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用于改善(联合)最大似然重建的晶体定时特性和效率的估计,在 TOF-PET 中。

Estimation of Crystal Timing Properties and Efficiencies for the Improvement of (Joint) Maximum-Likelihood Reconstructions in TOF-PET.

出版信息

IEEE Trans Med Imaging. 2020 Apr;39(4):952-963. doi: 10.1109/TMI.2019.2938028. Epub 2019 Aug 28.

Abstract

With increasing improvements in the time of flight (TOF) resolution of positron emission tomography (PET) scanners, an accurate model of the TOF measurements is becoming increasingly important. This work considers two parameters of the TOF kernel; the relative positioning of the timing data-bins and the timing resolution along each line of response (LOR). Similar to an existing data-driven method, we assume that any shifts of data-bins along lines of response can be modelled as differences between crystal timing offsets. Inspired by this, timing resolutions of all LORs are modelled as the hypotenuse of timing resolutions of the crystal-pairs in coincidence. Furthermore, in order to mitigate the influence of potential inaccuracies of detector-pair sensitivities on crystal timing resolutions, relative LOR sensitivities are modelled as the product of efficiency factors for the two crystals in coincidence. We validate estimating maps of crystal timing offsets, timing resolutions and efficiencies from the emission data using noisy simulations of a brain phantom. Results are shown for phantom and patient data scanned on clinically available TOF-PET scanners. We find that the estimation of crystal timing resolutions is more sensitive to the data statistics than the estimation of crystal timing offsets. As a result, estimation of crystal timing properties could either be limited to high count emission data, or be obtained utilizing additional regularizations on the estimates. Using a more accurate model of the TOF acquisition, improvements are observed in standard activity reconstructions as well as joint reconstructions of activity and attenuation.

摘要

随着正电子发射断层扫描(PET)扫描仪飞行时间(TOF)分辨率的不断提高,TOF 测量的精确模型变得越来越重要。这项工作考虑了 TOF 核函数的两个参数;定时数据-bin 的相对定位和每条响应线(LOR)的定时分辨率。与现有的数据驱动方法类似,我们假设响应线上数据-bin 的任何移位都可以建模为晶体定时偏移量之间的差异。受此启发,所有 LOR 的定时分辨率被建模为符合晶体对定时分辨率的斜边。此外,为了减轻探测器对灵敏度潜在误差对晶体定时分辨率的影响,相对 LOR 灵敏度被建模为符合晶体对的效率因子的乘积。我们使用大脑体模的噪声模拟来验证从发射数据中估计晶体定时偏移量、定时分辨率和效率的映射。结果显示了在临床可用的 TOF-PET 扫描仪上对体模和患者数据的扫描。我们发现,晶体定时分辨率的估计比晶体定时偏移量的估计对数据统计更敏感。因此,晶体定时特性的估计要么限于高计数发射数据,要么通过对估计值进行额外的正则化来获得。使用更精确的 TOF 采集模型,可以提高标准活动重建以及活动和衰减联合重建的性能。

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