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Liver Segment Approximation in CT Data for Surgical Resection Planning

机译:手术切除计划中CT数据中的肝脏段近似

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Surgical planning of liver tumor resections requires detailed three-dimensional (3D) understanding of the complex arrangement of vasculature, liver segments and tumors. Knowledge about location and sizes of liver segments is important for choosing an optimal surgical resection approach and predicting postoperative residual liver capacity. The aim of this work is to facilitate such surgical planning process by developing a robust method for portal vein tree segmentation. The work also investigates the impact of vessel segmentation on the approximation of liver segment volumes. For segment approximation, smaller portal vein branches are of importance. Small branches, however, are difficult to segment due to noise and partial volume effects. Our vessel segmentation is based on the original gray-values and on the result of a vessel enhancement filter. Validation of the developed portal vein segmentation method in computer generated phantoms shows that, compared to a conventional approach, more vessel branches can be segmented. Experiments with in vivo acquired liver CT data sets confirmed this result. The outcome of a Nearest Neighbor liver segment approximation method applied to phantom data demonstrates, that the proposed vessel segmentation approach translates into a more accurate segment partitioning.
机译:肝脏肿瘤切除的手术规划需要详细的三维(3D)了解脉管系统,肝细分和肿瘤的复杂排列。关于肝脏区段的位置和大小的知识对于选择最佳的外科切除方法并预测术后残留肝脏容量是重要的。这项工作的目的是通过开发门静脉树细分的稳健方法来促进这种外科计划过程。该工作还研究了血管分割对肝脏段尺寸近似的影响。对于段近似,较小的门静脉分支是重要的。然而,由于噪声和部分体积效应,小分支难以分段。我们的船只分割基于原始灰度值和血管增强滤波器的结果。在计算机产生的幽灵中验证在计算机产生的幽灵中的验证表明,与传统方法相比,可以分段更多的血管分支。在体内获得的肝脏CT数据集的实验证实了这一结果。应用于幻像数据的最近邻居肝脏近似方法的结果表明,所提出的血管分割方法转化为更准确的段分区。

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