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Monitoring Student Activities with Smartwatches: On the Academic Performance Enhancement

机译:使用智能手表监控学生活动:学习成绩提升

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摘要

Motivated by the importance of studying the relationship between habits of students and their academic performance, daily activities of undergraduate participants have been tracked with smartwatches and smartphones. Smartwatches collect data together with an Android application that interacts with the users who provide the labeling of their own activities. The tracked activities include eating, running, sleeping, classroom-session, exam, job, homework, transportation, watching TV-Series, and reading. The collected data were stored in a server for activity recognition with supervised machine learning algorithms. The methodology for the concept proof includes the extraction of features with the discrete wavelet transform from gyroscope and accelerometer signals to improve the classification accuracy. The results of activity recognition with Random Forest were satisfactory (86.9%) and support the relationship between smartwatch sensor signals and daily-living activities of students which opens the possibility for developing future experiments with automatic activity-labeling, and so forth to facilitate activity pattern recognition to propose a recommendation system to enhance the academic performance of each student.
机译:由于研究学生的习惯与他们的学业成绩之间的关系很重要,因此已通过智能手表和智能手机跟踪了大学生的日常活动。智能手表与Android应用程序一起收集数据,该Android应用程序与提供自己活动标签的用户进行交互。跟踪的活动包括饮食,跑步,睡觉,课堂,考试,工作,家庭作业,交通,看电视剧和阅读。收集到的数据存储在服务器中,以使用监督的机器学习算法进行活动识别。用于概念验证的方法包括使用陀螺仪和加速度计信号中的离散小波变换提取特征,以提高分类精度。随机森林的活动识别结果令人满意(86.9%),并支持智能手表传感器信号与学生的日常活动之间的关系,这为将来开发具有自动活动标签的实验等提供了可能,以促进活动模式提出建议制度以提高每个学生的学习成绩。

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