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Sparsity driven metal part reconstruction for artifact removal in dental CT

机译:稀疏驱动的金属零件重建以去除牙齿CT中的伪影

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摘要

Metal artifact removal (MAR) is one of the most important issues in x-ray CT reconstruction. Various methods have been suggested for metal artifact removal, among which projection modification and iterative methods are most popular. While those methods mainly focus on removing background artifacts, for some applications such as dental CT the correct reconstruction of metallic inserts is also important. For this application, we formulate the MAR problem as a sparse recovery problem since metallic inserts usually occupy very little volume within a field of view. One of the main advantages of this approach is to overcome the inconsistency of sinograms from metal artifacts by imposing a geometric constraint, "sparsity". As a side product of this formulation, a significant reduction of the sample views is feasible for metal part reconstruction without sacrificing quality, thanks to the compressed sensing theory, which minimizes the additional computational overhead. Numerical results confirm that metallic inserts can be accurately reconstructed with a significant reduction of computation time.
机译:金属伪影去除(MAR)是X射线CT重建中最重要的问题之一。已经提出了用于去除金属伪影的各种方法,其中投影修改和迭代方法是最流行的。尽管这些方法主要集中于去除背景伪影,但对于某些应用(例如牙科CT),正确地重建金属嵌件也很重要。对于此应用程序,我们将MAR问题公式化为稀疏恢复问题,因为金属插件通常在视场内仅占很小的体积。这种方法的主要优点之一是通过施加几何约束“稀疏性”来克服金属工件产生的正弦图的不一致性。作为这种配方的副产品,由于采用了压缩传感原理,因此可以在不牺牲质量的情况下大幅减少样品视图,从而可以进行金属零件重建,从而最大程度地减少了额外的计算开销。数值结果证实,金属嵌件可以准确地重建,并且大大减少了计算时间。

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