首页> 外文会议>2015 IEEE UP Section Conference on Electrical Computer and Electronics >Detection of optic disc and cup from color retinal images for automated diagnosis of glaucoma
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Detection of optic disc and cup from color retinal images for automated diagnosis of glaucoma

机译:从彩色视网膜图像中检测视盘和视盘,以自动诊断青光眼

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Glaucoma is the major cause of ocular damage and vision loss in which increased Intraocular Pressure (IOP) of the eye progressively damages the optic nerve. In this proposed study, an automatic system is developed for glaucoma detection by extracting various features like vertical Cup to Disc Ratio (CDR), Horizontal to Vertical CDR (H-V CDR), Cup to Disc Area Ratio(CDAR), and Rim to Disc Area Ratio (RDAR) from digital fundus images through segmentation of Optic Disc (OD), cup and neuroretinal rim. OD is segmented using Geodesic active contour model and cup is detected using color information of the pallor region in M channel of CMY color space. The performance evaluation of the proposed technique has been carried out on 150 images comprising 75 normal and 75 glaucoma images using a set of supervised classifiers namely Naive Bayes(NB), Support Vector Machine (SVM), and k-Nearest Neighbor (k-NN). On the private database, the proposed system yields the highest accuracy, Positive Predictive Value (PPV), Negative Predictive Value (NPV), specificity and sensitivity of 99.22%, 84.41%, 86.30%, 84% and 86.66% respectively using k-NN classifier. The results obtained by proposed technique indicate that this glaucoma detection system is beneficial for the clinicians in glaucoma screening programs.
机译:青光眼是眼损伤和视力丧失的主要原因,其中眼睛的眼内压(IOP)升高会逐渐损害视神经。在这项拟议的研究中,通过提取各种特征(例如垂直杯对椎间盘比(CDR),水平对垂直CDR(HV CDR),杯对椎盘面积比(CDAR)和边缘对椎盘面积)开发了用于青光眼检测的自动系统数字眼底图像的比值(RDAR),通过视盘(OD),杯和神经视网膜边缘的分割。使用测地线活动轮廓模型对OD进行分割,并使用CMY颜色空间的M通道中的苍白区域的颜色信息检测杯子。使用一组监督分类器,即朴素贝叶斯(NB),支持向量机(SVM)和k最近邻(k-NN),对包括75张正常和75张青光眼图像的150张图像进行了性能评估。 )。在私有数据库上,所提出的系统使用k-NN的准确性最高,正预测值(PPV),负预测值(NPV),特异性和灵敏度分别为99.22%,84.41%,86.30%,84%和86.66%。分类器。通过提出的技术获得的结果表明,该青光眼检测系统对于青光眼筛查程序中的临床医生是有益的。

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