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A Comparative Study on Feature Selection for Retinal Vessel Segmentation Using FABC

机译:利用FABC进行视网膜血管分割特征选择的比较研究。

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This paper presents a comparative study on five feature selection heuristics applied to a retinal image database called DRIVE. Features are chosen from a feature vector (encoding local information, but as well information from structures and shapes available in the image) constructed for each pixel in the field of view (FOV) of the image. After selecting the most discriminatory features, an AdaBoost classifier is applied for training. The results of classifications are used to compare the effectiveness of the five feature selection methods.
机译:本文对应用于视网膜图像数据库DRIVE的五种特征选择启发式方法进行了比较研究。从为图像的视场(FOV)中的每个像素构造的特征向量(编码局部信息,但也包括来自图像中可用的结构和形状的信息)中选择特征。选择最有区别的功能后,将使用AdaBoost分类器进行训练。分类结果用于比较五种特征选择方法的有效性。

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