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Helping Teachers Handle the Flood of Data in Online Student Discussions

机译:帮助教师处理在线学生讨论中的数据

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E-discussion tools provide students with the opportunity not only to learn about the topic under discussion but to acquire argumentation and collaboration skills and to engage in analytic thinking. However, too often, e-discussions are not fruitful and moderation is needed. We describe our approach, which employs intelligent data analysis techniques, to support teachers as they moderate multiple simultaneous discussions. We have generated six machine-learned classifiers for detecting potentially important discussion characteristics, such as a "reasoned claim" and an "argument-counterargument" sequence. All of our classifiers have achieved satisfactory Kappa values and are integrated in an online classification system. We hypothesize how a teacher might use this information by means of two authentic e-discussion examples. Finally, we discuss ways to bootstrap from these fine-grained classifications to the analysis of more complex patterns of interaction.
机译:电子讨论工具为学生提供了有机的机会,不仅可以了解正在讨论的主题,而是为了获得论证和协作技巧并从事分析思维。然而,经常,E-讨论不是富有成效的,需要适度。我们描述了我们采用智能数据分析技术的方法,以支持教师,因为它们适度多次同时讨论。我们已经生成了六种机器学习的分类器,用于检测潜在的重要讨论特征,例如“受理的声明”和“参数反驳”序列。我们所有的分类器都取得了满意的κ值,并集成在在线分类系统中。我们假设教师如何通过两个真实的电子讨论示例使用此信息。最后,我们讨论了从这些细粒度分类开始引导的方法,以分析更复杂的互动模式。

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