期刊论文详细信息
CAAI Transactions on Intelligence Technology
Retinal image segmentation using double-scale non-linear thresholding on vessel support regions
article
Qingyong Li1  Min Zheng1  Feng Li1  Jianzhu Wang1  Yangli-ao Geng1  Haibo Jiang2 
[1] Beijing Key Lab of Transportation Data Analysis and Mining, Beijing Jiaotong University;Department of Ophthalmology, Xiangya Hospital, Central South University
关键词: blood vessels;    image segmentation;    eye;    medical image processing;    diseases;    image enhancement;    binary segmentation;    fine vessels;    coarse vessels;    retinal vessel segmentation;    retinal image segmentation;    vessel support regions;    cardiovascular diseases;    ophthalmologic diseases;    retinal vessels;    double-scale nonlinear thresholding method;    double-scale filtering method;    fixed-ratio thresholding method;    adaptive local thresholding;    double-scale non-linear thresholding;    contrast enhancement;    A8770E Patient diagnostic methods and instrumentation;    B6135 Optical;    image and video signal processing;    B7510 Biomedical measurement and imaging;    C5260B Computer vision and image processing techniques;    C7330 Biology and medical computing;   
DOI  :  10.1049/trit.2017.0013
学科分类:数学(综合)
来源: Wiley
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【 摘 要 】

Retinal vessel segmentation is a critical indicator of diagnosis, screening, and treatment of cardiovascular and ophthalmologic diseases. Due to the fact that the retinal vessels usually have some tiny structures and blurred boundaries, especially with remarkable noises, it is difficult to correctly segment the vascular networks. In this study, the authors propose a double-scale non-linear thresholding method based on vessel support regions. First, the double-scale filtering method is applied to enhance the contrast between the foreground vascular and the background stuffs. Second, they segment the fine and coarse vessels by the corresponding adaptive local thresholding and fixed-ratio thresholding method. Finally, they obtain the binary segmentation by fusion of fine and coarse vessels. Experiments are conducted on the publicly available DRIVE and STARE datasets, which show the effectiveness of the proposed method on retinal vessel segmentation.

【 授权许可】

CC BY|CC BY-ND|CC BY-NC|CC BY-NC-ND   

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