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Fast reconstruction of 3D PET data with accurate statistical modeling

机译:准确的统计模型可快速重建3D PET数据

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This paper presents the results of combining high sensitivity 3D PET whole-body acquisition followed by fast 2D iterative reconstruction methods based on accurate statistical models. This combination is made possible by Fourier rebinning (FORE), which accurately converts a 3D data set to a set of 2D sinograms. The combination of volume imaging with statistical reconstruction allows improvement of noise-bias trade-offs when image quality is dominated by measurement statistics. The rebinning of the acquired data into a 2D data set reduces the computation time of the reconstruction. For both penalized weighted least squares (PWLS) and ordered-subset EM (OSEM) reconstruction methods, the usefulness of a realistic model of the expected measurement statistics is shown when the data are pre-corrected for attenuation and random and scattered coincidences, as required for the FORE rebinning algorithm. The results presented are based on 3D simulations of whole body scans that include the major statistical effects of PET acquisition and data correction procedures. As the PWLS method requires knowledge of the variance of the projection data, a simple model for the effect of FORE rebinning on data variance is developed.
机译:本文介绍了结合高灵敏度3D PET全身采集和基于精确统计模型的快速2D迭代重建方法的结果。傅里叶重合并(FORE)使这种组合成为可能,它可以将3D数据集准确地转换为一组2D正弦图。当测量质量控制图像质量时,将体积成像与统计重建结合起来可以改善噪声偏置的权衡。将获取的数据重新绑定为2D数据集可减少重建的计算时间。对于惩罚加权最小二乘(PWLS)和有序子集EM(OSEM)重建方法,当根据需要针对衰减以及随机和分散重合进行了预校正时,可以显示预期测量统计数据的真实模型的有用性FORE重新绑定算法。给出的结果基于全身扫描的3D模拟,其中包括PET采集和数据校正程序的主要统计效果。由于PWLS方法需要了解投影数据的方差,因此开发了一个用于FORE重新组合对数据方差的影响的简单模型。

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