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A General Multi-method Approach to Design-Loop Adaptivity in Intelligent Tutoring Systems

机译:智能辅导系统中设计循环适应性的通用多方法方法

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Design-loop adaptivity, which involves data-driven redesign of an instructional system based on student learning data, has shown promise in improving student learning. We present a general, systematic approach that combines new and existing data mining and instructional design methods to redesign intelligent tutors. Our approach is driven by the main goal of identifying knowledge components that are demonstrably difficult for students to learn and to optimize effective and efficient practice of them. We applied this approach to redesigning an algebraic symbolization tutor. Our classroom study with 76 high school freshmen shows that, compared to the original tutor, the redesigned tutor led to higher learning efficiency on more difficult skills, higher learning gain on unscaffolded whole tasks, and more robust transfer to less practiced tasks. Our work provides general guidance for performing design-loop adaptations for continuous improvement of intelligent tutors.
机译:设计循环适应性涉及基于学生学习数据的数据驱动的教学系统的重新设计,在改善学生学习方面显示出了希望。我们提出了一种通用的系统方法,该方法结合了新的和现有的数据挖掘以及教学设计方法来重新设计智能导师。我们的方法的主要目标是确定学生难以学习的知识成分,并优化他们的有效实践。我们将这种方法应用于重新设计代数符号导师。我们对76名高中新生的课堂研究表明,与原来的家教相比,经过重新设计的家教提高了在更困难的技能上的学习效率,在没有脚手架的整个任务上获得了更高的学习收益,并且更加稳健地转移到了较少实践的任务上。我们的工作为执行设计循环调整提供了持续的指导,以不断改进智能导师。

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