使用双层平板探测器进行基于模型的 CBCT 散射校正。

IF 3.2 2区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Medical physics Pub Date : 2024-12-17 DOI:10.1002/mp.17567
Xin Zhang, Jixiong Xie, Yuhang Tan, Ting Su, Jiongtao Zhu, Han Cui, Dongmei Xia, Hairong Zheng, Dong Liang, Yongshuai Ge
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引用次数: 0

摘要

背景:最近,基于双层平板探测器(DL-FPD)的双能量锥束 CT(CBCT)成像越来越受欢迎。目的:本研究的目的是为基于 DL-FPD 的 CBCT 成像开发一种名为 e-Grid 的新型散射校正方法:在 DL-FPD 中,穿过物体的一部分 X 射线光子(主要是低能 [LE] 主光子和散射光子)被顶部探测器层捕获,而剩余的 X 射线光子(主要是高能 [HE] 主光子和散射光子)则被底部探测器层收集。HE 主信号和散射信号与 LE 主信号和散射信号之间近似采用线性信号模型。在锥形光束和扇形光束上进行了物理校准实验,通过线性拟合验证了上述信号模型。首先在 GATE 上对直径为 10 厘米的水模型进行了蒙特卡罗(MC)模拟,以验证这种新开发的散射估计方法。此外,还在基于 DL-FPD 的台式 CBCT 成像系统上进行了水模型、头部模型和腹部模型的物理验证实验。图像不均匀度(NU)表示 CT 图像中心和边缘之间的相对差异,通过测量 NU 可以量化图像阴影伪影的减少情况。最后,进行了多材料分解:MC 结果、CBCT 图像和线剖面图显示,新提出的 e-Grid 方法能够准确预测散点分布的形状和强度。因此,可以获得与无散射伪影参考图像接近的均匀 CBCT 图像。此外,物理实验证明,e-Grid 方法可以大大减少从 DL-FPD 采集的 LE 和 HE CBCT 图像中的阴影伪影。结果还表明,e-Grid 方法对不同直径(从 10 厘米到 28 厘米)的物体都很有效。从数量上看,LE CBCT 图像中的 NU 值平均降低了 77% 以上,HE CBCT 图像中的 NU 值平均降低了 66% 以上。因此,碘和钆这两种多材料分解基的准确性得到了大幅提高:结论:在基于 DL-FPD 的双能量 CBCT 成像系统中,使用所提出的 e-Grid 方法可以显著减少康普顿散射 X 射线信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model-based CBCT scatter correction with dual-layer flat-panel detector

Background

Recently, the popularity of dual-layer flat-panel detector (DL-FPD) based dual-energy cone-beam CT (CBCT) imaging has been increasing. However, the image quality of dual-energy CBCT remains constrained by the Compton scattered x-ray photons.

Purpose

The objective of this study is to develop a novel scatter correction method, named e-Grid, for DL-FPD based CBCT imaging.

Methods

In DL-FPD, a certain portion of the x-ray photons (mainly low-energy [LE] primary and scattered photons) passing through the object are captured by the top detector layer, while the remaining x-ray photons (mainly high-energy [HE] primary and scattered photons) are collected by the bottom detector layer. A linear signal model was approximated between the HE primary and scatter signals and the LE primary and scatter signals. Physical calibration experiments were performed on cone beam and fan beam to validate the aforementioned signal model via linear fittings. Monte Carlo (MC) simulations of a 10 cm diameter water phantom were conducted on GATE at first to verify this newly developed scatter estimation method. In addition, physical validation experiments of water phantom, head phantom, and abdominal phantom were carried out on a DL-FPD based benchtop CBCT imaging system. The image non-uniformity (NU), which represents the relative difference between the center and the edges of CT images, was measured to quantify the reduction of image shading artifacts. Finally, multi-material decomposition was conducted.

Results

The MC results, CBCT images and line profiles, showed that the newly proposed e-Grid approach was able to accurately predict the scatter distributions in both shape and intensity. As a result, uniform CBCT images that are close to the scatter artifact-free reference images can be obtained. Moreover, the physical experiments demonstrated that the e-Grid method can greatly reduce the shading artifacts in both LE and HE CBCT images acquired from DL-FPD. Results also demonstrated that the e-Grid method is effective for varied objects that having different diameters (from 10 to 28 cm). Quantitatively, the NU value was reduced by over 77% in the LE CBCT image and by over 66% in the HE CBCT image on average. As a consequence, the accuracy of the decomposed multi-material bases, iodine and gadolinium, was substantially improved.

Conclusions

The Compton scattered x-ray signals could be significantly reduced using the proposed e-Grid method for DL-FPD based dual-energy CBCT imaging systems.

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来源期刊
Medical physics
Medical physics 医学-核医学
CiteScore
6.80
自引率
15.80%
发文量
660
审稿时长
1.7 months
期刊介绍: Medical Physics publishes original, high impact physics, imaging science, and engineering research that advances patient diagnosis and therapy through contributions in 1) Basic science developments with high potential for clinical translation 2) Clinical applications of cutting edge engineering and physics innovations 3) Broadly applicable and innovative clinical physics developments Medical Physics is a journal of global scope and reach. By publishing in Medical Physics your research will reach an international, multidisciplinary audience including practicing medical physicists as well as physics- and engineering based translational scientists. We work closely with authors of promising articles to improve their quality.
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