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3D Algebraic Iterative Reconstruction for Cone-Beam X-Ray Differential Phase-Contrast Computed Tomography.

机译:锥束X射线差分相位对比计算机断层扫描的三维代数迭代重建。

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摘要

Due to the potential of compact imaging systems with magnified spatial resolution and contrast, cone-beam x-ray differential phase-contrast computed tomography (DPC-CT) has attracted significant interest. The current proposed FDK reconstruction algorithm with the Hilbert imaginary filter will induce severe cone-beam artifacts when the cone-beam angle becomes large. In this paper, we propose an algebraic iterative reconstruction (AIR) method for cone-beam DPC-CT and report its experiment results. This approach considers the reconstruction process as the optimization of a discrete representation of the object function to satisfy a system of equations that describes the cone-beam DPC-CT imaging modality. Unlike the conventional iterative algorithms for absorption-based CT, it involves the derivative operation to the forward projections of the reconstructed intermediate image to take into account the differential nature of the DPC projections. This method is based on the algebraic reconstruction technique, reconstructs the image ray by ray, and is expected to provide better derivative estimates in iterations. This work comprises a numerical study of the algorithm and its experimental verification using a dataset measured with a three-grating interferometer and a mini-focus x-ray tube source. It is shown that the proposed method can reduce the cone-beam artifacts and performs better than FDK under large cone-beam angles. This algorithm is of interest for future cone-beam DPC-CT applications.
机译:由于具有放大的空间分辨率和对比度的紧凑型成像系统的潜力,锥形束X射线微分相位对比计算机断层扫描(DPC-CT)引起了人们的极大兴趣。当前提出的带有希尔伯特虚滤波器的FDK重建算法将在锥束角度变大时引起严重的锥束伪像。在本文中,我们提出了一种用于锥束DPC-CT的代数迭代重建(AIR)方法,并报告了其实验结果。这种方法将重建过程视为对目标函数的离散表示的优化,以满足描述锥束DPC-CT成像模态的方程组。与基于吸收的CT的常规迭代算法不同,该算法涉及对重构的中间图像的正向投影进行微分运算,以考虑DPC投影的微分性质。该方法基于代数重建技术,逐射线重建图像射线,并有望在迭代中提供更好的导数估计。这项工作包括对算法的数值研究以及使用三光栅干涉仪和微型聚焦X射线管源测量的数据集进行的实验验证。结果表明,在大锥束角下,该方法可以减少锥束伪影,并且性能优于FDK。对于未来的锥束DPC-CT应用,该算法非常有用。

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