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IoT-based students interaction framework using attention-scoring assessment in eLearning

机译:在电子学习中使用关注度评估的基于物联网的学生互动框架

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摘要

AbstractStudents’ interaction and collaboration using Internet of Things (IoT) based interoperable infrastructure is a convenient way. Measuring student attention is an essential part of educational assessment. As new learning styles develop, new tools and assessment methods are also needed. The focus of this paper is to develop IoT-based interaction framework and analysis of the student experience of electronic learning (eLearning). The learning behaviors of students attending remote video lectures are assessed by logging their behavior and analyzing the resulting multimedia data using machine learning algorithms. An attention-scoring algorithm, its workflow, and the mathematical formulation for the smart assessment of the student learning experience are established. This setup has a data collection module, which can be reproduced by implementing the algorithm in any modern programming language. Some faces, eyes, and status of eyes are extracted from video stream taken from a webcam using this module. The extracted information is saved in a dataset for further analysis. The analysis of the dataset produces interesting results for student learning assessments. Modern learning management systems can integrate the developed tool to take student learning behaviors into account when assessing electronic learning strategies.HighlightsThe focus is to develop IoT based interaction framework.Next is the analysis of the student experience of electronic learning.The learning behaviors of students attending remote video lectures are assessed.Their behaviors are logged and the resulting multimedia data is analyzed.Attention-scoring algorithm is setup for assessment of student learning experience.
机译: 摘要 使用基于物联网(IoT)的可互操作基础架构的学生交互和协作是一种便捷的方法。衡量学生的注意力是教育评估的重要组成部分。随着新的学习方式的发展,还需要新的工具和评估方法。本文的重点是开发基于物联网的交互框架,并分析学生的电子学习(eLearning)体验。通过记录他们的行为并使用机器学习算法分析所得的多媒体数据,可以评估参加远程视频讲座的学生的学习行为。建立了注意力评分算法,其工作流程以及对学生学习体验进行智能评估的数学公式。此设置有一个数据收集模块,可以通过以任何现代编程语言实现该算法来复制该模块。使用此模块从网络摄像头拍摄的视频流中提取一些面部,眼睛和眼睛状态。提取的信息将保存在数据集中以供进一步分析。数据集的分析产生有趣的结果,供学生学习评估。现代学习管理系统可以集成开发的工具,以便在评估电子学习策略时考虑学生的学习行为。 突出显示 重点是开发基于IoT的交互框架。 接下来是对电子学习的学生体验的分析。 < ce:list-item id =“ d1e992”> 参加远程视频讲座的学生的学习行为是 记录其行为并分析所得的多媒体数据。 •< / ce:label> 已设置注意力评分算法,用于评估学生的学习经历。

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