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Multi-organ Abdominal CT Segmentation Using Hierarchically Weighted Subject-Specific Atlases

机译:使用分层加权主题特定地图集的多器官腹部CT分割

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A robust automated segmentation of abdominal organs can be crucial for computer aided diagnosis and laparoscopic surgery assistance. Many existing methods are specialised to the segmentation of individual organs or struggle to deal with the variability of the shape and position of abdominal organs. We present a general, fully-automated method for multi-organ segmentation of abdominal CT scans. The method is based on a hierarchical atlas registration and weighting scheme that generates target specific priors from an atlas database by combining aspects from multi-atlas registration and patch-based segmentation, two widely used methods in brain segmentation. This approach allows to deal with high inter-subject variation while being flexible enough to be applied to different organs. Our results on a dataset of 100 CT scans compare favourable to the state-of-the-art with Dice overlap values of 94%, 91%, 66% and 94% for liver, spleen, pancreas and kidney respectively.
机译:健壮的腹部器官自动分割对于计算机辅助诊断和腹腔镜手术辅助至关重要。现有的许多方法都专门用于单个器官的分割或努力应对腹部器官的形状和位置的变化。我们提出了一种通用的,全自动的腹部CT扫描多器官分割方法。该方法基于分层地图集注册和加权方案,该方案通过组合多地图集注册和基于补丁的分割(这两种在脑部分割中广泛使用的方法)的方面,从地图集数据库生成特定于目标的先验信息。该方法允许处理高的受试者间变异,同时具有足够的灵活性以适用于不同的器官。我们的100次CT扫描数据集上的结果与最新技术比较,肝脏,脾脏,胰腺和肾脏的Dice重叠值分别为94%,91%,66%和94%。

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