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Topo-Geometric Filtration Scheme for Geometric Active Contours and Level Sets: Application to Cerebrovascular Segmentation

机译:热门几何过滤方案,用于几何活动轮廓和级别集:在脑血管分割中的应用

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摘要

One of the main problems of the existing methods for the segmentation of cerebral vasculature is the appearance in the segmentation result of wrong topological artefacts such as the kissing vessels. In this paper, a new approach for the detection and correction of such errors is presented. The proposed technique combines robust topological information given by Persistent Homology with complementary geometrical information of the vascular tree. The method was evaluated on 20 images depicting cerebral arteries. Detection and correction success rates were 81.80% and 68.77%, respectively.
机译:现有的脑脉管系统分割方法的主要问题之一是错误拓扑人工制品的分割结果如接吻血管的出现。在本文中,提出了一种对这些误差的检测和校正的新方法。所提出的技术将持久性状的鲁棒拓扑信息与血管树的互补几何信息组合。对描绘脑动脉的20个图像评估该方法。检测和校正成功率分别为81.80%和68.77%。

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