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Differential SART for sub-Nyquist tomographic reconstruction in presence of misalignments

机译:差分SART用于在存在未对准的情况下进行亚奈奎斯特层析成像重建

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In this paper we study tomographic reconstruction methods in the case that prior knowledge about the object is available. In particular, we consider the case that a reference object that is similar in shape and orientation is available, which is very common in non-destructive testing applications. We demonstrate that a differential version of existing reconstruction methods can easily be derived which reconstructs only the deviation between test and reference object. Since this difference volume is significantly more sparse, the differential reconstruction can be implemented very efficiently. We also discuss the case where knowledge about the misalignment between test and reference object is available, in which case the efficiency of the differential reconstruction can be improved even further. The resulting algorithm is faster, more accurate, and less sensitive to the choice of the step size parameters and regularization than state of the art reconstruction methods.
机译:在本文中,我们将在有关对象的先验知识可用的情况下研究层析重建方法。特别是,我们考虑了形状和方向相似的参考对象可用的情况,这在非破坏性测试应用中非常常见。我们证明,可以轻松地得出现有重建方法的差分版本,该差分版本仅重建测试对象与参考对象之间的偏差。由于该差异量明显更稀疏,因此可以非常有效地实现差异重建。我们还将讨论其中可以获得有关测试对象与参考对象之间未对准的知识的情况,在这种情况下,可以进一步提高差分重建的效率。所产生的算法比现有技术的重建方法更快,更准确,并且对步长参数的选择和正则化的敏感性降低。

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