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Automatic registration of pre- and intraoperative data for long bones in Minimally Invasive Surgery

机译:在微创手术中自动注册长骨术前和术中数据

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The Minimally Invasive Procedures (MIP) in orthopedics have grown rapidly worldwide, as clinical results indicate that patients who undergo MIP typically experience minimized blood loss, smaller incision and shorter hospital stays. For most MIP, a preoperative 3D model of the patient anatomy is usually generated in order to plan the surgery. The challenge in MIP consists in finding the correspondence between the preoperative model and the actual position of the patient in the operating room, also known as image-to-patient registration. This paper proposes a real-time solution based on ultrasound (US) images: the patient anatomy is scanned by an US probe. Then, the segmentation and the extraction of bone contours from US images result in a 3D point cloud. The Poisson surface reconstruction method provides a 3D surface from 2D US data which will be registered with the preoperative model (CT volume) using the principal axes of inertia and the Iterative Closest Point robust (ICPr) algorithm. We present quantitative and qualitative results on both phantom and clinical data and show a mean registration accuracy of 0.66 mm for clinical radius scan. The promising registration results show the possible use of the proposed registration algorithm in clinical procedures.
机译:骨科的微创手术(MIP)在世界范围内发展迅速,因为临床结果表明,接受MIP手术的患者通常会出现失血量最小,切口较小和住院时间较短的情况。对于大多数MIP,通常会生成患者解剖结构的术前3D模型以计划手术。 MIP的挑战在于找到术前模型与患者在手术室中的实际位置之间的对应关系,也称为图像对患者的配准。本文提出了一种基于超声(US)图像的实时解决方案:用US探头扫描患者的解剖结构。然后,从US图像中分割和提取骨骼轮廓会产生3D点云。泊松曲面重建方法从2D US数据提供3D曲面,该数据将使用惯性主轴和迭代最近点鲁棒性(ICPr)算法在术前模型(CT体积)中进行配准。我们提供了幻影和临床数据的定量和定性结果,并显示临床半径扫描的平均注册精度为0.66 mm。有希望的注册结果显示了在临床程序中可能使用建议的注册算法。

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