首页> 外文会议>IEEE Nuclear Science Symposium and Medical Imaging Conference >Performance of an analytical positron range modelling approach in the context of whole body small animal and clinical PET
【24h】

Performance of an analytical positron range modelling approach in the context of whole body small animal and clinical PET

机译:全身小型动物和临床宠物背景下分析正电子范围建模方法的性能

获取原文

摘要

Monte Carlo simulation codes that model positron interactions along its tortuous path are expected to be accurate but slow. A simpler and potentially faster approach is to model positron range from analytical annihilation density distributions. We have implemented and validated such a method. 1D annihilation density distributions for different isotope-media combinations were fitted with Gaussian functions and described by simple look-up-tables of fitting coefficients. Together with a method developed for simulating positron range in heterogeneous media this allowed for efficient modeling of positron range. Previously, we focused on evaluating soft tissue-bone transitions and the performance of the modeling in small animal PET where positron range has a higher relative contribution to the spatial resolution than in clinical PET. Here, we extend the assessment to soft tissue-lung transitions in whole body small animal and clinical PET. The performance of the modeling was evaluated by comparing annihilation density distributions obtained in heterogeneous media with those produced by the Monte Carlo simulator GATE and by quantitatively analyzing the final reconstructed images of Monte Carlo simulated data for the small animal PET scanner microPET Focus 220 and the clinical PET scanner ECAT Exact HR+. Modelling heterogeneous media showed some limitations for soft tissue-lung transitions leading to systematic divergence from GATE at large positron range values depending on the isotope and the distance travelled before the transition occurs. The differences in the reconstructed point spread functions in water and lung showed that modeling medium heterogeneity is essential for small animal PET and would be beneficial for clinical PET. The level of agreement between the analytical model and GATE depends somewhat on the simulated scanner, but appears to be suitable for lower energy positron emitters, such as 18F or 11C. However, the method for heterogen- ous media modelling could be used with any underlying positron range model.
机译:蒙特卡罗模拟代码,其沿其曲折路径沿着其曲折的路径进行准确但缓慢。更简单和潜在更快的方法是从分析湮灭密度分布到正电子范围。我们已经实施和验证了这种方法。 1D湮灭密度分布不​​同同位素 - 介质组合配有高斯功能,并通过简单的拟合系数的简单查找表来描述。与开发用于模拟异质介质中的正电子范围的方法,这允许正电子范围的有效建模。以前,我们专注于评估软组织骨转换和在正电子范围对空间分辨率具有更高的相对贡献而不是在临床宠物中的相对贡献。在这里,我们将评估扩展到全身小动物和临床宠物的软组织肺过渡。通过比较由蒙特卡罗模拟器栅极产生的那些在异构介质中获得的湮灭密度分布以及通过定量分析小型动物PET扫描仪微孔焦点220和临床的蒙特卡罗模拟数据的最终重建图像来评估建模的湮灭密度分布。宠物扫描仪ECAT精确HR +。模型异质介质显示出软组织 - 肺过渡的一些限制,从而根据同位素,从大型正电子范围值的栅极发出系统发散,这取决于同位素,并且在过渡之前行进的距离。水和肺中重建点传播功能的差异表明,建模中等异质性对于小动物宠物来说是必不可少的,并且对临床宠物有益。分析模型和栅极之间的协议水平在模拟扫描仪上有所取决于稍微在仿真扫描仪上,但似乎适用于较低能量正电子发射器,例如 18-sup> f或 11 c。然而,可以与任何潜在的正电子范围模型一起使用用于异质介质建模的方法。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号