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Closing of Interrupted Vascular Segmentations: An Automatic Approach Based on Shortest Paths and Level Sets

机译:中断血管分割的闭合:基于最短路径和水平集的自动方法

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Exact segmentations of the cerebrovascular system are the basis for several medical applications, like preoperation planning, postoperative monitoring and medical research. Several automatic methods for the extraction of the vascular system have been proposed. These automatic approaches suffer from several problems. One of the major problems are interruptions in the vascular segmentation, especially in case of small vessels represented by low intensities. These breaks are problematic for the outcome of several applications e.g. FEM-simulations and quantitative vessel analysis. In this paper we propose an automatic post-processing method to connect broken vessel segmentations. The approach proposed consists of four steps. Based on an existing vessel segmentation the 3D-skeleton is computed first and used to detect the dead ends of the segmentation. In a following step possible connections between these dead ends are computed using a graph based approach based on the vesselness parameter image. After a consistency check is performed, the detected paths are used to obtain the final segmentation using a level set approach. The method proposed was validated using a synthetic dataset as well as two clinical datasets. The evaluation of the results yielded by the method proposed based on two Time-of-Flight MRA datasets showed that in mean 45 connections between dead ends per dataset were found. A quantitative comparison with semi-automatic segmentations by medical experts using the Dice coefficient revealed that a mean improvement of 0.0229 per dataset was achieved. In summary the approach presented can considerably improve the accuracy of vascular segmentations needed for following analysis steps.
机译:脑血管系统的精确细分是多种医学应用(例如术前计划,术后监测和医学研究)的基础。已经提出了几种用于提取血管系统的自动方法。这些自动方法存在几个问题。主要问题之一是血管分割的中断,特别是在以低强度为代表的小血管的情况下。这些中断对于几种应用的结果是有问题的,例如有限元模拟和定量容器分析。在本文中,我们提出了一种自动后处理方法来连接破损的血管分割。建议的方法包括四个步骤。基于现有的血管分割,首先计算3D骨架,然后将其用于检测分割的死角。在接下来的步骤中,使用基于图的方法基于血管性参数图像来计算这些死角之间的可能连接。执行一致性检查后,使用级别设置方法将检测到的路径用于获得最终分割。使用合成数据集和两个临床数据集对提出的方法进行了验证。对基于两个飞行时间MRA数据集的方法提出的结果进行的评估表明,每个数据集的死角之间平均有45个连接。医学专家使用Dice系数与半自动分割的定量比较显示,每个数据集平均改善了0.0229。总之,提出的方法可以大大提高后续分析步骤所需的血管分割的准确性。

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