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Ensemble Classification System Applied for Retinal Vessel Segmentation on Child Images Containing Various Vessel Profiles

机译:综合分类系统应用于含有各种血管型材的儿童图像的视网膜血管分割

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This paper describes a new supervised method for segmentation of blood vessels in retinal images of multi ethnic school children. This method uses an ensemble classification system of boot strapped decision trees. A filter bank of the dual Gaussian and the Gabor filters, along with the line strength measure of blood vessels is used to generate the feature vector. The feature vector encodes information to handle the normal vessels as well as the vessels with strong light reflexes along their centerline, which is more apparent on arteriolars than venules, and in children compared to adult patients. For this purpose we also present a new public retinal image database of multi ethnic school children along with vessel segmentation ground truths. The image set is named as CHASE_DB1 and is a subset of retinal images from the Child Heart and Health Study in England (CHASE) dataset. The performance of the ensemble system for vessel segmentation is evaluated on CHASE_DB1 in detail, and the incurred accuracy, speed, robustness and simplicity make the algorithm a suitable tool for automated retinal image analysis in large population based studies.
机译:本文介绍了多民族儿童视网膜图像中血管分割的新监督方法。该方法使用启动绑定决策树的集合分类系统。双高斯和Gabor过滤器的过滤器组以及血管的线强度测量用于产生特征向量。特征向量对信息进行编码以处理正常容器以及沿其中心线具有强烈反射的血管,这在与成年患者相比的venuls和儿童上更加明显。为此目的,我们还提出了一个新的多民族学科与船只分割真相的新公共视网膜图像数据库。图像集被命名为Chase_DB1,是英格兰(Chase)DataSet中儿童心脏和健康研究的视网膜图像的子集。对船舶分割的集合系统的性能进行了详细评估了Chase_DB1,以及所产生的精度,速度,鲁棒性和简单性使算法成为基于大群研究中的自动视网膜图像分析的合适工具。

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