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Segmentation of Multiple Knee Bones from CT for Orthopedic Knee Surgery Planning

机译:从CT分割多个膝骨以进行骨科膝盖手术计划

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Patient-specific orthopedic knee surgery planning requires precisely segmenting from 3D CT images multiple knee bones, namely femur, tibia, fibula, and patella, around the knee joint with severe pathologies. In this work, we propose a fully automated, highly precise, and computationally efficient segmentation approach for multiple bones. First, each bone is initially segmented using a model-based marginal space learning framework for pose estimation followed by non-rigid boundary deformation. To recover shape details, we then refine the bone segmentation using graph cut that incorporates the shape priors derived from the initial segmentation. Finally we remove overlap between neighboring bones using multi-layer graph partition. In experiments, we achieve simultaneous segmentation of femur, tibia, patella, and fibula with an overall accuracy of less than 1mm surface-to-surface error in less than 90s on hundreds of 3D CT scans with pathological knee joints.
机译:特定于患者的骨科膝盖外科手术计划需要从3D CT图像中精确分割膝盖周围有严重病变的多个膝盖骨,即股骨,胫骨,腓骨和骨。在这项工作中,我们提出了一种针对多条骨头的全自动,高精度和计算有效的分割方法。首先,首先使用基于模型的边缘空间学习框架对每个骨骼进行分割,以进行姿势估计,然后进行非刚性边界变形。为了恢复形状细节,我们然后使用图形切割来细化骨骼分割,该图形合并了从初始分割中导出的形状先验。最后,我们使用多层图分区去除相邻骨骼之间的重叠。在实验中,我们在数百次带有病理性膝关节的3D CT扫描中,在不到90 s的时间内对股骨,胫骨,骨和腓骨进行了同时分割,整体精度小于1mm的表面间误差。

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