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Automatic blood vessel based- liver segmentation using the portal phase abdominal CT

机译:使用门腹腹部CT的自动血管基于肝脏分割

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Liver segmentation is the basis for computer-based planning of hepatic surgical interventions. In diagnosis and analysis of hepatic diseases and surgery planning, automatic segmentation of liver has high importance. Blood vessel (BV) has showed high performance at liver segmentation. In our previous work, we developed a semi-automatic method that segments the liver through the portal phase abdominal CT images in two stages. First stage was interactive segmentation of abdominal blood vessels (ABVs) and subsequent classification into hepatic (HBVs) and non-hepatic (non-HBVs). This stage had 5 interactions that include selective threshold for bone segmentation, selecting two seed points for kidneys segmentation, selection of inferior vena cava (IVC) entrance for starting ABVs segmentation, identification of the portal vein (PV) entrance to the liver and the IVC-exit for classifying HBVs from other ABVs (non-HBVs). Second stage is automatic segmentation of the liver based on segmented ABVs as described in [4]. For full automation of our method we developed a method [5] that segments ABVs automatically tackling the first three interactions. In this paper, we propose full automation of classifying ABVs into HBVs and non-HBVs and consequently full automation of liver segmentation that we proposed in [4], Results illustrate that the method is effective at segmentation of the liver through the portal abdominal CT images.
机译:肝细分是基于计算机的肝外科干预措施的基础。在肝脏疾病和手术规划的诊断和分析中,肝脏的自动分割很高。血管(BV)在肝脏分割时表现出高性能。在我们以前的工作中,我们开发了一种半自动方法,将肝脏通过两个阶段分开肝脏通过门户腹部CT图像分段。第一阶段是腹部血管(ABV)的交互式分割,随后分类为肝(HBV)和非肝(非HBV)。该阶段具有5个相互作用,包括骨分割的选择性阈值,选择两个用于肾脏分割的种子点,选择下腔静脉(IVC)入口,用于开始ABVS分割,鉴定肝脏和IVC的门静脉(PV)入口 - 用于将HBV分类为来自其他ABV(非HBV)。第二阶段是基于[4]中所述的分段ABV的肝脏自动分割。对于我们的方法完整自动化,我们开发了一种方法[5]该细分ABV自动解决前三个交互。在本文中,我们提出了完全自动化ABV分类为HBV和非HBV,因此我们在[4]中提出的肝脏分割的完全自动化,结果说明该方法在肝脏通过门户腹部CT图像进行分割。 。

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