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Validation of a Fast Block-Iterative Spatio-temporal Reconstruction Algorithm for Small Animal Dynamic PET Data

机译:小动物动态P​​ET数据快速块迭代时空重构算法的验证

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摘要

Spatio-temporal reconstruction methods for positron emission tomography estimate the tissue time-activity curves that are required for functional imaging. Since the time-related change of activity at a voxel has a temporal correlation by itself, temporal basis function approaches can be adopted. However, these image reconstruction methods suffer from a high computational cost. We have proposed a novel spatio-temporal reconstruction method using a temporal basis function approach, which is based on a fast block-iterative algorithm named Dynamic Row-Action Maximum-Likelihood Algorithm (DRAMA). Using the proposed method, data quickly converge to an estimate after around two iterations. This study aimed to validate the performance of the proposed algorithm on small animal PET data. We applied the proposed method to ~(18)F-FDG mouse dynamic PET data. A parametric image of regional glucose metabolism reconstructed from the proposed method was almost identical to those obtained from conventional reconstruction algorithms. The proposed method took 14.3 h for computation, which was twice as fast as conventional algorithms. These results support the usability of the proposed algorithm for voxel-by-voxel estimation.
机译:用于正电子发射断层扫描的时空重建方法可估算功能成像所需的组织时间-活动曲线。由于体素上与时间有关的活动变化本身具有时间相关性,因此可以采用时间基础函数方法。然而,这些图像重建方法遭受高计算成本的困扰。我们提出了一种基于时基函数方法的时空重构方法,该方法基于一种称为动态行动作最大似然算法(DRAMA)的快速块迭代算法。使用提出的方法,数据经过大约两次迭代后迅速收敛到估计值。这项研究旨在验证该算法在小动物PET数据上的性能。我们将提出的方法应用于〜(18)F-FDG小鼠动态PET数据。通过所提出的方法重建的区域葡萄糖代谢的参数图像与从常规重建算法获得的参数图像几乎相同。该方法的计算时间为14.3小时,是传统算法的两倍。这些结果支持所提出的算法用于逐个体素估计的可用性。

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