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  4. YawnNet: A Visual-Centric Approach for Yawning Detection
 
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2024
Conference Paper
Title

YawnNet: A Visual-Centric Approach for Yawning Detection

Abstract
Yawning detection is actively used in multimedia applications such as driver fatigue assessment and status monitoring. However, the accuracy and robustness of existing yawning detectors are limited due to variations in environments (especially lights), facial expressions, and confusion behaviours (e.g., talking and eating). This paper introduces a transformer-based method, YawnNet, for accurate yawning detection by leveraging spatial-temporal encoding and local cues. In particular, YawnNet contains a data processing stage with temporal downsampling and cube embedding on the input sequence. Moreover, it includes a Swin-Transformer block that operates on fine-grained patches to uncover short-range local cues. Through comprehensive experiments, we demonstrate the advantages of YawnNet: (1) significantly higher accuracy than the state-of-the-art Dense-LSTM (precision and recall increased by 2.3% and 4.2%, respectively) on the FatigueView dataset, (2) close to real-time (30 FPS on RTX 3090), and (3) a marked improvement in robustness on confusion behaviours, invariance (resolution and orientation) and complex scenarios (occlusion, over- and underexpose).
Author(s)
Sun, Ruoxi
Yang, Xinyu
Qian, Cong
Zhu, Chenyu
Sui, Wei
Boukhers, Zeyd  
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
Yang, Cong
Mainwork
Proceedings of the 14th Annual ACM International Conference on Multimedia Retrieval, ICMR 2024  
Conference
International Conference on Multimedia Retrieval 2024  
DOI
10.1145/3652583.3657618
Language
English
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
Keyword(s)
  • Driver Fatigue

  • Transformer

  • Yawning

  • Yawning Detection

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