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Model-updated Image-guided Liver Surgery: Preliminary results using Intra-operative surface characterization

机译:模型更新的图像引导肝手术:使用术中表面表征的初步结果

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The current protocol for image-guidance in liver surgeries involves rigid registration algorithm. Systematic studies have shown that the liver can deform up to 2cms during surgeries thereby compromising the accuracy of the surgical navigation systems. Compensating for intraoperative deformations using computational models has shown promising results. In this work, we follow up the initial rigid registration with a computational approach. The proposed computational approach relies on the closest point distances between the undeformed pre-operative surface and the rigidly registered deformed intra-operative surface. We also introduce a spatial smoothing filter to generate a realistic deformation field using the closest point distances. The proposed approach was validated in both phantom experiments and clinical cases. Preliminary results are encouraging and suggest that computational models can be used to improve the accuracy of image-guided liver surgeries.
机译:肝脏外科手术中用于图像指导的当前协议涉及刚性配准算法。系统研究表明,手术期间肝脏可变形至2cms,从而损害了手术导航系统的准确性。使用计算模型补偿术中变形已显示出令人鼓舞的结果。在这项工作中,我们采用一种计算方法来跟踪初始的刚性配准。所提出的计算方法依赖于未变形的术前表面与刚性对准的变形的术中表面之间的最近点距离。我们还引入了空间平滑滤波器,以使用最接近的点距离生成逼真的变形场。所提出的方法在幻象实验和临床案例中均得到了验证。初步结果令人鼓舞,并表明可以使用计算模型来提高以图像为导向的肝脏手术的准确性。

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