Evaluation of RADIANCE Monte Carlo algorithm for treatment planning in electron based Intraoperative Radiotherapy (IOERT)

IF 4.2 4区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Zeitschrift fur Medizinische Physik Pub Date : 2025-08-01 Epub Date: 2024-01-05 DOI:10.1016/j.zemedi.2023.12.002
Charoula Iliaskou, Giulio Rossi, Ilias Sachpazidis, Vasilios Boronikolas, Mark Gainey, Dimos Baltas
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Abstract

Purpose

To perform experimental as well as independent Monte Carlo (MC) evaluation of the MC algorithm implemented in RADIANCE version 4.0.8, a dedicated treatment planning system (TPS) for 3D electron dose calculations in intraoperative radiation therapy (IOERT).

Methods and materials

The MOBETRON 2000 (IntraOp Medical Corporation, Sunnyvale, CA) IOERT accelerator was employed. PDD and profiles for five cylindrical plastic applicators with 50–90 mm diameter and 0°, 30° beveling were measured in a water phantom, at nominal energies of 6, 9 and 12 MeV. Additional PDD measurements were performed for all the energies without applicator. MC modeling of the MOBETRON was performed with the user code BEAMnrc and egs_chamber of the MC simulation toolkit EGSnrc. The generated phase space files of the two 0°-bevel applicators (50 mm, 80 mm) and three energies in both RADIANCE and BEAMnrc, were used to determine PDD and profiles in various set-ups of virtual water phantoms with air and bone inhomogeneities. 3D dose distributions were also calculated in image data sets of an anthropomorphic tissue-equivalent pelvis phantom. Image acquisitions were realized with a CT scanner (Philips Big Bore CT, Netherlands). Gamma analysis was applied to quantify the deviations of the RADIANCE calculations to the measurements and EGSnrc calculations. Gamma criteria normalized to the global maximum were investigated between 2%, 2 mm and 3%, 3 mm.

Results

RADIANCE MC calculations satisfied the gamma criteria of 3%, 3 mm with a tolerance limit of 85% passing rate compared to in- water phantom measurements, except for the dose profiles of the 30° beveled applicators. Mismatches lay in surface doses, in umbra regions and in the beveled end of the 30° applicators. A very good agreement to the EGSnrc calculations in heterogeneous media was observed. Deviations were more pronounced for the larger applicator diameter and higher electron energy. In 3D dose comparisons in the anthropomorphic phantom, gamma passing rates were higher than 96 % for both simulated applicators.

Conclusions

RADIANCE MC algorithm agrees within 3%, 3 mm criteria with in-water phantom measurements and EGSnrc MC dose distributions in heterogeneous media for 0°-bevel applicators. The user should be aware of missing scattering components and the 30° beveled applicators should be used with attention.
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评估 RADIANCE 蒙地卡罗算法在基于电子的术中放疗(IOERT)中的治疗计划。
目的:对用于术中放射治疗(IOERT)三维电子剂量计算的专用治疗计划系统(TPS)RADIANCE 4.0.8版中实施的MC算法进行实验和独立蒙特卡洛(MC)评估:采用 MOBETRON 2000(IntraOp Medical Corporation,加利福尼亚州桑尼维尔市)IOERT 加速器。在标称能量为 6、9 和 12 MeV 时,在水模型中测量了直径为 50-90 毫米、斜角为 0°、30° 的五个圆柱形塑料涂抹器的 PDD 和轮廓。在不使用涂抹器的情况下,还对所有能量进行了额外的 PDD 测量。使用 MC 仿真工具包 EGSnrc 的用户代码 BEAMnrc 和 egs_chamber 对 MOBETRON 进行了 MC 建模。在 RADIANCE 和 BEAMnrc 中生成的两个 0° 斜面涂抹器(50 毫米和 80 毫米)和三种能量的相空间文件,被用于确定具有空气和骨骼不均匀性的虚拟水模型的各种设置中的 PDD 和剖面。此外,还计算了拟人组织等效骨盆模型图像数据集的三维剂量分布。图像采集是通过 CT 扫描仪(荷兰飞利浦大孔径 CT)实现的。伽马分析用于量化 RADIANCE 计算与测量和 EGSnrc 计算的偏差。伽马标准归一化为全局最大值,在 2%(2 mm)和 3%(3 mm)之间进行了研究:结果:RADIANCE MC 计算符合 3%, 3 mm 的伽马标准,与水模型测量结果相比,通过率误差限制在 85%,但 30° 斜面涂抹器的剂量曲线除外。在表面剂量、本影区域和 30° 斜面涂抹器的斜面端存在不匹配现象。在异质介质中,与 EGSnrc 计算结果的一致性非常好。当涂抹器直径越大、电子能量越高时,偏差越明显。在人体模型的三维剂量比较中,两种模拟涂抹器的伽马通过率均高于96%:结论:RADIANCE MC算法在3%、3 mm标准范围内与水中模型测量结果以及0°斜面施药器在异质介质中的EGSnrc MC剂量分布相吻合。用户应注意散射成分的缺失,并在使用 30° 斜面涂抹器时加以注意。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.70
自引率
10.00%
发文量
69
审稿时长
65 days
期刊介绍: Zeitschrift fur Medizinische Physik (Journal of Medical Physics) is an official organ of the German and Austrian Society of Medical Physic and the Swiss Society of Radiobiology and Medical Physics.The Journal is a platform for basic research and practical applications of physical procedures in medical diagnostics and therapy. The articles are reviewed following international standards of peer reviewing. Focuses of the articles are: -Biophysical methods in radiation therapy and nuclear medicine -Dosimetry and radiation protection -Radiological diagnostics and quality assurance -Modern imaging techniques, such as computed tomography, magnetic resonance imaging, positron emission tomography -Ultrasonography diagnostics, application of laser and UV rays -Electronic processing of biosignals -Artificial intelligence and machine learning in medical physics In the Journal, the latest scientific insights find their expression in the form of original articles, reviews, technical communications, and information for the clinical practice.
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