insights into students’ learning and critical thinking, which is essential for personalizing pedagogical agent interactions in STEM+C settings. While large language models (LLMs) facilitate dynamic pedagogical interactions, hallucinations undermine confidence, trust, and instructional value. Retrieval-augmented generation (RAG) grounds LLM outputs in curated knowledge, but requires a clear semantic link between user input and a knowledge base, which is often weak in student dialogue. We propose log-contextualized RAG (LC-RAG), which enhances RAG retrieval by using the environment logs to contextualize collaborative discourse. Our findings show that LCRAG improves retrieval over a discourse-only baseline and allows our collaborative peer agent, Copa, to deliver relevant, personalized guidance that supports students’ critical thinking and epistemic decision-making in a collaborative computational modeling environment, C2STEM.more » « lessFree, publicly-accessible full text available June 17, 2026
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