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Toward evidence-based learning analytics: Using proxy variables to improve asynchronous online discussion environments

机译:进行基于证据的学习分析:使用代理变量来改善异步在线讨论环境

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Although asynchronous online discussion (AOD) is increasingly used as a main activity for blended learning, many students find it difficult to engage in discussions and report low achievement. Early prediction and timely intervention can help potential low achievers get back on track as early as possible. This study presented a data mining process to construct proxy variables that reflect theoretical and empirical evidence and measured the accuracy of a prediction model that incorporated all of the variables for validation. For the empirical study, data were obtained from 105 university students who were enrolled in two blended learning courses that used AOD as their main activity. The results indicated the high accuracy of the prediction model as well as the possibility of early detection and timely interventions. In addition, we examined participants' learning behaviors in the two courses using the proxy variables and provided suggestions for practice. The implications of this study for education data mining and learning analytics are discussed. (C) 2016 Elsevier Inc. All rights reserved.
机译:尽管异步在线讨论(AOD)越来越多地用作混合学习的主要活动,但许多学生发现很难进行讨论并报告低成就。早期的预测和及时的干预可以帮助潜在的低成就者尽早回到正轨。这项研究提出了一个数据挖掘过程,以构建反映理论和经验证据的代理变量,并测量结合了所有变量进行验证的预测模型的准确性。对于实证研究,数据来自105名大学生,他们参加了以AOD为主要活动的两门混合学习课程。结果表明,该预测模型具有很高的准确性,并且有可能及早发现和及时采取干预措施。此外,我们使用代理变量检查了两门课程中参与者的学习行为,并为实践提供了建议。讨论了这项研究对教育数据挖掘和学习分析的意义。 (C)2016 Elsevier Inc.保留所有权利。

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