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The benefits and caveats of using clickstream data to understand student self-regulatory behaviors: opening the black box of learning processes

机译:使用Clickstream数据来了解学生自我监管行为的益处和警告:打开黑匣子的学习过程

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摘要

Abstract Student clickstream data—time-stamped records of click events in online courses—can provide fine-grained information about student learning. Such data enable researchers and instructors to collect information at scale about how each student navigates through and interacts with online education resources, potentially enabling objective and rich insight into the learning experience beyond self-reports and intermittent assessments. Yet, analyses of these data often require advanced analytic techniques, as they only provide a partial and noisy record of students’ actions. Consequently, these data are not always accessible or useful for course instructors and administrators. In this paper, we provide an overview of the use of clickstream data to define and identify behavioral patterns that are related to student learning outcomes. Through discussions of four studies, we provide examples of the complexities and particular considerations of using these data to examine student self-regulated learning.
机译:摘要学生点球数据时标记的在线课程中的点击事件 - 可以提供有关学生学习的细粒度信息。这些数据使研究人员和教师能够在规模上收集信息,以便在每个学生如何通过在线教育资源进行互动,潜在地支持客观和丰富地洞察自我报告和间歇性评估。然而,这些数据的分析通常需要先进的分析技术,因为它们只提供了学生行动的部分和嘈杂的记录。因此,这些数据并不总是可以访问或有用,以便课程教练和管理员。在本文中,我们概述了点击流数据来定义和识别与学生学习结果相关的行为模式。通过讨论四项研究,我们提供了使用这些数据来检查学生自我监管学习的复杂性和特定考虑的例子。

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