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Time-resolved dosimetric verification of respiratory-gated radiotherapy exposures using a high-resolution 2D ionisation chamber array

机译:使用高分辨率2D电离室阵列对呼吸门控放射治疗暴露进行时间分辨剂量学验证

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摘要

The aim of this work was to track and verify the delivery of respiratory-gated irradiations, performed with three versions of TrueBeam linac, using a novel phantom arrangement that combined the OCTAVIUS® SRS 1000 array with a moving platform. The platform was programmed to generate sinusoidal motion of the array. This motion was tracked using the real-time position management (RPM) system and four amplitude gating options were employed to interrupt MV beam delivery when the platform was not located within set limits. Time-resolved spatial information extracted from analysis of x-ray fluences measured by the array was compared to the programmed motion of the platform and to the trace recorded by the RPM system during the delivery of the x-ray field. Temporal data recorded by the phantom and the RPM system were validated against trajectory log files, recorded by the linac during the irradiation, as well as oscilloscope waveforms recorded from the linac target signal. Gamma analysis was employed to compare time-integrated 2D x-ray dose fluences with theoretical fluences derived from the probability density function for each of the gating settings applied, where gamma criteria of 2%/2 mm, 1%/1 mm and 0.5%/0.5 mm were used to evaluate the limitations of the RPM system. Excellent agreement was observed in the analysis of spatial information extracted from the SRS 1000 array measurements. Comparisons of the average platform position with the expected position indicated absolute deviations of  0.5 mm for all four gating settings. Differences were observed when comparing time-resolved beam-on data stored in the RPM files and trajectory logs to the true target signal waveforms. Trajectory log files underestimated the cycle time between consecutive beam-on windows by 10.0  ±  0.8 ms. All measured fluences achieved 100% pass-rates using gamma criteria of 2%/2 mm and 50% of the fluences achieved pass-rates  90% when criteria of 0.5%/0.5 mm were used. Results using this novel phantom arrangement indicate that the RPM system is capable of accurately gating x-ray exposure during the delivery of a fixed-field treatment beam.
机译:这项工作的目的是使用将OCTAVIUS®SRS 1000阵列与移动平台相结合的新型幻像装置,跟踪和验证使用三种版本的TrueBeam直线加速器执行的呼吸门照射的传递。对平台进行编程以生成阵列的正弦运动。使用实时位置管理(RPM)系统跟踪此运动,并且当平台不在设定的限制范围内时,采用了四个幅度选通选项来中断MV光束的传送。从阵列测量的X射线通量分析中提取的时间分辨空间信息与平台的编程运动以及RPM系统在X射线场传递过程中记录的轨迹进行了比较。幻影和RPM系统记录的时间数据已根据直线加速器在辐照期间记录的轨迹日志文件以及从直线加速器目标信号记录的示波器波形进行了验证。使用伽玛分析比较时间积分的2D X射线剂量通量和从应用每种门控设置的概率密度函数得出的理论通量,其中伽玛标准为2%/ 2 mm,1%/ 1 mm和0.5% /0.5?mm用于评估RPM系统的局限性。在分析从SRS 1000阵列测量中提取的空间信息时,观察到了极好的一致性。将平台的平均位置与预期位置进行比较表明,所有四种门控设置的绝对偏差为<0.5mm。将存储在RPM文件和轨迹日志中的时间分辨波束数据与真实目标信号波形进行比较时,观察到差异。轨迹日志文件低估了连续光束照射窗口之间的周期时间10.0±0.8毫秒。使用2%/ 2?mm的伽玛标准,所有测得的通量都达到100%的通过率,而当使用0.5%/ 0.5?mm的标准时,有50%的通量的通过率达到> 90%。使用这种新颖的幻像装置的结果表明,RPM系统能够在固定场治疗光束传输期间准确地控制X射线曝光。

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