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Development of retinal blood vessel segmentation methodology using wavelet transforms for assessment of diabetic retinopathy

机译:基于小波变换的视网膜血管分割方法在糖尿病视网膜病变评估中的发展

摘要

Automated image processing has the potential to assist in the early detection of diabetes, by detecting changes in blood vessel diameter and patterns in the retina. This paper describes the development of segmentation methodology in the processing of retinal blood vessel images obtained using non-mydriatic colour photography. The methods used include wavelet analysis, supervised classifier probabilities and adaptive threshold procedures, as well as morphology-based techniques. We show highly accurate identification of blood vessels for the purpose of studying changes in the vessel network that can be utilized for detecting blood vessel diameter changes associated with the pathophysiology of diabetes. In conjunction with suitable feature extraction and automated classification methods, our segmentation method could form the basis of a quick and accurate test for diabetic retinopathy, which would have huge benefits in terms of improved access to screening people for risk or presence of diabetes.
机译:自动化的图像处理通过检测血管直径和视网膜图案的变化,有可能有助于糖尿病的早期检测。本文介绍了在使用非散瞳彩色摄影获得的视网膜血管图像处理中分割方法的发展。所使用的方法包括小波分析,监督的分类器概率和自适应阈值过程,以及基于形态学的技术。为了研究可用于检测与糖尿病的病理生理相关的血管直径变化的血管网络的变化,我们显示了高度准确的血管识别。结合适当的特征提取和自动分类方法,我们的分割方法可以构成快速,准确测试糖尿病性视网膜病变的基础,这对于改善筛查人群是否患有糖尿病的风险或存在将具有巨大的益处。

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