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A Low-Interaction Automatic 3D Liver Segmentation Method Using Computed Tomography for Selective Internal Radiation Therapy

机译:一种低交互性自动3D肝脏分割方法使用计算机断层摄影术进行选择性内部放射治疗

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摘要

This study introduces a novel liver segmentation approach for estimating anatomic liver volumes towards selective internal radiation treatment (SIRT). The algorithm requires minimal human interaction since the initialization process to segment the entire liver in 3D relied on a single computed tomography (CT) slice. The algorithm integrates a localized contouring algorithm with a modified k-means method. The modified k-means segments each slice into five distinct regions belonging to different structures. The liver region is further segmented using localized contouring. The novelty of the algorithm is in the design of the initialization masks for region contouring to minimize human intervention. Intensity based region growing together with novel volume of interest (VOI) based corrections is used to accomplish the single slice initialization. The performance of the algorithm is evaluated using 34 liver CT scans. Statistical experiments were performed to determine consistency of segmentation and to assess user dependency on the initialization process. Volume estimations are compared to the manual gold standard. Results show an average accuracy of 97.22% for volumetric calculation with an average Dice coefficient of 0.92. Statistical tests show that the algorithm is highly consistent (P = 0.55) and independent of user initialization (P = 0.20 and Fleiss' Kappa = 0.77 ± 0.06).
机译:这项研究介绍了一种新颖的肝分割方法,用于估算针对选择性内部放射治疗(SIRT)的解剖肝脏体积。该算法需要最少的人工干预,因为初始化过程需要依靠单个计算机断层扫描(CT)切片以3D方式分割整个肝脏。该算法将局部轮廓算法与改进的k-means方法集成在一起。修改后的k均值将每个切片分割为五个属于不同结构的不同区域。使用局部轮廓线进一步分割肝脏区域。该算法的新颖之处在于设计了用于区域轮廓的初始化蒙版,以最大程度地减少人为干预。基于强度的区域增长与基于新的感兴趣体积(VOI)的校正一起用于完成单切片初始化。使用34次肝脏CT扫描评估算法的性能。进行统计实验以确定分段的一致性并评估用户对初始化过程的依赖性。将体积估算值与手动黄金标准进行比较。结果表明,体积计算的平均准确度为97.22%,平均Dice系数为0.92。统计测试表明,该算法是高度一致的(P = 0.55),并且与用户初始化无关(P = 0.20和Fleiss'Kappa = 0.77±0.06)。

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