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Glaucoma Detection using the Thermal Image Processing

机译:使用热图像处理的青光眼检测

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Diabetes has become a common disease nowadays. The count says at least one person in a house is suffering from diabetes. Diabetes gives rise to various diseases that can damage various organs of the body including the eyes, kidneys, gums, etc. Diabetes is one of the common causes where vision is lost amongst people and blindness occurs among working-age adults. Among all the eye diseases, type of glaucoma is an invisible type of disease that can damage the optic nerve, which carries all the information transmitted by the eye to the brain and can cause complete blindness. This disease can be detected by invasive and non-invasive methods. Thermography is the tool that can be used to avoid this damage non-invasively. Thermal images of the patients and normal people were taken with the help of the thermal camera. With the help of thermal images and image processing, the features were extracted using four properties of GLCM. Based on these properties classification is done which results in differentiating the normal and abnormal patients. The SVM classifier has achieved a maximum accuracy of 95%. This paper reveals different invasive methods which are used to detect and test glaucoma and the use of non-invasive method i.e., thermography over the invasive methods.
机译:糖尿病现在已成为常见的疾病。伯爵在房子里说至少一个人患有糖尿病。糖尿病产生各种疾病,可能会损害包括眼睛,肾脏,牙龈等的身体的各种器官。糖尿病是患有在工作年龄成年人中丧失的常见原因之一。在所有眼部疾病中,青光眼的类型是一种隐形疾病,可能会损坏视神经,这将通过眼睛传播到大脑的所有信息,并可能引起完全的失明。这种疾病可以通过侵入性和非侵入性方法来检测。热成像是可用于避免这种损坏的工具。患者的热图像和正常人在热相机的帮助下采取。在热图像和图像处理的帮助下,使用GLCM的四个性质提取特征。基于这些属性,进行了分类,这导致对正常和异常的患者进行区分。 SVM分类器已经实现了95%的最大精度。本文揭示了用于检测和测试青光眼的不同侵入性方法,以及使用非侵入性方法I.,通过侵入性方法。

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