首页> 外文期刊>Journal of King Saud University >Optimisation of variance reduction techniques in EGSnrc Monte Carlo for a 6 MV photon beam of an Elekta Synergy linear accelerator
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Optimisation of variance reduction techniques in EGSnrc Monte Carlo for a 6 MV photon beam of an Elekta Synergy linear accelerator

机译:EAGSNRC蒙特卡罗的差异减少技术优化ELEKTA协同线性加速器6mV光子束

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ObjectiveMonte Carlo (MC) simulations are considered to be the most accurate form of algorithm for dose calculation. However, the main obstacle to using MC, especially in clinical routine, is the simulation time needed to gain results below a desirable level of uncertainty. Variance reduction techniques (VRTs) have been introduced to reduce the simulation time while maintaining the uncertainty at an acceptable level. The aim of this study is to investigate and optimize the VRTs implemented in EGSnrc MC code, BEAMnrc and DOSXYZnrc.MethodologyThe BEAMnrc user code was used to model a 10?×?10?cm2field size of a 6 MV photon beam from an Elekta Synergy linear accelerator. The DOSXYZnrc user code was used to model a water phantom. The effects of different VRTs on the simulation efficiency were investigated either individually or in combination. The directional bremsstrahlung splitting (DBS) technique was investigated further to find the optimum splitting number and splitting field radius. For DOSXYZnrc, the photon splitting was investigated to find the best combination with the VRTs in BEAMnrc and to find the optimum splitting number. Finally, the best combination of VRTs in both BEAMnrc and DOSXYZnrc was compared with the corresponding phase space (PHSP) simulation source.ResultsThe DBS technique was found to be the most efficient. The optimum splitting number was found to be 10,000 and 15,000 with and without electron splitting, respectively. For the DBS splitting field radius, overestimating by up to 3?cm would be sufficient without causing a significant loss in efficiency. For both BEAMnrc and DOSXYZnrc, the combination of DBS, bremsstrahlung cross-section enhancement, range rejection with 2?MeV and photon splitting (with optimum splitting number of 35) was the most efficient, and was about 8% less efficient than PHSP simulation.ConclusionThe VRTs implemented in EGSnrc MC code made it possible to achieve an acceptably small uncertainty within a reasonable simulation time, if optimised properly. The combination of VRTs presented in this study eliminates the need to spare a large amount of disk space, and where parallel computing could allow for MC dose calculation in real-time adaptive treatment planning.
机译:ObjectiveMonte Carlo(MC)模拟被认为是剂量计算最准确的算法形式。然而,使用MC的主要障碍,特别是在临床常规上,是在低于期望的不确定性水平以下所需的模拟时间。已经引入了方差减少技术(VRT)以减少模拟时间,同时保持处于可接受的水平的不确定性。本研究的目的是调查和优化EGSNRC MC代码,CAMPNRC和DOSXYZNRC中实现的VRT。方法使用ELEKTA Synergy Linear来模拟A 10?×10?CM2Field尺寸的10?×10?CM2Field大小。加速器。 dosxyznrc用户代码用于模拟水幻影。单独或组合研究不同VRT对模拟效率的影响。进一步研究了定向Bremsstrahlung分离(DBS)技术以找到最佳分割数和分裂场半径。对于DosxyZNRC,研究了光子分裂,以找到与BeamNRC中的VRT的最佳组合,并找到最佳分割数。最后,与相应的相空间(PHSP)模拟源进行比较BembNRC和DosxyZNRC中的最佳组合。发现DBS技术是最有效的。最佳分割数被发现为10,000和15,000,分别没有电子分裂。对于DBS分割场半径,高达3Ωcm的估计率就足够,而不会导致效率显着损失。对于BeAMNRC和DosxyzNRC,DBS,Bremsstrahlung横截面增强的组合,用2?MEV和光子分裂的范围抑制(具有最佳分裂数35)是最有效的,并且比PHSP仿真更低的效率约为8%。结论EGSNRC MC代码中实现的VRT在合理的模拟时间内实现了可接受的小不确定性,如果正确优化。本研究中呈现的VRT的组合消除了备用大量磁盘空间的需要,并且平行计算可以在实时自适应治疗计划中允许MC剂量计算。

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