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Retinal vessel feature extraction from fundus image using image processing techniques

机译:使用图像处理技术从眼底图像中提取视网膜血管特征

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Retinal Vessel detection for retinal images play crucial role in medical field for proper diagnosis and treatment of various diseases like diabetic retinopathy, hypertensive retinopathy etc. This paper deals with image processing techniques for automatic analysis of blood vessel detection of fundus retinal image using MATLAB tool. This approach uses intensity information and local phase based enhancement filter techniques and morphological operators to provide better accuracy. Objective: The effect of diabetes on the eye is called Diabetic Retinopathy. At the early stages of the disease, blood vessels in the retina become weakened and leak, forming small hemorrhages. As the disease progress, blood vessels may block, and sometimes leads to permanent vision loss. To help Clinicians in diagnosis of diabetic retinopathy in retinal images with an early detection of abnormalities with automated tools. Methods: Fundus photography is an imaging technology used to capture retinal images in diabetic patient through fundus camera. Adaptive Thresholding is used as pre-processing techniques to increase the contrast, and filters are applied to enhance the image quality. Morphological processing is used to detect the shape of blood vessels as they are nonlinear in nature. Results: Image features like, Mean and Standard deviation and entropy, for textural analysis of image with Gray Level Co-occurrence Matrix features like contrast and Energy are calculated for detected vessels. Conclusion: In diabetic patients eyes are affected severely compared to other organs. Early detection of vessel structure in retinal images with computer assisted tools may assist Clinicians for proper diagnosis and pathology.
机译:视网膜图像的视网膜血管检测在医学领域对正确诊断和治疗糖尿病性视网膜病,高血压性视网膜病变等各种疾病起着至关重要的作用。该方法使用强度信息和基于局部相位的增强滤波器技术以及形态运算符来提供更好的精度。目的:糖尿病对眼睛的影响称为糖尿病性视网膜病。在疾病的早期阶段,视网膜中的血管变弱并渗漏,形成少量出血。随着疾病的进展,血管可能会阻塞,有时会导致永久性视力丧失。帮助临床医生使用自动化工具及早发现异常,以视网膜图像诊断糖尿病性视网膜病变。方法:眼底照相术是一种通过眼底照相机捕获糖尿病患者视网膜图像的成像技术。自适应阈值处理被用作预处理技术以增加对比度,并且应用滤镜以增强图像质量。形态学处理用于检测血管的形状,因为它们本质上是非线性的。结果:为检测到的血管计算图像特征(例如均值和标准偏差和熵),用于使用灰度共生矩阵对图像进行纹理分析。计算矩阵特征(例如对比度和能量)。结论:与其他器官相比,糖尿病患者的眼睛受到严重影响。利用计算机辅助工具及早发现视网膜图像中的血管结构可能有助于临床医生进行正确的诊断和病理检查。

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