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Optimal Multiresolution 3D Level-Set Method for Liver Segmentation incorporating Local Curvature Constraints

机译:结合局部曲率约束的肝分割最佳多分辨率3D水平集方法

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摘要

Advanced liver surgery requires a precise pre-operative planning, where liver segmentation and remnant liver volume are key elements to avoid post-operative liver failure. In that context, level-set algorithms have achieved better results than others, especially with altered liver parenchyma or in cases with previous surgery. In order to improve functional liver parenchyma volume measurements, in this work we propose two strategies to enhance previous level-set algorithms: an optimal multi-resolution strategy with fine details correction and adaptive curvature, as well as an additional semiautomatic step imposing local curvature constraints. Results show more accurate segmentations, especially in elongated structures, detecting internal lesions and avoiding leakages to close structures
机译:晚期肝手术需要精确的术前计划,其中肝分割和剩余肝体积是避免术后肝衰竭的关键因素。在这种情况下,水平集算法取得了比其他算法更好的结果,尤其是在肝实质改变或有先前手术的情况下。为了改善功能性肝实质体积测量,在这项工作中,我们提出了两种策略来增强以前的水平集算法:具有精细细节校正和自适应曲率的最佳多分辨率策略,以及施加局部曲率约束的附加半自动步骤。结果显示更准确的分割,尤其是在细长结构中,可检测内部病变并避免泄漏至闭合结构

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