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Metacognitive Strategy Networks in GenAI-Enhanced Learning: An Epistemic Network and Lag Sequence Analysis of High and Low Self-Efficacy Students

  • Macao Polytechnic University

研究成果: Conference contribution同行評審

1 引文 斯高帕斯(Scopus)

摘要

Many studies have demonstrated that generative AI (GenAI) feedback has potential in language learning; however, few studies explore how learners' self-efficacy shapes their metacognitive and behavioural engagement with GenAI feedback. This study investigates differences in metacognitive strategy networks and behavioural sequences between high and low self-efficacy learners interacting with GenAI feedback in reading comprehension tasks. By integrating epistemic network analysis (ENA), sequential analysis, and retrospective interviews, this study analysed the interactions of 16 junior secondary students with five types of GenAI feedback. The results revealed that high self-efficacy learners develop metacognitive networks centred on evaluating and dynamically cycling between feedback types to inform future learning. In contrast, low self-efficacy learners displayed a metacognitive strategy network dominated by planning and linear behavioural sequences that prioritise immediate task completion. The findings advocate for self-efficacy-driven GenAI feedback systems that dynamically tailor metacognitive scaffolding to catalyse personalised self-regulated learning.

原文English
主出版物標題2025 International Conference on Artificial Intelligence and Education, ICAIE 2025
發行者Institute of Electrical and Electronics Engineers Inc.
頁面470-474
頁數5
ISBN(電子)9798331522957
DOIs
出版狀態Published - 2025
事件2025 International Conference on Artificial Intelligence and Education, ICAIE 2025 - Suzhou, China
持續時間: 14 5月 202516 5月 2025

出版系列

名字2025 International Conference on Artificial Intelligence and Education, ICAIE 2025

Conference

Conference2025 International Conference on Artificial Intelligence and Education, ICAIE 2025
國家/地區China
城市Suzhou
期間14/05/2516/05/25

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