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用于粒子治疗中在线 PET 测量的 4D MLEM 重建算法的实验验证。

Experimental verification of a 4D MLEM reconstruction algorithm used for in-beam PET measurements in particle therapy.

机构信息

OncoRay - National Center for Radiation Research in Oncology, Medical Faculty Carl Gustav Carus, TU Dresden, Fetscherstraße 74, D-01307 Dresden, Germany.

出版信息

Phys Med Biol. 2013 Aug 7;58(15):5085-111. doi: 10.1088/0031-9155/58/15/5085. Epub 2013 Jul 8.

DOI:10.1088/0031-9155/58/15/5085
PMID:23831685
Abstract

In-beam positron emission tomography (PET) has been proven to be a reliable technique in ion beam radiotherapy for the in situ and non-invasive evaluation of the correct dose deposition in static tumour entities. In the presence of intra-fractional target motion an appropriate time-resolved (four-dimensional, 4D) reconstruction algorithm has to be used to avoid reconstructed activity distributions suffering from motion-related blurring artefacts and to allow for a dedicated dose monitoring. Four-dimensional reconstruction algorithms from diagnostic PET imaging that can properly handle the typically low counting statistics of in-beam PET data have been adapted and optimized for the characteristics of the double-head PET scanner BASTEI installed at GSI Helmholtzzentrum Darmstadt, Germany (GSI). Systematic investigations with moving radioactive sources demonstrate the more effective reduction of motion artefacts by applying a 4D maximum likelihood expectation maximization (MLEM) algorithm instead of the retrospective co-registration of phasewise reconstructed quasi-static activity distributions. Further 4D MLEM results are presented from in-beam PET measurements of irradiated moving phantoms which verify the accessibility of relevant parameters for the dose monitoring of intra-fractionally moving targets. From in-beam PET listmode data sets acquired together with a motion surrogate signal, valuable images can be generated by the 4D MLEM reconstruction for different motion patterns and motion-compensated beam delivery techniques.

摘要

束内正电子发射断层扫描(PET)已被证明是离子束放射治疗中一种可靠的技术,可用于静态肿瘤实体中正确剂量沉积的原位和非侵入性评估。在分次内目标运动的情况下,必须使用适当的时分辨(四维,4D)重建算法,以避免由于运动相关的模糊伪影而使重建的活性分布受到影响,并允许进行专门的剂量监测。已经针对德国达姆施塔特的 GSI Helmholtzzentrum Darmstadt 安装的双头 PET 扫描仪 BASTEI 的特点,对来自诊断 PET 成像的 4D 重建算法进行了适应性和优化处理,以适应束内 PET 数据的典型低计数统计特性。用移动放射性源进行的系统研究表明,通过应用 4D 最大似然期望最大化(MLEM)算法而不是相位重建的准静态活性分布的回顾性配准,可以更有效地减少运动伪影。进一步介绍了来自辐照移动体模的束内 PET 测量的 4D MLEM 结果,这些结果验证了获取与分次内移动目标的剂量监测相关的参数的可行性。通过与运动替代信号一起获取的束内 PET 列表模式数据集,可以通过 4D MLEM 重建为不同的运动模式和运动补偿束输送技术生成有价值的图像。

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