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author:

Li, Z. (Li, Z..) [1] | Lin, Q. (Lin, Q..) [2] | Fan, H. (Fan, H..) [3] | Zhao, T. (Zhao, T..) [4] | Zhang, D. (Zhang, D..) [5]

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Abstract:

Semi-supervised learning suffers from the imbalance of labeled and unlabeled training data in the video surveillance scenario. In this paper, we propose a new semi-supervised learning method called SIAVC for industrial accident video classification. Specifically, we design a video augmentation module called the Super Augmentation Block (SAB). SAB adds Gaussian noise and randomly masks video frames according to historical loss on the unlabeled data for model optimization. Then, we propose a Video Cross-set Augmentation Module (VCAM) to generate diverse pseudo-label samples from the high-confidence unlabeled samples, which alleviates the mismatch of sampling experience and provides high-quality training data. Additionally, we construct a new industrial accident surveillance video dataset with frame-level annotation, namely ECA9, to evaluate our proposed method. Compared with the state-of-the-art semi-supervised learning based methods, SIAVC demonstrates outstanding video classification performance, achieving 88.76% and 89.13% accuracy on ECA9 and Fire Detection datasets, respectively. The source code and the constructed dataset ECA9 will be released in https://github.com/AlchemyEmperor/SIAVC.  © 1991-2012 IEEE.

Keyword:

consistency regularization deep learning distribution alignment Video classification

Community:

  • [ 1 ] [Li Z.]Minjiang University, Fujian Provincial Key Laboratory of Information Processing and Intelligent Control, College of Computer and Control Engineering, Fuzhou, 350121, China
  • [ 2 ] [Lin Q.]Fujian University of Technology, School of Computer Science and Mathematics, Fuzhou, 350118, China
  • [ 3 ] [Fan H.]Zhengzhou University, School of Computer and Artificial Intelligence, Zhengzhou, 45000, China
  • [ 4 ] [Zhao T.]Fuzhou University, Fujian Key Lab for Intelligent Processing and Wireless Transmission of Media Information, Fuzhou, 350108, China
  • [ 5 ] [Zhang D.]The Chinese University of Hong Kong (Shenzhen), School of Data Science, Shenzhen, 518172, China

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IEEE Transactions on Circuits and Systems for Video Technology

ISSN: 1051-8215

Year: 2024

8 . 3 0 0

JCR@2023

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ESI Highly Cited Papers on the List: 0 Unfold All

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30 Days PV: 3

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