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Conditional Variability of Statistical Shape Models Based on Surrogate Variables

机译:基于代理变量的统计形状模型的条件变异性

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We propose to increment a statistical shape model with surrogate variables such as anatomical measurements and patient-related information, allowing conditioning the shape distribution to follow prescribed anatomical constraints. The method is applied to a shape model of the human femur, modeling the joint density of shape and anatomical parameters as a kernel density. Results show that it allows for a fast, intuitive and anatomically meaningful control on the shape deformations and an effective conditioning of the shape distribution, allowing the analysis of the remaining shape variability and relations between shape and anatomy. The approach can be further employed for initializing elastic registration methods such as Active Shape Models, improving their regularization term and reducing the search space for the optimization.
机译:我们建议使用替代变量(例如解剖学测量值和与患者相关的信息)增加统计形状模型,从而允许调整形状分布以遵循规定的解剖学约束。该方法应用于人股骨的形状模型,将形状和解剖学参数的关节密度建模为内核密度。结果表明,它可以对形状变形进行快速,直观且在解剖学上有意义的控制,并且可以有效地调节形状分布,从而可以分析其余形状的变异性以及形状与解剖结构之间的关系。该方法可以进一步用于初始化诸如活动形状模型的弹性配准方法,改善其正则项并减少用于优化的搜索空间。

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