整合问题难度改进知识追踪模型

Sein Minn, Feida Zhu, M. Desmarais
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引用次数: 15

摘要

智能辅导系统(ITS)的目的是为学生提供个性化的指导与他们的技能需求。动态评估学生在ITS学习过程中的知识获取是非常重要的。知识追踪是自适应辅导中常用的学生知识评估建模技术,它通过分解单个技能或单个问题来跟踪学生的知识状态,检测学生的知识获取情况。不幸的是,最近的KT模型不能同时处理复杂技能组合的实践和问题中包含的各种概念。我们的目标是研究一种能够兼容多种技能和不同概念问题的学生模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improving Knowledge Tracing Model by Integrating Problem Difficulty
Intelligent Tutoring Systems (ITS) are designed for providing personalized instructions to students with the needs of their skills. Assessment of student knowledge acquisition dynamically is nontrivial during her learning process with ITS. Knowledge tracing, a popular student modeling technique for student knowledge assessment in adaptive tutoring, which is used for tracing student's knowledge state and detecting student's knowledge acquisition by using decomposed individual skill or problems with a single skill per problem. Unfortunately, recent KT models fail to deal with practices of complex skill composition and variety of concepts included in a problem simultaneously. Our goal is to investigate a student model that compatible for problems with multiple skills and various concept.
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