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Investigation of discrete imaging models and iterative image reconstruction in differential X-ray phase-contrast tomography.

机译:差分X射线相衬层析成像中离散成像模型的研究和迭代图像重建。

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摘要

Differential X-ray phase-contrast tomography (DPCT) refers to a class of promising methods for reconstructing the X-ray refractive index distribution of materials that present weak X-ray absorption contrast. The tomographic projection data in DPCT, from which an estimate of the refractive index distribution is reconstructed, correspond to one-dimensional (1D) derivatives of the two-dimensional (2D) Radon transform of the refractive index distribution. There is an important need for the development of iterative image reconstruction methods for DPCT that can yield useful images from few-view projection data, thereby mitigating the long data-acquisition times and large radiation doses associated with use of analytic reconstruction methods. In this work, we analyze the numerical and statistical properties of two classes of discrete imaging models that form the basis for iterative image reconstruction in DPCT. We also investigate the use of one of the models with a modern image reconstruction algorithm for performing few-view image reconstruction of a tissue specimen.
机译:差动X射线相衬断层扫描(DPCT)是指用于重建呈现弱X射线吸收对比度的材料的X射线折射率分布的一类有前途的方法。 DPCT中的层析成像投影数据可从中重建折射率分布的估计数据,该数据对应于折射率分布的二维(2D)Radon变换的一维(1D)导数。迫切需要开发用于DPCT的迭代图像重建方法,该方法可以从少量视图的投影数据中生成有用的图像,从而减轻与分析重建方法的使用相关的长数据获取时间和大辐射剂量。在这项工作中,我们分析了两类离散成像模型的数值和统计特性,这些模型构成了DPCT中迭代图像重建的基础。我们还研究了使用一种模型与现代图像重建算法来执行组织标本的多视图图像重建。

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