Informing the Design of Collaborative Activities in MOOCs using Actionable Predictions

Erkan Er, E. Gómez-Sánchez, Miguel L. Bote-Lorenzo, Juan I. Asensio-Pérez, Y. Dimitriadis
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引用次数: 2

Abstract

With the aim of supporting instructional designers in setting up collaborative learning activities in MOOCs, this paper derives prediction models for student participation in group discussions. The salient feature of these models is that they are built using only data prior to the learning activity, and can thus provide actionable predictions, as opposed to post-hoc approaches common in the MOOC literature. Some learning design scenarios that make use of this actionable information are illustrated.
基于可操作预测的mooc协同活动设计
为了支持教学设计师在mooc中开展协作学习活动,本文推导了学生参与小组讨论的预测模型。这些模型的显著特征是,它们仅使用学习活动之前的数据构建,因此可以提供可操作的预测,而不是MOOC文献中常见的事后方法。说明了一些利用这些可操作信息的学习设计场景。
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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