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Direct 4-D PET List Mode Parametric Reconstruction With a Novel EM Algorithm

机译:用新型EM算法直接4-D PET列表模式参数重建

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摘要

The production of images of kinetic parameters is often the ultimate goal of positron emission tomography (PET) imaging. The indirect method of PET parametric imaging, also called the frame-based method (FM), is performed by fitting the time-activity curve (TAC) for each voxel with an appropriate compartment model after image reconstruction. The indirect method is simple and easily implemented, however, it usually leads to some loss of accuracy or precision, due to the use of two separate steps. This paper presents a direct 4-D method for producing 3-D images of kinetic parameters from list mode PET data. In this application, the TAC for each voxel is described by a one-tissue compartment model (1T). Extending previous EM algorithms, a new spatiotemporal complete data space was introduced to optimize the maximum likelihood function. This leads to a straightforward closed-form parametric image update equation. This method was implemented by extending the current list mode platform MOLAR to produce a parametric algorithm PMOLAR-1T. Using an ordered subset approach, qualitative and quantitative evaluations were performed using 2-D (x, t) and 4-D (x, y, z, t) simulated list mode data based on brain receptor tracers and also with a human brain study. Comparisons with the indirect method showed that the proposed direct method can lead to accurate estimation of the parametric image values with reduced variance, especially at low count levels. In the 2-D test, the direct method showed similar bias to the frame-based method but with variance reduction of 23%–60%. In the 4-D test, bias values of both methods were no more than 4% and the direct method had lower variability (coefficient of variation reduction of 0%–64% compared to the frame-based method) at the normal count level. The direct method had a larger reduction in variability (27%–81%) and lower bias (1%–5% for 4-D and 1%–19% for FM) at low count levels. The results in the human brain study are similar with PMOLAR-1T showing lower noise than FM.
机译:动力学参数图像的产生通常是正电子发射断层扫描(PET)成像的最终目标。 PET参数化成像的间接方法(也称为基于帧的方法(FM))是通过在图像重建后通过将每个体素的时间活动曲线(TAC)与合适的隔室模型拟合来执行的。间接方法简单易行,但是,由于使用了两个单独的步骤,因此通常会导致准确性或精度损失。本文提出了一种直接的4-D方法,用于从列表模式PET数据生成动力学参数的3-D图像。在此应用程序中,通过一个组织隔室模型(1T)描述每个体素的TAC。扩展了以前的EM算法,引入了新的时空完整数据空间以优化最大似然函数。这导致了简单明了的封闭形式参数图像更新方程。通过扩展当前列表模式平台MOLAR以生成参数算法PMOLAR-1T来实现此方法。使用有序子集方法,使用基于脑受体示踪剂和人类脑研究的2-D(x,t)和4-D(x,y,z,t)模拟列表模式数据进行定性和定量评估。与间接方法的比较表明,所提出的直接方法可以准确估计参数图像值,并且方差减小,尤其是在低计数水平下。在二维测试中,直接方法显示出与基于帧的方法相似的偏差,但方差降低了23%–60%。在4-D测试中,两种方法的偏差值均不超过4%,直接方法在正常计数水平下具有较低的变异性(与基于帧的方法相比,变异系数降低0%–64%)。在低计数水平下,直接方法具有较大的可变性降低(27%–81%)和较低的偏倚(4-D为1%–5%,FM为1%–19%)。人类大脑研究的结果与PMOLAR-1T相似,显示出的噪声低于FM。

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