内容向导:基于概念的编程课程讲师推荐系统

Hung Chau, Jordan Barria-Pineda, Peter Brusilovsky
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引用次数: 10

摘要

创建一个适应性教育系统是一个复杂的过程,它涉及到在固定的单元序列中分配大范围的教育内容。在本文中,我们描述了Content Wizard,这是一个基于概念的推荐系统,用于在创建在线编程课程期间推荐满足教师教学目标的学习材料。在这里,教师被要求提供一组代码示例,这些示例共同反映了与每个课程单元相关的学习目标。向导是建立在我们的课程编写工具之上的,它有助于减少教师花在任务上的时间,并保持课程顺序结构的一致性。它还为教师提供了额外的信息,以识别可能不适合他们正在创建的单元的内容。为了评估系统的实用性和有效性,我们使用从匹兹堡大学以前教授的Java入门课程中收集的数据进行了离线研究。我们发现,在创建基于计算机的自适应课程时,所提出的推荐的效果相对接近教师的期望。
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Content Wizard: Concept-Based Recommender System for Instructors of Programming Courses
Authoring an adaptive educational system is a complex process that involves allocating a large range of educational content within a fixed sequence of units. In this paper, we describe Content Wizard, a concept-based recommender system for recommending learning materials that meet the instructor's pedagogical goals during the creation of an online programming course. Here, the instructors are asked to provide a set of code examples that jointly reflect the learning goals that are associated with each course unit. The Wizard is built on top of our course-authoring tool, and it helps to decrease the time instructors spend on the task and to maintain the coherence of the sequential structure of the course. It also provides instructors with additional information to identify content that might be not appropriate for the unit they are creating. We conducted an off-line study with data collected from an introductory Java course previously taught at the University of Pittsburgh in order to evaluate both the practicality and effectiveness of the system. We found that the proposed recommendation's performance is relatively close to the teacher's expectation in creating a computer-based adaptive course.
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