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Proposal of a 4D ML reconstruction strategy for PET-based treatment verification in ion beam radiotherapy

机译:关于基于4D ML重建策略的离子束放射治疗中基于PET的治疗验证的提案

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The aim of this work is to propose an adaptation of a 4D Maximum Likelihood (ML) reconstruction strategy as a tool to improve the sensitivity of PET-based treatment verification in ion beam radiotherapy. PET images acquired during/shortly after the treatment (Measured PET) and an estimate of the same PET images derived from the treatment plan (Estimated PET) are considered as two frames of a 4D dataset. The algorithm iteratively estimates the annihilation events distribution in a reference frame and the deformation motion fields that map it in the Expected and Measured PET frames. Expected PET images can be then mapped into the Measured PET frame to verify the treatment. The details of the algorithm are presented and the strategy is preliminarily tested on an analytically simulated dataset. Convergence at different count statistics and ability to detect mismatches are assessed.
机译:这项工作的目的是提出一种4D最大似然(ML)重建策略,以提高在离子束放射治疗中基于PET的治疗验证的敏感性。在治疗过程中/治疗后不久获取的PET图像(实测PET)和从治疗计划得出的相同PET图像的估计值(估计的PET)被视为4D数据集的两帧。该算法迭代估计参考框架中的an灭事件分布以及将其映射到“预期”和“测量” PET框架中的变形运动场。然后可以将预期的PET图像映射到“测量的PET”框架中以验证治疗方案。给出了算法的细节,并在分析模拟的数据集上对该策略进行了初步测试。评估了不同计数统计的收敛性和检测错配的能力。

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