Universal Vessel Segmentation for Multi-Modality Retinal Images

计算机视觉 图像分割 人工智能 眼底(子宫) 计算机科学 分割 视网膜 视网膜 图像处理 模式 模式识别(心理学) 医学影像学 检眼镜 尺度空间分割 扫描激光检眼镜 视网膜动脉 光学相干层析成像 视网膜病变
作者
Bo Wen,Anna Heinke,Akshay Agnihotri,Dirk-Uwe Bartsch,William R. Freeman,Truong Q. Nguyen,Cheolhong An
出处
期刊:IEEE transactions on image processing [Institute of Electrical and Electronics Engineers]
卷期号:34: 7903-7918
标识
DOI:10.1109/tip.2025.3623893
摘要

We identify two major limitations in the existing studies on retinal vessel segmentation: 1) Most existing works are restricted to one modality, i.e., the Color Fundus (CF). However, multi-modality retinal images are used every day in the study of the retina and diagnosis of retinal diseases, and the study of vessel segmentation on other modalities is scarce; 2) Even though a few works extended their experiments to new modalities such as the Multi-Color Scanning Laser Ophthalmoscopy (MC), these works still require fine-tuning a separate model for the new modality. The fine-tuning will require extra training data, which is difficult to acquire. In this work, we present a novel universal vessel segmentation model (URVSM) for multi-modality retinal images. In addition to performing the study on a much wider range of image modalities, we also propose a universal model to segment the vessels in all these commonly used modalities. While being much more versatile compared with existing methods, our universal model also demonstrates comparable performance to the state-of-the-art fine-tuned methods. To the best of our knowledge, this is the first work that achieves modality-agnostic retinal vessel segmentation and the first to study retinal vessel segmentation in several novel modalities (Code, model and 3 new retinal vessel segmentation datasets are available at https://github.com/JRC-VPLab/URVSM).
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