Face Recognition for Smart Door Lock System using Hierarchical Network

M. Waseem, Sundar Ali Khowaja, R. Ayyasamy, Farhan Bashir
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引用次数: 11

Abstract

Face recognition system is broadly used for human identification because of its capacity to measure the facial points and recognize the identity in an unobtrusive way. The application of face recognition systems can be applied to surveillance at home, workplaces, and campuses, accordingly. The problem with existing face recognition systems is that they either rely on the facial key points and landmarks or the face embeddings from FaceNet for the recognition process. In this paper, we propose a hierarchical network (HN) framework which uses pre-trained architecture for recognizing faces followed by the validation from face embeddings using FaceNet. We also designed a real-time face recognition security door lock system connected with raspberry pi as an implication of the proposed method. The evaluation of the proposed work has been conducted on the dataset collected from 12 students from Faculty of Engineering and Technology, University of Sindh. The experimental results show that the proposed method achieves better results over existing works. We also carried out a comparison on random faces acquired from the Internet to perform face recognition and results shows that the proposed HN framework is resilient to the randomly acquired faces.
基于层次网络的智能门锁系统人脸识别
人脸识别系统因其能够测量人脸点并以不显眼的方式识别身份而被广泛应用于人类身份识别。因此,人脸识别系统的应用可以应用于家庭、工作场所和校园的监视。现有人脸识别系统的问题在于,它们要么依赖人脸关键点和地标,要么依赖FaceNet的人脸嵌入来进行识别过程。在本文中,我们提出了一个分层网络(HN)框架,该框架使用预训练的架构进行人脸识别,然后使用FaceNet从人脸嵌入中进行验证。我们还设计了一个与树莓派连接的实时人脸识别安全门锁系统,作为该方法的体现。对拟议工作的评估是在信德大学工程与技术学院的12名学生收集的数据集上进行的。实验结果表明,该方法比现有方法取得了更好的效果。我们还对从互联网上获取的随机人脸进行了人脸识别比较,结果表明所提出的HN框架对随机获取的人脸具有弹性。
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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