首页> 外文期刊>Nuclear Instruments & Methods in Physics Research. B, Beam Interactions with Materials and Atoms >Optimization of GATE and PHITS Monte Carlo code parameters for spot scanning proton beam based on simulation with FLUKA general-purpose code
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Optimization of GATE and PHITS Monte Carlo code parameters for spot scanning proton beam based on simulation with FLUKA general-purpose code

机译:基于FLUKA通用码模拟的质子束点扫描GATE和PHITS蒙特卡洛码参数优化。

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Spot scanning, owing to its superior dose-shaping capability, provides unsurpassed dose conformity, in particular for complex targets. However, the robustness of the delivered dose distribution and prescription has to be verified. Monte Carlo (MC) simulation has the potential to generate significant advantages for high-precise particle therapy, especially for medium containing inhomogeneities. However, the inherent choice of computational parameters in MC simulation codes of GATE, PHITS and FLUKA that is observed for uniform scanning proton beam needs to be evaluated. This means that the relationship between the effect of input parameters and the calculation results should be carefully scrutinized. The objective of this study was, therefore, to determine the optimal parameters for the spot scanning proton beam for both GATE and PHITS codes by using data from FLUKA simulation as a reference. The proton beam scanning system of the Indiana University Health Proton Therapy Center was modeled in FLUKA, and the geometry was subsequently and identically transferred to GATE and PHITS. Although the beam transport is managed by spot scanning system, the spot location is always set at the center of a water phantom of 600 × 600 × 300 mm~3, which is placed after the treatment nozzle. The percentage depth dose (PDD) is computed along the central axis using 0.5 × 0.5 × 0.5 mm~3 voxels in the water phantom. The PDDs and the proton ranges obtained with several computational parameters are then compared to those of FLUKA, and optimal parameters are determined from the accuracy of the proton range, suppressed dose deviation, and computational time minimization. Our results indicate that the optimized parameters are different from those for uniform scanning, suggesting that the gold standard for setting computational parameters for any proton therapy application cannot be determined consistently since the impact of setting parameters depends on the proton irradiation technique. We therefore conclude that customization parameters must be set with reference to the optimized parameters of the corresponding irradiation technique in order to render them useful for achieving artifact-free MC simulation for use in computational experiments and clinical treatments.
机译:点扫描由于其出色的剂量整形能力而提供了无与伦比的剂量一致性,特别是对于复杂目标。然而,必须验证所递送的剂量分布和处方的鲁棒性。蒙特卡洛(MC)模拟有可能为高精度粒子治疗(特别是对于包含不均匀性的介质)产生重大优势。但是,需要评估在GATE,PHITS和FLUKA的MC模拟代码中对于均匀扫描质子束观察到的计算参数的固有选择。这意味着应仔细检查输入参数的效果与计算结果之间的关系。因此,本研究的目的是通过使用来自FLUKA模拟的数据为GATE和PHITS码确定点扫描质子束的最佳参数。印第安那大学健康质子治疗中心的质子束扫描系统是在FLUKA中建模的,其几何形状随后被相同地转移到GATE和PHITS。尽管光束传输是通过点扫描系统进行管理的,但点的位置始终设置在放置在处理喷嘴之后的600×600×300 mm〜3的水模的中心。使用水模型中的0.5×0.5×0.5 mm〜3体素沿中心轴计算深度百分比剂量(PDD)。然后将通过几个计算参数获得的PDD和质子范围与FLUKA的PDD和质子范围进行比较,并根据质子范围的精度,抑制的剂量偏差和计算时间的最小化确定最佳参数。我们的结果表明,优化参数与均匀扫描的参数不同,这表明不能一致地确定用于任何质子治疗应用的计算参数设置的金标准,因为设置参数的影响取决于质子辐照技术。因此,我们得出结论,必须参考相应辐照技术的优化参数来设置自定义参数,以使其对于实现用于计算实验和临床治疗的无伪像的MC模拟有用。

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