Real-Time Face Mask Detector Using Convolutional Neural Networks Amidst COVID-19 Pandemic

Efstratios Kontellis, C. Troussas, Akrivi Krouska, C. Sgouropoulou
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引用次数: 2

Abstract

The COVID-19 pandemic provoked many changes in our everyday life. For instance, wearing protective face masks has become a new norm and is an essential measure, having been imposed by countries worldwide. As such, during these times, people must wear masks to enter buildings. In view of this compelling need, the objective of this paper is to create a real-time face mask detector that uses image recognition technology to identify: (i) if it can detect a human face in a video stream and (ii) if the human face, which was detected, was wearing an object that it looked like a face mask and if it was properly worn. Our face mask detection model is using OpenCV Deep Neural Network (DNN), TensorFlow and MobileNetV2 architecture as an image classifier and after training, achieved 99.64% of accuracy.
基于卷积神经网络的新型冠状病毒大流行实时口罩检测
新冠肺炎疫情给我们的日常生活带来了许多变化。例如,戴防护口罩已成为一种新的规范,是世界各国强制实施的一项必要措施。因此,在这些时候,人们必须戴上口罩进入建筑物。鉴于这一迫切的需求,本文的目标是创建一个实时人脸检测器,使用图像识别技术来识别:(i)是否可以在视频流中检测到人脸;(ii)被检测到的人脸是否戴着看起来像面具的物体,以及是否正确佩戴。我们的人脸检测模型使用OpenCV深度神经网络(DNN)、TensorFlow和MobileNetV2架构作为图像分类器,经过训练,准确率达到99.64%。
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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