Publication | Closed Access
Deep Knowledge Tracing and Dynamic Student Classification for Knowledge Tracing
140
Citations
11
References
2018
Year
Unknown Venue
Artificial IntelligenceIntelligent Tutoring SystemsCognitive ScienceDeep Knowledge TracingMachine LearningData ScienceEngineeringEducationKnowledge TracingAutomated AssessmentLearning AnalyticsComputer ScienceIntelligent SystemsAdaptive LearningAi EducationLearning ProblemIntelligent Tutoring System
In Intelligent Tutoring System (ITS), tracing the student's knowledge state during learning has been studied for several decades in order to provide more supportive learning instructions. In this paper, we propose a novel model for knowledge tracing that i) captures students' learning ability and dynamically assigns students into distinct groups with similar ability at regular time intervals, and ii) combines this information with a Recurrent Neural Network architecture known as Deep Knowledge Tracing. Experimental results confirm that the proposed model is significantly better at predicting student performance than well known state-of-the-art techniques for student modelling.
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