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Cited 4 time in webofscience Cited 4 time in scopus
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Attentive Transfer Learning via Self-supervised Learning for Cervical Dysplasia Diagnosis

Authors
Chae, JinyeongZimmermann, RogerKim, DonghoKim, Jihie
Issue Date
Jun-2021
Publisher
KOREA INFORMATION PROCESSING SOC
Keywords
Attention Learning; Cervical Dysplasia; Patch self-supervised Learning; Transfer Learning
Citation
JOURNAL OF INFORMATION PROCESSING SYSTEMS, v.17, no.3, pp 453 - 461
Pages
9
Indexed
SCOPUS
ESCI
KCI
Journal Title
JOURNAL OF INFORMATION PROCESSING SYSTEMS
Volume
17
Number
3
Start Page
453
End Page
461
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/4927
DOI
10.3745/JIPS.04.0214
ISSN
1976-913X
2092-805X
Abstract
Many deep learning approaches have been studied for image classification in computer vision. However, there are not enough data to generate accurate models in medical fields, and many datasets are not annotated. This study presents a new method that can use both unlabeled and labeled data. The proposed method is applied to classify cervix images into normal versus cancerous, and we demonstrate the results. First, we use a patch self-supervised learning for training the global context of the image using an unlabeled image dataset. Second, we generate a classifier model by using the transferred knowledge from self-supervised learning. We also apply attention learning to capture the local features of the image. The combined method provides better performance than state-of-the-art approaches in accuracy and sensitivity.
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