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首页> 外文期刊>Journal of algorithms & computational technology >Retinal blood vessel segmentation using saliency detection model and region optimization
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Retinal blood vessel segmentation using saliency detection model and region optimization

机译:基于显着性检测模型和区域优化的视网膜血管分割

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摘要

In this paper, we present an algorithm for the effective segmentation of retinal blood vessels in vessel quantization for assessing the risk of cerebrovascular diseases. Given that the vessel is the highlight of the fundus image and has a characteristic texture, we adopt color and texture as the saliency features for vessel extraction combined with region optimization. The optimal thresholding can be obtained through the gray histogram thresholding method to segment the vessel. Moreover, morphological operators are applied to preserve the remaining small vessels considering the loss of small vessels. Experiments are designed to evaluate the performance of the proposed models with more than 94% accuracy. Experimental results reveal that the blood vessel can be effectively detected by applying our method on the retinal images.
机译:在本文中,我们提出了一种在血管量化中有效分割视网膜血管的算法,以评估脑血管疾病的风险。鉴于血管是眼底图像的亮点并具有特征性纹理,我们将颜色和纹理作为显着特征用于血管提取与区域优化相结合。最佳阈值可以通过灰色直方图阈值方法获得,以分割血管。此外,考虑到小血管的损失,形态操作者被用于保存剩余的小血管。实验旨在评估提出的模型的性能,其准确性超过94%。实验结果表明,通过在视网膜图像上应用我们的方法可以有效地检测到血管。

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