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Full modelling of the MOSAIC animal PET system based on the GATE Monte Carlo simulation code

机译:基于GATE蒙特卡洛模拟代码的MOSAIC动物PET系统的完整建模

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摘要

Positron emission tomography ( PET) systems dedicated to animal imaging are now widely used for biological studies. The scanner performance strongly depends on the design and the characteristics of the system. Many parameters must be optimized like the dimensions and type of crystals, geometry and field- of- view ( FOV), sampling, electronics, lightguide, shielding, etc. Monte Carlo modelling is a powerful tool to study the effect of each of these parameters on the basis of realistic simulated data. Performance assessment in terms of spatial resolution, count rates, scatter fraction and sensitivity is an important prerequisite before the model can be used instead of real data for a reliable description of the system response function or for optimization of reconstruction algorithms. The aim of this study is to model the performance of the Philips Mosaic (TM) animal PET system using a comprehensive PET simulation code in order to understand and describe the origin of important factors that influence image quality. We use GATE, a Monte Carlo simulation toolkit for a realistic description of the ring PETmodel, the detectors, shielding, cap, electronic processing and dead times. We incorporate new features to adjust signal processing to the Anger logic underlying the Mosaic (TM) system. Special attention was paid to dead time and energy spectra descriptions. Sorting of simulated events in a list mode format similar to the system outputs was developed to compare experimental and simulated sensitivity and scatter fractions for different energy thresholds using various models of phantoms describing rat and mouse geometries. Count rates were compared for both cylindrical homogeneous phantoms. Simulated spatial resolution was fitted to experimental data for F-18 point sources at different locations within the FOV with an analytical blurring function for electronic processing effects. Simulated and measured sensitivities differed by less than 3%, while scatter fractions agreed within 9%. For a 410 - 665 keV energy window, the measured sensitivity for a centred point source was 1.53% and mouse and rat scatter fractions were respectively 12.0% and 18.3%. The scattered photons produced outside the rat and mouse phantoms contributed to 24% and 36% of total simulated scattered coincidences. Simulated and measured single and prompt count rates agreed well for activities up to the electronic saturation at 110 MBq for the mouse and rat phantoms. Volumetric spatial resolution was 17.6 mu L at the centre of the FOV with differences less than 6% between experimental and simulated spatial resolution values. The comprehensive evaluation of the Monte Carlo modelling of the Mosaic (TM) system demonstrates that the GATE package is adequately versatile and appropriate to accurately describe the response of an Anger logic based animal PET system.
机译:专用于动物成像的正电子发射断层扫描(PET)系统现已广泛用于生物学研究。扫描仪的性能在很大程度上取决于系统的设计和特性。必须优化许多参数,例如晶体的尺寸和类型,几何形状和视场(FOV),采样,电子设备,光导,屏蔽等。蒙特卡洛建模是研究这些参数中每个参数影响的强大工具根据现实的模拟数据。在使用模型代替实际数据来可靠描述系统响应功能或优化重建算法之前,从空间分辨率,计数率,散射分数和灵敏度方面进行性能评估是重要的前提。这项研究的目的是使用全面的PET模拟代码对飞利浦马赛克(TM)动物PET系统的性能进行建模,以了解和描述影响图像质量的重要因素的起源。我们使用GATE(蒙特卡洛模拟工具包)来实际描述环形PET模型,检测器,屏蔽,盖,电子处理和停滞时间。我们结合了新功能,可根据Mosaic(TM)系统所依据的Anger逻辑调整信号处理。特别注意了死区时间和能谱描述。开发了类似于系统输出的列表模式格式的模拟事件排序,以使用描述大鼠和小鼠几何形状的各种体模模型比较不同能量阈值的实验和模拟灵敏度和散射分数。比较了两个圆柱形均质体模的计数率。模拟的空间分辨率适合FOV内部不同位置的F-18点源的实验数据,并具有针对电子处理效果的分析模糊功能。模拟和测量的灵敏度相差不到3%,而散射分数在9%之内。对于410-665 keV的能量窗口,中心点源的测量灵敏度为1.53%,小鼠和大鼠的散射分数分别为12.0%和18.3%。在大鼠和小鼠体模外产生的散射光子占模拟散射总巧合的24%和36%。模拟和测量的单次计数率和即时计数率非常适合在高达110 MBq的鼠标和大鼠体模电子饱和度下进行的活动。 FOV中心的空间空间分辨率为17.6μL,实验和模拟空间分辨率值之间的差异小于6%。对Mosaic(TM)系统的蒙特卡洛建模的综合评估表明,GATE软件包具有足够的通用性,可以准确地描述基于Anger逻辑的动物PET系统的响应。

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