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用于检测学习者在编程学习中遇到困难的系统。

System for Detecting Learner Stuck in Programming Learning.

机构信息

Graduate School of Engineering, Kobe University, 1-1 Rokkodaicho, Nada, Kobe 657-8501, Hyogo, Japan.

出版信息

Sensors (Basel). 2023 Jun 20;23(12):5739. doi: 10.3390/s23125739.

Abstract

Getting stuck is an inevitable part of learning programming. Long-term stuck decreases the learner's motivation and learning efficiency. The current approach to supporting learning in lectures involves teachers finding students who are getting stuck, reviewing their source code, and solving the problems. However, it is difficult for teachers to grasp every learner's stuck situation and to distinguish stuck or deep thinking only by their source code. Teachers should advise learners only when there is no progress and they are psychologically stuck. This paper proposes a method for detecting when learners get stuck during programming by using multi-modal data, considering both their source code and psychological state measured by a heart rate sensor. The evaluation results of the proposed method show that it can detect more stuck situations than the method that uses only a single indicator. Furthermore, we implemented a system that aggregates the stuck situation detected by the proposed method and presents them to a teacher. In evaluations during the actual programming lecture, participants rated the notification timing of application as suitable and commented that the application was useful. The questionnaire survey showed that the application can detect situations where learners cannot find solutions to exercise problems or express them in programming.

摘要

编程学习中遇到困难是不可避免的。长期的困境会降低学习者的积极性和学习效率。目前在讲座中支持学习的方法是教师发现遇到困难的学生,检查他们的源代码,并解决问题。然而,教师很难掌握每个学习者的困境情况,仅通过他们的源代码来区分困境或深入思考。只有当学习者没有进展并且心理上感到困难时,教师才应该提供建议。本文提出了一种通过使用多模态数据来检测学习者在编程过程中何时遇到困难的方法,同时考虑了他们的源代码和通过心率传感器测量的心理状态。所提出方法的评估结果表明,它可以检测到比仅使用单个指标的方法更多的困境情况。此外,我们实现了一个系统,该系统聚合了所提出方法检测到的困境情况,并将其呈现给教师。在实际编程讲座的评估中,参与者认为应用程序的通知时间合适,并评论说该应用程序很有用。问卷调查显示,该应用程序可以检测到学习者无法找到解决练习问题的方法或无法用编程表达的情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bbbf/10301404/f9e1b746c9c4/sensors-23-05739-g008.jpg

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