IEEJ Transactions on Industry Applications
Online ISSN : 1348-8163
Print ISSN : 0913-6339
ISSN-L : 0913-6339
Special Issue Paper
Estimation of Body Occlusion Using Deep Learning for Advanced Intelligent Video Surveillance System
Itaru NagayamaTatsuya IwanagaWakaki UeharaTakaya Miyazato
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2021 Volume 141 Issue 2 Pages 138-146

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Abstract

This paper presents the development of a new method for the estimation and resolution of body occlusion using deep learning for an advanced intelligent video surveillance system. A generative adversarial network is used to estimate and reconstruct an image of a hidden part of the human body. Furthermore, an alternative learning approach using 3DCG that was developed in our previous study is adopted to create a large dataset for deep learning. Experimental results indicate that the proposed method performs well in the estimation of hidden parts of the human body using images of actual people.

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© 2021 by the Institute of Electrical Engineers of Japan
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