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Investigation of a Monte Carlo simulation and an analytic-based approach for modeling the system response for clinical I-123 brain SPECT imaging

机译:蒙特卡罗模拟的调查与临床I-123脑SPECT成像对系统响应的构建分析方法

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The use of accurate system response modeling has been proven to be an essential key of SPECT image reconstruction, with its usage leading to overall improvement of image quality. The aim of this work was to investigate the imaging performance using an XCAT brain perfusion phantom of two modeling strategies, one based on analytic techniques and the other one based on GATE Monte-Carlo simulation. In addition, an efficient forced detection approach to improve the overall simulation efficiency was implemented and its performance was evaluated. We demonstrated that accurate modeling of the system matrix generated by Monte-Carlo simulation for iterative reconstruction leads to superior performance compared to analytic modeling in the case of clinical 123I brain imaging. It was also shown that the use of the forced detection approach provided a quantitative and qualitative enhancement of the reconstruction.
机译:已经证明了准确的系统响应建模的使用是SPECT图像重建的基本密钥,其使用导致图像质量的整体提高。这项工作的目的是使用两种建模策略的Xcat脑灌注幻像来研究成像性能,基于分析技术和基于门蒙特卡罗模拟的另一个。此外,实施了提高整体仿真效率的有效强制检测方法,并评估其性能。我们证明,与临床123i脑成像的情况下,迭代重建的Monte-Carlo模拟系统矩阵的系统矩阵的准确建模导致卓越的性能。还表明,使用强制检测方法提供了重建的定量和定性增强。

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