首页> 外文会议>Conference on Medical Imaging: Image-Guided Procedures, Robotic Interventions, and Modeling >Multi-body statistical shape representation of anatomy for navigation in Robot-Assisted Laparoscopic Partial Nephrectomy
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Multi-body statistical shape representation of anatomy for navigation in Robot-Assisted Laparoscopic Partial Nephrectomy

机译:机器人辅助腹腔镜部分肾切除术中导航解剖学的多体统计形状表示

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Image guidance for abdominal procedures requires an anatomical model capable of representing significant displacement and deformation of relevant tissues in a computationally efficient manner. This work evaluates the suitability of statistical shape modeling to represent key structures in Robot Assisted Laparoscopic Partial Nephrectomy (RALPN) both individually, and also as a multi-body composite model. Tomography obtained from subjects in an ongoing RALPN study was used to produce surface model representations of the kidneys, abdominal aorta, and inferior vena cava. Each structure was resliced and remeshed in a standardized fashion to allow for extraction of the principal modes of variation. Reduced parameter representations of the example structures based on the strongest eigenmodes indicate that <5mm average RMSE modeling accuracy can be achieved with four parameters for the individual models and eight parameters for the four-body composite model. The magnitude of centroid displacements observed under the principal modes of variation is consistent with literature-reported values, suggesting that this approach may be suitable for image guidance in RALPN.
机译:腹部手术的图像引导需要一种能够以计算有效的方式表示相关组织的显着置换和变形的解剖模型。这项工作评估了统计形状建模的适用性,代表机器人辅助腹腔镜部分肾切除术(RALPN)的关键结构,也是多体复合模型。从正在进行的RALPN研究中获得的受试者的断层扫描用于产生肾脏,腹主动脉和下腔静脉的表面模型表示。将每个结构以标准化的方式重塑和倒置,以允许提取主要变化模式。基于最强的特征模型的示例结构的参数表示表明,可以使用四个参数来实现<5mm平均的RMSE建模精度,以及用于四个身体复合模型的八个参数。在主要变化模式下观察到的质心位移的大小与文献报告的值一致,表明这种方法可能适用于RALPN中的图像引导。

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