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Regularization Designs for Uniform Spatial Resolution and Noise Properties in Statistical Image Reconstruction for 3-D X-ray CT

机译:3-D X射线CT统计图像重建中均匀空间分辨率和噪声特性的正则化设计

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摘要

Statistical image reconstruction methods for X-ray computed tomography (CT) provide improved spatial resolution and noise properties over conventional filtered back-projection (FBP) reconstruction, along with other potential advantages such as reduced patient dose and artifacts. Conventional regularized image reconstruction leads to spatially variant spatial resolution and noise characteristics because of interactions between the system models and the regularization. Previous regularization design methods aiming to solve such issues mostly rely on circulant approximations of the Fisher information matrix that are very inaccurate for undersampled geometries like short-scan cone-beam CT. This paper extends the regularization method proposed in to 3-D cone-beam CT by introducing a hypothetical scanning geometry that helps address the sampling properties. The proposed regularization designs were compared with the original method in with both phantom simulation and clinical reconstruction in 3-D axial X-ray CT. The proposed regularization methods yield improved spatial resolution or noise uniformity in statistical image reconstruction for short-scan axial cone-beam CT.
机译:X射线计算机断层扫描(CT)的统计图像重建方法提供了优于常规滤波反投影(FBP)重建的改进的空间分辨率和噪声特性,以及其他潜在的优势,例如减少了患者的剂量和伪影。由于系统模型和正则化之间的相互作用,常规的正则化图像重建会导致空间变异的空间分辨率和噪声特征。旨在解决此类问题的以前的正则化设计方法主要依赖于Fisher信息矩阵的循环近似,而对于短采样锥束CT等欠采样几何形状而言,这是非常不准确的。本文通过介绍一种有助于解决采样特性的假设扫描几何形状,将提出的正则化方法扩展到3-D锥束CT中。拟议的规范化设计与原始方法在3D轴向X射线CT的体模仿真和临床重建中进行了比较。提出的正则化方法在短扫描轴向锥束CT的统计图像重建中产生改进的空间分辨率或噪声均匀性。

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