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Needle tracking through higher-order MRF optimization

机译:通过高阶MRF优化进行针头跟踪

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We propose a Markov Random Field formulation for the tracking of needles in fluoroscopic images. A novel motion model makes it possible to capture the primarily rigid motion as well as deformations of the needle in a single second-order MRF graph. Needles are represented by B-splines and each control point is associated with a random variable in a MAP-MRF formulation. In addition to the control points we introduce a single additional random variable representing the rigid transformation needles undergo during interventions. The incorporation of rigid transformations allows to recover transformations even in the presence of large displacements which is not possible with existing MRF models for medical tool tracking.
机译:我们提出了一种用于在荧光镜图像中跟踪针头的马尔可夫随机场公式。新颖的运动模型可以在单个二阶MRF图中捕获主要的刚性运动以及针的变形。针由B样条曲线表示,每个控制点与MAP-MRF公式中的随机变量关联。除了控制点之外,我们还引入了一个单独的附加随机变量,表示干预期间刚经过的硬性变形针的承受力。刚性变换的结合甚至在存在大位移的情况下也可以恢复变换,这对于现有的用于医疗工具跟踪的MRF模型是不可能的。

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