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Automatic Volumetric Localization of the Liver in Abdominal CT Scans using Low Level Processing and Shape Priors

机译:使用低电平加工和形状前沿,腹部CT扫描肝脏自动体积定位

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In this paper we present an automatic volumetric liver localization method as an approach for liver segmentation. In the proposed method the aim is to localise a mean shape model of the liver in the target CT scan. The framework consists of three main steps: shape model construction, low level processing and shape model registration. We evaluated our method on the MICCAI 2007 liver segmentation challenge dataset. The Leave-one-out validation results demonstrate the effectiveness of the proposed method. The average volume overlap between our method and the ground truth, using the Jaccard index, is 0.64±0.11 which is acceptable for an initial localisation of the liver prior to further refinement.
机译:在本文中,我们介绍了一种自动体积肝脏定位方法作为肝分割的方法。在所提出的方法中,目的是定位目标CT扫描中肝脏的平均形状模型。该框架由三个主要步骤组成:形状模型结构,低级处理和形状型号注册。我们在Miccai 2007肝细分挑战数据集上进行了评估了我们的方法。休假次验证结果证明了该方法的有效性。使用Jaccard指数,我们的方法和地面真理之间的平均体积重叠为0.64±0.11,在进一步改进之前,肝脏初始定位是可接受的。

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