Chen Chia-Lin, Wang Yuchuan, Lee Jason J S, Tsui Benjamin M W
Department of Biomedical Imaging and Radiological Sciences, National Yang-Ming University, Taipei 102, Taiwan.
Med Phys. 2008 Jul;35(7):3278-84. doi: 10.1118/1.2940159.
The authors developed and validated an efficient Monte Carlo simulation (MCS) workflow to facilitate small animal pinhole SPECT imaging research. This workflow seamlessly integrates two existing MCS tools: simulation system for emission tomography (SimSET) and GEANT4 application for emission tomography (GATE). Specifically, we retained the strength of GATE in describing complex collimator/detector configurations to meet the anticipated needs for studying advanced pinhole collimation (e.g., multipinhole) geometry, while inserting the fast SimSET photon history generator (PHG) to circumvent the relatively slow GEANT4 MCS code used by GATE in simulating photon interactions inside voxelized phantoms. For validation, data generated from this new SimSET-GATE workflow were compared with those from GATE-only simulations as well as experimental measurements obtained using a commercial small animal pinhole SPECT system. Our results showed excellent agreement (e.g., in system point response functions and energy spectra) between SimSET-GATE and GATE-only simulations, and, more importantly, a significant computational speedup (up to approximately 10-fold) provided by the new workflow. Satisfactory agreement between MCS results and experimental data were also observed. In conclusion, the authors have successfully integrated SimSET photon history generator in GATE for fast and realistic pinhole SPECT simulations, which can facilitate research in, for example, the development and application of quantitative pinhole and multipinhole SPECT for small animal imaging. This integrated simulation tool can also be adapted for studying other preclinical and clinical SPECT techniques.
作者开发并验证了一种高效的蒙特卡罗模拟(MCS)工作流程,以促进小动物针孔单光子发射计算机断层显像(SPECT)成像研究。该工作流程无缝集成了两个现有的MCS工具:发射断层扫描模拟系统(SimSET)和发射断层扫描GEANT4应用程序(GATE)。具体而言,我们保留了GATE在描述复杂准直器/探测器配置方面的优势,以满足研究先进针孔准直(例如多针孔)几何形状的预期需求,同时插入快速的SimSET光子历史生成器(PHG),以规避GATE在模拟体素化体模内光子相互作用时使用的相对较慢的GEANT4 MCS代码。为了进行验证,将这种新的SimSET-GATE工作流程生成的数据与仅使用GATE模拟的数据以及使用商用小动物针孔SPECT系统获得的实验测量数据进行了比较。我们的结果表明,SimSET-GATE和仅使用GATE的模拟之间具有极好的一致性(例如,在系统点响应函数和能谱方面),更重要的是,新工作流程提供了显著的计算加速(高达约10倍)。还观察到MCS结果与实验数据之间具有令人满意的一致性。总之,作者已成功将SimSET光子历史生成器集成到GATE中,以进行快速且逼真的针孔SPECT模拟,这有助于例如开发和应用用于小动物成像的定量针孔和多针孔SPECT的研究。这种集成模拟工具还可用于研究其他临床前和临床SPECT技术。