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  4. Co-Learning: Towards Semi-Supervised Object Detection with Road-side Cameras
 
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November 28, 2024
Paper (Preprint, Research Paper, Review Paper, White Paper, etc.)
Title

Co-Learning: Towards Semi-Supervised Object Detection with Road-side Cameras

Abstract
Recently, deep learning has experienced rapid expansion, contributing significantly to the progress of supervised learning methodologies. However, acquiring labeled data in real-world settings can be costly, labor-intensive, and sometimes scarce. This challenge inhibits the extensive use of neural networks for practical tasks due to the impractical nature of labeling vast datasets for every individual application. To tackle this, semi-supervised learning (SSL) offers a promising solution by using both labeled and unlabeled data to train object detectors, potentially enhancing detection efficacy and reducing annotation costs. Nevertheless, SSL faces several challenges, including pseudo-target inconsistencies, disharmony between classification and regression tasks, and efficient use of abundant unlabeled data, especially on edge devices, such as roadside cameras. Thus, we developed a teacher-student-based SSL framework, Co-Learning, which employs mutual learning and annotation-alignment strategies to adeptly navigate these complexities and achieves comparable performance as fully-supervised solutions using 10% labeled data.
Author(s)
Yuan, Jicheng
Le-Tuan, Anh
Ganbarov, Ali
Hauswirth, Manfred  
Technische Universität Berlin  
Phuoc, Danh Le
Technische Universität Berlin  
Open Access
File(s)
Download (3.84 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.48550/arXiv.2411.19143
10.24406/publica-4992
Language
English
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Keyword(s)
  • Semi-supervised Learning (SSL)

  • Mutual Learning

  • Object Detection

  • Road-side cameras

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