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The Effect of Inaccuracy of MLC Leaf Position against Dose Distribution on VMAT Delivery Technique using EGSnrc Monte Carlo Simulation

机译:使用EGSnrc蒙特卡洛模拟的MLC叶位置误差对剂量分布的影响对VMAT传递技术的影响

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A Monte Carlo simulation on VMAT delivery technique has implemented to investigate the effect of inaccuracy of MLC leaf position between the plan and the actual of MLC leaf position. The study aim to compare the dose distributions between these two parameters. In general, these studies divided into two stages, commissioning of head Linac and simulation of the VMAT delivery technique. At the commissioning stage, Monte Carlo simulation on PDD and dose profile for field size 6 × 6 cm2, 10 × 10 cm2 and 20 × 20 cm2 was validating by experimental data. Commissioning results showed a good agreement between the simulation and experimental data. The 6.4 MeV initial incident electrons were used with an average deviation less than 5% for all field size. In the VMAT delivery technique simulation stage, an analysis of DynaLog file using homemade MATLAB program is used and generated the input files for DOSXYZnrc. One dimension of dose profile analyzed at some point sampling to determine differences in the dose distribution in the cylinder acrylic phantom. DynaLog analysis on the data file showed that the leaf error position is less than 1 mm is 97.1% of the total leaf position and no leaf error position is more than 2 mm. The doses distribution error was discovered less than 2% at isocenter. This study showed there is no significant error on doses distribution due to <;1% inaccuracy of MLC leaf position. The Monte Carlo simulation was done using 24.7 billion particles of the phase space history file with a standard deviation of Monte Carlo calculations by 31.66%.
机译:对VMAT传递技术进行了蒙特卡洛模拟,以研究计划和实际MLC叶位置之间MLC叶位置的不准确性的影响。该研究旨在比较这两个参数之间的剂量分布。总的来说,这些研究分为两个阶段,头部直线加速器的调试和VMAT传输技术的仿真。在调试阶段,对田径6×6 cm的PDD和剂量分布进行Monte Carlo模拟 2 ,10×10 cm2和20×20 cm 2 正在通过实验数据进行验证。调试结果表明仿真和实验数据之间有很好的一致性。对于所有场尺寸,使用6.4 MeV初始入射电子,其平均偏差小于5%。在VMAT交付技术仿真阶段,使用自制的MATLAB程序对DynaLog文件进行分析,并生成DOSXYZnrc的输入文件。在某些点采样时分析剂量分布的一维以确定圆柱丙烯酸模体中剂量分布的差异。对数据文件的DynaLog分析显示,叶片误差位置小于1 mm占叶片总位置的97.1%,且叶片误差位置不超过2 mm。在等中心点发现剂量分布误差小于2%。这项研究表明,由于MLC叶位置的误差不超过1%,因此剂量分布没有明显的误差。蒙特卡罗模拟是使用247亿个相空间历史文件的粒子完成的,蒙特卡罗计算的标准偏差为31.66%。

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