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Masked face recognition with convolutional visual self-attention network

delete2023-01-01
delete19
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OA
AI
Y
Yiming Ge
刘辉 封面图
刘辉 (Hui Liu) *
J
Junzhao Du
Z
Zehua Li
Y
Yuheng Wei
DOI:10.1016/j.neucom.2022.10.025delete
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摘要

摘要

En 中文
With the global outbreak of COVID-19, wearing face masks has been actively introduced as an effective public measure to reduce the risk of virus infection. This measure leads to the failure of face recognition in many cases. Therefore, it is very necessary to improve the recognition performance of masked face recognition (MFR). Inspired by the successful application of self-attention in computer vision, we propose a Convolutional Visual Self-Attention Network (CVSAN), which uses self-attention to augment the convolution operator. Specifically, this is achieved by connecting a convolutional feature map, which enforces local features, to a self-attention feature map that is capable of modeling long-range dependencies. Since there is currently no publicly available large-scale masked face data, we generate a Masked VGGFace2 dataset based on the face detection algorithm to train the CVSAN model. Experiments show that the CVSAN algorithm significantly improves the performance of MFR compared to other algorithms. (c) 2022 Published by Elsevier B.V.
Keyword:
COVID-19
Masked face recognition
Convolutional
Self-attention
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期刊

Neurocomputing 封面图
Neurocomputing
IF:
6.5
论文数:
2.5W
被引数:
6.5W

机构

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Xidian University
学者数:
2.4W
论文数: 1.9W
被引数: 9.7K
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