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Visual Tracking by Adaptive Continual Meta-Learningopen access

Authors
Choi, JanghoonBaik, SungyongChoi, MyungsubKwon, JunseokLee, Kyoung Mu
Issue Date
Jan-2022
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Visualization; Target tracking; Adaptation models; Training; Knowledge engineering; Classification algorithms; Task analysis; Continual learning; meta learning; object tracking; visual tracking
Citation
IEEE ACCESS, v.10, pp.9022 - 9035
Indexed
SCIE
SCOPUS
Journal Title
IEEE ACCESS
Volume
10
Start Page
9022
End Page
9035
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/188640
DOI
10.1109/ACCESS.2022.3143809
ISSN
2169-3536
Abstract
We formulate the visual tracking problem as a semi-supervised continual learning problem, where only an initial frame is labeled. In contrast to conventional meta-learning based approaches that regard visual tracking as an instance detection problem with a focus on finding good weights for model initialization, we consider both initialization and online update processes simultaneously under our adaptive continual meta-learning framework. The proposed adaptive meta-learning strategy dynamically generates the hyperparameters needed for fast initialization and online update to achieve more robustness via adaptively regulating the learning process. In addition, our continual meta-learning approach based on knowledge distillation scheme helps the tracker adapt to new examples while retaining its knowledge on previously seen examples. We apply our proposed framework to deep learning-based tracking algorithm to obtain noticeable performance gains and competitive results against recent state-of-the-art tracking algorithms while performing at real-time speeds.
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COLLEGE OF ENGINEERING (DEPARTMENT OF INTELLIGENCE COMPUTING)
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