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Tiny a priori knowledge solves the interior problem in computed tomography

机译:微小的先验知识可解决计算机断层扫描的内部问题

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摘要

Based on the concept of differentiated backprojection (DBP) (Noo et al 2004 Phys. Med. Biol. 49 3903, Pan et al 2005 Med. Phys. 32 673, Defrise et al 2006 Inverse Problems 22 1037), this paper shows that the solution to the interior problem in computed tomography is unique if a tiny a priori knowledge on the object f(x, y) is available in the form that f(x, y) is known on a small region located inside the region of interest. Furthermore, we advance the uniqueness result to obtain more general uniqueness results which can be applied to a wider class of imaging configurations. We also develop a reconstruction algorithm which can be considered an extension of the DBP-POCS (projection onto convex sets) method described by Defrise et al (2006 Inverse Problems 22 1037), where we not only extend this method to the interior problem but also introduce a new POCS algorithm to reduce computational cost. Finally, we present experimental results which show evidence that the inversion corresponding to each obtained uniqueness result is stable.
机译:基于差异反投影(DBP)的概念(Noo等2004 Phys。Med。Biol。49 3903,Pan等2005 MED。Phys。32 673,Defrise等2006反问题22 1037),本文表明如果以对象f(x,y)已知的微小先验知识的形式可以在感兴趣区域内的一个小区域上知道f(x,y)的形式,则对于计算机断层扫描内部问题的解决方案是唯一的。此外,我们提高了唯一性结果,以获得更通用的唯一性结果,该结果可应用于更广泛的成像配置类别。我们还开发了一种重构算法,该算法可以看作是Defrise等人(2006逆问题22 1037)描述的DBP-POCS(凸集投影)方法的扩展,该方法不仅将这种方法扩展到内部问题,而且引入一种新的POCS算法以降低计算成本。最后,我们给出了实验结果,这些结果表明与每个获得的唯一性结果相对应的反演是稳定的。

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