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Enhancing Explainability of Knowledge Learning Paths: Causal Knowledge Networks

Yuang Wei, Yizhou Zhou, Yuan-Hao Jiang,Bo Jiang

arxiv(2024)

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Abstract
A reliable knowledge structure is a prerequisite for building effective adaptive learning systems and intelligent tutoring systems. Pursuing an explainable and trustworthy knowledge structure, we propose a method for constructing causal knowledge networks. This approach leverages Bayesian networks as a foundation and incorporates causal relationship analysis to derive a causal network. Additionally, we introduce a dependable knowledge-learning path recommendationHuman-Centric eXplainable AI in Education technique built upon this framework, improving teaching and learning quality while maintaining transparency in the decision-making process.
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