Students' Performance Prediction in Higher Education Using Multi-Agent Framework-Based Distributed Data Mining Approach

M. Nazir, A. Noraziah, M. Rahmah
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引用次数: 0

Abstract

An effective educational program warrants the inclusion of an innovative construction that enhances the higher education efficacy in such a way that accelerates the achievement of desired results and reduces the risk of failures. Educational decision support system has currently been a hot topic in educational systems, facilitating the pupil result monitoring and evaluation to be performed during their development. In this literature survey, the authors have discussed the importance of multi-agent systems and comparative machine learning approaches in EDSS development. They explored the relationship between machine learning and multiagent intelligent systems in literature to conclude their effectiveness in student performance prediction paradigm. They used the PRISMA model for the literature review process. They finalized 18 articles published between 2014-2022 for the survey that match the research objectives.
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基于多Agent框架的分布式数据挖掘方法在高校学生学习成绩预测中的应用
一个有效的教育计划需要包含一个创新的结构,以提高高等教育的效率,从而加快实现预期结果并降低失败的风险。教育决策支持系统是目前教育系统中的一个热门话题,它有助于在学生发展过程中对学生的成绩进行监测和评估。在这篇文献综述中,作者讨论了多智能体系统和比较机器学习方法在EDSS开发中的重要性。他们在文献中探讨了机器学习和多智能体智能系统之间的关系,以总结它们在学生成绩预测范式中的有效性。他们在文献综述过程中使用了PRISMA模型。他们最终确定了2014-2022年间发表的18篇与研究目标相匹配的调查文章。
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CiteScore
1.70
自引率
0.00%
发文量
39
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