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Improvement of attenuation correction in time-of-flight PET/MR imaging with a positron-emitting source

机译:利用正电子发射源改善飞行时间pET / mR成像中的衰减校正

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摘要

Quantitative PET imaging relies on accurate attenuation correction. Recently, there has been growing interest in combining state-of-the-art PET systems with MR imaging in a sequential or fully integrated setup. As CT becomes unavailable for these systems, an alternative approach to the CT-based reconstruction of attenuation coefficients (μ values) at 511 keV must be found. Deriving μ values directly from MR images is difficult because MR signals are related to the proton density and relaxation properties of tissue. Therefore, most research groups focus on segmentation or atlas registration techniques. Although studies have shown that these methods provide viable solutions in particular applications, some major drawbacks limit their use in whole-body PET/MR. Previously, we used an annulus-shaped PET transmission source inside the field of view of a PET scanner to measure attenuation coefficients at 511 keV. In this work, we describe the use of this method in studies of patients with the sequential time-of-flight (TOF) PET/MR scanner installed at the Icahn School of Medicine at Mount Sinai, New York, NY.Five human PET/MR and CT datasets were acquired. The transmission-based attenuation correction method was compared with conventional CT-based attenuation correction and the 3-segment, MR-based attenuation correction available on the TOF PET/MR imaging scanner.RESULTS: The transmission-based method overcame most problems related to the MR-based technique, such as truncation artifacts of the arms, segmentation artifacts in the lungs, and imaging of cortical bone. Additionally, the TOF capabilities of the PET detectors allowed the simultaneous acquisition of transmission and emission data. Compared with the MR-based approach, the transmission-based method provided average improvements in PET quantification of 6.4%, 2.4%, and 18.7% in volumes of interest inside the lung, soft tissue, and bone tissue, respectively.In conclusion, a transmission-based technique with an annulus-shaped transmission source will be more accurate than a conventional MR-based technique for measuring attenuation coefficients at 511 keV in future whole-body PET/MR studies.
机译:PET定量成像依赖于精确的衰减校正。最近,人们越来越感兴趣的是将先进的PET系统与MR成像以顺序或完全集成的方式结合在一起。由于这些系统无法使用CT,因此必须找到一种替代方法来重建511 keV处的衰减系数(μ值)。直接从MR图像中得出μ值很困难,因为MR信号与组织的质子密度和弛豫特性有关。因此,大多数研究小组专注于分割或图集配准技术。尽管研究表明这些方法在特定应用中提供了可行的解决方案,但一些主要缺点限制了它们在全身PET / MR中的使用。以前,我们在PET扫描仪的视场内使用环形的PET传输源来测量511 keV处的衰减系数。在这项工作中,我们描述了这种方法在对患者的研究中的应用,该患者是在纽约州西奈山伊坎医学院安装的连续飞行时间(TOF)PET / MR扫描仪中进行研究的。五种人类PET / MR和CT数据集已获得。将基于透射的衰减校正方法与传统的基于CT的衰减校正以及TOF PET / MR成像扫描仪上基于3段,基于MR的衰减校正进行了比较。结果:基于透射的方法克服了大多数与透射相关的问题基于MR的技术,例如手臂的截断伪像,肺部的分割伪像和皮质骨成像。另外,PET检测器的TOF功能允许同时获取传输和发射数据。与基于MR的方法相比,基于透射的方法在PET定量中肺,软组织和骨组织内部的感兴趣体积分别平均提高了6.4%,2.4%和18.7%。在未来的全身PET / MR研究中,具有环形传输源的基于传输的技术将比用于测量511 keV处的衰减系数的常规基于MR的技术更为精确。

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