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使用SimSET和Geant4对GE Advance正电子发射断层扫描仪进行蒙特卡罗模拟和散射校正。

Monte Carlo simulation and scatter correction of the GE advance PET scanner with SimSET and Geant4.

作者信息

Barret Olivier, Carpenter T Adrian, Clark John C, Ansorge Richard E, Fryer Tim D

机构信息

Wolfson Brain Imaging Centre, Addenbrooke's Hospital, Cambridge CB2 2QQ, UK.

出版信息

Phys Med Biol. 2005 Oct 21;50(20):4823-40. doi: 10.1088/0031-9155/50/20/006. Epub 2005 Oct 4.

Abstract

For Monte Carlo simulations to be used as an alternative solution to perform scatter correction, accurate modelling of the scanner as well as speed is paramount. General-purpose Monte Carlo packages (Geant4, EGS, MCNP) allow a detailed description of the scanner but are not efficient at simulating voxel-based geometries (patient images). On the other hand, dedicated codes (SimSET, PETSIM) will perform well for voxel-based objects but will be poor in their capacity of simulating complex geometries such as a PET scanner. The approach adopted in this work was to couple a dedicated code (SimSET) with a general-purpose package (Geant4) to have the efficiency of the former and the capabilities of the latter. The combined SimSET+Geant4 code (SimG4) was assessed on the GE Advance PET scanner and compared to the use of SimSET only. A better description of the resolution and sensitivity of the scanner and of the scatter fraction was obtained with SimG4. The accuracy of scatter correction performed with SimG4 and SimSET was also assessed from data acquired with the 20 cm NEMA phantom. SimG4 was found to outperform SimSET and to give slightly better results than the GE scatter correction methods installed on the Advance scanner (curve fitting and scatter modelling for the 300-650 keV and 375-650 keV energy windows, respectively). In the presence of a hot source close to the edge of the field of view (as found in oxygen scans), the GE curve-fitting method was found to fail whereas SimG4 maintained its performance.

摘要

为了将蒙特卡罗模拟用作进行散射校正的替代解决方案,对扫描仪进行精确建模以及保证速度至关重要。通用蒙特卡罗软件包(Geant4、EGS、MCNP)能够对扫描仪进行详细描述,但在模拟基于体素的几何结构(患者图像)方面效率不高。另一方面,专用代码(SimSET、PETSIM)对于基于体素的物体表现良好,但在模拟诸如PET扫描仪等复杂几何结构方面能力较差。本工作采用的方法是将专用代码(SimSET)与通用软件包(Geant4)相结合,以兼具前者的效率和后者的功能。在GE Advance PET扫描仪上对组合后的SimSET+Geant4代码(SimG4)进行了评估,并与仅使用SimSET的情况进行了比较。使用SimG4能更好地描述扫描仪的分辨率、灵敏度以及散射分数。还根据用20厘米NEMA体模采集的数据评估了用SimG4和SimSET进行散射校正的准确性。结果发现SimG4优于SimSET,并且比Advance扫描仪上安装的GE散射校正方法(分别针对300 - 650 keV和375 - 650 keV能量窗的曲线拟合和散射建模)给出的结果略好。在视野边缘附近存在热区源的情况下(如在氧扫描中发现的),发现GE曲线拟合方法失效,而SimG4保持了其性能。

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