An Evidence-Based Learner Model for Supporting Activities in Robotics

S. Schulz, Andreas Lingnau
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引用次数: 2

Abstract

Teaching robotics is an attractive way of motivating students to learn computer science. However, it is also a challenging topic for students of all ages and only one teacher in a classroom is too little to support approximately 30 students at the same time. Therefore, intelligent tutoring systems might be a meaningful way to support students and teachers. In this paper we describe an approach to support computer science lessons in secondary schools by using a learner model. We are explaining how the three phases of our learner model (data collection - profile construction - profile application) can be implemented for teaching robotics by using different types of implicit and explicit data to generate feedback for the teacher concerning competencies and knowledge of the students on the one hand and by supporting collaboration and group formation amongst the students on the other hand. The model is derived from literature and supported by data from different studies.
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机器人技术支持活动的循证学习者模型
教授机器人技术是激励学生学习计算机科学的一种有吸引力的方式。然而,对于所有年龄段的学生来说,这也是一个具有挑战性的话题,一个教室里只有一个老师太少了,无法同时支持大约30名学生。因此,智能辅导系统可能是一种有意义的方式来支持学生和教师。在本文中,我们描述了一种使用学习者模型来支持中学计算机科学课程的方法。我们正在解释我们的学习者模型的三个阶段(数据收集-配置文件构建-配置文件应用)如何通过使用不同类型的隐式和显式数据为教师生成关于学生能力和知识的反馈,以及通过支持学生之间的协作和小组形成,来实现机器人教学。该模型来源于文献,并得到不同研究数据的支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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Trust, Sustainability and [email protected] L@S'22: Ninth ACM Conference on Learning @ Scale, New York City, NY, USA, June 1 - 3, 2022 L@S'21: Eighth ACM Conference on Learning @ Scale, Virtual Event, Germany, June 22-25, 2021 Leveraging Book Indexes for Automatic Extraction of Concepts in MOOCs Evaluating Bayesian Knowledge Tracing for Estimating Learner Proficiency and Guiding Learner Behavior
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