Development of a three‐dimensional scintillation detector for pencil beam verification in proton therapy patient‐specific quality assurance

IF 3.2 2区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Medical physics Pub Date : 2024-09-10 DOI:10.1002/mp.17388
Anne‐Marie Frelin, Gautier Daviau, My Hoang Hoa Bui, Cathy Fontbonne, Jean‐Marc Fontbonne, Dorothée Lebhertz, Erwan Mainguy, Cyril Moignier, Juliette Thariat, Anthony Vela
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引用次数: 0

Abstract

BackgroundPencil Beam Scanning proton therapy has many advantages from a therapeutic point of view, but raises technical constraints in terms of treatment verification. The treatment relies on a large number of planned pencil beams (PB) (up to thousands), whose delivery is divided in several low‐intensity pulses delivered a high frequency (1 kHz in this study).PurposeThe purpose of this study was to develop a three‐dimensional quality assurance system allowing to verify all the PBs’ characteristics (position, energy, intensity in terms of delivered monitor unit—MU) of patient treatment plans on a pulse‐by‐pulse or a PB‐by‐PB basis.MethodsA system named SCICOPRO has been developed. It is based on a 10 × 10 × 10 cm3 scintillator cube and a fast camera, synchronized with beam delivery, recording two views (direct and using a mirror) of the scintillation distribution generated by the pulses. A specific calibration and analysis process allowed to extract the characteristics of all the pulses delivered during the treatment, and consequently of all the PBs. The system uncertainties, defined here as average value + standard deviation, were characterized with a customized irradiation plan at different PB intensities (0.02, 0.1, and 1 MU) and with two patient's treatment plans of three beams each. The system's ability to detect potential treatment delivery problems, such as positioning errors of the treatment table in this work (1° rotations and a 2 mm translation), was assessed by calculating the confidence intervals (CI) for the different characteristics and evaluating the proportion of PBs within these intervals.ResultsThe performances of SCICOPRO were evaluated on a pulse‐by‐pulse basis. They showed a very good signal‐to‐noise ratio for all the pulse intensities (between 2 × 10−3 MU and 150 × 10−3 MU) allowing uncertainties smaller than 580 µm for the position, 180 keV for the energy and 3% for the intensity on patients treatment plans. The position and energy uncertainties were found to be little dependent from the pulse intensities whereas the intensity uncertainty depends on the pulses number and intensity distribution. Finally, treatment plans evaluations showed that 98% of the PBs were within the CIs with a nominal positioning against 83% or less with the table positioning errors, thus proving the ability of SCICOPRO to detect this kind of errors.ConclusionThe high acquisition rate and the very high sensitivity of the system developed in this work allowed to record pulses of intensities as low as 2 × 10−3 MU. SCICOPRO was thus able to measure all the characteristics of the spots of a treatment (position, energy, intensity) in a single measurement, making it possible to verify their compliance with the treatment plan. SCICOPRO thus proved to be a fast and accurate tool that would be useful for patient‐specific quality assurance (PSQA) on a pulse‐by‐pulse or PB‐by‐PB verification basis.
开发三维闪烁探测器,用于质子治疗患者特定质量保证中的铅笔束验证
背景从治疗角度看,铅笔束扫描质子疗法有许多优点,但在治疗验证方面却存在技术限制。本研究的目的是开发一种三维质量保证系统,以逐个脉冲或逐个铅笔束为基础,验证患者治疗计划中所有铅笔束的特征(位置、能量、强度(以输送的监视器单位-MU计))。该系统基于一个 10 × 10 × 10 立方厘米的闪烁体立方体和一台快速相机,与光束传输同步,记录脉冲产生的闪烁分布的两个视图(直接视图和使用镜面视图)。通过特定的校准和分析过程,可以提取治疗过程中发射的所有脉冲的特征,从而提取所有 PB 的特征。系统的不确定性(此处定义为平均值+标准偏差)是在不同 PB 强度(0.02、0.1 和 1 MU)的定制辐照计划和两名患者的三束治疗计划中确定的。通过计算不同特征的置信区间 (CI),并评估这些置信区间内的 PB 比例,评估了系统检测潜在治疗实施问题的能力,如本研究中治疗台的定位误差(旋转 1° 和平移 2 毫米)。结果显示,所有脉冲强度(2 × 10-3 MU 和 150 × 10-3 MU 之间)的信噪比都非常好,患者治疗计划的位置不确定性小于 580 µm,能量不确定性小于 180 keV,强度不确定性小于 3%。研究发现,位置和能量的不确定性与脉冲强度的关系不大,而强度的不确定性则取决于脉冲数和强度分布。最后,治疗计划评估显示,在标称定位的情况下,98% 的 PB 在 CIs 范围内,而在工作台定位误差的情况下,只有 83% 或更低,从而证明了 SCICOPRO 检测此类误差的能力。因此,SCICOPRO 能够在一次测量中测量治疗光点的所有特征(位置、能量、强度),从而验证它们是否符合治疗计划。因此,SCICOPRO 被证明是一种快速、准确的工具,可用于逐个脉冲或逐个 PB 验证的患者特定质量保证 (PSQA)。
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
Medical physics
Medical physics 医学-核医学
CiteScore
6.80
自引率
15.80%
发文量
660
审稿时长
1.7 months
期刊介绍: Medical Physics publishes original, high impact physics, imaging science, and engineering research that advances patient diagnosis and therapy through contributions in 1) Basic science developments with high potential for clinical translation 2) Clinical applications of cutting edge engineering and physics innovations 3) Broadly applicable and innovative clinical physics developments Medical Physics is a journal of global scope and reach. By publishing in Medical Physics your research will reach an international, multidisciplinary audience including practicing medical physicists as well as physics- and engineering based translational scientists. We work closely with authors of promising articles to improve their quality.
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