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Automated Segmentation and Quantification of Drusen in Fundus and Optical Coherence Tomography Images for Detection of ARMD

机译:眼底和光学相干断层扫描图像中玻璃疣的自动分割和定量用于检测ARMD

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摘要

Age-related macular degeneration (ARMD) is one of the most common retinal syndromes that occurs in elderly people. Different eye testing techniques such as fundus photography and optical coherence tomography (OCT) are used to clinically examine the ARMD-affected patients. Many researchers have worked on detecting ARMD from fundus images, few of them also worked on detecting ARMD from OCT images. However, there are only few systems that establish the correspondence between fundus and OCT images to give an accurate prediction of ARMD pathology. In this paper, we present fully automated decision support system that can automatically detect ARMD by establishing correspondence between OCT and fundus imagery. The proposed system also distinguishes between early, suspect and confirmed ARMD by correlating OCT B-scans with respective region of the fundus image. In first phase, proposed system uses different B-scan based features along with support vector machine (SVM) to detect the presence of drusens and classify it as ARMD or normal case. In case input OCT scan is classified as ARMD, region of interest from corresponding fundus image is considered for further evaluation. The analysis of fundus image is performed using contrast enhancement and adaptive thresholding to detect possible drusens from fundus image and proposed system finally classified it as early stage ARMD or advance stage ARMD. The proposed system is tested on local data set of 100 patients with100 fundus images and 6800 OCT B-scans. Proposed system detects ARMD with the accuracy, sensitivity, and specificity ratings of 98.0, 100, and 97.14%, respectively.
机译:年龄相关性黄斑变性(ARMD)是老年人中最常见的视网膜综合征之一。眼底照相和光学相干断层扫描(OCT)等不同的眼部检查技术用于临床检查受ARMD影响的患者。许多研究人员致力于从眼底图像中检测ARMD,但很少有人也致力于从OCT图像中检测ARMD。但是,只有很少的系统可以建立眼底和OCT图像之间的对应关系,以准确预测ARMD病理。在本文中,我们提出了一种全自动的决策支持系统,该系统可以通过在OCT和眼底图像之间建立对应关系来自动检测ARMD。所提出的系统还通过将OCT B扫描与眼底图像的各个区域相关联来区分早期,疑似和确诊的ARMD。在第一阶段,提出的系统使用基于B扫描的不同特征以及支持向量机(SVM)来检测玻璃疣的存在并将其分类为ARMD或正常情况。如果输入的OCT扫描被分类为ARMD,则应考虑来自相应眼底图像的感兴趣区域以进行进一步评估。对眼底图像的分析是使用对比度增强和自适应阈值进行的,以从眼底图像中检测出可能存在的疣体,所提出的系统最终将其分类为早期ARMD或晚期ARMD。该系统在100位患者的本地数据集上进行了测试,其中包括100位眼底图像和6800次OCT B扫描。拟议的系统以98.0%,100%和97.14%的准确度,灵敏度和特异性等级检测ARMD。

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