AI self-efficacy and student teachers’ engagement with generative AI feedback: Effects on reflection, feedback adoption, technostress, and learning performance
Yuchen Chen, Yun‐Fang Tu, Gwo‐Jen Hwang, Xiao-Pei Meng
The University of Sydney National Taiwan University of Science and Technology Soochow University National Taichung University of Education
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摘要与影响
Although generative artificial intelligence (GenAI) has been applied in education, little is known about how student teachers engage with GenAI feedback in reflective learning, or how AI self-efficacy shapes this process. This study integrated GenAI feedback into digital storytelling for student teachers’ professional identity reflection. It examined the reflection level, feedback adoption, and self-evaluation of DST work of student teachers with high AI self-efficacy (HAISE) and low AI self-efficacy (LAISE). Group differences in GenAI literacy, technostress, continuous usage intention, and learning performance were also explored. The sample comprised 76 student teachers. Results disclosed that: (1) Most student teachers reached reflection level with the support of GenAI feedback; (2) The HAISE group tended to adopt GenAI feedback to improve their digital stories; and (3) The HAISE group outperformed the LAISE group in GenAI literacy, technostress, and learning performance. The findings have implications for AI self-efficacy, feedback engagement, and GenAI-facilitated reflective learning.
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社会科学Ethics and Social Impacts of AI
Intelligent Tutoring Systems and Adaptive Learning · Artificial Intelligence in Healthcare and Education
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