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A Mechanics-Based Nonrigid Registration Method for Liver Surgery Using Sparse Intraoperative Data

机译:基于力学的基于稀疏术中数据的肝脏手术非刚性配准方法

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摘要

In open abdominal image-guided liver surgery, sparse measurements of the organ surface can be taken intraoperatively via a laser-range scanning device or a tracked stylus with relatively little impact on surgical workflow. We propose a novel nonrigid registration method which uses sparse surface data to reconstruct a mapping between the preoperative CT volume and the intraoperative patient space. The mapping is generated using a tissue mechanics model subject to boundary conditions consistent with surgical supportive packing during liver resection therapy. Our approach iteratively chooses parameters which define these boundary conditions such that the deformed tissue model best fits the intraoperative surface data. Using two liver phantoms, we gathered a total of five deformation datasets with conditions comparable to open surgery. The proposed nonrigid method achieved a mean target registration error (TRE) of 3.3 mm for targets dispersed throughout the phantom volume, using a limited region of surface data to drive the nonrigid registration algorithm, while rigid registration resulted in a mean TRE of 9.5 mm. In addition, we studied the effect of surface data extent, the inclusion of subsurface data, the trade-offs of using a nonlinear tissue model, robustness to rigid misalignments, and the feasibility in five clinical datasets.
机译:在开放式腹部图像引导的肝脏手术中,可以在术中通过激光测距仪或跟踪笔在手术中对器官表面进行稀疏测量,而对手术流程的影响相对较小。我们提出了一种新颖的非刚性配准方法,该方法使用稀疏的表面数据来重建术前CT体积与术中患者空间之间的映射。该映射是使用组织力学模型生成的,该模型受边界条件的影响,该边界条件与肝切除治疗期间的手术支持性包装相一致。我们的方法反复选择定义这些边界条件的参数,以使变形的组织模型最适合术中表面数据。使用两个肝脏模型,我们收集了总共五个变形数据集,其条件可与开放手术相媲美。所提出的非刚性方法对于散布在整个幻影体积中的目标,使用了有限区域的表面数据来驱动非刚性配准算法,实现了3.3mm的平均目标配准误差(TRE),而刚性配准的平均TRE为9.5mm。此外,我们研究了表面数据范围,包含地下数据,使用非线性组织模型的权衡,对刚性错位的鲁棒性以及在五个临床数据集中的可行性的影响。

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