Facial Biometric Identification in The Masked Face

Ardiansyah, D. Liliana
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引用次数: 1

Abstract

The COVID-19 pandemic has brought challenges in the field of biometrics to be able to carry out biometric identification on masked faces. Various studies on biometric identification on masked faces have been carried out and some have obtained promising results. This study aims to obtain a biometric identification method for masked faces using the JAFFE database dataset which has been manipulated into masked face images. The proposed method in this study can produce an accuracy value of 96%, which is promising enough to be applied in the biometric industry. The proposed method uses the face area segmentation technique and extraction of local binary pattern and histogram of oriented gradient features with the Support Vector Machine classification method.
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蒙面面部生物识别
新冠肺炎疫情给生物识别技术领域带来了挑战,无法对蒙面人脸进行生物识别。关于蒙面生物特征识别的各种研究已经开展,其中一些研究取得了可喜的成果。本研究旨在利用JAFFE数据库数据集,将其处理成被屏蔽的人脸图像,获得一种被屏蔽人脸的生物特征识别方法。本研究提出的方法可以产生96%的准确率值,在生物识别行业中有足够的应用前景。该方法采用人脸区域分割技术,结合支持向量机分类方法提取局部二值模式和梯度特征直方图。
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