Real-time Smartphone Usage Surveillance System Based on YOLOv5

Rr. Hajar, Puji Sejati, Rodhiyah Mardhiyyah, Nur Istiqomah, R. Imam, Budi Prasetya
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引用次数: 1

Abstract

The digital era affects students' attitudes toward utilizing applications as learning media. This phenomenon can be used to boost student achievement, but it can also have negative consequences, such as chatting while studying or cheating on school exams. To support the positive and reduce the negative impact of smartphone use, it is necessary to supervise this activity. The supervision can be done by utilizing a camera to detect a smartphone. The YOLOv5 algorithm was used, which is known for its good speed and accuracy in object detection. This smartphone detection system can be controlled, so the application is adjustable to the needs of learning activities. Collecting a dataset, annotating, training objects, writing program code, and testing the system are all stages in the development of this system. The dataset used in this research consists of 1,038 smartphone images from the internet and camera-captured images. This detection system was built to assist teachers in monitoring the use of smartphones by students. The results of this model training are 77.7% mean average precision, 93.2% precision rate, and 71.7% recall rate under varying lighting conditions.
基于YOLOv5的智能手机实时使用监控系统
数字时代影响了学生使用应用程序作为学习媒介的态度。这种现象可以用来提高学生的成绩,但它也会产生负面影响,比如边学习边聊天或在学校考试中作弊。为了支持积极和减少智能手机使用的负面影响,有必要监督这一活动。监控可以通过摄像头检测智能手机来完成。使用了YOLOv5算法,该算法在目标检测方面具有良好的速度和准确性。这种智能手机检测系统是可以控制的,因此应用程序可以根据学习活动的需要进行调整。收集数据集、标注、训练对象、编写程序代码和测试系统是该系统开发的各个阶段。本研究中使用的数据集包括来自互联网的1038张智能手机图像和相机拍摄的图像。这个检测系统是为了帮助老师监控学生使用智能手机的情况。在不同光照条件下,该模型训练的平均准确率为77.7%,准确率为93.2%,召回率为71.7%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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