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Multimodal inference of articulated spine models from higher order energy functions of discrete MRFS

机译:从离散MRFS的高阶能量函数对铰接式脊椎模型进行多模态推断

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In this paper, we introduce a novel approach based on higher order energy functions which have the ability to encode global structural dependencies to infer articulated 3D spine models to CT volume data. A personalized geometrical model is reconstructed from biplanar X-rays before spinal surgery in order to create a spinal column representation which is modeled by a series of intervertebral transformations based on rotation and translation parameters. The shape transformation between the standing and lying poses is then achieved through a Markov Random Field optimization graph, where the unknown variables are the deformations applied to the intervertebral transformations. Singleton and pairwise potentials measure the support from the data and geometrical dependencies between neighboring vertebrae respectively, while higher order cliques are introduced to integrate consistency in regional curves. Optimization of model parameters in a multi-modal context is achieved using efficient linear programming and duality. A qualitative evaluation of the vertebra model alignment obtained from the proposed method gave promising results while the quantitative comparison to expert identification yields an accuracy of 1.8 ± 0.7 mm based on the localization of surgical landmarks.
机译:在本文中,我们介绍了一种基于高阶能量函数的新方法,该方法具有编码全局结构依赖性的能力,以将铰接式的3D脊柱模型推断为CT卷数据。在脊椎手术前从双磷酸X射线重建个性化几何模型,以便创建由基于旋转和翻译参数的一系列椎间晶进行建模的脊柱柱表示。然后,通过马尔可夫随机场优化图来实现站立和撒谎之间的形状变换,其中未知变量是应用于椎间转化的变形。 Singleton和成对势分别测量来自邻近椎骨之间的数据和几何依赖性的支持,而引入高阶派系以集成区域曲线的一致性。使用高效的线性编程和二元性实现了多模态上下文中的模型参数的优化。从所提出的方法获得的椎骨模型对准的定性评价得到了有望的结果,而与专家识别的定量比较产生1.8±0.7mm的基于外科标志性的定位。

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