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Modeling Student Knowledge with Self-Organizing Feature Maps

机译:用自组织特征映射建模学生知识

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This report describes a novel application of neural networks to model thebehavior of students in the context of an intelligent tutoring system. Self-organizing feature maps are used to capture the possible states of student knowledge from an existing test database. The trained network implements a universal student knowledge model that is compatible with recently developed Knowledge Space Theory approaches to student assessment and computer aided instruction. The student model can be applied to rapidly assess the knowledge of any given student, and chart a path from lower to higher states of expertise. We illustrate the concept on an aircraft fuel management domain, demonstrating its noise-tolerance and insensitivity to feature map parameter values. An approach to determining the correct feature map size is also described.... Artificial neural networks, Intelligent tutoring systems, Intelligent computer aided instruction, Student modeling.

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