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Segmentation of X-ray Images by 3D-2D Registration Based on Multibody Physics

机译:基于多体物理的3D-2D配准分割X射线图像

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X-ray imaging is commonly used in clinical routine. In radiotherapy, spatial information is extracted from X-ray images to correctly position patients before treatment. Similarly, orthopedic surgeons assess the positioning and migration of implants after Total Hip Replacement (THR) with X-ray images. However, the projective nature of X-ray imaging hinders the reliable extraction of rigid structures in X-ray images, such as bones or metallic components. We developed an approach based on multibody physics that simultaneously registers multiple 3D shapes with one or more 2D X-ray images. Considered as physical bodies, shapes are driven by image forces, which exploit image gradient, and constraints, which enforce spatial dependencies between shapes. Our method was tested on post-operative radiographs of THR and thoroughly validated with gold standard datasets. The final target registration error was in average 0.3 ± 0.16 mm and the capture range improved more than 40% with respect to reference registration methods.
机译:X射线成像通常用于临床常规。在放射治疗中,从X射线图像中提取空间信息,以在治疗之前正确定位患者。同样,整形外科医生用X射线图像评估全髋关节置换术(THR)后的植入物定位和迁移。但是,X射线成像的投射性质阻碍了X射线图像中刚性结构(例如骨骼或金属部件)的可靠提取。我们开发了一种基于多体物理的方法,可以同时将多个3D形状与一个或多个2D X射线图像配准。形状被认为是物理物体,由图像力驱动,图像力利用图像梯度,而约束则强制形状之间存在空间依赖性。我们的方法在THR的术后X光片上进行了测试,并用金标准数据集进行了充分验证。最终的目标配准误差平均为0.3±0.16 mm,相对于参考配准方法,捕获范围提高了40%以上。

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