首页> 美国卫生研究院文献>BioMed Research International >Fully Automated Robust System to Detect Retinal Edema, Central Serous Chorioretinopathy, and Age Related Macular Degeneration from Optical Coherence Tomography Images
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Fully Automated Robust System to Detect Retinal Edema, Central Serous Chorioretinopathy, and Age Related Macular Degeneration from Optical Coherence Tomography Images

机译:全自动鲁棒系统,从光学相干断层扫描图像检测视网膜水肿,中央性浆液性脉络膜视网膜病变和与年龄相关的黄斑变性

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摘要

Maculopathy is the excessive damage to macula that leads to blindness. It mostly occurs due to retinal edema (RE), central serous chorioretinopathy (CSCR), or age related macular degeneration (ARMD). Optical coherence tomography (OCT) imaging is the latest eye testing technique that can detect these syndromes in early stages. Many researchers have used OCT images to detect retinal abnormalities. However, to the best of our knowledge, no research that presents a fully automated system to detect all of these macular syndromes is reported. This paper presents the world's first ever decision support system to automatically detect RE, CSCR, and ARMD retinal pathologies and healthy retina from OCT images. The automated disease diagnosis in our proposed system is based on multilayered support vector machines (SVM) classifier trained on 40 labeled OCT scans (10 healthy, 10 RE, 10 CSCR, and 10 ARMD). After training, SVM forms an accurate decision about the type of retinal pathology using 9 extracted features. We have tested our proposed system on 2819 OCT scans (1437 healthy, 640 RE, and 742 CSCR) of 502 patients from two different datasets and our proposed system correctly diagnosed 2817/2819 subjects with the accuracy, sensitivity, and specificity ratings of 99.92%, 100%, and 99.86%, respectively.
机译:黄斑病变是对黄斑的过度损害,导致失明。它主要是由于视网膜水肿(RE),中央浆液性脉络膜视网膜病变(CSCR)或年龄相关性黄斑变性(ARMD)引起的。光学相干断层扫描(OCT)成像是最新的眼睛测试技术,可以在早期阶段检测到这些综合症。许多研究人员已使用OCT图像检测视网膜异常。然而,据我们所知,尚无报道提出可检测所有这些黄斑综合症的全自动系统的研究。本文介绍了世界上第一个从OCT图像自动检测RE,CSCR和ARMD视网膜病变以及健康视网膜的决策支持系统。我们提出的系统中的自动疾病诊断基于多层支持向量机(SVM)分类器,该分类器在40个带标记的OCT扫描(10个正常,10个RE,10个CSCR和10个ARMD)上训练。训练后,SVM使用9个提取的特征对视网膜病理类型进行准确决策。我们已经对来自两个不同数据集的502例患者的2819次OCT扫描(1437例健康,640 RE和742 CSCR)进行了测试,我们的系统以28.92%的准确性,敏感性和特异度正确诊断了2817/2819名受试者,100%和99.86%。

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