A Unified Framework for Student Cluster Grouping with Learning Preference Associative Detection for Enhancing Students' Learning Outcomes in Computer Programming Courses

Unhawa Ninrutsirikun, B. Watanapa, C. Arpnikanondt, Visith Watananukoon
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引用次数: 4

Abstract

Computer Programming is considered an important underlying ability for effectively achieving study in computer-related majors. This paper proposes a unified framework of dynamically sensing contextual indicators of the students possessive's performance of well-performing students. The said indicators once compiled into an associative relationship with the profile of individual students in terms of prior academic background and personal attributes becomes a basis for adaptively grouping students into clusters. The aim of the unified framework is to adaptively reinforce the performance of students in each independent group. The sample settings of all involved modules in the unified system gives an insight into the applicability so that educators can flexibly facilitate the classroom to achieve better academic results for students with different profiles.
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基于学习偏好关联检测的学生聚类分组统一框架:提高计算机程序设计课程学生学习成果
计算机编程被认为是有效完成计算机相关专业学习的重要基础能力。本文提出了一种动态感知优秀学生所有格表现情境指标的统一框架。这些指标一旦与学生个人的学术背景和个人属性形成关联关系,就成为自适应地将学生分组的基础。统一框架的目的是适应性地加强学生在每个独立小组中的表现。统一系统中所有涉及模块的样例设置,可以洞察其适用性,以便教育者可以灵活地促进课堂,为不同背景的学生取得更好的学习成绩。
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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