arXiv:2604.01114cs.HCcs.AI2026-04中稿 · the 27th Internati…被引 3

高信任反而导致学生更依赖错误AI建议,需提升认知素养才能用好AI。

Trust and Reliance on AI in Education: AI Literacy and Need for Cognition as Moderators

论文配图:Trust and Reliance on AI in Education: AI Literacy and Need for Cognition as Moderators
图 1 · 摘自论文原文
  • 通过行为分析学生对AI建议的采纳程度,判断是否合理使用。
  • 信任越高,越难分辨正确与错误建议,尤其在低素养者中更明显。
  • 提升AI素养和思维主动性,是避免盲目依赖的关键。

随着生成式AI融入教育场景,学生在编程任务中常接收AI助手的建议与解释。本研究基于432名本科生,考察其对AI的信任如何影响对助手建议的恰当依赖,包括接受正确建议、拒绝错误建议的行为。实验中,学生完成Python代码预测任务,同时收到准确或故意误导的建议。通过前后测问卷评估信任度、AI素养、认知需求、编程自信心及编程能力。结果显示,信任度与适当依赖呈非线性关系:信任越高,反而越难区分建议真伪,表现出更低的判断力。这一关系受学生AI素养和认知需求显著调节。研究强调,未来需设计教学与系统支持,帮助学习者更反思性地评估AI辅助。

原文摘要 · Abstract (English)

As generative AI systems are integrated into educational settings, students often encounter AI-generated output while working through learning tasks, either by requesting help or through integrated tools. Trust in AI can influence how students interpret and use that output, including whether they evaluate it critically or exhibit overreliance. We investigate how students' trust relates to their appropriate reliance on an AI assistant during programming problem-solving tasks, and whether this relationship differs by learner characteristics. With 432 undergraduate participants, students' completed Python output-prediction problems while receiving recommendations and explanations from an AI chatbot, including accurate and intentionally misleading suggestions. We operationalize reliance behaviorally as the extent to which students' responses reflected appropriate use of the AI assistant's suggestions, accepting them when they were correct and rejecting them when they were incorrect. Pre- and post-task surveys assessed trust in the assistant, AI literacy, need for cognition, programming self-efficacy, and programming literacy. Results showed a non-linear relationship in which higher trust was associated with lower appropriate reliance, suggesting weaker discrimination between correct and incorrect recommendations. This relationship was significantly moderated by students' AI literacy and need for cognition. These findings highlight the need for future work on instructional and system supports that encourage more reflective evaluation of AI assistance during problem-solving.

AI教育信任机制认知素养编程学习

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