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Validation of 3D Model-Based Maximum-Likelihood Estimation of Normalisation Factors for Partial Ring Positron Emission Tomography

机译:基于3D模型的最大似然估算部分环正电子发射断层扫描的标准化因子的验证

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The next generation of organ specific Positron Emission Tomography (PET) scanners, e.g. for breast imaging, will use partial ring geometries. We propose a component-based Maximum-Likelihood (ML) estimation of normalisation factors for 3D PET data reconstruction applicable to partial ring geometries. This method is based on the Software for Tomographic Image Reconstruction (STIR) for full ring PET and is validated for a stationary partial ring scanner. The model includes the estimation for crystal efficiencies and geometric factors. The algorithm is validated using Maximum Likelihood Estimation Method (MLEM) based 3D reconstruction in STIR using Geant4 Application for Tomographic Emission (GATE) simulation data for full and partial ring scanners and experimental data from a demonstrator with partial ring geometry. The uniformity of the reconstructed images of simulated cylindrical and NEMAIQ phantoms in both scanner geometries and the image of a line source in the partial ring demonstrator is assessed. The results have shown that uniform images in both axial and transaxial directions are obtained after applying the estimated normalisation factors. The accuracy of the algorithm is validated by comparing the normalisation factors between the full and partial ring systems in simulation. We have shown that the estimated normalisation factors are almost identical, even though the separate components are not. This proves that the ML estimation of the 3D normalisation factors is valid and can be applied to the partial ring scanner.
机译:下一代器官特定正电子发射断层扫描(PET)扫描仪,例如,对于乳房成像,将使用部分环形几何形状。我们提出了一种基于组成的最大可能性(ML)估计用于适用于部分环几何形状的3D PET数据重建的标准化因子。该方法基于用于全环PET的断层图像重建(搅拌)的软件,并验证用于固定部分环扫描仪。该模型包括晶体效率和几何因子的估计。使用GEANT4应用程序使用GEANT4应用程序的基于最大似然估计方法(MLEM)3D重建验证了该算法,用于局部环形扫描仪的断层发射(栅极)模拟数据和来自具有部分环几何的演示者的实验数据。评估模拟圆柱和Nemaiq幻像在扫描仪几何形状和部分环示范器中的线源图像中的重建图像的均匀性进行了评估。结果表明,在施加估计的归一化因子之后获得轴向和横向方向上的均匀图像。通过比较仿真中的完整和部分环系统之间的归一化因子来验证算法的准确性。我们已经表明,即使单独的组件不是,估计的归一化因子几乎相同。这证明了3D归一化因子的ML估计有效,可以应用于部分环扫描仪。

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