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High-Resolution Image Reconstruction for PET using Estimated Detector Response Functions

机译:使用估计检测器响应函数的PET的高分辨率图像重建

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The accuracy of the system model in an iterative reconstruction algorithm greatly affects the quality of reconstructed PET images. For efficient computation in reconstruction, the system model in PET can be factored into a product of geometric projection matrix and detector blurring matrix, where the former is often computed based on analytical calculation, and the latter is estimated using Monte Carlo simulations. In this work, we propose a method to estimate the 2D detector blurring matrix from experimental measurements. Point source data were acquired with high-count statistics in the microPET II scanner using a computer-controlled 2-D motion stage. A monotonically convergent iterative algorithm has been derived to estimate the detector blurring matrix from the point source measurements. The algorithm takes advantage of the rotational symmetry of the PET scanner with the modeling of the detector block structure. Since the resulting blurring matrix stems from actual measurements, it can take into account the physical effects in the photon detection process that are difficult or impossible to model in a Monte Carlo simulation. Reconstructed images of a line source phantom show improved resolution with the new detector blurring matrix compared to the original one from the Monte Carlo simulation. This method can be applied to other small-animal and clinical scanners.
机译:迭代重建算法中系统模型的准确性大大影响了重建PET图像的质量。为了重建中的有效计算,PET中的系统模型可以被考虑到几何投影矩阵和检测器模糊矩阵的乘积,其中通常基于分析计算来计算前者,并且使用蒙特卡罗模拟估计后者。在这项工作中,我们提出了一种方法来估计实验测量的2D检测器模糊矩阵。使用计算机控制的2-D运动阶段,在Micropet II扫描仪中的高计数统计获取点源数据。已经导出了一种单调的收敛迭代算法来估计从点源测量中估计检测器模糊矩阵。该算法利用PET扫描仪的旋转对称性,通过检测器块结构的建模。由于所得到的模糊矩阵源于实际测量,因此可以考虑在蒙特卡罗模拟中难以或不可能模拟的光子检测过程中的物理效果。与来自Monte Carlo仿真的原始的探测器模糊矩阵相比,线源幻像的重建图像显示了新的检测器模糊矩阵。该方法可以应用于其他小型动物和临床扫描仪。

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