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Student Opinions About Personalized Recommendation and Feedback Based on Learning Analytics

机译:关于基于学习分析的个性化推荐和反馈的学生意见

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There is a growing interest in the use of learning analytics in higher education institutions. Learning analytics also appear to have the potential to be used to provide personalized feedback and support in online learning. However, when the literature is examined, the use of learning analytics for this purpose appears as a gap to be investigated. This research aims to examine the opinions of pre-service teachers about the personalized recommendation and guidance feedback based on learning analytics. The research was carried out on 40 pre-service teachers in the Computer I course, which was conducted according to the flipped learning model for 12 weeks. Throughout the research process, personalized feedback based on learning analytics was provided by researcher (the researcher is also the teacher of the Computer I course) to pre-service teachers at the end of each week. Accordingly, the students' weekly learning management system (LMS) obtained learning analytics results from the log data related to their usage behavior. Then, the researcher prepared personalized recommendation and guidance messages based on learning analytics results. Learning analytics results and related recommendations and guidance messages were sent via LMS (from the messaging tool) as feedback. This process was done for each pre-service teacher by the researcher every week during the research process. The data of the research were obtained with a semi-structured opinion form and content analysis was made in the analysis of the data. As a result of the research, beneficial aspects and limitations of personalized recommendation and guidance feedback based on learning analytics from the perspective of pre-service teachers were revealed. In line with the results obtained from the research, various suggestions were made for the design and use of feedback messages based on learning analytics.
机译:在高等教育机构中使用学习分析越来越感兴趣。学习分析也似乎有可能用于提供在线学习中的个性化反馈和支持。然而,当检查文献时,为此目的使用学习分析看起来是要调查的差距。本研究旨在审查基于学习分析的个性化推荐和指导反馈的服务前教师的意见。该研究是在电脑I课程中的40名售前教师进行,这是根据翻转的学习模型进行12周进行的。在整个研究过程中,基于学习分析的个性化反馈由研究人员提供(研究人员也是计算机的老师,我课程的老师)每周结束前的教师。因此,学生的每周学习管理系统(LMS)从与其使用行为相关的日志数据获得了学习分析结果。然后,研究人员根据学习分析结果准备了个性化推荐和指导消息。学习分析结果和相关的建议和指导消息通过LMS(来自Messaging Tool)作为反馈发送。研究人员每周在研究过程中每周都是为每个服务前教师完成的。通过半结构化意见形式获得研究数据,并在分析数据时进行内容分析。揭示了根据学习分析的研究,有益的方面和局限,从售前前教师的角度出发。符合从研究中获得的结果,根据学习分析,对设计和使用反馈消息进行各种建议。

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