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Monte Carlo simulations to support start-up and treatment planning of scanned proton and carbon ion therapy at a synchrotron-based facility

机译:蒙特卡洛模拟,以支持基于同步加速器的设施的质子扫描和碳离子疗法的启动和治疗计划

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Reliable treatment planning of highly conformal scanned ion beam therapy demands accurate tools for the determination and characterization of the individual pencil-like beams building up the integral dose delivery and related mixed radiation field. At present, clinically practicable inverse treatment planning systems (TPSs) can only rely on fast-performing analytical algorithms. However, the rapidly emerging though more computationally intensive Monte Carlo (MC) methods can be employed to complement analytical TPS, e.g., via accurate calculations of the input beam-model data, together with a considerable reduction of the measuring time. Here we present the work done for the application of the FLUKA MC code to support several aspects of scanned ion beam delivery and treatment planning at the Heidelberg Ion Beam Therapy Center (HIT). Emphasis is given to the generation of the accelerator library and of experimentally validated TPS input basic data which are now in clinical use for proton and carbon ion therapy. Additionally, MC dose calculations of planned treatments in water are shown to represent a valuable tool for supporting treatment plan verification in comparison to dosimetric measurements. This paper can thus provide useful information and guidelines for the start-up and clinical operation of forthcoming ion beam therapy facilities similar to HIT.
机译:高度共形的扫描离子束治疗的可靠治疗计划要求使用准确的工具来确定和表征单个铅笔状束,以建立整体剂量输送和相关的混合辐射场。目前,临床上可行的逆向治疗计划系统(TPS)只能依靠快速执行的分析算法。然而,迅速出现的但计算量更大的蒙特卡洛(MC)方法可以用于例如通过输入束模型数据的精确计算以及测量时间的显着减少来补充分析TPS。在这里,我们介绍在海德堡离子束治疗中心(HIT)上应用FLUKA MC代码完成的工作,以支持扫描离子束传输和治疗计划的多个方面。重点是加速器库的生成以及经过实验验证的TPS输入的基本数据,这些数据现在已在临床上用于质子和碳离子治疗。此外,与剂量测量相比,水中计划处理的MC剂量计算显示出是支持处理计划验证的有价值的工具。因此,本文可以为即将到来的类似于HIT的离子束治疗设施的启动和临床操作提供有用的信息和指南。

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