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基于蒙特卡洛方法的实验基准吸收剂量计算中的不确定性。

Uncertainties in Monte Carlo-based absorbed dose calculations for an experimental benchmark.

作者信息

Renner F, Wulff J, Kapsch R-P, Zink K

出版信息

Phys Med Biol. 2015 Oct 7;60(19):7637-53. doi: 10.1088/0031-9155/60/19/7637.

Abstract

There is a need to verify the accuracy of general purpose Monte Carlo codes like EGSnrc, which are commonly employed for investigations of dosimetric problems in radiation therapy. A number of experimental benchmarks have been published to compare calculated values of absorbed dose to experimentally determined values. However, there is a lack of absolute benchmarks, i.e. benchmarks without involved normalization which may cause some quantities to be cancelled. Therefore, at the Physikalisch-Technische Bundesanstalt a benchmark experiment was performed, which aimed at the absolute verification of radiation transport calculations for dosimetry in radiation therapy. A thimble-type ionization chamber in a solid phantom was irradiated by high-energy bremsstrahlung and the mean absorbed dose in the sensitive volume was measured per incident electron of the target. The characteristics of the accelerator and experimental setup were precisely determined and the results of a corresponding Monte Carlo simulation with EGSnrc are presented within this study. For a meaningful comparison, an analysis of the uncertainty of the Monte Carlo simulation is necessary. In this study uncertainties with regard to the simulation geometry, the radiation source, transport options of the Monte Carlo code and specific interaction cross sections are investigated, applying the general methodology of the Guide to the expression of uncertainty in measurement. Besides studying the general influence of changes in transport options of the EGSnrc code, uncertainties are analyzed by estimating the sensitivity coefficients of various input quantities in a first step. Secondly, standard uncertainties are assigned to each quantity which are known from the experiment, e.g. uncertainties for geometric dimensions. Data for more fundamental quantities such as photon cross sections and the I-value of electron stopping powers are taken from literature. The significant uncertainty contributions are identified as the energy of the radiation source and the underlying photon cross sections as well as the I-value of media involved in the simulation. The combined standard uncertainty of the Monte Carlo calculation yields 0.78% as a conservative estimation. The result of the calculation is close to the experimental result and with each combined standard uncertainty  <1%, the accuracy of EGSnrc is confirmed. The setup and methodology of this study can be employed to benchmark other Monte Carlo codes for the calculation of absorbed dose in radiotherapy.

摘要

有必要验证像EGSnrc这样的通用蒙特卡罗代码的准确性,这些代码通常用于研究放射治疗中的剂量学问题。已经发表了许多实验基准来比较吸收剂量的计算值与实验确定的值。然而,缺乏绝对基准,即不涉及归一化的基准,这可能会导致一些量被抵消。因此,德国物理技术研究院进行了一项基准实验,旨在对放射治疗剂量学中的辐射传输计算进行绝对验证。在固体模体中的指形电离室被高能轫致辐射照射,并且针对靶的每个入射电子测量灵敏体积内的平均吸收剂量。精确确定了加速器和实验装置的特性,并在本研究中给出了使用EGSnrc进行相应蒙特卡罗模拟的结果。为了进行有意义的比较,有必要对蒙特卡罗模拟的不确定性进行分析。在本研究中,应用测量不确定度表示指南的通用方法,研究了模拟几何形状、辐射源、蒙特卡罗代码的传输选项和特定相互作用截面的不确定性。除了研究EGSnrc代码传输选项变化的一般影响外,首先通过估计各种输入量的灵敏度系数来分析不确定性。其次,为每个从实验中已知的量指定标准不确定度,例如几何尺寸的不确定度。更基本量的数据,如光子截面和电子阻止本领的I值,取自文献。确定的显著不确定度贡献是辐射源的能量、基础光子截面以及模拟中涉及介质的I值。蒙特卡罗计算的合成标准不确定度保守估计为0.78%。计算结果与实验结果接近,且合成标准不确定度均<1%,证实了EGSnrc的准确性。本研究的装置和方法可用于为其他蒙特卡罗代码在放射治疗吸收剂量计算方面建立基准。

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