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Sparse 3D Radon Space Rigid Registration of CT Scans: Method and Validation Study

机译:CT扫描的稀疏3D on空间刚性配准:方法和验证研究

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摘要

We present a new method for rigid registration of CT datasets in 3D Radon space based on sparse sampling of scanning projections. The inputs are the two 3D Radon transforms of the CT scans, one densely sampled and the other sparsely sampled (limited number of scan angles/ranges). The output is the rigid transformation that best matches them. The method first finds the best matching between each projection direction vector in the sparse transform and the corresponding direction vector in the dense transform. It then solves a system of linear equations derived from the direction vector pairs (parallel-beam projections) or finds a solution by non-linear optimization (fan-beam and cone-beam projections). Experimental studies show that our method for 3D parallel beam registration outperforms image space registration in terms of convergence range with significantly reduced X-ray dose compared to a full conventional CT scan.
机译:我们提出了一种基于扫描投影稀疏采样的3D Radon空间中CT数据集刚性注册的新方法。输入是CT扫描的两个3D Radon变换,一个是密集采样而另一个是稀疏采样(扫描角度/范围​​的数量有限)。输出是最匹配它们的刚性转换。该方法首先在稀疏变换中的每个投影方向向量与密集变换中的相应方向向量之间找到最佳匹配。然后,它求解从方向矢量对(平行光束投影)导出的线性方程组,或者通过非线性优化(扇形光束和锥形光束投影)找到解决方案。实验研究表明,与完整的常规CT扫描相比,我们的3D平行光束配准方法在会聚范围方面优于图像空间配准,并且X射线剂量明显减少。

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