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Generation of a novel phase-space-based cylindrical dose kernel for IMRT optimization

机译:用于IMRT优化的新型基于相空间的圆柱剂量内核的生成

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摘要

>Purpose: Improving dose calculation accuracy is crucial in intensity-modulated radiation therapy (IMRT). We have developed a method for generating a phase-space-based dose kernel for IMRT planning of lung cancer patients.>Methods: Particle transport in the linear accelerator treatment head of a 21EX, 6 MV photon beam (Varian Medical Systems, Palo Alto, CA) was simulated using the EGSnrc/BEAMnrc code system. The phase space information was recorded under the secondary jaws. Each particle in the phase space file was associated with a beamlet whose index was calculated and saved in the particle’s LATCH variable. The DOSXYZnrc code was modified to accumulate the energy deposited by each particle based on its beamlet index. Furthermore, the central axis of each beamlet was calculated from the orientation of all the particles in this beamlet. A cylinder was then defined around the central axis so that only the energy deposited within the cylinder was counted. A look-up table was established for each cylinder during the tallying process. The efficiency and accuracy of the cylindrical beamlet energy deposition approach was evaluated using a treatment plan developed on a simulated lung phantom.>Results: Profile and percentage depth doses computed in a water phantom for an open, square field size were within 1.5% of measurements. Dose optimized with the cylindrical dose kernel was found to be within 0.6% of that computed with the nontruncated 3D kernel. The cylindrical truncation reduced optimization time by approximately 80%.>Conclusions: A method for generating a phase-space-based dose kernel, using a truncated cylinder for scoring dose, in beamlet-based optimization of lung treatment planning was developed and found to be in good agreement with the standard, nontruncated scoring approach. Compared to previous techniques, our method significantly reduces computational time and memory requirements, which may be useful for Monte-Carlo-based 4D IMRT or IMAT treatment planning.
机译:>目的:提高剂量计算的准确性对于强度调制放射治疗(IMRT)至关重要。我们已经开发了一种生成基于相空间的剂量核的方法,用于肺癌患者的IMRT规划。>方法: 21EX,6 MV光子束(Varian)的线性加速器治疗头中的粒子传输使用EGSnrc / BEAMnrc代码系统模拟了加利福尼亚州帕洛阿尔托的Medical Systems。相空间信息记录在次级钳口下。相空间文件中的每个粒子都与一个子束相关联,该子束的索引已计算并保存在粒子的LATCH变量中。修改了DOSXYZnrc代码,以根据每个粒子的小束指数累积每个粒子所沉积的能量。此外,根据该小束中所有粒子的取向计算每个小束的中心轴。然后围绕中心轴定义一个圆柱体,以便仅计算圆柱体内沉积的能量。在计数过程中为每个气缸建立了一个查询表。使用在模拟的肺部幻影上制定的治疗计划,评估了圆柱状子束能量沉积方法的效率和准确性。>结果:在水状幻影中,对于开放的方形场大小计算出的轮廓和深度剂量百分比在测量值的1.5%以内。发现使用圆柱剂量内核优化的剂量在使用非截断3D内核计算的剂量的0.6%以内。圆柱状截断将优化时间减少了大约80%。>结论:在基于小波的肺部治疗计划优化中,使用截断圆柱体对剂量进行评分的一种基于相空间的剂量核的方法被开发出来并被发现与标准的,非截断的评分方法非常吻合。与以前的技术相比,我们的方法大大减少了计算时间和内存需求,这可能对基于蒙特卡洛的4D IMRT或IMAT治疗计划很有用。

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