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A Real-Time Data Mining Approach for Interaction Analytics Assessment: IoT Based Student Interaction Framework

机译:一种用于交互分析评估的实时数据挖掘方法:基于物联网的学生交互框架

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摘要

Students’ interaction and collaboration with the fellows and teachers using the Internet of Things (IoT) based interoperable infrastructure is a convenient way. Measuring student attention is an essential part of the educational assessment for students’ interaction. As new learning styles develop, new tools and assessment methods are also needed. The focus in this paper is to develop IoT based interaction framework and analysis of the student experience in electronic learning (eLearning) so that the students can take full advantage of the modern interaction technology and their learning can increase to a high level. This setup has a data collection module, which is implemented using Visual C# programming language and computer vision library. The number of faces, number of eyes, and status of eyes are extracted from the video stream, which is taken from a video camera. 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 consider student-learning behaviors when assessing electronic learning strategies. The tools are also developed for the data collection on both student and teacher ends. Correlation of data and hidden meaning are extracted to make the learning experience and teaching performance better and adaptable. IoT based infrastructure provides the facilities to fellow students about location awareness, fellows’ accessibility, social behavior and helping hand.
机译:使用基于物联网(IoT)的可互操作基础结构,学生与同学和老师的互动和协作是一种便捷的方法。衡量学生的注意力是进行学生互动性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,并分析学生在电子学习(eLearning)中的体验,以便学生可以充分利用现代交互技术,并使他们的学习水平提高。此设置具有一个数据收集模块,该模块使用Visual C#编程语言和计算机视觉库实现。从视频流中提取面部数量,眼睛数量和眼睛状态,该视频流是从摄像机获取的。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。还开发了用于在学生和教师端进行数据收集的工具。提取数据和隐藏含义的相关性,以使学习体验和教学表现更好,更适应。基于物联网的基础设施为同学提供了有关位置意识,同学的可访问性,社交行为和伸出援助之手的设施。

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