基于聚类分析的学生学习成绩诊断

Luz Stella Robles Pedrozo, M. Rodríguez-Artacho
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引用次数: 4

摘要

学生成绩的评估和评价在学习过程中一直起着重要作用,因为它提供了关于一门学科所获得的知识水平和所取得的进展的信息。然而,另一个主要问题是发现学生在学习方面存在问题的主题核心,因为他们是根据能力来评估的。本研究提出一种自适应的方法来诊断和反馈学生,并利用项目反应理论来估计学生的技能水平和分类。此外,它还使用了概念与测试项目之间的概念关系模型。目的是诊断学生的认知问题,提供个性化、智能化的学习建议。这种方法可以作为一个智能诊断系统,接收一组响应,并为每个学生生成一个弱概念的数据集,指定他们的学习路径,并产生具有相同缺点的聚类个体,以简化任何群体反馈过程。
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A cluster-based analisys to diagnose students' learning achievements
Assessment and evaluation of students' performance has always played an important role in the learning process as it provides information about the level of knowledge acquired on a subject, and the progress that has been achieved. However, another main issue is detecting the thematic core in which the students have learning problems because they are evaluated in terms of competencies. This study proposes an adaptive approach to diagnose and feedback students, and makes use of the Item Response Theory to estimate skill levels and classify the students. In addition, it uses a model of concepts' relationship between the concepts and the items of the test. The purpose is to diagnose students' cognitive problems and provide personalized and intelligent learning suggestions. This approach can be used as a system of intelligent diagnosis that receives a set of responses, and generates a data set of weak concepts for each student, specifying their learning path and resulting in clustering individuals who share the same shortcomings to ease any process of group feedback.
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