Groupement de Coopération Sanitaire, Institut de Cancérologie Strasbourg Europe (ICANS), Nuclear medicine, Strasbourg, France.
Institut de Chimie Moléculaire de l'Université de Bourgogne (ICMUB), UMR CNRS 6302, University of Burgundy, Dijon, France.
Phys Med Biol. 2024 Aug 2;69(16). doi: 10.1088/1361-6560/ad638c.
. We introduce a versatile methodology for the accurate modelling of PET imaging systems via Monte Carlo simulations, using the Geant4 application for tomographic emission (GATE) platform. Accurate Monte Carlo modelling involves the incorporation of a complete analytical signal processing chain, called the digitizer in GATE, to emulate the different count rates encountered in actual positron emission tomography (PET) systems.. The proposed approach consists of two steps: (1) modelling the digitizer to replicate the detection chain of real systems, covering all available parameters, whether publicly accessible or supplied by manufacturers; (2) estimating the remaining parameters, i.e. background noise level, detection efficiency, and pile-up, using optimisation techniques based on experimental single and prompt event rates. We show that this two-step optimisation reproduces the other experimental count rates (true, scatter, and random), without the need for additional adjustments. This method has been applied and validated with experimental data derived from the NEMA count losses test for three state-of-the-art SiPM-based time-of-flight (TOF)-PET systems: Philips Vereos, Siemens Biograph Vision 600 and GE Discovery MI 4-ring.. The results show good agreement between experiments and simulations for the three PET systems, with absolute relative discrepancies below 3%, 6%, 6%, 7% and 12% for prompt, random, true, scatter and noise equivalent count rates, respectively, within the 0-10 kBq·mlactivity concentration range typically observed in whole-bodyF scans.. Overall, the proposed digitizer optimisation method was shown to be effective in reproducing count rates and NECR for three of the latest generation SiPM-based TOF-PET imaging systems. The proposed methodology could be applied to other PET scanners.
我们引入了一种通过蒙特卡罗模拟准确建模 PET 成像系统的多功能方法,使用用于断层发射的 Geant4 应用程序 (GATE) 平台。准确的蒙特卡罗建模涉及纳入完整的分析信号处理链,在 GATE 中称为数字化仪,以模拟实际正电子发射断层扫描 (PET) 系统中遇到的不同计数率。提出的方法包括两个步骤:(1) 建模数字化仪,以复制真实系统的检测链,涵盖所有可用参数,无论是否公开或由制造商提供;(2) 使用基于实验单事件和快事件率的优化技术估计剩余参数,即背景噪声水平、检测效率和堆积。我们表明,这种两步优化可以再现其他实验计数率(真实、散射和随机),而无需进行额外调整。该方法已应用于并通过来自 NEMA 计数损失测试的三个基于 SiPM 的飞行时间 (TOF)-PET 系统的实验数据进行了验证:飞利浦 Vereos、西门子 Biograph Vision 600 和 GE Discovery MI 4 环。结果表明,对于三个 PET 系统,实验和模拟之间具有良好的一致性,在 0-10 kBq·ml 活性浓度范围内,对于快事件、随机事件、真实事件、散射事件和噪声等效计数率,绝对相对差异分别低于 3%、6%、6%、7%和 12%。总体而言,所提出的数字化仪优化方法在再现三个最新一代基于 SiPM 的 TOF-PET 成像系统的计数率和 NECR 方面是有效的。该方法可应用于其他 PET 扫描仪。