2023
DOI: 10.3390/bdcc8010004
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BNMI-DINA: A Bayesian Cognitive Diagnosis Model for Enhanced Personalized Learning

Yiming Chen,
Shuang Liang

Abstract: In the field of education, cognitive diagnosis is crucial for achieving personalized learning. The widely adopted DINA (Deterministic Inputs, Noisy And gate) model uncovers students’ mastery of essential skills necessary to answer questions correctly. However, existing DINA-based approaches overlook the dependency between knowledge points, and their model training process is computationally inefficient for large datasets. In this paper, we propose a new cognitive diagnosis model called BNMI-DINA, which stands … Show more

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