Robust Face Mask Detection by a Socially Assistive Robot Using Deep Learning

被引:0
|
作者
Zhang, Yuan [1 ]
Effati, Meysam [1 ]
Tan, Aaron Hao [1 ]
Nejat, Goldie [1 ,2 ]
机构
[1] Univ Toronto, Dept Mech & Ind Engn, Autonomous Syst & Biomechatron Lab ASBLab, Toronto, ON M5S 3G8, Canada
[2] Univ Hlth Network, KITE Res Inst, Toronto Rehabil Inst, Toronto, ON M5G 2A2, Canada
关键词
socially assistive robots; autonomous face mask detection; human-robot interactions; COVID-19; pandemic; extended ResNet-50; PREVENT;
D O I
10.3390/computers13010007
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Wearing masks in indoor and outdoor public places has been mandatory in a number of countries during the COVID-19 pandemic. Correctly wearing a face mask can reduce the transmission of the virus through respiratory droplets. In this paper, a novel two-step deep learning (DL) method based on our extended ResNet-50 is presented. It can detect and classify whether face masks are missing, are worn correctly or incorrectly, or the face is covered by other means (e.g., a hand or hair). Our DL method utilizes transfer learning with pretrained ResNet-50 weights to reduce training time and increase detection accuracy. Training and validation are achieved using the MaskedFace-Net, MAsked FAces (MAFA), and CelebA datasets. The trained model has been incorporated onto a socially assistive robot for robust and autonomous detection by a robot using lower-resolution images from the onboard camera. The results show a classification accuracy of 84.13% for the classification of no mask, correctly masked, and incorrectly masked faces in various real-world poses and occlusion scenarios using the robot.
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页数:20
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