Face Masks Usage Monitoring for Public Health Security using Computer Vision on Hardware

Dimitrios Kolosov, I. Mporas
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引用次数: 2

Abstract

Wearing face masks is one of the direct measures that can help tackling the spread of the new coronavirus. In this paper we presented an architecture for face mask wearing detection using pre-trained deep learning models for computer vision and implementation of them on embedded hardware platforms. Three object detection models were fine-tuned and optimized to run on 4 different hardware platforms. The fine tuning and optimization of the models resulted in significant reduction of the inference time, thus making the use of this technology in IoT based security systems for real-time automatic monitoring of face masks wearing realisable.
基于硬件计算机视觉的公共卫生安全口罩使用监测
戴口罩是帮助应对新型冠状病毒传播的直接措施之一。在本文中,我们提出了一种使用预训练的计算机视觉深度学习模型进行口罩佩戴检测的架构,并在嵌入式硬件平台上实现。对三个目标检测模型进行了微调和优化,以在4个不同的硬件平台上运行。模型的微调和优化大大缩短了推理时间,从而使该技术在基于物联网的安全系统中用于实时自动监控口罩佩戴情况成为可能。
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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