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From cognitive offloading to learning accountability erosion: how generative AI reshapes students’ epistemic trust and educational engagement

问责 认知 生成语法 心理学 认识论 生成模型 知识管理 认知科学 社会心理学 社会学 体验式学习 移动设备 社会分布认知 计算机科学 教育技术 学习理论 认知心理学 电子学习 公众参与 认知负荷 情境学习
作者
Yu Liu,Min Jou,Yungwei Hao
出处
期刊:Interactive Learning Environments [Taylor & Francis]
卷期号:: 1-17 被引量:1
标识
DOI:10.1080/10494820.2026.2680276
摘要

Generative artificial intelligence (GAI) is reshaping higher education, yet its significance may lie less in efficiency gains than in how it reconfigures learners’ cognitive, epistemic, and responsibility-related orientations. Drawing on educational psychology, this study examines whether AI use is associated with a sequential process involving cognitive offloading, epistemic trust transfer, and reduced learning accountability. An exploratory sequential mixed-methods design was adopted. Interviews identified four recurring themes: efficiency-oriented learning, redefined epistemic authority, outsourced responsibility, and reflective AI use. These themes informed a structural model tested with student survey data. Findings indicate that greater AI use was associated with stronger cognitive offloading, which was further associated with greater epistemic trust transfer toward AI and lower learning accountability. Reduced learning accountability was also associated with lower learning motivation and greater academic integrity risk. The study integrates cognitive offloading, epistemic trust, and learning accountability within a single explanatory framework, extending AI-supported learning research beyond outcome-based and tool-centered accounts. Theoretically, it positions learning accountability as an ethical dimension of self-regulated learning in AI-mediated contexts. More broadly, GAI may redistribute cognition, authority, and responsibility within learning, raising important questions about sustaining learner agency and accountability in higher education.
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