Towards Robust Classroom Attendance: A Comprehensive Evaluation of Face Detection and Recognition Models

📅 2026-09-19
📈 Citations: 0
✨ Influential: 0
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🤖 AI Summary
为解决手动考勤耗时、易错及易伪造问题,通过构建包含16,234张面部样本的Visage Face数据集,并测试多种面部识别模型,以提高教室环境下的面部识别准确性。
📝 Abstract
Manual attendance methods, such as paper or register-based systems, take a lot of time, can lead to errors, and are easy to falsify. Face recognition is more reliable, but it frequently struggles in classrooms because lighting and other conditions can vary. Face recognition datasets are designed for regulated environments and do not capture the actual challenges found in classrooms. To address this, a new face detection and recognition dataset, the Visage Face dataset, comprising 16,234 face samples, is proposed for the task of face detection and recognition. The photos are taken from different angles and under varying lighting conditions, with students showing a range of expressions, and some faces partly covered to reflect real-life situations. A YOLO-based system is used to detect faces and tested seven advanced face recognition models with thirteen configurations: LVFace, QCFace, FaceLiVTv2, TopoFR, EdgeFace, TransFace, and GhostFaceNets. Of these, FaceLiVTv2-M performed best, with 99.75% Top-1/Top-5 accuracy and an inference time of 6.459 ms. These results show that the Visage Face Dataset is a realistic and challenging benchmark for face recognition in classroom attendance.
Problem

Research questions and friction points this paper is trying to address.

manual attendance
face recognition
classroom environment
lighting conditions
dataset
Innovation

Methods, ideas, or system contributions that make the work stand out.

Visage Face Dataset
YOLO-based system
FaceLiVTv2-M
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VSITR, Kadi Sarva Vishwavidyalaya, Kadi, Gujarat, India
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