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GATE蒙特卡罗工具包中的剂量学应用。

Dosimetry applications in GATE Monte Carlo toolkit.

作者信息

Papadimitroulas Panagiotis

机构信息

BET Solutions, 116 Alexandras Av., GR-11472 Athens, Greece.

出版信息

Phys Med. 2017 Sep;41:136-140. doi: 10.1016/j.ejmp.2017.02.005. Epub 2017 Feb 22.

DOI:10.1016/j.ejmp.2017.02.005
PMID:28236558
Abstract

PURPOSE

Monte Carlo (MC) simulations are a well-established method for studying physical processes in medical physics. The purpose of this review is to present GATE dosimetry applications on diagnostic and therapeutic simulated protocols. There is a significant need for accurate quantification of the absorbed dose in several specific applications such as preclinical and pediatric studies.

METHODS

GATE is an open-source MC toolkit for simulating imaging, radiotherapy (RT) and dosimetry applications in a user-friendly environment, which is well validated and widely accepted by the scientific community. In RT applications, during treatment planning, it is essential to accurately assess the deposited energy and the absorbed dose per tissue/organ of interest, as well as the local statistical uncertainty. Several types of realistic dosimetric applications are described including: molecular imaging, radio-immunotherapy, radiotherapy and brachytherapy.

RESULTS

GATE has been efficiently used in several applications, such as Dose Point Kernels, S-values, Brachytherapy parameters, and has been compared against various MC codes which are considered as standard tools for decades. Furthermore, the presented studies show reliable modeling of particle beams when comparing experimental with simulated data. Examples of different dosimetric protocols are reported for individualized dosimetry and simulations combining imaging and therapy dose monitoring, with the use of modern computational phantoms.

CONCLUSIONS

Personalization of medical protocols can be achieved by combining GATE MC simulations with anthropomorphic computational models and clinical anatomical data. This is a review study, covering several dosimetric applications of GATE, and the different tools used for modeling realistic clinical acquisitions with accurate dose assessment.

摘要

目的

蒙特卡罗(MC)模拟是医学物理中研究物理过程的一种成熟方法。本综述的目的是介绍GATE在诊断和治疗模拟方案中的剂量学应用。在一些特定应用中,如临床前和儿科研究,对准确量化吸收剂量有很大需求。

方法

GATE是一个开源的MC工具包,用于在用户友好的环境中模拟成像、放射治疗(RT)和剂量学应用,它经过了充分验证并被科学界广泛接受。在RT应用中,在治疗计划期间,准确评估感兴趣的每个组织/器官沉积的能量和吸收剂量以及局部统计不确定性至关重要。描述了几种类型的实际剂量学应用,包括:分子成像、放射免疫治疗、放射治疗和近距离放射治疗。

结果

GATE已在多种应用中得到有效使用,如剂量点核、S值、近距离放射治疗参数等,并且已与被视为几十年来标准工具的各种MC代码进行了比较。此外,在将实验数据与模拟数据进行比较时,所呈现的研究表明对粒子束的建模可靠。报告了不同剂量学方案的示例,用于个性化剂量学以及结合成像和治疗剂量监测的模拟,并使用了现代计算体模。

结论

通过将GATE MC模拟与拟人化计算模型和临床解剖数据相结合,可以实现医疗方案的个性化。这是一项综述研究,涵盖了GATE的几种剂量学应用,以及用于对具有准确剂量评估的实际临床采集进行建模的不同工具。

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