Deep Reinforcement Learning for Adaptive Learning Systems
نویسندگان
چکیده
The adaptive learning problem concerns how to create an individualized plan (also referred as a policy) that chooses the most appropriate materials based on learner’s latent traits. In this article, we study important yet less-addressed problem—one assumes continuous Specifically, formulate Markov decision process. We assume traits be with unknown transition model and apply model-free deep reinforcement algorithm—the Q-learning algorithm—that can effectively find optimal policy from data learners’ process without knowing actual of To efficiently utilize available data, also develop estimator emulates using neural networks. used in algorithm so it more discover for learner. Numerical simulation studies verify proposed is very efficient finding good policy. Especially aid estimator, after training small number learners.
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ژورنال
عنوان ژورنال: Journal of Educational and Behavioral Statistics
سال: 2022
ISSN: ['1076-9986', '1935-1054']
DOI: https://doi.org/10.3102/10769986221129847