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首页> 外文期刊>IEEE Transactions on Radiation and Plasma Medical Sciences >Double Scatter Simulation for More Accurate Image Reconstruction in Positron Emission Tomography
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Double Scatter Simulation for More Accurate Image Reconstruction in Positron Emission Tomography

机译:正电子发射断层扫描更准确的图像重建双散散模拟

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摘要

Quantitative reconstruction algorithms for positron emission tomography (PET) require estimating the scattered annihilation radiation contributions to the measured data. This is commonly done by simulating only the single scatter contribution, then scaling this component to the data to account for multiple scatter. This scaling step is sometimes problematic due to inconsistencies and statistical noise in these data. Monte Carlo (MC) simulations suggest that for modern scanners with good energy resolution and a narrow photopeak energy window, multiple scatter is dominated by double scatter, so that a single plus double scatter simulation could account for all but a few percent of the scatter arising from within the field of view (FOV) of the simulation. Consequently, we have extended our single scatter simulation (SSS) algorithm to include double scatter contributions. These are efficiently computed by considering a subset of pairs of the single scatter points. This simulation discriminates the time-of-flight offsets of the scattered radiation as well. By fully accounting for the physics, an absolute scaling is achieved such that no scaling relative to measured data is required to model scatter from within the FOV. The double scatter simulation (DSS) results agree well with independent MC simulations. Computation time for SSS+DSS increases by a small multiple of the time required for SSS only, but remains clinically viable. Results for simulated and measured phantom and human PET studies are presented.
机译:正电子发射断层扫描(PET)的定量重建算法需要估算散射的湮灭辐射贡献对测量数据。这通常是通过模拟单个分散贡献来完成的,然后将此组件缩放到数据以解释多个分散。由于这些数据中的不一致和统计噪声,这种缩放步骤有时是有问题的。 Monte Carlo(MC)模拟表明,对于具有良好能量分辨率和窄的Photopak能量窗口的现代扫描仪,多次散点由双散射主导,因此单一加上双散射模拟可以占所有散射的所有次数从模拟的视野(FOV)内。因此,我们扩展了我们的单散散射仿真(SSS)算法,包括双散径贡献。通过考虑单个散点点的子集来有效地计算这些。该仿真也辨别了散射辐射的飞行时间偏移。通过完全考虑物理学,实现了绝对缩放,使得不需要相对于测量数据的缩放来模拟来自FOV内的散射。双散散模拟(DSS)结果与独立的MC模拟很好。 SSS + DSS的计算时间仅增加了SSS所需的倍数,但保持临床可行。提出了模拟和测量幻像和人宠物研究的结果。

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