Paper
27 January 2023 A ROI based self-supervised strategy for retinal image analysis
Shiyun Dong, Qiang Chen
Author Affiliations +
Proceedings Volume 12550, International Conference on Optical and Photonic Engineering (icOPEN 2022); 125501I (2023) https://doi.org/10.1117/12.2667274
Event: International Conference on Optical and Photonic Engineering (icOPEN 2022), 2022, ONLINE, China
Abstract
With the maturity of deep learning methods and the collection of a large number of retinal images, many deep learning models have been used for retinopathy analysis, but most of them are supervised methods. That is, the training of the models relies heavily on a large number of annotated retinal images, which is sometimes difficult to satisfy in medical fields including ophthalmology. This paper explores the application of self-supervised methods that do not require a large amount of labeled data in the analysis of retinal images. Firstly, we propose a novel self-supervised task of column dislocation and compare the performance of various self-supervised tasks on the retinopathy classification, verifying our proposed task’s effectiveness. Then, by considering the characteristics of retinal images, namely the Region Of Interest (ROI) in Spectral Domain Optical Coherence Tomography (SD-OCT) images is less than half of the whole images, we also propose a ROI based self-supervised strategy to improve the feature representation ability. The experiments on two public datasets for retinal image classification and segmentation demonstrate that the proposed strategy is effective compared with several existed self-supervised learning methods.
© (2023) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Shiyun Dong and Qiang Chen "A ROI based self-supervised strategy for retinal image analysis", Proc. SPIE 12550, International Conference on Optical and Photonic Engineering (icOPEN 2022), 125501I (27 January 2023); https://doi.org/10.1117/12.2667274
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KEYWORDS
Image segmentation

Image classification

Medical imaging

Image analysis

Retina

Deep learning

Image processing

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