Near-realtime face mask wearing recognition based on deep learning

Hong Lin, Rita Tse, Su Kit Tang, Yanbing Chen, Wei Ke, Giovanni Pau

研究成果: Conference contribution同行評審

26 引文 斯高帕斯(Scopus)

摘要

COVID-19 pandemic has led to serious economic and life losses. Face Masks serve as first infection barrier when used in public spaces. In this paper, we propose a new near-realtime method to automatically recognize face mask wearing that combines human posture recognition with convolutional neural network (CNN). We use the power of human posture recognition to perform background filtering and spatial reduction in the original images. The outcome is then used by a trained CNN model to identify if the subject is wearing a mask. We exploit Openpose to identify the skeleton of human body and locate the facial region thus spatially reducing the area to be processed by the CNN framework. We then adopt supervised learning approach to detect if a face mask is present. The CNN is trained using images, cropped to the supposed face mask covered region. This approach led to a substantial reduction in neural network complexity yet improving the recognition accuracy. The system has been evaluated in a multitude of scenarios using images taken in public places at different time of day and with different angles. Overall, our system achieves a recognition accuracy of 95.8% and 94.6% in daytime and nighttime respectively.

原文English
主出版物標題2021 IEEE 18th Annual Consumer Communications and Networking Conference, CCNC 2021
發行者Institute of Electrical and Electronics Engineers Inc.
ISBN(電子)9781728197944
DOIs
出版狀態Published - 9 1月 2021
事件18th IEEE Annual Consumer Communications and Networking Conference, CCNC 2021 - Virtual, Las Vegas, United States
持續時間: 9 1月 202113 1月 2021

出版系列

名字2021 IEEE 18th Annual Consumer Communications and Networking Conference, CCNC 2021

Conference

Conference18th IEEE Annual Consumer Communications and Networking Conference, CCNC 2021
國家/地區United States
城市Virtual, Las Vegas
期間9/01/2113/01/21

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