A Combined Approach of Process Mining and Rule-based AI for Study Planning and Monitoring in Higher Education

Miriam Wagner, Hayyan Helal, R. Roepke, Sven Judel, Jens Doveren, Sergej Goerzen, Pouya Soudmand, G. Lakemeyer, U. Schroeder, Wil M.P. van der Aalst
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引用次数: 1

Abstract

This paper presents an approach of using methods of process mining and rule-based artificial intelligence to analyze and understand study paths of students based on campus management system data and study program models. Process mining techniques are used to characterize successful study paths, as well as to detect and visualize deviations from expected plans. These insights are combined with recommendations and requirements of the corresponding study programs extracted from examination regulations. Here, event calculus and answer set programming are used to provide models of the study programs which support planning and conformance checking while providing feedback on possible study plan violations. In its combination, process mining and rule-based artificial intelligence are used to support study planning and monitoring by deriving rules and recommendations for guiding students to more suitable study paths with higher success rates. Two applications will be implemented, one for students and one for study program designers.
过程挖掘与基于规则的人工智能在高等教育学习计划与监控中的结合方法
本文提出了一种基于校园管理系统数据和学习计划模型,利用过程挖掘和基于规则的人工智能方法对学生学习路径进行分析和理解的方法。过程挖掘技术用于描述成功的研究路径,以及检测和可视化与预期计划的偏差。这些见解与从考试规定中提取的相应学习计划的建议和要求相结合。在这里,事件演算和答案集规划被用来提供学习计划的模型,支持计划和一致性检查,同时提供可能违反学习计划的反馈。过程挖掘和基于规则的人工智能结合使用,通过派生规则和建议来支持学习计划和监控,从而指导学生选择更合适的学习路径,成功率更高。将实施两个应用程序,一个供学生使用,一个供学习计划设计师使用。
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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