Detection of Glaucoma in Retinal Fundus Images using Fast Fuzzy C Mean Clustering

Law Kumar Singh, P. Pooja, H. Garg
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Abstract

Glaucoma is one of the major causes of vision loss in today’s world. Glaucoma is a disease in the eye where fluid pressure in the eye increases; if it is not timely cured, the patient may lose their vision. Glaucoma can be detected by examining boundary of optics cup and optics disc acquired from fundus images. The proposed method suggest automatic detect the boundary of optics cup and optics disc with processing of fundus images. This paper explores the new approach fast fuzzy C-mean technique for segmenting the optic disc and optic cup in fundus images. Results evaluated by fast fuzzy C mean a technique is faster than fuzzy C-mean method. The proposed method reported results to 91.91%, 90.49% and 90.17% when tested on DRIONS, DRIVE and STARE on publicly available databases of fundus images.
基于快速模糊C均值聚类的视网膜眼底图像青光眼检测
青光眼是当今世界视力丧失的主要原因之一。青光眼是一种眼部疾病,眼部液体压力升高;如果不及时治疗,患者可能会失去视力。青光眼可以通过检查眼底图像中光学杯和光学盘的边界来诊断。该方法通过对眼底图像的处理,自动检测光学杯和光学盘的边界。本文探讨了快速模糊c均值分割眼底图像视盘和视杯的新方法。快速模糊C均值法比模糊C均值法评价结果的速度更快。在DRIONS、DRIVE和STARE等公开的眼底图像数据库上进行测试,结果分别为91.91%、90.49%和90.17%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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