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Steady-State Model of the Radio-Pharmaceutical Uptake for MR-PET

机译:MR-PET放射性药物吸收的稳态模型

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This work explores a fully-automated algorithm for estimar tion of the uptake of radio-pharmaceutical in brain MR-PET imaging. The algorithm is based on a model of the pharmaceutical uptake coupled with probabilistic models of the PET and MR acquisition systems. In.contrast to algorithms that attempt to correct for the Partial Volume Effect (PVE), the problem is tackled here in the reconstruction by means of a probabilistic model of the pharmaceutical uptake. We make use of Hybrid Bayesian Networks to describe the joint probabilistic model and to obtain an efficient optimisation algorithm. We describe solutions adopted in order to mitigate the effect of local maxima and to reduce the sensitivity to the initialisation of the parameters, rendering the algorithm fully automatic. The algorithm is evaluated on simulated MR-PET data and on the reconstruction of clinical PET FDG acquisitions.
机译:这项工作探索了一种自动算法,用于估计大脑MR-PET成像中放射性药物的摄取。该算法基于药物吸收模型以及PET和MR采集系统的概率模型。与试图校正部分体积效应(PVE)的算法相反,这里的重建问题是通过药物吸收的概率模型来解决的。我们利用混合贝叶斯网络描述联合概率模型并获得有效的优化算法。我们描述了为减轻局部最大值的影响并降低对参数初始化的敏感性而采用的解决方案,从而使算法完全自动化。该算法是基于模拟的MR-PET数据和临床PET FDG采集的重建进行评估的。

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