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Using Diffusion Network Analytics to Examine and Support Knowledge Construction in CSCL Settings

机译:使用扩散网络分析来检查和支持CSCL设置中的知识构建

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The analysis of CSCL needs to offer actionable insights about how knowledge construction between learners is built, facilitated and/or constrained, with the overall aim to help support knowledge (co-)construction. To address this, the present study demonstrates how network analysis - in a form of diffusion-based visual and quantitative information exchange metrics - can be effectively employed to: 1. visually map the learner networks of information exchange, 2. identify and define student roles in the collaborative process, and 3. test the association between information exchange metrics and performance. The analysis is based on a dataset of a course with a CSCL module (n = 129 students). For each student, we calculated the centrality indices that reflect the roles played in information exchange, range of influence, and connectivity. Students' roles were analysed employing unsupervised clustering techniques to identify groups that share similar characteristics in regard to their emerging roles in the information exchange process. The results of this study have proved that diffusion-based visual and quantitative metrics can be effectively employed and are valuable methods to visually map the student networks of information exchange as well as to detect and define students' roles in the collaborative learning process. Furthermore, the results demonstrated a positive and statistically significant association between diffusion metrics and academic performance.
机译:CSCL的分析需要就如何建立,促进和/或约束学习者之间的知识建构提供可操作的见解,其总体目标是帮助支持知识(共)建构。为了解决这个问题,本研究展示了网络分析如何以基于扩散的视觉和定量信息交换指标的形式有效地用于:1.直观地绘制学习者的信息交流网络; 2.识别和定义学生的角色3.在协作过程中测试信息交换指标与绩效之间的关联。该分析基于具有CSCL模块的课程数据集(n = 129个学生)。我们为每个学生计算了中心指数,这些指数反映了信息交流,影响范围和连通性中所扮演的角色。使用无监督聚类技术对学生的角色进行分析,以识别在信息交换过程中新兴角色方面具有相似特征的群体。这项研究的结果证明,基于扩散的视觉和定量指标可以有效地使用,并且是有价值的方法,可以直观地绘制学生的信息交流网络图,并检测和定义学生在协作学习过程中的角色。此外,结果表明,扩散指标与学业成绩之间存在正向和统计上的显着关联。

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