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Monitoring daily MLC positional errors using trajectory log files and EPID measurements for IMRT and VMAT deliveries

机译:使用轨迹日志文件和EPID测量来监视IMRT和VMAT交付的每日MLC位置错误

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This work investigated the differences between multileaf collimator (MLC) positioning accuracy determined using either log files or electronic portal imaging devices (EPID) and then assessed the possibility of reducing patient specific quality control (QC) via phantom-less methodologies. In-house software was developed, and validated, to track MLC positional accuracy with the rotational and static gantry picket fence tests using an integrated electronic portal image. This software was used to monitor MLC daily performance over a 1 year period for two Varian TrueBeam linear accelerators, with the results directly compared with MLC positions determined using leaf trajectory log files. This software was validated by introducing known shifts and collimator errors. Skewness of the MLCs was found to be 0.03 ± 0.06° (mean ±1 standard deviation (SD)) and was dependent on whether the collimator was rotated manually or automatically. Trajectory log files, analysed using in-house software, showed average MLC positioning errors with a magnitude of 0.004 ± 0.003 mm (rotational) and 0.004 ± 0.011 mm (static) across two TrueBeam units over 1 year (mean ±1 SD). These ranges, as indicated by the SD, were lower than the related average MLC positioning errors of 0.000 ± 0.025 mm (rotational) and 0.000 ± 0.039 mm (static) that were obtained using the in-house EPID based software. The range of EPID measured MLC positional errors was larger due to the inherent uncertainties of the procedure. Over the duration of the study, multiple MLC positional errors were detected using the EPID based software but these same errors were not detected using the trajectory log files. This work shows the importance of increasing linac specific QC when phantom-less methodologies, such as the use of log files, are used to reduce patient specific QC. Tolerances of 0.25 mm have been created for the MLC positional errors using the EPID-based automated picket fence test. The software allows diagnosis of any specific leaf that needs repair and gives an indication as to the course of action that is required.
机译:这项工作调查了使用日志文件或电子门户成像设备(EPID)确定的多叶准直仪(MLC)定位精度之间的差异,然后评估了通过无幻像方法降低患者特定质量控制(QC)的可能性。开发并验证了内部软件,可以使用集成的电子门户图像通过旋转和静态龙门栅栏测试来跟踪MLC的位置精度。该软件用于监控两台Varian TrueBeam线性加速器在1年内的MLC日常性能,并将结果直接与使用叶轨迹日志文件确定的MLC位置进行比较。该软件通过引入已知的偏移和准直仪误差进行了验证。发现MLC的偏斜度为0.03±0.06°(平均±1标准偏差(SD)),并且取决于准直仪是手动还是自动旋转。使用内部软件分析的轨迹日志文件显示,在一年中,两个TrueBeam装置的平均MLC定位误差分别为0.004±0.003毫米(旋转)和0.004±0.011毫米(静态)。如SD所示,这些范围低于使用基于内部EPID的软件获得的相关平均MLC定位误差0.000±0.025 mm(旋转)和0.000±0.039 mm(静态)。由于程序固有的不确定性,EPID测量的MLC位置误差的范围更大。在研究过程中,使用基于EPID的软件检测到多个MLC位置错误,但使用轨迹日志文件未检测到这些相同的错误。这项工作表明,在使用无幻像方法(例如使用日志文件)减少患者特定的QC时,增加直线加速器特定QC的重要性。使用基于EPID的自动纠察栅测试,MLC位置误差的公差为0.25 mm。该软件可以诊断需要修复的任何特定叶片,并指示所需的操作过程。

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