深度学习背景下大学生思政课辅助教学系统的研究与设计

Q3 Multidisciplinary
Yongchao Yin
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引用次数: 0

摘要

目前,思政课辅助教学系统存在知识状态预测准确率低、个性化学习效果不明显等问题,影响了实际学习效果。本文基于深度学习背景,分析大学生思政课教学需求,探讨系统的整体设计。基于开源在线教学系统CAT-SOOP,设计并实现了一套基于增强学习算法的思政课辅助教学系统,该系统基于学生练习数据,训练学生知识跟踪模型和增强学习推荐引擎,用于辅助学生思政练习的个性化推荐。结果表明,与随机推荐法相比,该系统推荐习题的相关性从0.03提高到0.238,奖励值更加稳定,最大值提高了0.2。本文设计的大学生思政课辅助教学系统达到了预期目标,满足了智能化思政教育受众的多样化需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research and Design of Auxiliary Teaching System for College Students’ Civics and Political Science Courses in the Context of Deep Learning
At present, the auxiliary teaching system for Civics and Politics courses has problems such as low accuracy of knowledge state prediction and insignificant effect of personalized learning, which affects the actual learning effect. In this paper, we analyze the demand for the teaching of college students’ Civics and Politics based on the background of deep learning, and discuss the overall design of the system. Based on the open-source online teaching system CAT-SOOP, a set of augmented learning algorithm-based Civics course assisted teaching system is designed and implemented, which is based on the student practice data, training student knowledge tracking model and augmented learning recommendation engine for assisting the personalized recommendation of student’s Civics exercises. The results show that compared with the random recommendation method, the relevance of the recommended exercises of this system is improved from 0.03 to 0.238, the reward value is more stable, and the maximum value is improved by 0.2. The Civics course assisted teaching system designed in this paper for college students achieves the expected goals and meets the diversified needs of the audience of intelligent Civics education.
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来源期刊
Archives Des Sciences
Archives Des Sciences 综合性期刊-综合性期刊
CiteScore
1.10
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: Archives des Sciences est un journal scientifique multidisciplinaire et international. Les articles sont soumis à un comité de lecture.
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