Recommender - Potentials and Limitations for Self-Study in Higher Education from an Educational Science Perspective

Christina Gloerfeld, Silke Wrede, C. D. Witt, Xia Wang
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引用次数: 3

Abstract

Artificial intelligence is one of the disruptive technologies, that drives change in our society and economy, but also in our educational system. Educational data mining, machine learning and expert systems are increasingly being used to support study and teaching. This article takes an educational science perspective to present an approach, how to use a recommendation system for students to support inquiry-based learning and self-directed learning. Along the course of the semester various AI-based applications like automatic assessments, interest visualizations or a learning strategy finder assist in the different phases of the semester. When planning and designing this recommendation systems, the most important premise is to foster self-determination of the students.
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推荐人——教育科学视角下高等教育自学的潜力与局限
人工智能是一种颠覆性技术,它推动了我们社会和经济的变革,也推动了我们的教育体系的变革。教育数据挖掘、机器学习和专家系统越来越多地被用于支持学习和教学。本文从教育科学的角度阐述了如何利用学生推荐系统支持探究性学习和自主学习的方法。在本学期的课程中,各种基于人工智能的应用程序,如自动评估、兴趣可视化或学习策略查找器,在学期的不同阶段提供帮助。在规划和设计这个推荐系统时,最重要的前提是培养学生的自主权。
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