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Beyond knowledge tracing: Modeling skill topologies with bayesian networks
- Intelligent Tutoring Systems, volume 8474 of Lecture Notes in Computer Science
, 2014
"... Abstract. Modeling and predicting student knowledge is a fundamen-tal task of an intelligent tutoring system. A popular approach for student modeling is Bayesian Knowledge Tracing (BKT). BKT models, however, lack the ability to describe the hierarchy and relationships between the different skills of ..."
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Abstract. Modeling and predicting student knowledge is a fundamen-tal task of an intelligent tutoring system. A popular approach for student modeling is Bayesian Knowledge Tracing (BKT). BKT models, however, lack the ability to describe the hierarchy and relationships between the different skills of a learning domain. In this work, we therefore aim at increasing the representational power of the student model by employing dynamic Bayesian networks that are able to represent such skill topolo-gies. To ensure model interpretability, we constrain the parameter space. We evaluate the performance of our models on five large-scale data sets of different learning domains such as mathematics, spelling learning and physics, and demonstrate that our approach outperforms BKT in pre-diction accuracy on unseen data across all learning domains.