大视场下全扫描多源平移计算机断层扫描的解析重建。

IF 1.7 3区 医学 Q3 INSTRUMENTS & INSTRUMENTATION
Zhisheng Wang, Yue Liu, Shunli Wang, Xingyuan Bian, Zongfeng Li, Junning Cui
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引用次数: 1

摘要

本文旨在研究扩展视场(FOV)下多源平移计算机断层扫描(mSTCT)的高质量分析重建。在较大视场下,已有的mSTCT反投影滤波(backprojection filtering, BPF)算法,包括D-BPF和S-BPF算法(它们的区别在于沿检测器和源的导数方向不同),由于反投影加权因子和半扫描模式,在重建图像中产生了一些误差和伪影,偏离了mSTCT成像的初衷。本文将全扫描mSTCT (F-mSTCT)几何结构与已有的BPF算法相结合,研究了F-mSTCT几何结构的性能,并推导出适合于F-mSTCT的冗余加权函数。实验结果表明,虽然FS-BPF比FD-BPF需要更多的投影量,但在成像大物体的极大视场下,FS-BPF可以获得高质量、稳定的图像。最后,针对扩展视场成像的不同实际需求,给出了算法选择建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical reconstructions of full-scan multiple source-translation computed tomography under large field of views.

This paper is to investigate the high-quality analytical reconstructions of multiple source-translation computed tomography (mSTCT) under an extended field of view (FOV). Under the larger FOVs, the previously proposed backprojection filtration (BPF) algorithms for mSTCT, including D-BPF and S-BPF (their differences are different derivate directions along the detector and source, respectively), make some errors and artifacts in the reconstructed images due to a backprojection weighting factor and the half-scan mode, which deviates from the intention of mSTCT imaging. In this paper, to achieve reconstruction with as little error as possible under the extremely extended FOV, we combine the full-scan mSTCT (F-mSTCT) geometry with the previous BPF algorithms to study the performance and derive a suitable redundancy-weighted function for F-mSTCT. The experimental results indicate FS-BPF can get high-quality, stable images under the extremely extended FOV of imaging a large object, though it requires more projections than FD-BPF. Finally, for different practical requirements in extending FOV imaging, we give suggestions on algorithm selection.

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来源期刊
CiteScore
4.90
自引率
23.30%
发文量
150
审稿时长
3 months
期刊介绍: Research areas within the scope of the journal include: Interaction of x-rays with matter: x-ray phenomena, biological effects of radiation, radiation safety and optical constants X-ray sources: x-rays from synchrotrons, x-ray lasers, plasmas, and other sources, conventional or unconventional Optical elements: grazing incidence optics, multilayer mirrors, zone plates, gratings, other diffraction optics Optical instruments: interferometers, spectrometers, microscopes, telescopes, microprobes
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