首页> 外文会议>International conference on swarm, evolutionary, and memetic computing >Analysis of Vasculature in Human Retinal Images Using Particle Swarm Optimization Based Tsallis Multi-level Thresholding and Similarity Measures
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Analysis of Vasculature in Human Retinal Images Using Particle Swarm Optimization Based Tsallis Multi-level Thresholding and Similarity Measures

机译:基于粒子群优化的Tsallis多级阈值和相似性度量分析人类视网膜图像中的血管

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Retinal vasculature of the human circulatory system which can be visualized directly provides a number of systemic conditions and can be diagnosed by the detection of lesions. Changes in these structures are found to be correlated with pathological conditions and provide information on severity or state of various diseases. In this work, particle swarm optimization algorithm based multilevel thresholding is adopted for detecting the vasculature structures in retinal fundus images. Initially, adaptive histogram equalization is used for pre-processing of the original images. Tsallis multilevel thresholding is used for the segmentation of the blood vessels. Further, similarity measures are used to quantify the similarity between the segmented result and the corresponding ground truth. The optimal multi-threshold selection using particle swarm optimization seems to provide better results. Similarity measures analysis using dendrogram and box plot provide validation of the segmentation procedure attempted.
机译:可以直接可视化的人类循环系统的视网膜脉管系统可提供多种全身状况,并可通过检测病变来进行诊断。发现这些结构的变化与病理状况相关,并提供了有关各种疾病的严重程度或状态的信息。在这项工作中,采用基于多级阈值的粒子群优化算法来检测视网膜眼底图像中的脉管结构。最初,自适应直方图均衡用于原始图像的预处理。 Tsallis多级阈值用于血管分割。此外,相似性度量用于量化分割结果和相应的地面真实性之间的相似性。使用粒子群优化的最佳多阈值选择似乎可以提供更好的结果。使用树状图和箱线图的相似性度量分析可对尝试的分割过程进行验证。

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