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Modeling and detecting student attention and interest level using wearable computers

机译:使用可穿戴计算机对学生的注意力和兴趣水平进行建模和检测

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The cognitive states of students in a lecture can give good indications of student concentration and learning, and therefore, modeling them would have a positive impact on their quality of education by enabling the intervention of instructors. In a traditional class, the instructor would assess the students' level of attention. However, the assessment may not be accurate for a variety of reasons. Additionally, this creates a burden for the instructors. Wearable sensors and signal processing techniques could provide opportunities to assist teachers with this assessment. In this paper, we propose a methodology to model students' cognitive states by leveraging hand motion and heart activity captured with smart watches. Following the application of a sequence of signal processing techniques to the raw data, we generate features, which describe characteristics of the hand motion and heart activity in a group of students. The most prominent features are selected for machine learning algorithms. By applying cross validation, the results of experiments on 30 students in two lectures offer accuracies of 98.99% and 95.78% for predictions of `interest level' and `perception of difficulty' on the topics covered during the lectures.
机译:讲座中学生的认知状态可以很好地表明学生的注意力和学习情况,因此,通过对教师进行干预,对他们进行建模将对他们的教育质量产生积极影响。在传统课程中,导师将评估学生的注意力水平。但是,由于多种原因,评估可能不准确。另外,这给教师造成了负担。可穿戴式传感器和信号处理技术可以提供帮助教师进行评估的机会。在本文中,我们提出了一种方法,可以利用智能手表捕获的手部动作和心脏活动来模拟学生的认知状态。在将一系列信号处理技术应用于原始数据之后,我们生成了一些特征,这些特征描述了一组学生中手部运动和心脏活动的特征。为机器学习算法选择了最突出的功能。通过交叉验证,在两个讲座中对30名学生进行的实验结果提供了98.99%和95.78 \%的准确率,可以预测讲座中所涉及主题的“兴趣水平”和“困难感”。

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