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Bug Model Based Intelligent Recommender System with Exclusive Curriculum Sequencing for Learner-Centric Tutoring

机译:基于错误模型的智能推荐系统,带有独家课程排序功能,以学生为中心

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Face to face human tutoring in classroom environments amply facilitates human tutor-learner interactions wherein the tutor gets opportunity to exercise his cognitive intelligence to understand learner's pre-knowledge level, learning pattern, specific learning difficulties, and be able to offer course content well-aligned to the learner's requirements and tutor in a manner that best suits the learner. Reaching this level in an intelligent tutoring system is a challenge even today given the advanced developments in the field. This article focuses on ITS, mimicking a human tutor in terms of providing a curriculum sequence exclusive for the learner. Unsuitable courseware disorients the learner and thus degrades the overall performance. A bug model approach has been used for curriculum design and its re-alignment as per requirements and is demonstrated through a prototype tutoring recommender system, SeisTutor, developed for this purpose. The experimental results indicate an enhanced learning gain through a curriculum recommender approach of SeisTutor as opposed to its absence.
机译:在教室环境中进行面对面的人工辅导可极大地促进人工与学习者之间的互动,其中,辅导者有机会锻炼自己的认知能力,以了解学习者的预知识水平,学习模式,特定的学习困难,并能够提供内容明确的课程以最适合学习者的方式​​满足学习者的要求和导师。考虑到该领域的先进发展,即使在今天,在智能辅导系统中达到这一水平也是一个挑战。本文着重于ITS,在提供学习者专有的课程顺序方面模仿了人类导师。不合适的课件会使学习者感到迷惑,从而降低整体性能。错误模型方法已用于课程设计,并根据要求进行了重新调整,并通过为此目的开发的原型辅导推荐系统SeisTutor进行了演示。实验结果表明,与SeisTutor相比,通过SeisTutor的课程推荐方法可以提高学习效果。

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