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A full-scale clinical prototype for proton range verification using prompt gamma-ray spectroscopy

机译:全面的临床原型用于使用瞬发伽马射线光谱法验证质子范围

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摘要

We present a full-scale clinical prototype system for in vivo range verification of proton pencil-beams using the prompt gamma-ray spectroscopy method. The detection system consists of eight LaBr3 scintillators and a tungsten collimator, mounted on a rotating frame. Custom electronics and calibration algorithms have been developed for the measurement of energy- and time-resolved gamma-ray spectra during proton irradiation at a clinical dose rate. Using experimentally determined nuclear reaction cross sections and a GPU-accelerated Monte Carlo simulation, a detailed model of the expected gamma-ray emissions is created for each individual pencil-beam. The absolute range of the proton pencil-beams is determined by minimizing the discrepancy between the measurement and this model, leaving the absolute range of the beam and the elemental concentrations of the irradiated matter as free parameters. The system was characterized in a clinical-like situation by irradiating different phantoms with a scanning pencil-beam. A dose of 0.9 Gy was delivered to a 5×10×10 cm3 target with a beam current of 2 nA incident on the phantom. Different range shifters and materials were used to test the robustness of the verification method and to calculate the accuracy of the detected range. The absolute proton range was determined for each spot of the distal energy layer with a mean statistical precision of 1.1 mm at a 95% confidence level and a mean systematic deviation of 0.5 mm, when aggregating pencil-beam spots within a cylindrical region of 10 mm radius and 10 mm depth. Small range errors that we introduced were successfully detected and even large differences in the elemental composition do not affect the range verification accuracy. These results show that our system is suitable for range verification during patient treatments in our upcoming clinical study.
机译:我们提出了一种使用瞬变伽马射线光谱法对质子铅笔束进行体内范围验证的全面临床原型系统。该检测系统由八个LaBr3闪烁体和一个钨准直仪组成,它们安装在旋转架上。定制电子设备和校准算法已经开发出来,用于在临床剂量率下质子辐照期间测量能量和时间分辨的伽马射线光谱。使用实验确定的核反应截面和GPU加速的蒙特卡洛模拟,为每个单独的笔形光束创建了预期的伽马射线发射的详细模型。质子笔形束的绝对范围是通过使测量值与该模型之间的差异最小化来确定的,而束的绝对范围和被辐射物质的元素浓度则作为自由参数。该系统的特点是在临床样情况下,用扫描笔形光束照射不同的体模。将0.9 Gy的剂量以2 nA的束电流入射到5×10×10 cm 3 靶上。使用不同的范围移位器和材料来测试验证方法的鲁棒性并计算检测范围的准确性。当在10 mm的圆柱区域内聚集笔形光束点时,确定远端能量层的每个点的绝对质子范围,在95%置信水平下的平均统计精度为1.1 mm,平均系统偏差为0.5 mm半径和10毫米深度。我们引入的小范围误差已被成功检测到,即使元素组成存在较大差异也不会影响范围验证的准确性。这些结果表明,在我们即将进行的临床研究中,我们的系统适用于患者治疗期间的范围验证。

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