基于意见领袖认同的社区检测促进基于问题的协作学习绩效

Chih-Ming Chen, Zong-Lin You
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引用次数: 11

摘要

通过基于网络的协作式问题学习,学习者可以更方便地通过自主学习培养解决问题的能力。然而,在基于合作问题的学习(CPBL)过程中,学习者经常被教师宣布的信息引导去解决目标问题。个体学习者往往不能有效地吸收这些标准信息,从而忽略了教师传递的重要信息。因此,本研究采用模块化Q函数作为遗传算法(GA)的适应度函数,对社区进行最优检测,并利用PageRank测度,根据CPBL过程中学习者的社交网络交互数据,准确发现社区意见领袖。基于准实验设计,本研究考察了实验组使用意见领袖两步沟通流来传达解决CPBL目标任务的学习者是否比对照组使用教师信息一步沟通流的学习者更能显著提高基于网络的CPBL绩效、社会网络互动和群体凝聚力。分析结果表明,在CPBL环境下,实验组学生的学习成绩和同伴互动显著优于对照组学生。实验组学生的群体凝聚力显著高于对照组。
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Community Detection with Opinion Leaders' Identification for Promoting Collaborative Problem-Based Learning Performance
With web-based collaborative problem-based learning, learners could more conveniently cultivate their problem-solving capabilities through autonomous learning. Nevertheless, learners are often guided to solve a target problem by the messages announced by teachers during the collaborative problem-based learning (CPBL) processes. Individual learners often could not effectively absorb such standard messages, thus ignoring the important messages from teachers. This study thus employs the modularity Q function as the fitness function of genetic algorithm (GA) to optimally detect communities and uses PageRank measure to accurately find out community opinion leaders according to the social network interaction data of learners in the CPBL process. Based on quasi-experimental design, this study examines whether learners in the experimental group using the two-step flow of communication through opinion leaders to convey messages for solving a target CPBL mission could more significantly enhance web-based CPBL performance, social network interaction, and group cohesion than learners in the control group using the one-step flow of communication through teachers' messages. Analytical results show learners in the experimental group remarkably outperform those in the control group on learning performance and peer interaction under a CPBL environment. Learners in the experimental group present significantly higher group cohesion than those in the control group.
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