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Cited 18 time in webofscience Cited 18 time in scopus
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Multitask learning with single gradient step update for task balancingopen access

Authors
Lee, SungjaeSon, Youngdoo
Issue Date
Jan-2022
Publisher
Elsevier BV
Keywords
Convolution neural network; Deep learning; Gradient-based meta learning; Multitask learning
Citation
Neurocomputing, v.467, pp 442 - 453
Pages
12
Indexed
SCIE
SCOPUS
Journal Title
Neurocomputing
Volume
467
Start Page
442
End Page
453
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/3712
DOI
10.1016/j.neucom.2021.10.025
ISSN
0925-2312
1872-8286
Abstract
Multitask learning is a methodology to boost generalization performance and also reduce computational intensity and memory usage. However, learning multiple tasks simultaneously can be more difficult than learning a single task because it can cause imbalance among tasks. To address the imbalance problem, we propose an algorithm to balance between tasks at the gradient level by applying gradient-based meta- learning to multitask learning. The proposed method trains shared layers and task-specific layers sepa-rately so that the two layers with different roles in a multitask network can be fitted to their own pur -poses. In particular, the shared layer that contains informative knowledge shared among tasks is trained by employing single gradient step update and inner/outer loop training to mitigate the imbalance problem at the gradient level. We apply the proposed method to various multitask computer vision prob-lems and achieve state-of-the-art performance. CO 2021 Elsevier B.V. All rights reserved.
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