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Segmentation of retinal blood vessels through Gabor features and ANFIS classifier

机译:通过Gabor特征和ANFIS分类器进行视网膜血管的分割

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We introduce a technique for extracting the vessel structure in the fundus image of a retina. Retinal vessel segmentation achieved by categorizing every pixel belonging to vessel structure or not, derived from characteristic vector consisting of the gray level values and coefficients of 2-D Gabor wavelet at various scales. Specific frequency tuning of Gabor wavelet allows vessel segmentation even in the presence of noise in the image. We use Adaptive Network Fuzzy-Inference System (ANFIS) classifier with linguistic expression modeling capability and self-learning, yielding accurate classification. The openly accessible DRIVE database is used for performance evaluation of manually labeled images. In addition, Performance evaluation carried on fundus images provided by the ophthalmologist. The results obtained are quiet promising when inspected visually in both normal as well as pathological images.
机译:我们介绍一种用于在视网膜的眼底图像中提取血管结构的技术。通过对属于血管结构的每个像素进行分类而实现的视网膜血管分割,从而源自由各种尺度处的2-D Gabor小波的灰度级值和系数组成的特征向量。即使在图像中的噪声存在下,Gabor小波的特定频率调谐允许血管分割。我们使用具有语言表达式建模能力和自学的自适应网络模糊推理系统(ANFIS)分类器,产生准确的分类。公开访问的驱动器数据库用于手动标记图像的性能评估。此外,在眼科医生提供的眼底图像上进行的性能评估。当在正常和病理图像中在视觉上进行检查时,所获得的结果是安静的。

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