Inclusion of spatio-energetic charge sharing effect model for accurate photon counting CT simulation.

IF 1.4 3区 医学 Q3 INSTRUMENTS & INSTRUMENTATION Journal of X-Ray Science and Technology Pub Date : 2025-07-01 Epub Date: 2025-03-25 DOI:10.1177/08953996251323725
Jiabing Sheng, Dong Zeng, Zhaoying Bian, Mingqiang Li, Yongle Wu, Xin Li, YongShuai Ge, Jianhua Ma
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Abstract

Background: Photon counting CT has demonstrated exceptional performance in spatial resolution, density resolution, and image quality, earning recognition as a groundbreaking technology in medical imaging. However, its technical implementation continues to face substantial challenges, including charge sharing effects.

Objective: To develop a spatio-energetic charge-sharing modulation model for accurate photon counting CT simulation (SmuSim). Specifically, SmuSim is built upon the previously developed photon counting toolkit (PcTK) and thoroughly incorporates the charge sharing effects that occur in photon counting CT.

Methods: The proposed SmuSim firstly enrolls three primary modules, i.e., photon transport, charge transport, and charge induction to characterize the charge sharing effects in the photon counting CT imaging chain. Then, Monte Carlo simulation is also conducted to validate the feasibility of the proposed SmuSim with well-built charge sharing effects model.

Results: Under diverse detector configurations, SmuSim's energy spectrum response curves exhibit a remarkable alignment with Monte Carlo simulations, in stark contrast to the Pctk results. In both digital and clinical phantom studies, SmuSim effectively simulates distorted photon counting CT images. In digital physical phantom simulations, the deviations in attenuation coefficient due to charge sharing effects are -49.70%, -19.66%, and -3.33% for the three energy bins, respectively. In digital clinical phantom simulations, the differences in attenuation coefficient are -19.92%, -4.98%, and -0.6%, respectively. In the two simulation studies, the deviations between the results obtained from SmuSim and those from Monte Carlo simulation are less than 3% and 2%, respectively, demonstrating the effectiveness of the proposed SmuSim.

Conclusion: We analyze charge sharing effects in photon counting CT, a comprehensive analytical model, and finally simulate CT images with charge sharing effects for evaluation.

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加入空间能量电荷共享效应模型,实现精确的光子计数 CT 模拟。
背景:光子计数CT在空间分辨率、密度分辨率和图像质量方面表现优异,被认为是医学成像领域的一项突破性技术。然而,其技术实施仍然面临着重大挑战,包括电荷共享效应。目的:建立用于精确光子计数CT模拟(SmuSim)的空间能量电荷共享调制模型。具体来说,SmuSim是建立在先前开发的光子计数工具包(PcTK)之上的,并彻底整合了光子计数CT中发生的电荷共享效应。方法:SmuSim首先引入光子输运、电荷输运和电荷感应三个主要模块,表征光子计数CT成像链中的电荷共享效应。然后,通过Monte Carlo仿真验证了SmuSim的可行性,并建立了电荷共享效应模型。结果:在不同的探测器配置下,SmuSim的能谱响应曲线与Monte Carlo模拟结果有明显的一致性,与Pctk的结果形成鲜明对比。在数字和临床幻影研究中,SmuSim有效地模拟了扭曲的光子计数CT图像。在数字物理幻象仿真中,三个能量箱由于电荷共享效应导致的衰减系数偏差分别为-49.70%、-19.66%和-3.33%。在数字临床幻影模拟中,衰减系数的差异分别为-19.92%,-4.98%和-0.6%。在两项仿真研究中,SmuSim与蒙特卡罗仿真结果的偏差分别小于3%和2%,证明了SmuSim的有效性。结论:我们分析了光子计数CT中的电荷共享效应,这是一个综合的分析模型,最后模拟了具有电荷共享效应的CT图像进行评价。
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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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