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Hybrid PET/MR Kernelised Expectation Maximisation Reconstruction for Improved Image-Derived Estimation of the Input Function from the Aorta of Rabbits

机译:混合PET / MR核化期望最大化重建以改善来自兔主动脉的输入功能的图像衍生估计

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摘要

Positron emission tomography (PET) provides simple noninvasive imaging biomarkers for multiple human diseases which can be used to produce quantitative information from single static images or to monitor dynamic processes. Such kinetic studies often require the tracer input function (IF) to be measured but, in contrast to direct blood sampling, the image-derived input function (IDIF) provides a noninvasive alternative technique to estimate the IF. Accurate estimation can, in general, be challenging due to the partial volume effect (PVE), which is particularly important in preclinical work on small animals. The recently proposed hybrid kernelised ordered subsets expectation maximisation (HKEM) method has been shown to improve accuracy and contrast across a range of different datasets and count levels and can be used on PET/MR or PET/CT data. In this work, we apply the method with the purpose of providing accurate estimates of the aorta IDIF for rabbit PET studies. In addition, we proposed a method for the extraction of the aorta region of interest (ROI) using the MR and the HKEM image, to minimise the PVE within the rabbit aortic region—a method which can be directly transferred to the clinical setting. A realistic simulation study was performed with ten independent noise realisations while two, real data, rabbit datasets, acquired with the Biograph Siemens mMR PET/MR scanner, were also considered. For reference and comparison, the data were reconstructed using OSEM, OSEM with Gaussian postfilter and KEM, as well as HKEM. The results across the simulated datasets and different time frames show reduced PVE and accurate IDIF values for the proposed method, with 5% average bias (0.8% minimum and 16% maximum bias). Consistent results were obtained with the real datasets. The results of this study demonstrate that HKEM can be used to accurately estimate the IDIF in preclinical PET/MR studies, such as rabbit mMR data, as well as in clinical human studies. The proposed algorithm is made available as part of an open software library, and it can be used equally successfully on human or animal data acquired from a variety of PET/MR or PET/CT scanners.
机译:正电子发射断层扫描(PET)为多种人类疾病提供了简单的非侵入性成像生物标志物,可用于从单个静态图像生成定量信息或监视动态过程。此类动力学研究通常需要测量示踪剂输入函数(IF),但与直接采血相反,图像衍生输入函数(IDIF)提供了一种非侵入性替代技术来估算IF。由于部分体积效应(PVE),准确的估计通常会具有挑战性,这在小动物的临床前工作中尤其重要。最近提出的混合核化有序子集期望最大化(HKEM)混合方法已显示可提高一系列不同数据集和计数水平的准确性和对比度,可用于PET / MR或PET / CT数据。在这项工作中,我们应用该方法的目的是为兔PET研究提供主动脉IDIF的准确估计。此外,我们提出了一种使用MR和HKEM图像提取目标主动脉区域(ROI)的方法,以最大程度地减少兔主动脉区域内的PVE,该方法可以直接转移到临床环境中。用十个独立的噪声实现进行了现实的仿真研究,同时还考虑了用Biograph Siemens mMR PET / MR扫描仪获得的两个真实数据,即兔数据集。作为参考和比较,使用OSEM,带高斯后置滤波器和KEM的OSEM以及HKEM重建数据。整个模拟数据集和不同时间范围内的结果表明,该方法的PVE降低,IDIF值准确,平均偏差为5%(最小偏差为0.8%,最大偏差为16%)。使用真实数据集获得了一致的结果。这项研究的结果表明,HKEM可以在临床前PET / MR研究(例如兔mMR数据)以及临床人体研究中用于准确估计IDIF。所提议的算法可作为开放软件库的一部分使用,并且可以成功地用于从各种PET / MR或PET / CT扫描仪获取的人或动物数据。

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