Mr Zhaoxing Li zhaoxing.li2@durham.ac.uk
PGR Student Doctor of Philosophy
Mr Zhaoxing Li zhaoxing.li2@durham.ac.uk
PGR Student Doctor of Philosophy
Lei Shi
Professor Alexandra Cristea alexandra.i.cristea@durham.ac.uk
Professor
Mr Yunzhan Zhou yunzhan.zhou@durham.ac.uk
PGR Student Doctor of Philosophy
Chenghao Xiao
Miss Ziqi Pan ziqi.pan2@durham.ac.uk
PGR Student Doctor of Philosophy
Lacking behavioural data between students and an Intelligent Tutoring System (ITS) has been an obstacle for improving its personalisation capability. One feasible solution is to train “sim students”, who simulate real students’ behaviour in the ITS. We can then use their generated behavioural data to train the ITS to offer real students personalised learning strategies and trajectories. In this paper, we thus propose SimStu-Transformer, developed based on the Decision Transformer algorithm, to generate learning behavioural data.
Li, Z., Shi, L., Cristea, A., Zhou, Y., Xiao, C., & Pan, Z. (2022). SimStu-Transformer: A Transformer-Based Approach to Simulating Student Behaviour. In Artificial Intelligence in Education. Posters and Late Breaking Results, Workshops and Tutorials, Industry and Innovation Tracks, Practitioners’ and Doctoral Consortium (348-351). Springer, Cham. https://doi.org/10.1007/978-3-031-11647-6_67
Acceptance Date | Apr 25, 2022 |
---|---|
Online Publication Date | Jul 26, 2022 |
Publication Date | 2022 |
Deposit Date | Aug 31, 2022 |
Publicly Available Date | Jul 27, 2023 |
Pages | 348-351 |
Series Title | Lecture Notes in Computer Science |
Series Number | 13356 |
Book Title | Artificial Intelligence in Education. Posters and Late Breaking Results, Workshops and Tutorials, Industry and Innovation Tracks, Practitioners’ and Doctoral Consortium |
ISBN | 978-3-031-11646-9 |
DOI | https://doi.org/10.1007/978-3-031-11647-6_67 |
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The final authenticated version is available online at https://doi.org/10.1007/978-3-031-11647-6_67
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