arXiv:2510.21362physics.med-phcs.AI2025-10中稿 · IEEE NSS/MIC 2025被引 1

用两张2D影像生成3D放射性分布图,实现低成本高精度核医学剂量计算

Patient-specific AI for generation of 3D dosimetry imaging from two 2D-planar measurements

  • 基于患者特异性强化学习,从前后位2D影像重建3D活性分布
  • 相比传统方法MAE降低20%,SSIM提升至0.89(模拟)和0.73(真实)
  • 适用于多时间点剂量研究,无需昂贵的SPECT扫描

本研究探索了使用患者特异性强化学习,从两张2D平面影像(前后位)生成3D活性分布图。该问题在传统方法下难以解决,对核医学剂量计算具有重要意义,尤其针对177Lu-PSMA等治疗性放射性药物。现有方法通常依赖昂贵且耗时的3D SPECT或仅提供2D信息的平面显像。本方案通过构建个体化患者数据集,结合3DUnet与扩散模型等AI方法,实现从平面显像生成3D活性图。在仿真与真实平面采集数据上均验证有效,患者特异性强化学习使平均绝对误差(MAE)减少约20%,结构相似性(SSIM)提升约5%。结合扩散模型与个性化训练后,仿真结果的SSIM达0.89,与实际半小后进行的SPECT对比的SSIM为0.73。该方法有望革新核医学剂量学范式,仅凭平面显像即可实现3D定量分析。

原文摘要 · Abstract (English)

In this work we explored the use of patient specific reinforced learning to generate 3D activity maps from two 2D planar images (anterior and posterior). The solution of this problem remains unachievable using conventional methodologies and is of particular interest for dosimetry in nuclear medicine where approaches for post-therapy distribution of radiopharmaceuticals such as 177Lu-PSMA are typically done via either expensive and long 3D SPECT acquisitions or fast, yet only 2D, planar scintigraphy. Being able to generate 3D activity maps from planar scintigraphy opens the gate for new dosimetry applications removing the need for SPECT and facilitating multi-time point dosimetry studies. Our solution comprises the generation of a patient specific dataset with possible 3D uptake maps of the radiopharmaceuticals withing the anatomy of the individual followed by an AI approach (we explored both the use of 3DUnet and diffusion models) able to generate 3D activity maps from 2D planar images. We have validated our method both in simulation and real planar acquisitions. We observed enhanced results using patient specific reinforcement learning (~20% reduction on MAE and ~5% increase in SSIM) and better organ delineation and patient anatomy especially when combining diffusion models with patient specific training yielding a SSIM=0.89 compared to the ground truth for simulations and 0.73 when compared to a SPECT acquisition performed half an hour after the planar. We believe that our methodology can set a change of paradigm for nuclear medicine dosimetry allowing for 3D quantification using only planar scintigraphy without the need of expensive and time-consuming SPECT leveraging the pre-therapy information of the patients.

3D重建核医学人工智能剂量学

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