首页> 美国卫生研究院文献>Medical Physics >Commissioning dose computation models for spot scanning proton beams in water for a commercially available treatment planning system
【2h】

Commissioning dose computation models for spot scanning proton beams in water for a commercially available treatment planning system

机译:用于市售治疗计划系统的水中质子束点扫描的调试剂量计算模型

代理获取
本网站仅为用户提供外文OA文献查询和代理获取服务,本网站没有原文。下单后我们将采用程序或人工为您竭诚获取高质量的原文,但由于OA文献来源多样且变更频繁,仍可能出现获取不到、文献不完整或与标题不符等情况,如果获取不到我们将提供退款服务。请知悉。

摘要

>Purpose: To present our method and experience in commissioning dose models in water for spot scanning proton therapy in a commercial treatment planning system (TPS).>Methods: The input data required by the TPS included in-air transverse profiles and integral depth doses (IDDs). All input data were obtained from Monte Carlo (MC) simulations that had been validated by measurements. MC-generated IDDs were converted to units of Gy mm2/MU using the measured IDDs at a depth of 2 cm employing the largest commercially available parallel-plate ionization chamber. The sensitive area of the chamber was insufficient to fully encompass the entire lateral dose deposited at depth by a pencil beam (spot). To correct for the detector size, correction factors as a function of proton energy were defined and determined using MC. The fluence of individual spots was initially modeled as a single Gaussian (SG) function and later as a double Gaussian (DG) function. The DG fluence model was introduced to account for the spot fluence due to contributions of large angle scattering from the devices within the scanning nozzle, especially from the spot profile monitor. To validate the DG fluence model, we compared calculations and measurements, including doses at the center of spread out Bragg peaks (SOBPs) as a function of nominal field size, range, and SOBP width, lateral dose profiles, and depth doses for different widths of SOBP. Dose models were validated extensively with patient treatment field-specific measurements.>Results: We demonstrated that the DG fluence model is necessary for predicting the field size dependence of dose distributions. With this model, the calculated doses at the center of SOBPs as a function of nominal field size, range, and SOBP width, lateral dose profiles and depth doses for rectangular target volumes agreed well with respective measured values. With the DG fluence model for our scanning proton beam line, we successfully treated more than 500 patients from March 2010 through June 2012 with acceptable agreement between TPS calculated and measured dose distributions. However, the current dose model still has limitations in predicting field size dependence of doses at some intermediate depths of proton beams with high energies.>Conclusions: We have commissioned a DG fluence model for clinical use. It is demonstrated that the DG fluence model is significantly more accurate than the SG fluence model. However, some deficiencies in modeling the low-dose envelope in the current dose algorithm still exist. Further improvements to the current dose algorithm are needed. The method presented here should be useful for commissioning pencil beam dose algorithms in new versions of TPS in the future.
机译:>目的:介绍我们在商业治疗计划系统(TPS)中进行质子点样扫描水中剂量模型调试的方法和经验。>方法: TPS包括空中横向剖面和积分深度剂量(IDD)。所有输入数据均从经过测量验证的蒙特卡洛(MC)仿真中获得。使用最大的市售平行板电离室,在2 cm的深度处使用测得的IDD将MC生成的IDD转换为Gy mm 2 / MU的单位。腔室的敏感区域不足以完全涵盖铅笔束(点)在深度处沉积的整个横向剂量。为了校正探测器的尺寸,使用MC定义并确定了作为质子能量函数的校正因子。单个斑点的通量最初被建模为单个高斯(SG)函数,后来被建模为双高斯(DG)函数。引入DG能量密度模型是为了解决由于来自扫描喷嘴内的设备(尤其是来自斑点轮廓监视器)的大角度散射而引起的斑点能量密度。为了验证DG通量模型,我们比较了计算和测量值,包括在布拉格峰(SOBP)中心处的剂量随标称场大小,范围和SOBP宽度,横向剂量分布以及不同宽度的深度剂量而变SOBP。剂量模型已通过针对患者治疗领域的特定测量进行了广泛验证。>结果:我们证明了DG注量模型对于预测剂量分布的域大小依赖性是必需的。使用此模型,对于矩形目标体积,在SOBP中心的计算剂量随标称场大小,范围和SOBP宽度,横向剂量分布和深度剂量而变化,与各自的测量值非常吻合。借助用于扫描质子束线的DG通量模型,我们在2010年3月至2012年6月成功治疗了500多名患者,并且TPS计算和测量的剂量分布之间的可接受的一致性。但是,当前的剂量模型在预测高能量质子束某些中间深度处剂量的场大小依赖性方面仍然存在局限性。>结论:我们已委托DG能量密度模型进行临床使用。结果表明,DG通量模型比SG通量模型更准确。但是,在当前剂量算法中对低剂量包膜建模时仍存在一些缺陷。需要对当前剂量算法进行进一步的改进。此处介绍的方法对于将来在TPS的新版本中调试笔形射束剂量算法将很有用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
代理获取

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号