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I See You: Teacher Analytics with GPT-4 Vision-Powered Observational Assessment

28 May 2024
Unggi Lee
Yeil Jeong
Junbo Koh
Gyuri Byun
Yunseo Lee
Hyunwoong Lee
Seunmin Eun
Jewoong Moon
Cheolil Lim
Hyeoncheol Kim
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Abstract

This preliminary study explores the integration of GPT-4 Vision (GPT-4V) technology into teacher analytics, focusing on its applicability in observational assessment to enhance reflective teaching practice. This research is grounded in developing a Video-based Automatic Assessment System (VidAAS) empowered by GPT-4V. Our approach aims to revolutionize teachers' assessment of students' practices by leveraging Generative Artificial Intelligence (GenAI) to offer detailed insights into classroom dynamics. Our research methodology encompasses a comprehensive literature review, prototype development of the VidAAS, and usability testing with in-service teachers. The study findings provide future research avenues for VidAAS design, implementation, and integration in teacher analytics, underscoring the potential of GPT-4V to provide real-time, scalable feedback and a deeper understanding of the classroom.

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