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A Crowdsourcing-Based Approach to Assess Concentration Levels of Students in Class Videos

机译:基于众包的方法评估课堂视频中学生的注意力水平

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Concentration is important for students to conduct efficient learning in a class, and an effective assessment of students' concentration level in a class is useful for students to review class materials after lessons, as well as for lecturers to adjust their teaching strategies for self-improvement. Although a number of concentration assessment approaches have been proposed, conventional approaches are generally time/money expensive (e.g., expert opinions), inaccurate (e.g., computer vision-based approaches), and intrusive (e.g., wearable sensor-based approaches). In this study, we propose a novel approach, called Concentration Level Assessment System (CLAS), which combines a markovian Doze-and-Wake Model (DAWM) and the emerging crowdsourcing technique to enable effective concentration assessment of class videos. Using realistic datasets of class videos, we conduct a comprehensive set of synthetic analysis and Internet experiments, the results demonstrate that CLAS is capable of yielding an accuracy up to 98% with 86% cost savings. Moreover, CLAS is simple, effective, and scalable, and it shows promises in facilitating advanced applications for efficiency, productivity, and safety in the future.
机译:专心致志对于学生在课堂上进行有效的学习很重要,有效评估学生在课堂上的专心程度对于学生在课后复习课堂材料以及对讲师调整自我完善的教学策略都非常有用。 。尽管已经提出了许多浓度评估方法,但是常规方法通常是时间/金钱上昂贵的(例如,专家意见),不准确的(例如,基于计算机视觉的方法)和侵入性的(例如,基于可穿戴传感器的方法)。在这项研究中,我们提出了一种称为集中度评估系统(CLAS)的新方法,该系统结合了马尔可夫打Do醒模型(DAWM)和新兴的众包技术,可以对课堂视频进行有效的集中度评估。通过使用真实的课堂视频数据集,我们进行了全面的综合分析和Internet实验,结果表明CLAS能够提供高达98%的准确度,并节省86%的成本。而且,CLAS是简单,有效和可扩展的,它显示了将来在促进先进应用程序以提高效率,生产率和安全性方面的前景。

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